if_wm.c revision 1.320 1 1.320 msaitoh /* $NetBSD: if_wm.c,v 1.320 2015/05/04 10:10:42 msaitoh Exp $ */
2 1.1 thorpej
3 1.1 thorpej /*
4 1.69 thorpej * Copyright (c) 2001, 2002, 2003, 2004 Wasabi Systems, Inc.
5 1.1 thorpej * All rights reserved.
6 1.1 thorpej *
7 1.1 thorpej * Written by Jason R. Thorpe for Wasabi Systems, Inc.
8 1.1 thorpej *
9 1.1 thorpej * Redistribution and use in source and binary forms, with or without
10 1.1 thorpej * modification, are permitted provided that the following conditions
11 1.1 thorpej * are met:
12 1.1 thorpej * 1. Redistributions of source code must retain the above copyright
13 1.1 thorpej * notice, this list of conditions and the following disclaimer.
14 1.1 thorpej * 2. Redistributions in binary form must reproduce the above copyright
15 1.1 thorpej * notice, this list of conditions and the following disclaimer in the
16 1.1 thorpej * documentation and/or other materials provided with the distribution.
17 1.1 thorpej * 3. All advertising materials mentioning features or use of this software
18 1.1 thorpej * must display the following acknowledgement:
19 1.1 thorpej * This product includes software developed for the NetBSD Project by
20 1.1 thorpej * Wasabi Systems, Inc.
21 1.1 thorpej * 4. The name of Wasabi Systems, Inc. may not be used to endorse
22 1.1 thorpej * or promote products derived from this software without specific prior
23 1.1 thorpej * written permission.
24 1.1 thorpej *
25 1.1 thorpej * THIS SOFTWARE IS PROVIDED BY WASABI SYSTEMS, INC. ``AS IS'' AND
26 1.1 thorpej * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
27 1.1 thorpej * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
28 1.1 thorpej * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL WASABI SYSTEMS, INC
29 1.1 thorpej * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
30 1.1 thorpej * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
31 1.1 thorpej * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
32 1.1 thorpej * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
33 1.1 thorpej * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
34 1.1 thorpej * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
35 1.1 thorpej * POSSIBILITY OF SUCH DAMAGE.
36 1.1 thorpej */
37 1.1 thorpej
38 1.139 bouyer /*******************************************************************************
39 1.139 bouyer
40 1.246 christos Copyright (c) 2001-2005, Intel Corporation
41 1.139 bouyer All rights reserved.
42 1.246 christos
43 1.246 christos Redistribution and use in source and binary forms, with or without
44 1.139 bouyer modification, are permitted provided that the following conditions are met:
45 1.246 christos
46 1.246 christos 1. Redistributions of source code must retain the above copyright notice,
47 1.139 bouyer this list of conditions and the following disclaimer.
48 1.246 christos
49 1.246 christos 2. Redistributions in binary form must reproduce the above copyright
50 1.246 christos notice, this list of conditions and the following disclaimer in the
51 1.139 bouyer documentation and/or other materials provided with the distribution.
52 1.246 christos
53 1.246 christos 3. Neither the name of the Intel Corporation nor the names of its
54 1.246 christos contributors may be used to endorse or promote products derived from
55 1.139 bouyer this software without specific prior written permission.
56 1.246 christos
57 1.139 bouyer THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS "AS IS"
58 1.246 christos AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
59 1.246 christos IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
60 1.246 christos ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT OWNER OR CONTRIBUTORS BE
61 1.246 christos LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
62 1.246 christos CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
63 1.246 christos SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
64 1.246 christos INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
65 1.246 christos CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
66 1.139 bouyer ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
67 1.139 bouyer POSSIBILITY OF SUCH DAMAGE.
68 1.139 bouyer
69 1.139 bouyer *******************************************************************************/
70 1.1 thorpej /*
71 1.11 thorpej * Device driver for the Intel i8254x family of Gigabit Ethernet chips.
72 1.1 thorpej *
73 1.1 thorpej * TODO (in order of importance):
74 1.1 thorpej *
75 1.288 msaitoh * - Check XXX'ed comments
76 1.286 msaitoh * - EEE (Energy Efficiency Ethernet)
77 1.286 msaitoh * - MSI/MSI-X
78 1.286 msaitoh * - Virtual Function
79 1.286 msaitoh * - Set LED correctly (based on contents in EEPROM)
80 1.61 thorpej * - Rework how parameters are loaded from the EEPROM.
81 1.1 thorpej */
82 1.38 lukem
83 1.38 lukem #include <sys/cdefs.h>
84 1.320 msaitoh __KERNEL_RCSID(0, "$NetBSD: if_wm.c,v 1.320 2015/05/04 10:10:42 msaitoh Exp $");
85 1.309 ozaki
86 1.309 ozaki #ifdef _KERNEL_OPT
87 1.309 ozaki #include "opt_net_mpsafe.h"
88 1.309 ozaki #endif
89 1.1 thorpej
90 1.1 thorpej #include <sys/param.h>
91 1.1 thorpej #include <sys/systm.h>
92 1.96 perry #include <sys/callout.h>
93 1.1 thorpej #include <sys/mbuf.h>
94 1.1 thorpej #include <sys/malloc.h>
95 1.1 thorpej #include <sys/kernel.h>
96 1.1 thorpej #include <sys/socket.h>
97 1.1 thorpej #include <sys/ioctl.h>
98 1.1 thorpej #include <sys/errno.h>
99 1.1 thorpej #include <sys/device.h>
100 1.1 thorpej #include <sys/queue.h>
101 1.84 thorpej #include <sys/syslog.h>
102 1.1 thorpej
103 1.315 riastrad #include <sys/rndsource.h>
104 1.21 itojun
105 1.1 thorpej #include <net/if.h>
106 1.96 perry #include <net/if_dl.h>
107 1.1 thorpej #include <net/if_media.h>
108 1.1 thorpej #include <net/if_ether.h>
109 1.1 thorpej
110 1.1 thorpej #include <net/bpf.h>
111 1.1 thorpej
112 1.1 thorpej #include <netinet/in.h> /* XXX for struct ip */
113 1.1 thorpej #include <netinet/in_systm.h> /* XXX for struct ip */
114 1.1 thorpej #include <netinet/ip.h> /* XXX for struct ip */
115 1.131 yamt #include <netinet/ip6.h> /* XXX for struct ip6_hdr */
116 1.13 thorpej #include <netinet/tcp.h> /* XXX for struct tcphdr */
117 1.1 thorpej
118 1.147 ad #include <sys/bus.h>
119 1.147 ad #include <sys/intr.h>
120 1.1 thorpej #include <machine/endian.h>
121 1.1 thorpej
122 1.1 thorpej #include <dev/mii/mii.h>
123 1.1 thorpej #include <dev/mii/miivar.h>
124 1.202 msaitoh #include <dev/mii/miidevs.h>
125 1.1 thorpej #include <dev/mii/mii_bitbang.h>
126 1.127 bouyer #include <dev/mii/ikphyreg.h>
127 1.191 msaitoh #include <dev/mii/igphyreg.h>
128 1.202 msaitoh #include <dev/mii/igphyvar.h>
129 1.192 msaitoh #include <dev/mii/inbmphyreg.h>
130 1.1 thorpej
131 1.1 thorpej #include <dev/pci/pcireg.h>
132 1.1 thorpej #include <dev/pci/pcivar.h>
133 1.1 thorpej #include <dev/pci/pcidevs.h>
134 1.1 thorpej
135 1.1 thorpej #include <dev/pci/if_wmreg.h>
136 1.182 msaitoh #include <dev/pci/if_wmvar.h>
137 1.1 thorpej
138 1.1 thorpej #ifdef WM_DEBUG
139 1.1 thorpej #define WM_DEBUG_LINK 0x01
140 1.1 thorpej #define WM_DEBUG_TX 0x02
141 1.1 thorpej #define WM_DEBUG_RX 0x04
142 1.1 thorpej #define WM_DEBUG_GMII 0x08
143 1.203 msaitoh #define WM_DEBUG_MANAGE 0x10
144 1.240 msaitoh #define WM_DEBUG_NVM 0x20
145 1.203 msaitoh int wm_debug = WM_DEBUG_TX | WM_DEBUG_RX | WM_DEBUG_LINK | WM_DEBUG_GMII
146 1.240 msaitoh | WM_DEBUG_MANAGE | WM_DEBUG_NVM;
147 1.1 thorpej
148 1.1 thorpej #define DPRINTF(x, y) if (wm_debug & (x)) printf y
149 1.1 thorpej #else
150 1.1 thorpej #define DPRINTF(x, y) /* nothing */
151 1.1 thorpej #endif /* WM_DEBUG */
152 1.1 thorpej
153 1.272 ozaki #ifdef NET_MPSAFE
154 1.272 ozaki #define WM_MPSAFE 1
155 1.272 ozaki #endif
156 1.272 ozaki
157 1.1 thorpej /*
158 1.2 thorpej * Transmit descriptor list size. Due to errata, we can only have
159 1.75 thorpej * 256 hardware descriptors in the ring on < 82544, but we use 4096
160 1.75 thorpej * on >= 82544. We tell the upper layers that they can queue a lot
161 1.75 thorpej * of packets, and we go ahead and manage up to 64 (16 for the i82547)
162 1.75 thorpej * of them at a time.
163 1.75 thorpej *
164 1.75 thorpej * We allow up to 256 (!) DMA segments per packet. Pathological packet
165 1.75 thorpej * chains containing many small mbufs have been observed in zero-copy
166 1.75 thorpej * situations with jumbo frames.
167 1.1 thorpej */
168 1.75 thorpej #define WM_NTXSEGS 256
169 1.2 thorpej #define WM_IFQUEUELEN 256
170 1.74 tron #define WM_TXQUEUELEN_MAX 64
171 1.74 tron #define WM_TXQUEUELEN_MAX_82547 16
172 1.74 tron #define WM_TXQUEUELEN(sc) ((sc)->sc_txnum)
173 1.74 tron #define WM_TXQUEUELEN_MASK(sc) (WM_TXQUEUELEN(sc) - 1)
174 1.74 tron #define WM_TXQUEUE_GC(sc) (WM_TXQUEUELEN(sc) / 8)
175 1.75 thorpej #define WM_NTXDESC_82542 256
176 1.75 thorpej #define WM_NTXDESC_82544 4096
177 1.75 thorpej #define WM_NTXDESC(sc) ((sc)->sc_ntxdesc)
178 1.75 thorpej #define WM_NTXDESC_MASK(sc) (WM_NTXDESC(sc) - 1)
179 1.75 thorpej #define WM_TXDESCSIZE(sc) (WM_NTXDESC(sc) * sizeof(wiseman_txdesc_t))
180 1.75 thorpej #define WM_NEXTTX(sc, x) (((x) + 1) & WM_NTXDESC_MASK(sc))
181 1.74 tron #define WM_NEXTTXS(sc, x) (((x) + 1) & WM_TXQUEUELEN_MASK(sc))
182 1.1 thorpej
183 1.269 tls #define WM_MAXTXDMA (2 * round_page(IP_MAXPACKET)) /* for TSO */
184 1.82 thorpej
185 1.1 thorpej /*
186 1.1 thorpej * Receive descriptor list size. We have one Rx buffer for normal
187 1.1 thorpej * sized packets. Jumbo packets consume 5 Rx buffers for a full-sized
188 1.10 thorpej * packet. We allocate 256 receive descriptors, each with a 2k
189 1.10 thorpej * buffer (MCLBYTES), which gives us room for 50 jumbo packets.
190 1.1 thorpej */
191 1.10 thorpej #define WM_NRXDESC 256
192 1.1 thorpej #define WM_NRXDESC_MASK (WM_NRXDESC - 1)
193 1.1 thorpej #define WM_NEXTRX(x) (((x) + 1) & WM_NRXDESC_MASK)
194 1.1 thorpej #define WM_PREVRX(x) (((x) - 1) & WM_NRXDESC_MASK)
195 1.1 thorpej
196 1.1 thorpej /*
197 1.1 thorpej * Control structures are DMA'd to the i82542 chip. We allocate them in
198 1.105 skrll * a single clump that maps to a single DMA segment to make several things
199 1.1 thorpej * easier.
200 1.1 thorpej */
201 1.75 thorpej struct wm_control_data_82544 {
202 1.1 thorpej /*
203 1.75 thorpej * The receive descriptors.
204 1.1 thorpej */
205 1.75 thorpej wiseman_rxdesc_t wcd_rxdescs[WM_NRXDESC];
206 1.1 thorpej
207 1.1 thorpej /*
208 1.75 thorpej * The transmit descriptors. Put these at the end, because
209 1.75 thorpej * we might use a smaller number of them.
210 1.1 thorpej */
211 1.232 bouyer union {
212 1.232 bouyer wiseman_txdesc_t wcdu_txdescs[WM_NTXDESC_82544];
213 1.232 bouyer nq_txdesc_t wcdu_nq_txdescs[WM_NTXDESC_82544];
214 1.232 bouyer } wdc_u;
215 1.75 thorpej };
216 1.75 thorpej
217 1.75 thorpej struct wm_control_data_82542 {
218 1.1 thorpej wiseman_rxdesc_t wcd_rxdescs[WM_NRXDESC];
219 1.75 thorpej wiseman_txdesc_t wcd_txdescs[WM_NTXDESC_82542];
220 1.1 thorpej };
221 1.1 thorpej
222 1.75 thorpej #define WM_CDOFF(x) offsetof(struct wm_control_data_82544, x)
223 1.232 bouyer #define WM_CDTXOFF(x) WM_CDOFF(wdc_u.wcdu_txdescs[(x)])
224 1.1 thorpej #define WM_CDRXOFF(x) WM_CDOFF(wcd_rxdescs[(x)])
225 1.1 thorpej
226 1.1 thorpej /*
227 1.1 thorpej * Software state for transmit jobs.
228 1.1 thorpej */
229 1.1 thorpej struct wm_txsoft {
230 1.1 thorpej struct mbuf *txs_mbuf; /* head of our mbuf chain */
231 1.1 thorpej bus_dmamap_t txs_dmamap; /* our DMA map */
232 1.1 thorpej int txs_firstdesc; /* first descriptor in packet */
233 1.1 thorpej int txs_lastdesc; /* last descriptor in packet */
234 1.4 thorpej int txs_ndesc; /* # of descriptors used */
235 1.1 thorpej };
236 1.1 thorpej
237 1.1 thorpej /*
238 1.1 thorpej * Software state for receive buffers. Each descriptor gets a
239 1.1 thorpej * 2k (MCLBYTES) buffer and a DMA map. For packets which fill
240 1.1 thorpej * more than one buffer, we chain them together.
241 1.1 thorpej */
242 1.1 thorpej struct wm_rxsoft {
243 1.1 thorpej struct mbuf *rxs_mbuf; /* head of our mbuf chain */
244 1.1 thorpej bus_dmamap_t rxs_dmamap; /* our DMA map */
245 1.1 thorpej };
246 1.1 thorpej
247 1.173 msaitoh #define WM_LINKUP_TIMEOUT 50
248 1.173 msaitoh
249 1.199 msaitoh static uint16_t swfwphysem[] = {
250 1.199 msaitoh SWFW_PHY0_SM,
251 1.199 msaitoh SWFW_PHY1_SM,
252 1.199 msaitoh SWFW_PHY2_SM,
253 1.199 msaitoh SWFW_PHY3_SM
254 1.199 msaitoh };
255 1.199 msaitoh
256 1.320 msaitoh static const uint32_t wm_82580_rxpbs_table[] = {
257 1.320 msaitoh 36, 72, 144, 1, 2, 4, 8, 16, 35, 70, 140
258 1.320 msaitoh };
259 1.320 msaitoh
260 1.1 thorpej /*
261 1.1 thorpej * Software state per device.
262 1.1 thorpej */
263 1.1 thorpej struct wm_softc {
264 1.160 christos device_t sc_dev; /* generic device information */
265 1.1 thorpej bus_space_tag_t sc_st; /* bus space tag */
266 1.1 thorpej bus_space_handle_t sc_sh; /* bus space handle */
267 1.204 msaitoh bus_size_t sc_ss; /* bus space size */
268 1.53 thorpej bus_space_tag_t sc_iot; /* I/O space tag */
269 1.53 thorpej bus_space_handle_t sc_ioh; /* I/O space handle */
270 1.212 jakllsch bus_size_t sc_ios; /* I/O space size */
271 1.139 bouyer bus_space_tag_t sc_flasht; /* flash registers space tag */
272 1.139 bouyer bus_space_handle_t sc_flashh; /* flash registers space handle */
273 1.1 thorpej bus_dma_tag_t sc_dmat; /* bus DMA tag */
274 1.199 msaitoh
275 1.1 thorpej struct ethercom sc_ethercom; /* ethernet common data */
276 1.199 msaitoh struct mii_data sc_mii; /* MII/media information */
277 1.199 msaitoh
278 1.123 jmcneill pci_chipset_tag_t sc_pc;
279 1.123 jmcneill pcitag_t sc_pcitag;
280 1.199 msaitoh int sc_bus_speed; /* PCI/PCIX bus speed */
281 1.281 msaitoh int sc_pcixe_capoff; /* PCI[Xe] capability reg offset */
282 1.1 thorpej
283 1.304 msaitoh uint16_t sc_pcidevid; /* PCI device ID */
284 1.192 msaitoh wm_chip_type sc_type; /* MAC type */
285 1.192 msaitoh int sc_rev; /* MAC revision */
286 1.192 msaitoh wm_phy_type sc_phytype; /* PHY type */
287 1.292 msaitoh uint32_t sc_mediatype; /* Media type (Copper, Fiber, SERDES)*/
288 1.311 msaitoh #define WM_MEDIATYPE_UNKNOWN 0x00
289 1.311 msaitoh #define WM_MEDIATYPE_FIBER 0x01
290 1.311 msaitoh #define WM_MEDIATYPE_COPPER 0x02
291 1.311 msaitoh #define WM_MEDIATYPE_SERDES 0x03 /* Internal SERDES */
292 1.199 msaitoh int sc_funcid; /* unit number of the chip (0 to 3) */
293 1.1 thorpej int sc_flags; /* flags; see below */
294 1.179 msaitoh int sc_if_flags; /* last if_flags */
295 1.71 thorpej int sc_flowflags; /* 802.3x flow control flags */
296 1.199 msaitoh int sc_align_tweak;
297 1.1 thorpej
298 1.1 thorpej void *sc_ih; /* interrupt cookie */
299 1.199 msaitoh callout_t sc_tick_ch; /* tick callout */
300 1.272 ozaki bool sc_stopping;
301 1.1 thorpej
302 1.294 msaitoh int sc_nvm_addrbits; /* NVM address bits */
303 1.294 msaitoh unsigned int sc_nvm_wordsize; /* NVM word size */
304 1.199 msaitoh int sc_ich8_flash_base;
305 1.199 msaitoh int sc_ich8_flash_bank_size;
306 1.199 msaitoh int sc_nvm_k1_enabled;
307 1.42 thorpej
308 1.281 msaitoh /* Software state for the transmit and receive descriptors. */
309 1.203 msaitoh int sc_txnum; /* must be a power of two */
310 1.203 msaitoh struct wm_txsoft sc_txsoft[WM_TXQUEUELEN_MAX];
311 1.203 msaitoh struct wm_rxsoft sc_rxsoft[WM_NRXDESC];
312 1.1 thorpej
313 1.281 msaitoh /* Control data structures. */
314 1.201 msaitoh int sc_ntxdesc; /* must be a power of two */
315 1.75 thorpej struct wm_control_data_82544 *sc_control_data;
316 1.201 msaitoh bus_dmamap_t sc_cddmamap; /* control data DMA map */
317 1.201 msaitoh bus_dma_segment_t sc_cd_seg; /* control data segment */
318 1.201 msaitoh int sc_cd_rseg; /* real number of control segment */
319 1.201 msaitoh size_t sc_cd_size; /* control data size */
320 1.201 msaitoh #define sc_cddma sc_cddmamap->dm_segs[0].ds_addr
321 1.232 bouyer #define sc_txdescs sc_control_data->wdc_u.wcdu_txdescs
322 1.232 bouyer #define sc_nq_txdescs sc_control_data->wdc_u.wcdu_nq_txdescs
323 1.1 thorpej #define sc_rxdescs sc_control_data->wcd_rxdescs
324 1.1 thorpej
325 1.1 thorpej #ifdef WM_EVENT_COUNTERS
326 1.1 thorpej /* Event counters. */
327 1.1 thorpej struct evcnt sc_ev_txsstall; /* Tx stalled due to no txs */
328 1.1 thorpej struct evcnt sc_ev_txdstall; /* Tx stalled due to no txd */
329 1.78 thorpej struct evcnt sc_ev_txfifo_stall;/* Tx FIFO stalls (82547) */
330 1.4 thorpej struct evcnt sc_ev_txdw; /* Tx descriptor interrupts */
331 1.4 thorpej struct evcnt sc_ev_txqe; /* Tx queue empty interrupts */
332 1.1 thorpej struct evcnt sc_ev_rxintr; /* Rx interrupts */
333 1.1 thorpej struct evcnt sc_ev_linkintr; /* Link interrupts */
334 1.1 thorpej
335 1.1 thorpej struct evcnt sc_ev_rxipsum; /* IP checksums checked in-bound */
336 1.1 thorpej struct evcnt sc_ev_rxtusum; /* TCP/UDP cksums checked in-bound */
337 1.1 thorpej struct evcnt sc_ev_txipsum; /* IP checksums comp. out-bound */
338 1.1 thorpej struct evcnt sc_ev_txtusum; /* TCP/UDP cksums comp. out-bound */
339 1.107 yamt struct evcnt sc_ev_txtusum6; /* TCP/UDP v6 cksums comp. out-bound */
340 1.131 yamt struct evcnt sc_ev_txtso; /* TCP seg offload out-bound (IPv4) */
341 1.131 yamt struct evcnt sc_ev_txtso6; /* TCP seg offload out-bound (IPv6) */
342 1.99 matt struct evcnt sc_ev_txtsopain; /* painful header manip. for TSO */
343 1.1 thorpej
344 1.2 thorpej struct evcnt sc_ev_txseg[WM_NTXSEGS]; /* Tx packets w/ N segments */
345 1.1 thorpej struct evcnt sc_ev_txdrop; /* Tx packets dropped (too many segs) */
346 1.1 thorpej
347 1.1 thorpej struct evcnt sc_ev_tu; /* Tx underrun */
348 1.71 thorpej
349 1.71 thorpej struct evcnt sc_ev_tx_xoff; /* Tx PAUSE(!0) frames */
350 1.71 thorpej struct evcnt sc_ev_tx_xon; /* Tx PAUSE(0) frames */
351 1.71 thorpej struct evcnt sc_ev_rx_xoff; /* Rx PAUSE(!0) frames */
352 1.71 thorpej struct evcnt sc_ev_rx_xon; /* Rx PAUSE(0) frames */
353 1.71 thorpej struct evcnt sc_ev_rx_macctl; /* Rx Unsupported */
354 1.1 thorpej #endif /* WM_EVENT_COUNTERS */
355 1.1 thorpej
356 1.1 thorpej bus_addr_t sc_tdt_reg; /* offset of TDT register */
357 1.1 thorpej
358 1.1 thorpej int sc_txfree; /* number of free Tx descriptors */
359 1.1 thorpej int sc_txnext; /* next ready Tx descriptor */
360 1.1 thorpej
361 1.1 thorpej int sc_txsfree; /* number of free Tx jobs */
362 1.1 thorpej int sc_txsnext; /* next free Tx job */
363 1.1 thorpej int sc_txsdirty; /* dirty Tx jobs */
364 1.1 thorpej
365 1.78 thorpej /* These 5 variables are used only on the 82547. */
366 1.78 thorpej int sc_txfifo_size; /* Tx FIFO size */
367 1.78 thorpej int sc_txfifo_head; /* current head of FIFO */
368 1.78 thorpej uint32_t sc_txfifo_addr; /* internal address of start of FIFO */
369 1.78 thorpej int sc_txfifo_stall; /* Tx FIFO is stalled */
370 1.142 ad callout_t sc_txfifo_ch; /* Tx FIFO stall work-around timer */
371 1.78 thorpej
372 1.1 thorpej bus_addr_t sc_rdt_reg; /* offset of RDT register */
373 1.1 thorpej
374 1.1 thorpej int sc_rxptr; /* next ready Rx descriptor/queue ent */
375 1.1 thorpej int sc_rxdiscard;
376 1.1 thorpej int sc_rxlen;
377 1.1 thorpej struct mbuf *sc_rxhead;
378 1.1 thorpej struct mbuf *sc_rxtail;
379 1.1 thorpej struct mbuf **sc_rxtailp;
380 1.1 thorpej
381 1.1 thorpej uint32_t sc_ctrl; /* prototype CTRL register */
382 1.1 thorpej #if 0
383 1.1 thorpej uint32_t sc_ctrl_ext; /* prototype CTRL_EXT register */
384 1.1 thorpej #endif
385 1.1 thorpej uint32_t sc_icr; /* prototype interrupt bits */
386 1.92 briggs uint32_t sc_itr; /* prototype intr throttling reg */
387 1.1 thorpej uint32_t sc_tctl; /* prototype TCTL register */
388 1.1 thorpej uint32_t sc_rctl; /* prototype RCTL register */
389 1.1 thorpej uint32_t sc_txcw; /* prototype TXCW register */
390 1.1 thorpej uint32_t sc_tipg; /* prototype TIPG register */
391 1.71 thorpej uint32_t sc_fcrtl; /* prototype FCRTL register */
392 1.78 thorpej uint32_t sc_pba; /* prototype PBA register */
393 1.1 thorpej
394 1.1 thorpej int sc_tbi_linkup; /* TBI link status */
395 1.173 msaitoh int sc_tbi_anegticks; /* autonegotiation ticks */
396 1.173 msaitoh int sc_tbi_ticks; /* tbi ticks */
397 1.1 thorpej
398 1.1 thorpej int sc_mchash_type; /* multicast filter offset */
399 1.21 itojun
400 1.224 tls krndsource_t rnd_source; /* random source */
401 1.272 ozaki
402 1.283 ozaki kmutex_t *sc_tx_lock; /* lock for tx operations */
403 1.283 ozaki kmutex_t *sc_rx_lock; /* lock for rx operations */
404 1.1 thorpej };
405 1.1 thorpej
406 1.283 ozaki #define WM_TX_LOCK(_sc) if ((_sc)->sc_tx_lock) mutex_enter((_sc)->sc_tx_lock)
407 1.283 ozaki #define WM_TX_UNLOCK(_sc) if ((_sc)->sc_tx_lock) mutex_exit((_sc)->sc_tx_lock)
408 1.283 ozaki #define WM_TX_LOCKED(_sc) (!(_sc)->sc_tx_lock || mutex_owned((_sc)->sc_tx_lock))
409 1.283 ozaki #define WM_RX_LOCK(_sc) if ((_sc)->sc_rx_lock) mutex_enter((_sc)->sc_rx_lock)
410 1.283 ozaki #define WM_RX_UNLOCK(_sc) if ((_sc)->sc_rx_lock) mutex_exit((_sc)->sc_rx_lock)
411 1.283 ozaki #define WM_RX_LOCKED(_sc) (!(_sc)->sc_rx_lock || mutex_owned((_sc)->sc_rx_lock))
412 1.283 ozaki #define WM_BOTH_LOCK(_sc) do {WM_TX_LOCK(_sc); WM_RX_LOCK(_sc);} while (0)
413 1.283 ozaki #define WM_BOTH_UNLOCK(_sc) do {WM_RX_UNLOCK(_sc); WM_TX_UNLOCK(_sc);} while (0)
414 1.283 ozaki #define WM_BOTH_LOCKED(_sc) (WM_TX_LOCKED(_sc) && WM_RX_LOCKED(_sc))
415 1.272 ozaki
416 1.272 ozaki #ifdef WM_MPSAFE
417 1.272 ozaki #define CALLOUT_FLAGS CALLOUT_MPSAFE
418 1.272 ozaki #else
419 1.272 ozaki #define CALLOUT_FLAGS 0
420 1.272 ozaki #endif
421 1.272 ozaki
422 1.1 thorpej #define WM_RXCHAIN_RESET(sc) \
423 1.1 thorpej do { \
424 1.1 thorpej (sc)->sc_rxtailp = &(sc)->sc_rxhead; \
425 1.1 thorpej *(sc)->sc_rxtailp = NULL; \
426 1.1 thorpej (sc)->sc_rxlen = 0; \
427 1.1 thorpej } while (/*CONSTCOND*/0)
428 1.1 thorpej
429 1.1 thorpej #define WM_RXCHAIN_LINK(sc, m) \
430 1.1 thorpej do { \
431 1.1 thorpej *(sc)->sc_rxtailp = (sc)->sc_rxtail = (m); \
432 1.1 thorpej (sc)->sc_rxtailp = &(m)->m_next; \
433 1.1 thorpej } while (/*CONSTCOND*/0)
434 1.1 thorpej
435 1.1 thorpej #ifdef WM_EVENT_COUNTERS
436 1.1 thorpej #define WM_EVCNT_INCR(ev) (ev)->ev_count++
437 1.71 thorpej #define WM_EVCNT_ADD(ev, val) (ev)->ev_count += (val)
438 1.1 thorpej #else
439 1.1 thorpej #define WM_EVCNT_INCR(ev) /* nothing */
440 1.71 thorpej #define WM_EVCNT_ADD(ev, val) /* nothing */
441 1.1 thorpej #endif
442 1.1 thorpej
443 1.1 thorpej #define CSR_READ(sc, reg) \
444 1.1 thorpej bus_space_read_4((sc)->sc_st, (sc)->sc_sh, (reg))
445 1.1 thorpej #define CSR_WRITE(sc, reg, val) \
446 1.1 thorpej bus_space_write_4((sc)->sc_st, (sc)->sc_sh, (reg), (val))
447 1.78 thorpej #define CSR_WRITE_FLUSH(sc) \
448 1.78 thorpej (void) CSR_READ((sc), WMREG_STATUS)
449 1.1 thorpej
450 1.139 bouyer #define ICH8_FLASH_READ32(sc, reg) \
451 1.139 bouyer bus_space_read_4((sc)->sc_flasht, (sc)->sc_flashh, (reg))
452 1.139 bouyer #define ICH8_FLASH_WRITE32(sc, reg, data) \
453 1.139 bouyer bus_space_write_4((sc)->sc_flasht, (sc)->sc_flashh, (reg), (data))
454 1.139 bouyer
455 1.139 bouyer #define ICH8_FLASH_READ16(sc, reg) \
456 1.139 bouyer bus_space_read_2((sc)->sc_flasht, (sc)->sc_flashh, (reg))
457 1.139 bouyer #define ICH8_FLASH_WRITE16(sc, reg, data) \
458 1.139 bouyer bus_space_write_2((sc)->sc_flasht, (sc)->sc_flashh, (reg), (data))
459 1.139 bouyer
460 1.1 thorpej #define WM_CDTXADDR(sc, x) ((sc)->sc_cddma + WM_CDTXOFF((x)))
461 1.1 thorpej #define WM_CDRXADDR(sc, x) ((sc)->sc_cddma + WM_CDRXOFF((x)))
462 1.1 thorpej
463 1.69 thorpej #define WM_CDTXADDR_LO(sc, x) (WM_CDTXADDR((sc), (x)) & 0xffffffffU)
464 1.69 thorpej #define WM_CDTXADDR_HI(sc, x) \
465 1.69 thorpej (sizeof(bus_addr_t) == 8 ? \
466 1.69 thorpej (uint64_t)WM_CDTXADDR((sc), (x)) >> 32 : 0)
467 1.69 thorpej
468 1.69 thorpej #define WM_CDRXADDR_LO(sc, x) (WM_CDRXADDR((sc), (x)) & 0xffffffffU)
469 1.69 thorpej #define WM_CDRXADDR_HI(sc, x) \
470 1.69 thorpej (sizeof(bus_addr_t) == 8 ? \
471 1.69 thorpej (uint64_t)WM_CDRXADDR((sc), (x)) >> 32 : 0)
472 1.69 thorpej
473 1.1 thorpej #define WM_CDTXSYNC(sc, x, n, ops) \
474 1.1 thorpej do { \
475 1.1 thorpej int __x, __n; \
476 1.1 thorpej \
477 1.1 thorpej __x = (x); \
478 1.1 thorpej __n = (n); \
479 1.1 thorpej \
480 1.1 thorpej /* If it will wrap around, sync to the end of the ring. */ \
481 1.75 thorpej if ((__x + __n) > WM_NTXDESC(sc)) { \
482 1.1 thorpej bus_dmamap_sync((sc)->sc_dmat, (sc)->sc_cddmamap, \
483 1.1 thorpej WM_CDTXOFF(__x), sizeof(wiseman_txdesc_t) * \
484 1.75 thorpej (WM_NTXDESC(sc) - __x), (ops)); \
485 1.75 thorpej __n -= (WM_NTXDESC(sc) - __x); \
486 1.1 thorpej __x = 0; \
487 1.1 thorpej } \
488 1.1 thorpej \
489 1.1 thorpej /* Now sync whatever is left. */ \
490 1.1 thorpej bus_dmamap_sync((sc)->sc_dmat, (sc)->sc_cddmamap, \
491 1.1 thorpej WM_CDTXOFF(__x), sizeof(wiseman_txdesc_t) * __n, (ops)); \
492 1.1 thorpej } while (/*CONSTCOND*/0)
493 1.1 thorpej
494 1.1 thorpej #define WM_CDRXSYNC(sc, x, ops) \
495 1.1 thorpej do { \
496 1.1 thorpej bus_dmamap_sync((sc)->sc_dmat, (sc)->sc_cddmamap, \
497 1.1 thorpej WM_CDRXOFF((x)), sizeof(wiseman_rxdesc_t), (ops)); \
498 1.1 thorpej } while (/*CONSTCOND*/0)
499 1.1 thorpej
500 1.1 thorpej #define WM_INIT_RXDESC(sc, x) \
501 1.1 thorpej do { \
502 1.1 thorpej struct wm_rxsoft *__rxs = &(sc)->sc_rxsoft[(x)]; \
503 1.1 thorpej wiseman_rxdesc_t *__rxd = &(sc)->sc_rxdescs[(x)]; \
504 1.1 thorpej struct mbuf *__m = __rxs->rxs_mbuf; \
505 1.1 thorpej \
506 1.1 thorpej /* \
507 1.1 thorpej * Note: We scoot the packet forward 2 bytes in the buffer \
508 1.1 thorpej * so that the payload after the Ethernet header is aligned \
509 1.1 thorpej * to a 4-byte boundary. \
510 1.1 thorpej * \
511 1.1 thorpej * XXX BRAINDAMAGE ALERT! \
512 1.1 thorpej * The stupid chip uses the same size for every buffer, which \
513 1.1 thorpej * is set in the Receive Control register. We are using the 2K \
514 1.1 thorpej * size option, but what we REALLY want is (2K - 2)! For this \
515 1.41 tls * reason, we can't "scoot" packets longer than the standard \
516 1.41 tls * Ethernet MTU. On strict-alignment platforms, if the total \
517 1.42 thorpej * size exceeds (2K - 2) we set align_tweak to 0 and let \
518 1.41 tls * the upper layer copy the headers. \
519 1.1 thorpej */ \
520 1.42 thorpej __m->m_data = __m->m_ext.ext_buf + (sc)->sc_align_tweak; \
521 1.1 thorpej \
522 1.69 thorpej wm_set_dma_addr(&__rxd->wrx_addr, \
523 1.69 thorpej __rxs->rxs_dmamap->dm_segs[0].ds_addr + (sc)->sc_align_tweak); \
524 1.1 thorpej __rxd->wrx_len = 0; \
525 1.1 thorpej __rxd->wrx_cksum = 0; \
526 1.1 thorpej __rxd->wrx_status = 0; \
527 1.1 thorpej __rxd->wrx_errors = 0; \
528 1.1 thorpej __rxd->wrx_special = 0; \
529 1.1 thorpej WM_CDRXSYNC((sc), (x), BUS_DMASYNC_PREREAD|BUS_DMASYNC_PREWRITE); \
530 1.1 thorpej \
531 1.1 thorpej CSR_WRITE((sc), (sc)->sc_rdt_reg, (x)); \
532 1.1 thorpej } while (/*CONSTCOND*/0)
533 1.1 thorpej
534 1.280 msaitoh /*
535 1.280 msaitoh * Register read/write functions.
536 1.280 msaitoh * Other than CSR_{READ|WRITE}().
537 1.280 msaitoh */
538 1.280 msaitoh #if 0
539 1.280 msaitoh static inline uint32_t wm_io_read(struct wm_softc *, int);
540 1.280 msaitoh #endif
541 1.280 msaitoh static inline void wm_io_write(struct wm_softc *, int, uint32_t);
542 1.280 msaitoh static inline void wm_82575_write_8bit_ctlr_reg(struct wm_softc *, uint32_t,
543 1.280 msaitoh uint32_t, uint32_t);
544 1.280 msaitoh static inline void wm_set_dma_addr(volatile wiseman_addr_t *, bus_addr_t);
545 1.280 msaitoh
546 1.280 msaitoh /*
547 1.280 msaitoh * Device driver interface functions and commonly used functions.
548 1.280 msaitoh * match, attach, detach, init, start, stop, ioctl, watchdog and so on.
549 1.280 msaitoh */
550 1.280 msaitoh static const struct wm_product *wm_lookup(const struct pci_attach_args *);
551 1.280 msaitoh static int wm_match(device_t, cfdata_t, void *);
552 1.280 msaitoh static void wm_attach(device_t, device_t, void *);
553 1.280 msaitoh static int wm_detach(device_t, int);
554 1.280 msaitoh static bool wm_suspend(device_t, const pmf_qual_t *);
555 1.280 msaitoh static bool wm_resume(device_t, const pmf_qual_t *);
556 1.47 thorpej static void wm_watchdog(struct ifnet *);
557 1.280 msaitoh static void wm_tick(void *);
558 1.213 msaitoh static int wm_ifflags_cb(struct ethercom *);
559 1.135 christos static int wm_ioctl(struct ifnet *, u_long, void *);
560 1.280 msaitoh /* MAC address related */
561 1.306 msaitoh static uint16_t wm_check_alt_mac_addr(struct wm_softc *);
562 1.280 msaitoh static int wm_read_mac_addr(struct wm_softc *, uint8_t *);
563 1.280 msaitoh static void wm_set_ral(struct wm_softc *, const uint8_t *, int);
564 1.280 msaitoh static uint32_t wm_mchash(struct wm_softc *, const uint8_t *);
565 1.280 msaitoh static void wm_set_filter(struct wm_softc *);
566 1.280 msaitoh /* Reset and init related */
567 1.280 msaitoh static void wm_set_vlan(struct wm_softc *);
568 1.280 msaitoh static void wm_set_pcie_completion_timeout(struct wm_softc *);
569 1.280 msaitoh static void wm_get_auto_rd_done(struct wm_softc *);
570 1.280 msaitoh static void wm_lan_init_done(struct wm_softc *);
571 1.280 msaitoh static void wm_get_cfg_done(struct wm_softc *);
572 1.312 msaitoh static void wm_initialize_hardware_bits(struct wm_softc *);
573 1.320 msaitoh static uint32_t wm_rxpbs_adjust_82580(uint32_t);
574 1.280 msaitoh static void wm_reset(struct wm_softc *);
575 1.280 msaitoh static int wm_add_rxbuf(struct wm_softc *, int);
576 1.280 msaitoh static void wm_rxdrain(struct wm_softc *);
577 1.47 thorpej static int wm_init(struct ifnet *);
578 1.272 ozaki static int wm_init_locked(struct ifnet *);
579 1.47 thorpej static void wm_stop(struct ifnet *, int);
580 1.272 ozaki static void wm_stop_locked(struct ifnet *, int);
581 1.280 msaitoh static int wm_tx_offload(struct wm_softc *, struct wm_txsoft *,
582 1.280 msaitoh uint32_t *, uint8_t *);
583 1.280 msaitoh static void wm_dump_mbuf_chain(struct wm_softc *, struct mbuf *);
584 1.280 msaitoh static void wm_82547_txfifo_stall(void *);
585 1.280 msaitoh static int wm_82547_txfifo_bugchk(struct wm_softc *, struct mbuf *);
586 1.280 msaitoh /* Start */
587 1.280 msaitoh static void wm_start(struct ifnet *);
588 1.280 msaitoh static void wm_start_locked(struct ifnet *);
589 1.280 msaitoh static int wm_nq_tx_offload(struct wm_softc *, struct wm_txsoft *,
590 1.280 msaitoh uint32_t *, uint32_t *, bool *);
591 1.280 msaitoh static void wm_nq_start(struct ifnet *);
592 1.280 msaitoh static void wm_nq_start_locked(struct ifnet *);
593 1.280 msaitoh /* Interrupt */
594 1.47 thorpej static void wm_txintr(struct wm_softc *);
595 1.47 thorpej static void wm_rxintr(struct wm_softc *);
596 1.280 msaitoh static void wm_linkintr_gmii(struct wm_softc *, uint32_t);
597 1.280 msaitoh static void wm_linkintr_tbi(struct wm_softc *, uint32_t);
598 1.47 thorpej static void wm_linkintr(struct wm_softc *, uint32_t);
599 1.280 msaitoh static int wm_intr(void *);
600 1.1 thorpej
601 1.280 msaitoh /*
602 1.280 msaitoh * Media related.
603 1.292 msaitoh * GMII, SGMII, TBI, SERDES and SFP.
604 1.280 msaitoh */
605 1.280 msaitoh /* GMII related */
606 1.47 thorpej static void wm_gmii_reset(struct wm_softc *);
607 1.280 msaitoh static int wm_get_phy_id_82575(struct wm_softc *);
608 1.280 msaitoh static void wm_gmii_mediainit(struct wm_softc *, pci_product_id_t);
609 1.280 msaitoh static void wm_gmii_mediastatus(struct ifnet *, struct ifmediareq *);
610 1.280 msaitoh static int wm_gmii_mediachange(struct ifnet *);
611 1.280 msaitoh static void wm_i82543_mii_sendbits(struct wm_softc *, uint32_t, int);
612 1.280 msaitoh static uint32_t wm_i82543_mii_recvbits(struct wm_softc *);
613 1.157 dyoung static int wm_gmii_i82543_readreg(device_t, int, int);
614 1.157 dyoung static void wm_gmii_i82543_writereg(device_t, int, int, int);
615 1.157 dyoung static int wm_gmii_i82544_readreg(device_t, int, int);
616 1.157 dyoung static void wm_gmii_i82544_writereg(device_t, int, int, int);
617 1.157 dyoung static int wm_gmii_i80003_readreg(device_t, int, int);
618 1.157 dyoung static void wm_gmii_i80003_writereg(device_t, int, int, int);
619 1.167 msaitoh static int wm_gmii_bm_readreg(device_t, int, int);
620 1.167 msaitoh static void wm_gmii_bm_writereg(device_t, int, int, int);
621 1.280 msaitoh static void wm_access_phy_wakeup_reg_bm(device_t, int, int16_t *, int);
622 1.192 msaitoh static int wm_gmii_hv_readreg(device_t, int, int);
623 1.192 msaitoh static void wm_gmii_hv_writereg(device_t, int, int, int);
624 1.243 msaitoh static int wm_gmii_82580_readreg(device_t, int, int);
625 1.243 msaitoh static void wm_gmii_82580_writereg(device_t, int, int, int);
626 1.280 msaitoh static void wm_gmii_statchg(struct ifnet *);
627 1.280 msaitoh static int wm_kmrn_readreg(struct wm_softc *, int);
628 1.280 msaitoh static void wm_kmrn_writereg(struct wm_softc *, int, int);
629 1.280 msaitoh /* SGMII */
630 1.265 msaitoh static bool wm_sgmii_uses_mdio(struct wm_softc *);
631 1.199 msaitoh static int wm_sgmii_readreg(device_t, int, int);
632 1.199 msaitoh static void wm_sgmii_writereg(device_t, int, int, int);
633 1.280 msaitoh /* TBI related */
634 1.280 msaitoh static int wm_check_for_link(struct wm_softc *);
635 1.280 msaitoh static void wm_tbi_mediainit(struct wm_softc *);
636 1.280 msaitoh static void wm_tbi_mediastatus(struct ifnet *, struct ifmediareq *);
637 1.280 msaitoh static int wm_tbi_mediachange(struct ifnet *);
638 1.280 msaitoh static void wm_tbi_set_linkled(struct wm_softc *);
639 1.280 msaitoh static void wm_tbi_check_link(struct wm_softc *);
640 1.292 msaitoh /* SFP related */
641 1.295 msaitoh static int wm_sfp_read_data_byte(struct wm_softc *, uint16_t, uint8_t *);
642 1.295 msaitoh static uint32_t wm_sfp_get_media_type(struct wm_softc *);
643 1.167 msaitoh
644 1.280 msaitoh /*
645 1.280 msaitoh * NVM related.
646 1.280 msaitoh * Microwire, SPI (w/wo EERD) and Flash.
647 1.280 msaitoh */
648 1.294 msaitoh /* Misc functions */
649 1.280 msaitoh static void wm_eeprom_sendbits(struct wm_softc *, uint32_t, int);
650 1.280 msaitoh static void wm_eeprom_recvbits(struct wm_softc *, uint32_t *, int);
651 1.294 msaitoh static int wm_nvm_set_addrbits_size_eecd(struct wm_softc *);
652 1.280 msaitoh /* Microwire */
653 1.280 msaitoh static int wm_nvm_read_uwire(struct wm_softc *, int, int, uint16_t *);
654 1.280 msaitoh /* SPI */
655 1.280 msaitoh static int wm_nvm_ready_spi(struct wm_softc *);
656 1.280 msaitoh static int wm_nvm_read_spi(struct wm_softc *, int, int, uint16_t *);
657 1.280 msaitoh /* Using with EERD */
658 1.280 msaitoh static int wm_poll_eerd_eewr_done(struct wm_softc *, int);
659 1.280 msaitoh static int wm_nvm_read_eerd(struct wm_softc *, int, int, uint16_t *);
660 1.280 msaitoh /* Flash */
661 1.280 msaitoh static int wm_nvm_valid_bank_detect_ich8lan(struct wm_softc *,
662 1.280 msaitoh unsigned int *);
663 1.280 msaitoh static int32_t wm_ich8_cycle_init(struct wm_softc *);
664 1.280 msaitoh static int32_t wm_ich8_flash_cycle(struct wm_softc *, uint32_t);
665 1.280 msaitoh static int32_t wm_read_ich8_data(struct wm_softc *, uint32_t, uint32_t,
666 1.280 msaitoh uint16_t *);
667 1.280 msaitoh static int32_t wm_read_ich8_byte(struct wm_softc *, uint32_t, uint8_t *);
668 1.280 msaitoh static int32_t wm_read_ich8_word(struct wm_softc *, uint32_t, uint16_t *);
669 1.280 msaitoh static int wm_nvm_read_ich8(struct wm_softc *, int, int, uint16_t *);
670 1.280 msaitoh /* Lock, detecting NVM type, validate checksum and read */
671 1.280 msaitoh static int wm_nvm_acquire(struct wm_softc *);
672 1.280 msaitoh static void wm_nvm_release(struct wm_softc *);
673 1.280 msaitoh static int wm_nvm_is_onboard_eeprom(struct wm_softc *);
674 1.280 msaitoh static int wm_nvm_validate_checksum(struct wm_softc *);
675 1.280 msaitoh static int wm_nvm_read(struct wm_softc *, int, int, uint16_t *);
676 1.1 thorpej
677 1.280 msaitoh /*
678 1.280 msaitoh * Hardware semaphores.
679 1.280 msaitoh * Very complexed...
680 1.280 msaitoh */
681 1.127 bouyer static int wm_get_swsm_semaphore(struct wm_softc *);
682 1.127 bouyer static void wm_put_swsm_semaphore(struct wm_softc *);
683 1.127 bouyer static int wm_get_swfw_semaphore(struct wm_softc *, uint16_t);
684 1.127 bouyer static void wm_put_swfw_semaphore(struct wm_softc *, uint16_t);
685 1.139 bouyer static int wm_get_swfwhw_semaphore(struct wm_softc *);
686 1.139 bouyer static void wm_put_swfwhw_semaphore(struct wm_softc *);
687 1.259 msaitoh static int wm_get_hw_semaphore_82573(struct wm_softc *);
688 1.259 msaitoh static void wm_put_hw_semaphore_82573(struct wm_softc *);
689 1.139 bouyer
690 1.280 msaitoh /*
691 1.280 msaitoh * Management mode and power management related subroutines.
692 1.280 msaitoh * BMC, AMT, suspend/resume and EEE.
693 1.280 msaitoh */
694 1.169 msaitoh static int wm_check_mng_mode(struct wm_softc *);
695 1.169 msaitoh static int wm_check_mng_mode_ich8lan(struct wm_softc *);
696 1.169 msaitoh static int wm_check_mng_mode_82574(struct wm_softc *);
697 1.169 msaitoh static int wm_check_mng_mode_generic(struct wm_softc *);
698 1.203 msaitoh static int wm_enable_mng_pass_thru(struct wm_softc *);
699 1.189 msaitoh static int wm_check_reset_block(struct wm_softc *);
700 1.169 msaitoh static void wm_get_hw_control(struct wm_softc *);
701 1.280 msaitoh static void wm_release_hw_control(struct wm_softc *);
702 1.280 msaitoh static void wm_gate_hw_phy_config_ich8lan(struct wm_softc *, int);
703 1.280 msaitoh static void wm_smbustopci(struct wm_softc *);
704 1.280 msaitoh static void wm_init_manageability(struct wm_softc *);
705 1.280 msaitoh static void wm_release_manageability(struct wm_softc *);
706 1.280 msaitoh static void wm_get_wakeup(struct wm_softc *);
707 1.203 msaitoh #ifdef WM_WOL
708 1.280 msaitoh static void wm_enable_phy_wakeup(struct wm_softc *);
709 1.203 msaitoh static void wm_igp3_phy_powerdown_workaround_ich8lan(struct wm_softc *);
710 1.280 msaitoh static void wm_enable_wakeup(struct wm_softc *);
711 1.203 msaitoh #endif
712 1.280 msaitoh /* EEE */
713 1.280 msaitoh static void wm_set_eee_i350(struct wm_softc *);
714 1.280 msaitoh
715 1.280 msaitoh /*
716 1.280 msaitoh * Workarounds (mainly PHY related).
717 1.280 msaitoh * Basically, PHY's workarounds are in the PHY drivers.
718 1.280 msaitoh */
719 1.280 msaitoh static void wm_kmrn_lock_loss_workaround_ich8lan(struct wm_softc *);
720 1.280 msaitoh static void wm_gig_downshift_workaround_ich8lan(struct wm_softc *);
721 1.192 msaitoh static void wm_hv_phy_workaround_ich8lan(struct wm_softc *);
722 1.221 msaitoh static void wm_lv_phy_workaround_ich8lan(struct wm_softc *);
723 1.192 msaitoh static void wm_k1_gig_workaround_hv(struct wm_softc *, int);
724 1.221 msaitoh static void wm_set_mdio_slow_mode_hv(struct wm_softc *);
725 1.192 msaitoh static void wm_configure_k1_ich8lan(struct wm_softc *, int);
726 1.199 msaitoh static void wm_reset_init_script_82575(struct wm_softc *);
727 1.1 thorpej
728 1.201 msaitoh CFATTACH_DECL3_NEW(wm, sizeof(struct wm_softc),
729 1.201 msaitoh wm_match, wm_attach, wm_detach, NULL, NULL, NULL, DVF_DETACH_SHUTDOWN);
730 1.1 thorpej
731 1.1 thorpej /*
732 1.1 thorpej * Devices supported by this driver.
733 1.1 thorpej */
734 1.76 thorpej static const struct wm_product {
735 1.1 thorpej pci_vendor_id_t wmp_vendor;
736 1.1 thorpej pci_product_id_t wmp_product;
737 1.1 thorpej const char *wmp_name;
738 1.43 thorpej wm_chip_type wmp_type;
739 1.292 msaitoh uint32_t wmp_flags;
740 1.311 msaitoh #define WMP_F_UNKNOWN WM_MEDIATYPE_UNKNOWN
741 1.311 msaitoh #define WMP_F_FIBER WM_MEDIATYPE_FIBER
742 1.311 msaitoh #define WMP_F_COPPER WM_MEDIATYPE_COPPER
743 1.311 msaitoh #define WMP_F_SERDES WM_MEDIATYPE_SERDES
744 1.292 msaitoh #define WMP_MEDIATYPE(x) ((x) & 0x03)
745 1.1 thorpej } wm_products[] = {
746 1.1 thorpej { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82542,
747 1.1 thorpej "Intel i82542 1000BASE-X Ethernet",
748 1.291 msaitoh WM_T_82542_2_1, WMP_F_FIBER },
749 1.1 thorpej
750 1.11 thorpej { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82543GC_FIBER,
751 1.11 thorpej "Intel i82543GC 1000BASE-X Ethernet",
752 1.291 msaitoh WM_T_82543, WMP_F_FIBER },
753 1.1 thorpej
754 1.11 thorpej { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82543GC_COPPER,
755 1.11 thorpej "Intel i82543GC 1000BASE-T Ethernet",
756 1.291 msaitoh WM_T_82543, WMP_F_COPPER },
757 1.1 thorpej
758 1.11 thorpej { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82544EI_COPPER,
759 1.11 thorpej "Intel i82544EI 1000BASE-T Ethernet",
760 1.291 msaitoh WM_T_82544, WMP_F_COPPER },
761 1.1 thorpej
762 1.11 thorpej { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82544EI_FIBER,
763 1.11 thorpej "Intel i82544EI 1000BASE-X Ethernet",
764 1.291 msaitoh WM_T_82544, WMP_F_FIBER },
765 1.1 thorpej
766 1.11 thorpej { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82544GC_COPPER,
767 1.1 thorpej "Intel i82544GC 1000BASE-T Ethernet",
768 1.291 msaitoh WM_T_82544, WMP_F_COPPER },
769 1.1 thorpej
770 1.11 thorpej { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82544GC_LOM,
771 1.11 thorpej "Intel i82544GC (LOM) 1000BASE-T Ethernet",
772 1.291 msaitoh WM_T_82544, WMP_F_COPPER },
773 1.1 thorpej
774 1.17 thorpej { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82540EM,
775 1.17 thorpej "Intel i82540EM 1000BASE-T Ethernet",
776 1.291 msaitoh WM_T_82540, WMP_F_COPPER },
777 1.34 kent
778 1.55 thorpej { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82540EM_LOM,
779 1.55 thorpej "Intel i82540EM (LOM) 1000BASE-T Ethernet",
780 1.291 msaitoh WM_T_82540, WMP_F_COPPER },
781 1.55 thorpej
782 1.34 kent { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82540EP_LOM,
783 1.34 kent "Intel i82540EP 1000BASE-T Ethernet",
784 1.291 msaitoh WM_T_82540, WMP_F_COPPER },
785 1.34 kent
786 1.34 kent { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82540EP,
787 1.34 kent "Intel i82540EP 1000BASE-T Ethernet",
788 1.291 msaitoh WM_T_82540, WMP_F_COPPER },
789 1.33 kent
790 1.33 kent { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82540EP_LP,
791 1.33 kent "Intel i82540EP 1000BASE-T Ethernet",
792 1.291 msaitoh WM_T_82540, WMP_F_COPPER },
793 1.17 thorpej
794 1.17 thorpej { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82545EM_COPPER,
795 1.17 thorpej "Intel i82545EM 1000BASE-T Ethernet",
796 1.291 msaitoh WM_T_82545, WMP_F_COPPER },
797 1.17 thorpej
798 1.55 thorpej { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82545GM_COPPER,
799 1.55 thorpej "Intel i82545GM 1000BASE-T Ethernet",
800 1.291 msaitoh WM_T_82545_3, WMP_F_COPPER },
801 1.55 thorpej
802 1.55 thorpej { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82545GM_FIBER,
803 1.55 thorpej "Intel i82545GM 1000BASE-X Ethernet",
804 1.291 msaitoh WM_T_82545_3, WMP_F_FIBER },
805 1.279 msaitoh
806 1.55 thorpej { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82545GM_SERDES,
807 1.55 thorpej "Intel i82545GM Gigabit Ethernet (SERDES)",
808 1.55 thorpej WM_T_82545_3, WMP_F_SERDES },
809 1.279 msaitoh
810 1.17 thorpej { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82546EB_COPPER,
811 1.39 thorpej "Intel i82546EB 1000BASE-T Ethernet",
812 1.291 msaitoh WM_T_82546, WMP_F_COPPER },
813 1.39 thorpej
814 1.198 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82546EB_QUAD,
815 1.17 thorpej "Intel i82546EB 1000BASE-T Ethernet",
816 1.291 msaitoh WM_T_82546, WMP_F_COPPER },
817 1.17 thorpej
818 1.17 thorpej { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82545EM_FIBER,
819 1.17 thorpej "Intel i82545EM 1000BASE-X Ethernet",
820 1.291 msaitoh WM_T_82545, WMP_F_FIBER },
821 1.17 thorpej
822 1.17 thorpej { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82546EB_FIBER,
823 1.17 thorpej "Intel i82546EB 1000BASE-X Ethernet",
824 1.291 msaitoh WM_T_82546, WMP_F_FIBER },
825 1.17 thorpej
826 1.55 thorpej { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82546GB_COPPER,
827 1.55 thorpej "Intel i82546GB 1000BASE-T Ethernet",
828 1.291 msaitoh WM_T_82546_3, WMP_F_COPPER },
829 1.55 thorpej
830 1.55 thorpej { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82546GB_FIBER,
831 1.55 thorpej "Intel i82546GB 1000BASE-X Ethernet",
832 1.291 msaitoh WM_T_82546_3, WMP_F_FIBER },
833 1.279 msaitoh
834 1.55 thorpej { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82546GB_SERDES,
835 1.55 thorpej "Intel i82546GB Gigabit Ethernet (SERDES)",
836 1.55 thorpej WM_T_82546_3, WMP_F_SERDES },
837 1.279 msaitoh
838 1.127 bouyer { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82546GB_QUAD_COPPER,
839 1.127 bouyer "i82546GB quad-port Gigabit Ethernet",
840 1.291 msaitoh WM_T_82546_3, WMP_F_COPPER },
841 1.127 bouyer
842 1.127 bouyer { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82546GB_QUAD_COPPER_KSP3,
843 1.127 bouyer "i82546GB quad-port Gigabit Ethernet (KSP3)",
844 1.291 msaitoh WM_T_82546_3, WMP_F_COPPER },
845 1.127 bouyer
846 1.116 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82546GB_PCIE,
847 1.116 msaitoh "Intel PRO/1000MT (82546GB)",
848 1.291 msaitoh WM_T_82546_3, WMP_F_COPPER },
849 1.116 msaitoh
850 1.63 thorpej { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82541EI,
851 1.63 thorpej "Intel i82541EI 1000BASE-T Ethernet",
852 1.291 msaitoh WM_T_82541, WMP_F_COPPER },
853 1.63 thorpej
854 1.116 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82541ER_LOM,
855 1.116 msaitoh "Intel i82541ER (LOM) 1000BASE-T Ethernet",
856 1.291 msaitoh WM_T_82541, WMP_F_COPPER },
857 1.116 msaitoh
858 1.57 thorpej { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82541EI_MOBILE,
859 1.57 thorpej "Intel i82541EI Mobile 1000BASE-T Ethernet",
860 1.291 msaitoh WM_T_82541, WMP_F_COPPER },
861 1.57 thorpej
862 1.57 thorpej { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82541ER,
863 1.57 thorpej "Intel i82541ER 1000BASE-T Ethernet",
864 1.291 msaitoh WM_T_82541_2, WMP_F_COPPER },
865 1.57 thorpej
866 1.57 thorpej { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82541GI,
867 1.57 thorpej "Intel i82541GI 1000BASE-T Ethernet",
868 1.291 msaitoh WM_T_82541_2, WMP_F_COPPER },
869 1.57 thorpej
870 1.57 thorpej { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82541GI_MOBILE,
871 1.57 thorpej "Intel i82541GI Mobile 1000BASE-T Ethernet",
872 1.291 msaitoh WM_T_82541_2, WMP_F_COPPER },
873 1.57 thorpej
874 1.101 tron { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82541PI,
875 1.101 tron "Intel i82541PI 1000BASE-T Ethernet",
876 1.291 msaitoh WM_T_82541_2, WMP_F_COPPER },
877 1.101 tron
878 1.57 thorpej { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82547EI,
879 1.57 thorpej "Intel i82547EI 1000BASE-T Ethernet",
880 1.291 msaitoh WM_T_82547, WMP_F_COPPER },
881 1.57 thorpej
882 1.116 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82547EI_MOBILE,
883 1.141 simonb "Intel i82547EI Mobile 1000BASE-T Ethernet",
884 1.291 msaitoh WM_T_82547, WMP_F_COPPER },
885 1.116 msaitoh
886 1.57 thorpej { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82547GI,
887 1.57 thorpej "Intel i82547GI 1000BASE-T Ethernet",
888 1.291 msaitoh WM_T_82547_2, WMP_F_COPPER },
889 1.116 msaitoh
890 1.116 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82571EB_COPPER,
891 1.116 msaitoh "Intel PRO/1000 PT (82571EB)",
892 1.291 msaitoh WM_T_82571, WMP_F_COPPER },
893 1.116 msaitoh
894 1.116 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82571EB_FIBER,
895 1.116 msaitoh "Intel PRO/1000 PF (82571EB)",
896 1.291 msaitoh WM_T_82571, WMP_F_FIBER },
897 1.279 msaitoh
898 1.116 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82571EB_SERDES,
899 1.116 msaitoh "Intel PRO/1000 PB (82571EB)",
900 1.116 msaitoh WM_T_82571, WMP_F_SERDES },
901 1.279 msaitoh
902 1.127 bouyer { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82571EB_QUAD_COPPER,
903 1.127 bouyer "Intel PRO/1000 QT (82571EB)",
904 1.291 msaitoh WM_T_82571, WMP_F_COPPER },
905 1.127 bouyer
906 1.299 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82571GB_QUAD_COPPER,
907 1.299 msaitoh "Intel PRO/1000 PT Quad Port Server Adapter",
908 1.299 msaitoh WM_T_82571, WMP_F_COPPER, },
909 1.299 msaitoh
910 1.299 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82571PT_QUAD_COPPER,
911 1.299 msaitoh "Intel Gigabit PT Quad Port Server ExpressModule",
912 1.299 msaitoh WM_T_82571, WMP_F_COPPER, },
913 1.299 msaitoh
914 1.299 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82571EB_DUAL_SERDES,
915 1.299 msaitoh "Intel 82571EB Dual Gigabit Ethernet (SERDES)",
916 1.299 msaitoh WM_T_82571, WMP_F_SERDES, },
917 1.299 msaitoh
918 1.299 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82571EB_QUAD_SERDES,
919 1.299 msaitoh "Intel 82571EB Quad Gigabit Ethernet (SERDES)",
920 1.299 msaitoh WM_T_82571, WMP_F_SERDES, },
921 1.299 msaitoh
922 1.299 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82571EB_QUAD_FIBER,
923 1.299 msaitoh "Intel 82571EB Quad 1000baseX Ethernet",
924 1.299 msaitoh WM_T_82571, WMP_F_FIBER, },
925 1.299 msaitoh
926 1.116 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82572EI_COPPER,
927 1.116 msaitoh "Intel i82572EI 1000baseT Ethernet",
928 1.291 msaitoh WM_T_82572, WMP_F_COPPER },
929 1.116 msaitoh
930 1.116 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82572EI_FIBER,
931 1.116 msaitoh "Intel i82572EI 1000baseX Ethernet",
932 1.291 msaitoh WM_T_82572, WMP_F_FIBER },
933 1.279 msaitoh
934 1.116 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82572EI_SERDES,
935 1.116 msaitoh "Intel i82572EI Gigabit Ethernet (SERDES)",
936 1.116 msaitoh WM_T_82572, WMP_F_SERDES },
937 1.116 msaitoh
938 1.116 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82572EI,
939 1.116 msaitoh "Intel i82572EI 1000baseT Ethernet",
940 1.291 msaitoh WM_T_82572, WMP_F_COPPER },
941 1.116 msaitoh
942 1.116 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82573E,
943 1.116 msaitoh "Intel i82573E",
944 1.291 msaitoh WM_T_82573, WMP_F_COPPER },
945 1.116 msaitoh
946 1.116 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82573E_IAMT,
947 1.117 msaitoh "Intel i82573E IAMT",
948 1.291 msaitoh WM_T_82573, WMP_F_COPPER },
949 1.116 msaitoh
950 1.116 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82573L,
951 1.116 msaitoh "Intel i82573L Gigabit Ethernet",
952 1.291 msaitoh WM_T_82573, WMP_F_COPPER },
953 1.116 msaitoh
954 1.165 sborrill { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82574L,
955 1.165 sborrill "Intel i82574L",
956 1.291 msaitoh WM_T_82574, WMP_F_COPPER },
957 1.165 sborrill
958 1.299 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82574LA,
959 1.299 msaitoh "Intel i82574L",
960 1.299 msaitoh WM_T_82574, WMP_F_COPPER },
961 1.299 msaitoh
962 1.185 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82583V,
963 1.185 msaitoh "Intel i82583V",
964 1.291 msaitoh WM_T_82583, WMP_F_COPPER },
965 1.185 msaitoh
966 1.127 bouyer { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_80K3LAN_CPR_DPT,
967 1.127 bouyer "i80003 dual 1000baseT Ethernet",
968 1.291 msaitoh WM_T_80003, WMP_F_COPPER },
969 1.127 bouyer
970 1.127 bouyer { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_80K3LAN_FIB_DPT,
971 1.127 bouyer "i80003 dual 1000baseX Ethernet",
972 1.291 msaitoh WM_T_80003, WMP_F_COPPER },
973 1.279 msaitoh
974 1.127 bouyer { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_80K3LAN_SDS_DPT,
975 1.127 bouyer "Intel i80003ES2 dual Gigabit Ethernet (SERDES)",
976 1.127 bouyer WM_T_80003, WMP_F_SERDES },
977 1.127 bouyer
978 1.127 bouyer { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_80K3LAN_CPR_SPT,
979 1.127 bouyer "Intel i80003 1000baseT Ethernet",
980 1.291 msaitoh WM_T_80003, WMP_F_COPPER },
981 1.279 msaitoh
982 1.127 bouyer { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_80K3LAN_SDS_SPT,
983 1.127 bouyer "Intel i80003 Gigabit Ethernet (SERDES)",
984 1.127 bouyer WM_T_80003, WMP_F_SERDES },
985 1.279 msaitoh
986 1.139 bouyer { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82801H_M_AMT,
987 1.139 bouyer "Intel i82801H (M_AMT) LAN Controller",
988 1.291 msaitoh WM_T_ICH8, WMP_F_COPPER },
989 1.139 bouyer { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82801H_AMT,
990 1.139 bouyer "Intel i82801H (AMT) LAN Controller",
991 1.291 msaitoh WM_T_ICH8, WMP_F_COPPER },
992 1.139 bouyer { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82801H_LAN,
993 1.139 bouyer "Intel i82801H LAN Controller",
994 1.291 msaitoh WM_T_ICH8, WMP_F_COPPER },
995 1.139 bouyer { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82801H_IFE_LAN,
996 1.139 bouyer "Intel i82801H (IFE) LAN Controller",
997 1.291 msaitoh WM_T_ICH8, WMP_F_COPPER },
998 1.139 bouyer { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82801H_M_LAN,
999 1.139 bouyer "Intel i82801H (M) LAN Controller",
1000 1.291 msaitoh WM_T_ICH8, WMP_F_COPPER },
1001 1.139 bouyer { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82801H_IFE_GT,
1002 1.139 bouyer "Intel i82801H IFE (GT) LAN Controller",
1003 1.291 msaitoh WM_T_ICH8, WMP_F_COPPER },
1004 1.139 bouyer { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82801H_IFE_G,
1005 1.139 bouyer "Intel i82801H IFE (G) LAN Controller",
1006 1.291 msaitoh WM_T_ICH8, WMP_F_COPPER },
1007 1.144 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82801I_IGP_AMT,
1008 1.144 msaitoh "82801I (AMT) LAN Controller",
1009 1.291 msaitoh WM_T_ICH9, WMP_F_COPPER },
1010 1.144 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82801I_IFE,
1011 1.144 msaitoh "82801I LAN Controller",
1012 1.291 msaitoh WM_T_ICH9, WMP_F_COPPER },
1013 1.144 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82801I_IFE_G,
1014 1.144 msaitoh "82801I (G) LAN Controller",
1015 1.291 msaitoh WM_T_ICH9, WMP_F_COPPER },
1016 1.144 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82801I_IFE_GT,
1017 1.144 msaitoh "82801I (GT) LAN Controller",
1018 1.291 msaitoh WM_T_ICH9, WMP_F_COPPER },
1019 1.144 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82801I_IGP_C,
1020 1.144 msaitoh "82801I (C) LAN Controller",
1021 1.291 msaitoh WM_T_ICH9, WMP_F_COPPER },
1022 1.162 bouyer { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82801I_IGP_M,
1023 1.162 bouyer "82801I mobile LAN Controller",
1024 1.291 msaitoh WM_T_ICH9, WMP_F_COPPER },
1025 1.162 bouyer { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82801H_IGP_M_V,
1026 1.162 bouyer "82801I mobile (V) LAN Controller",
1027 1.291 msaitoh WM_T_ICH9, WMP_F_COPPER },
1028 1.162 bouyer { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82801I_IGP_M_AMT,
1029 1.162 bouyer "82801I mobile (AMT) LAN Controller",
1030 1.291 msaitoh WM_T_ICH9, WMP_F_COPPER },
1031 1.191 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82801I_BM,
1032 1.191 msaitoh "82567LM-4 LAN Controller",
1033 1.291 msaitoh WM_T_ICH9, WMP_F_COPPER },
1034 1.191 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82801I_82567V_3,
1035 1.191 msaitoh "82567V-3 LAN Controller",
1036 1.291 msaitoh WM_T_ICH9, WMP_F_COPPER },
1037 1.191 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82801J_R_BM_LM,
1038 1.191 msaitoh "82567LM-2 LAN Controller",
1039 1.291 msaitoh WM_T_ICH10, WMP_F_COPPER },
1040 1.191 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82801J_R_BM_LF,
1041 1.191 msaitoh "82567LF-2 LAN Controller",
1042 1.291 msaitoh WM_T_ICH10, WMP_F_COPPER },
1043 1.191 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82801J_D_BM_LM,
1044 1.164 markd "82567LM-3 LAN Controller",
1045 1.291 msaitoh WM_T_ICH10, WMP_F_COPPER },
1046 1.191 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82801J_D_BM_LF,
1047 1.167 msaitoh "82567LF-3 LAN Controller",
1048 1.291 msaitoh WM_T_ICH10, WMP_F_COPPER },
1049 1.191 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82801J_R_BM_V,
1050 1.191 msaitoh "82567V-2 LAN Controller",
1051 1.291 msaitoh WM_T_ICH10, WMP_F_COPPER },
1052 1.221 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82801J_D_BM_V,
1053 1.221 msaitoh "82567V-3? LAN Controller",
1054 1.291 msaitoh WM_T_ICH10, WMP_F_COPPER },
1055 1.221 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_HANKSVILLE,
1056 1.221 msaitoh "HANKSVILLE LAN Controller",
1057 1.291 msaitoh WM_T_ICH10, WMP_F_COPPER },
1058 1.190 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_PCH_M_LM,
1059 1.207 msaitoh "PCH LAN (82577LM) Controller",
1060 1.291 msaitoh WM_T_PCH, WMP_F_COPPER },
1061 1.190 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_PCH_M_LC,
1062 1.207 msaitoh "PCH LAN (82577LC) Controller",
1063 1.291 msaitoh WM_T_PCH, WMP_F_COPPER },
1064 1.190 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_PCH_D_DM,
1065 1.190 msaitoh "PCH LAN (82578DM) Controller",
1066 1.291 msaitoh WM_T_PCH, WMP_F_COPPER },
1067 1.190 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_PCH_D_DC,
1068 1.190 msaitoh "PCH LAN (82578DC) Controller",
1069 1.291 msaitoh WM_T_PCH, WMP_F_COPPER },
1070 1.221 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_PCH2_LV_LM,
1071 1.221 msaitoh "PCH2 LAN (82579LM) Controller",
1072 1.291 msaitoh WM_T_PCH2, WMP_F_COPPER },
1073 1.221 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_PCH2_LV_V,
1074 1.221 msaitoh "PCH2 LAN (82579V) Controller",
1075 1.291 msaitoh WM_T_PCH2, WMP_F_COPPER },
1076 1.199 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82575EB_COPPER,
1077 1.199 msaitoh "82575EB dual-1000baseT Ethernet",
1078 1.291 msaitoh WM_T_82575, WMP_F_COPPER },
1079 1.199 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82575EB_FIBER_SERDES,
1080 1.199 msaitoh "82575EB dual-1000baseX Ethernet (SERDES)",
1081 1.199 msaitoh WM_T_82575, WMP_F_SERDES },
1082 1.199 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82575GB_QUAD_COPPER,
1083 1.199 msaitoh "82575GB quad-1000baseT Ethernet",
1084 1.291 msaitoh WM_T_82575, WMP_F_COPPER },
1085 1.199 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82575GB_QUAD_COPPER_PM,
1086 1.199 msaitoh "82575GB quad-1000baseT Ethernet (PM)",
1087 1.291 msaitoh WM_T_82575, WMP_F_COPPER },
1088 1.199 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82576_COPPER,
1089 1.199 msaitoh "82576 1000BaseT Ethernet",
1090 1.291 msaitoh WM_T_82576, WMP_F_COPPER },
1091 1.199 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82576_FIBER,
1092 1.199 msaitoh "82576 1000BaseX Ethernet",
1093 1.291 msaitoh WM_T_82576, WMP_F_FIBER },
1094 1.279 msaitoh
1095 1.199 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82576_SERDES,
1096 1.199 msaitoh "82576 gigabit Ethernet (SERDES)",
1097 1.199 msaitoh WM_T_82576, WMP_F_SERDES },
1098 1.279 msaitoh
1099 1.199 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82576_QUAD_COPPER,
1100 1.199 msaitoh "82576 quad-1000BaseT Ethernet",
1101 1.291 msaitoh WM_T_82576, WMP_F_COPPER },
1102 1.299 msaitoh
1103 1.299 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82576_QUAD_COPPER_ET2,
1104 1.299 msaitoh "82576 Gigabit ET2 Quad Port Server Adapter",
1105 1.299 msaitoh WM_T_82576, WMP_F_COPPER },
1106 1.299 msaitoh
1107 1.199 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82576_NS,
1108 1.199 msaitoh "82576 gigabit Ethernet",
1109 1.291 msaitoh WM_T_82576, WMP_F_COPPER },
1110 1.279 msaitoh
1111 1.199 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82576_NS_SERDES,
1112 1.199 msaitoh "82576 gigabit Ethernet (SERDES)",
1113 1.199 msaitoh WM_T_82576, WMP_F_SERDES },
1114 1.199 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82576_SERDES_QUAD,
1115 1.199 msaitoh "82576 quad-gigabit Ethernet (SERDES)",
1116 1.199 msaitoh WM_T_82576, WMP_F_SERDES },
1117 1.279 msaitoh
1118 1.199 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82580_COPPER,
1119 1.199 msaitoh "82580 1000BaseT Ethernet",
1120 1.291 msaitoh WM_T_82580, WMP_F_COPPER },
1121 1.199 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82580_FIBER,
1122 1.199 msaitoh "82580 1000BaseX Ethernet",
1123 1.291 msaitoh WM_T_82580, WMP_F_FIBER },
1124 1.279 msaitoh
1125 1.199 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82580_SERDES,
1126 1.199 msaitoh "82580 1000BaseT Ethernet (SERDES)",
1127 1.199 msaitoh WM_T_82580, WMP_F_SERDES },
1128 1.279 msaitoh
1129 1.199 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82580_SGMII,
1130 1.199 msaitoh "82580 gigabit Ethernet (SGMII)",
1131 1.291 msaitoh WM_T_82580, WMP_F_COPPER },
1132 1.199 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82580_COPPER_DUAL,
1133 1.199 msaitoh "82580 dual-1000BaseT Ethernet",
1134 1.291 msaitoh WM_T_82580, WMP_F_COPPER },
1135 1.300 msaitoh
1136 1.221 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82580_QUAD_FIBER,
1137 1.221 msaitoh "82580 quad-1000BaseX Ethernet",
1138 1.291 msaitoh WM_T_82580, WMP_F_FIBER },
1139 1.300 msaitoh
1140 1.304 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_DH89XXCC_SGMII,
1141 1.304 msaitoh "DH89XXCC Gigabit Ethernet (SGMII)",
1142 1.304 msaitoh WM_T_82580, WMP_F_COPPER },
1143 1.304 msaitoh
1144 1.304 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_DH89XXCC_SERDES,
1145 1.304 msaitoh "DH89XXCC Gigabit Ethernet (SERDES)",
1146 1.304 msaitoh WM_T_82580, WMP_F_SERDES },
1147 1.304 msaitoh
1148 1.304 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_DH89XXCC_BPLANE,
1149 1.304 msaitoh "DH89XXCC 1000BASE-KX Ethernet",
1150 1.304 msaitoh WM_T_82580, WMP_F_SERDES },
1151 1.304 msaitoh
1152 1.304 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_DH89XXCC_SFP,
1153 1.304 msaitoh "DH89XXCC Gigabit Ethernet (SFP)",
1154 1.304 msaitoh WM_T_82580, WMP_F_SERDES },
1155 1.304 msaitoh
1156 1.228 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I350_COPPER,
1157 1.228 msaitoh "I350 Gigabit Network Connection",
1158 1.291 msaitoh WM_T_I350, WMP_F_COPPER },
1159 1.304 msaitoh
1160 1.228 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I350_FIBER,
1161 1.228 msaitoh "I350 Gigabit Fiber Network Connection",
1162 1.291 msaitoh WM_T_I350, WMP_F_FIBER },
1163 1.279 msaitoh
1164 1.228 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I350_SERDES,
1165 1.228 msaitoh "I350 Gigabit Backplane Connection",
1166 1.228 msaitoh WM_T_I350, WMP_F_SERDES },
1167 1.292 msaitoh
1168 1.299 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I350_DA4,
1169 1.299 msaitoh "I350 Quad Port Gigabit Ethernet",
1170 1.299 msaitoh WM_T_I350, WMP_F_SERDES },
1171 1.299 msaitoh
1172 1.228 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I350_SGMII,
1173 1.228 msaitoh "I350 Gigabit Connection",
1174 1.291 msaitoh WM_T_I350, WMP_F_COPPER },
1175 1.292 msaitoh
1176 1.308 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_C2000_1000KX,
1177 1.308 msaitoh "I354 Gigabit Ethernet (KX)",
1178 1.308 msaitoh WM_T_I354, WMP_F_SERDES },
1179 1.308 msaitoh
1180 1.265 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_C2000_SGMII,
1181 1.308 msaitoh "I354 Gigabit Ethernet (SGMII)",
1182 1.308 msaitoh WM_T_I354, WMP_F_COPPER },
1183 1.308 msaitoh
1184 1.308 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_C2000_25GBE,
1185 1.308 msaitoh "I354 Gigabit Ethernet (2.5G)",
1186 1.291 msaitoh WM_T_I354, WMP_F_COPPER },
1187 1.308 msaitoh
1188 1.247 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I210_T1,
1189 1.247 msaitoh "I210-T1 Ethernet Server Adapter",
1190 1.291 msaitoh WM_T_I210, WMP_F_COPPER },
1191 1.299 msaitoh
1192 1.247 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I210_COPPER_OEM1,
1193 1.247 msaitoh "I210 Ethernet (Copper OEM)",
1194 1.291 msaitoh WM_T_I210, WMP_F_COPPER },
1195 1.299 msaitoh
1196 1.247 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I210_COPPER_IT,
1197 1.247 msaitoh "I210 Ethernet (Copper IT)",
1198 1.291 msaitoh WM_T_I210, WMP_F_COPPER },
1199 1.299 msaitoh
1200 1.299 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I210_COPPER_WOF,
1201 1.299 msaitoh "I210 Ethernet (FLASH less)",
1202 1.299 msaitoh WM_T_I210, WMP_F_COPPER },
1203 1.299 msaitoh
1204 1.247 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I210_FIBER,
1205 1.247 msaitoh "I210 Gigabit Ethernet (Fiber)",
1206 1.291 msaitoh WM_T_I210, WMP_F_FIBER },
1207 1.279 msaitoh
1208 1.247 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I210_SERDES,
1209 1.247 msaitoh "I210 Gigabit Ethernet (SERDES)",
1210 1.247 msaitoh WM_T_I210, WMP_F_SERDES },
1211 1.292 msaitoh
1212 1.299 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I210_SERDES_WOF,
1213 1.299 msaitoh "I210 Gigabit Ethernet (FLASH less)",
1214 1.299 msaitoh WM_T_I210, WMP_F_SERDES },
1215 1.299 msaitoh
1216 1.247 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I210_SGMII,
1217 1.247 msaitoh "I210 Gigabit Ethernet (SGMII)",
1218 1.292 msaitoh WM_T_I210, WMP_F_COPPER },
1219 1.292 msaitoh
1220 1.247 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I211_COPPER,
1221 1.247 msaitoh "I211 Ethernet (COPPER)",
1222 1.291 msaitoh WM_T_I211, WMP_F_COPPER },
1223 1.249 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I217_V,
1224 1.249 msaitoh "I217 V Ethernet Connection",
1225 1.291 msaitoh WM_T_PCH_LPT, WMP_F_COPPER },
1226 1.249 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I217_LM,
1227 1.249 msaitoh "I217 LM Ethernet Connection",
1228 1.291 msaitoh WM_T_PCH_LPT, WMP_F_COPPER },
1229 1.249 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I218_V,
1230 1.249 msaitoh "I218 V Ethernet Connection",
1231 1.291 msaitoh WM_T_PCH_LPT, WMP_F_COPPER },
1232 1.298 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I218_V2,
1233 1.298 msaitoh "I218 V Ethernet Connection",
1234 1.298 msaitoh WM_T_PCH_LPT, WMP_F_COPPER },
1235 1.298 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I218_V3,
1236 1.298 msaitoh "I218 V Ethernet Connection",
1237 1.298 msaitoh WM_T_PCH_LPT, WMP_F_COPPER },
1238 1.249 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I218_LM,
1239 1.249 msaitoh "I218 LM Ethernet Connection",
1240 1.291 msaitoh WM_T_PCH_LPT, WMP_F_COPPER },
1241 1.298 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I218_LM2,
1242 1.298 msaitoh "I218 LM Ethernet Connection",
1243 1.298 msaitoh WM_T_PCH_LPT, WMP_F_COPPER },
1244 1.298 msaitoh { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_I218_LM3,
1245 1.298 msaitoh "I218 LM Ethernet Connection",
1246 1.298 msaitoh WM_T_PCH_LPT, WMP_F_COPPER },
1247 1.1 thorpej { 0, 0,
1248 1.1 thorpej NULL,
1249 1.1 thorpej 0, 0 },
1250 1.1 thorpej };
1251 1.1 thorpej
1252 1.2 thorpej #ifdef WM_EVENT_COUNTERS
1253 1.75 thorpej static char wm_txseg_evcnt_names[WM_NTXSEGS][sizeof("txsegXXX")];
1254 1.2 thorpej #endif /* WM_EVENT_COUNTERS */
1255 1.2 thorpej
1256 1.280 msaitoh
1257 1.280 msaitoh /*
1258 1.280 msaitoh * Register read/write functions.
1259 1.280 msaitoh * Other than CSR_{READ|WRITE}().
1260 1.280 msaitoh */
1261 1.280 msaitoh
1262 1.53 thorpej #if 0 /* Not currently used */
1263 1.110 perry static inline uint32_t
1264 1.53 thorpej wm_io_read(struct wm_softc *sc, int reg)
1265 1.53 thorpej {
1266 1.53 thorpej
1267 1.53 thorpej bus_space_write_4(sc->sc_iot, sc->sc_ioh, 0, reg);
1268 1.53 thorpej return (bus_space_read_4(sc->sc_iot, sc->sc_ioh, 4));
1269 1.53 thorpej }
1270 1.53 thorpej #endif
1271 1.53 thorpej
1272 1.110 perry static inline void
1273 1.53 thorpej wm_io_write(struct wm_softc *sc, int reg, uint32_t val)
1274 1.53 thorpej {
1275 1.53 thorpej
1276 1.53 thorpej bus_space_write_4(sc->sc_iot, sc->sc_ioh, 0, reg);
1277 1.53 thorpej bus_space_write_4(sc->sc_iot, sc->sc_ioh, 4, val);
1278 1.53 thorpej }
1279 1.53 thorpej
1280 1.110 perry static inline void
1281 1.199 msaitoh wm_82575_write_8bit_ctlr_reg(struct wm_softc *sc, uint32_t reg, uint32_t off,
1282 1.199 msaitoh uint32_t data)
1283 1.199 msaitoh {
1284 1.199 msaitoh uint32_t regval;
1285 1.199 msaitoh int i;
1286 1.199 msaitoh
1287 1.199 msaitoh regval = (data & SCTL_CTL_DATA_MASK) | (off << SCTL_CTL_ADDR_SHIFT);
1288 1.199 msaitoh
1289 1.199 msaitoh CSR_WRITE(sc, reg, regval);
1290 1.199 msaitoh
1291 1.199 msaitoh for (i = 0; i < SCTL_CTL_POLL_TIMEOUT; i++) {
1292 1.199 msaitoh delay(5);
1293 1.199 msaitoh if (CSR_READ(sc, reg) & SCTL_CTL_READY)
1294 1.199 msaitoh break;
1295 1.199 msaitoh }
1296 1.199 msaitoh if (i == SCTL_CTL_POLL_TIMEOUT) {
1297 1.280 msaitoh aprint_error("%s: WARNING:"
1298 1.280 msaitoh " i82575 reg 0x%08x setup did not indicate ready\n",
1299 1.199 msaitoh device_xname(sc->sc_dev), reg);
1300 1.199 msaitoh }
1301 1.199 msaitoh }
1302 1.199 msaitoh
1303 1.199 msaitoh static inline void
1304 1.110 perry wm_set_dma_addr(volatile wiseman_addr_t *wa, bus_addr_t v)
1305 1.69 thorpej {
1306 1.69 thorpej wa->wa_low = htole32(v & 0xffffffffU);
1307 1.69 thorpej if (sizeof(bus_addr_t) == 8)
1308 1.69 thorpej wa->wa_high = htole32((uint64_t) v >> 32);
1309 1.69 thorpej else
1310 1.69 thorpej wa->wa_high = 0;
1311 1.69 thorpej }
1312 1.69 thorpej
1313 1.280 msaitoh /*
1314 1.280 msaitoh * Device driver interface functions and commonly used functions.
1315 1.280 msaitoh * match, attach, detach, init, start, stop, ioctl, watchdog and so on.
1316 1.280 msaitoh */
1317 1.280 msaitoh
1318 1.280 msaitoh /* Lookup supported device table */
1319 1.1 thorpej static const struct wm_product *
1320 1.1 thorpej wm_lookup(const struct pci_attach_args *pa)
1321 1.1 thorpej {
1322 1.1 thorpej const struct wm_product *wmp;
1323 1.1 thorpej
1324 1.1 thorpej for (wmp = wm_products; wmp->wmp_name != NULL; wmp++) {
1325 1.1 thorpej if (PCI_VENDOR(pa->pa_id) == wmp->wmp_vendor &&
1326 1.1 thorpej PCI_PRODUCT(pa->pa_id) == wmp->wmp_product)
1327 1.194 msaitoh return wmp;
1328 1.1 thorpej }
1329 1.194 msaitoh return NULL;
1330 1.1 thorpej }
1331 1.1 thorpej
1332 1.280 msaitoh /* The match function (ca_match) */
1333 1.47 thorpej static int
1334 1.160 christos wm_match(device_t parent, cfdata_t cf, void *aux)
1335 1.1 thorpej {
1336 1.1 thorpej struct pci_attach_args *pa = aux;
1337 1.1 thorpej
1338 1.1 thorpej if (wm_lookup(pa) != NULL)
1339 1.194 msaitoh return 1;
1340 1.1 thorpej
1341 1.194 msaitoh return 0;
1342 1.1 thorpej }
1343 1.1 thorpej
1344 1.280 msaitoh /* The attach function (ca_attach) */
1345 1.47 thorpej static void
1346 1.157 dyoung wm_attach(device_t parent, device_t self, void *aux)
1347 1.1 thorpej {
1348 1.157 dyoung struct wm_softc *sc = device_private(self);
1349 1.1 thorpej struct pci_attach_args *pa = aux;
1350 1.182 msaitoh prop_dictionary_t dict;
1351 1.1 thorpej struct ifnet *ifp = &sc->sc_ethercom.ec_if;
1352 1.1 thorpej pci_chipset_tag_t pc = pa->pa_pc;
1353 1.1 thorpej pci_intr_handle_t ih;
1354 1.1 thorpej const char *intrstr = NULL;
1355 1.160 christos const char *eetype, *xname;
1356 1.1 thorpej bus_space_tag_t memt;
1357 1.1 thorpej bus_space_handle_t memh;
1358 1.201 msaitoh bus_size_t memsize;
1359 1.1 thorpej int memh_valid;
1360 1.201 msaitoh int i, error;
1361 1.1 thorpej const struct wm_product *wmp;
1362 1.115 thorpej prop_data_t ea;
1363 1.115 thorpej prop_number_t pn;
1364 1.1 thorpej uint8_t enaddr[ETHER_ADDR_LEN];
1365 1.208 msaitoh uint16_t cfg1, cfg2, swdpin, io3;
1366 1.1 thorpej pcireg_t preg, memtype;
1367 1.203 msaitoh uint16_t eeprom_data, apme_mask;
1368 1.273 msaitoh bool force_clear_smbi;
1369 1.292 msaitoh uint32_t link_mode;
1370 1.44 thorpej uint32_t reg;
1371 1.268 christos char intrbuf[PCI_INTRSTR_LEN];
1372 1.1 thorpej
1373 1.160 christos sc->sc_dev = self;
1374 1.272 ozaki callout_init(&sc->sc_tick_ch, CALLOUT_FLAGS);
1375 1.272 ozaki sc->sc_stopping = false;
1376 1.1 thorpej
1377 1.292 msaitoh wmp = wm_lookup(pa);
1378 1.292 msaitoh #ifdef DIAGNOSTIC
1379 1.1 thorpej if (wmp == NULL) {
1380 1.1 thorpej printf("\n");
1381 1.1 thorpej panic("wm_attach: impossible");
1382 1.1 thorpej }
1383 1.292 msaitoh #endif
1384 1.292 msaitoh sc->sc_mediatype = WMP_MEDIATYPE(wmp->wmp_flags);
1385 1.1 thorpej
1386 1.123 jmcneill sc->sc_pc = pa->pa_pc;
1387 1.123 jmcneill sc->sc_pcitag = pa->pa_tag;
1388 1.123 jmcneill
1389 1.69 thorpej if (pci_dma64_available(pa))
1390 1.69 thorpej sc->sc_dmat = pa->pa_dmat64;
1391 1.69 thorpej else
1392 1.69 thorpej sc->sc_dmat = pa->pa_dmat;
1393 1.1 thorpej
1394 1.304 msaitoh sc->sc_pcidevid = PCI_PRODUCT(pa->pa_id);
1395 1.192 msaitoh sc->sc_rev = PCI_REVISION(pci_conf_read(pc, pa->pa_tag, PCI_CLASS_REG));
1396 1.226 drochner pci_aprint_devinfo_fancy(pa, "Ethernet controller", wmp->wmp_name, 1);
1397 1.1 thorpej
1398 1.1 thorpej sc->sc_type = wmp->wmp_type;
1399 1.11 thorpej if (sc->sc_type < WM_T_82543) {
1400 1.192 msaitoh if (sc->sc_rev < 2) {
1401 1.160 christos aprint_error_dev(sc->sc_dev,
1402 1.160 christos "i82542 must be at least rev. 2\n");
1403 1.1 thorpej return;
1404 1.1 thorpej }
1405 1.192 msaitoh if (sc->sc_rev < 3)
1406 1.11 thorpej sc->sc_type = WM_T_82542_2_0;
1407 1.1 thorpej }
1408 1.1 thorpej
1409 1.199 msaitoh if ((sc->sc_type == WM_T_82575) || (sc->sc_type == WM_T_82576)
1410 1.300 msaitoh || (sc->sc_type == WM_T_82580)
1411 1.265 msaitoh || (sc->sc_type == WM_T_I350) || (sc->sc_type == WM_T_I354)
1412 1.265 msaitoh || (sc->sc_type == WM_T_I210) || (sc->sc_type == WM_T_I211))
1413 1.203 msaitoh sc->sc_flags |= WM_F_NEWQUEUE;
1414 1.199 msaitoh
1415 1.184 msaitoh /* Set device properties (mactype) */
1416 1.182 msaitoh dict = device_properties(sc->sc_dev);
1417 1.182 msaitoh prop_dictionary_set_uint32(dict, "mactype", sc->sc_type);
1418 1.182 msaitoh
1419 1.1 thorpej /*
1420 1.53 thorpej * Map the device. All devices support memory-mapped acccess,
1421 1.53 thorpej * and it is really required for normal operation.
1422 1.1 thorpej */
1423 1.1 thorpej memtype = pci_mapreg_type(pa->pa_pc, pa->pa_tag, WM_PCI_MMBA);
1424 1.1 thorpej switch (memtype) {
1425 1.1 thorpej case PCI_MAPREG_TYPE_MEM | PCI_MAPREG_MEM_TYPE_32BIT:
1426 1.1 thorpej case PCI_MAPREG_TYPE_MEM | PCI_MAPREG_MEM_TYPE_64BIT:
1427 1.1 thorpej memh_valid = (pci_mapreg_map(pa, WM_PCI_MMBA,
1428 1.201 msaitoh memtype, 0, &memt, &memh, NULL, &memsize) == 0);
1429 1.1 thorpej break;
1430 1.1 thorpej default:
1431 1.1 thorpej memh_valid = 0;
1432 1.189 msaitoh break;
1433 1.1 thorpej }
1434 1.1 thorpej
1435 1.1 thorpej if (memh_valid) {
1436 1.1 thorpej sc->sc_st = memt;
1437 1.1 thorpej sc->sc_sh = memh;
1438 1.201 msaitoh sc->sc_ss = memsize;
1439 1.1 thorpej } else {
1440 1.160 christos aprint_error_dev(sc->sc_dev,
1441 1.160 christos "unable to map device registers\n");
1442 1.1 thorpej return;
1443 1.1 thorpej }
1444 1.1 thorpej
1445 1.53 thorpej /*
1446 1.53 thorpej * In addition, i82544 and later support I/O mapped indirect
1447 1.53 thorpej * register access. It is not desirable (nor supported in
1448 1.53 thorpej * this driver) to use it for normal operation, though it is
1449 1.53 thorpej * required to work around bugs in some chip versions.
1450 1.53 thorpej */
1451 1.53 thorpej if (sc->sc_type >= WM_T_82544) {
1452 1.53 thorpej /* First we have to find the I/O BAR. */
1453 1.53 thorpej for (i = PCI_MAPREG_START; i < PCI_MAPREG_END; i += 4) {
1454 1.241 msaitoh memtype = pci_mapreg_type(pa->pa_pc, pa->pa_tag, i);
1455 1.241 msaitoh if (memtype == PCI_MAPREG_TYPE_IO)
1456 1.53 thorpej break;
1457 1.241 msaitoh if (PCI_MAPREG_MEM_TYPE(memtype) ==
1458 1.241 msaitoh PCI_MAPREG_MEM_TYPE_64BIT)
1459 1.241 msaitoh i += 4; /* skip high bits, too */
1460 1.53 thorpej }
1461 1.241 msaitoh if (i < PCI_MAPREG_END) {
1462 1.88 briggs /*
1463 1.218 msaitoh * We found PCI_MAPREG_TYPE_IO. Note that 82580
1464 1.218 msaitoh * (and newer?) chip has no PCI_MAPREG_TYPE_IO.
1465 1.218 msaitoh * It's no problem because newer chips has no this
1466 1.218 msaitoh * bug.
1467 1.218 msaitoh *
1468 1.88 briggs * The i8254x doesn't apparently respond when the
1469 1.88 briggs * I/O BAR is 0, which looks somewhat like it's not
1470 1.88 briggs * been configured.
1471 1.88 briggs */
1472 1.88 briggs preg = pci_conf_read(pc, pa->pa_tag, i);
1473 1.88 briggs if (PCI_MAPREG_MEM_ADDR(preg) == 0) {
1474 1.160 christos aprint_error_dev(sc->sc_dev,
1475 1.160 christos "WARNING: I/O BAR at zero.\n");
1476 1.88 briggs } else if (pci_mapreg_map(pa, i, PCI_MAPREG_TYPE_IO,
1477 1.53 thorpej 0, &sc->sc_iot, &sc->sc_ioh,
1478 1.212 jakllsch NULL, &sc->sc_ios) == 0) {
1479 1.88 briggs sc->sc_flags |= WM_F_IOH_VALID;
1480 1.88 briggs } else {
1481 1.160 christos aprint_error_dev(sc->sc_dev,
1482 1.160 christos "WARNING: unable to map I/O space\n");
1483 1.88 briggs }
1484 1.88 briggs }
1485 1.88 briggs
1486 1.53 thorpej }
1487 1.53 thorpej
1488 1.11 thorpej /* Enable bus mastering. Disable MWI on the i82542 2.0. */
1489 1.1 thorpej preg = pci_conf_read(pc, pa->pa_tag, PCI_COMMAND_STATUS_REG);
1490 1.1 thorpej preg |= PCI_COMMAND_MASTER_ENABLE;
1491 1.11 thorpej if (sc->sc_type < WM_T_82542_2_1)
1492 1.1 thorpej preg &= ~PCI_COMMAND_INVALIDATE_ENABLE;
1493 1.1 thorpej pci_conf_write(pc, pa->pa_tag, PCI_COMMAND_STATUS_REG, preg);
1494 1.1 thorpej
1495 1.122 christos /* power up chip */
1496 1.157 dyoung if ((error = pci_activate(pa->pa_pc, pa->pa_tag, self,
1497 1.122 christos NULL)) && error != EOPNOTSUPP) {
1498 1.160 christos aprint_error_dev(sc->sc_dev, "cannot activate %d\n", error);
1499 1.122 christos return;
1500 1.1 thorpej }
1501 1.1 thorpej
1502 1.1 thorpej /*
1503 1.1 thorpej * Map and establish our interrupt.
1504 1.1 thorpej */
1505 1.1 thorpej if (pci_intr_map(pa, &ih)) {
1506 1.160 christos aprint_error_dev(sc->sc_dev, "unable to map interrupt\n");
1507 1.1 thorpej return;
1508 1.1 thorpej }
1509 1.268 christos intrstr = pci_intr_string(pc, ih, intrbuf, sizeof(intrbuf));
1510 1.272 ozaki #ifdef WM_MPSAFE
1511 1.272 ozaki pci_intr_setattr(pc, &ih, PCI_INTR_MPSAFE, true);
1512 1.272 ozaki #endif
1513 1.1 thorpej sc->sc_ih = pci_intr_establish(pc, ih, IPL_NET, wm_intr, sc);
1514 1.1 thorpej if (sc->sc_ih == NULL) {
1515 1.160 christos aprint_error_dev(sc->sc_dev, "unable to establish interrupt");
1516 1.1 thorpej if (intrstr != NULL)
1517 1.181 njoly aprint_error(" at %s", intrstr);
1518 1.181 njoly aprint_error("\n");
1519 1.1 thorpej return;
1520 1.1 thorpej }
1521 1.160 christos aprint_normal_dev(sc->sc_dev, "interrupting at %s\n", intrstr);
1522 1.52 thorpej
1523 1.52 thorpej /*
1524 1.199 msaitoh * Check the function ID (unit number of the chip).
1525 1.199 msaitoh */
1526 1.199 msaitoh if ((sc->sc_type == WM_T_82546) || (sc->sc_type == WM_T_82546_3)
1527 1.199 msaitoh || (sc->sc_type == WM_T_82571) || (sc->sc_type == WM_T_80003)
1528 1.208 msaitoh || (sc->sc_type == WM_T_82575) || (sc->sc_type == WM_T_82576)
1529 1.300 msaitoh || (sc->sc_type == WM_T_82580)
1530 1.265 msaitoh || (sc->sc_type == WM_T_I350) || (sc->sc_type == WM_T_I354))
1531 1.199 msaitoh sc->sc_funcid = (CSR_READ(sc, WMREG_STATUS)
1532 1.199 msaitoh >> STATUS_FUNCID_SHIFT) & STATUS_FUNCID_MASK;
1533 1.199 msaitoh else
1534 1.199 msaitoh sc->sc_funcid = 0;
1535 1.199 msaitoh
1536 1.199 msaitoh /*
1537 1.52 thorpej * Determine a few things about the bus we're connected to.
1538 1.52 thorpej */
1539 1.52 thorpej if (sc->sc_type < WM_T_82543) {
1540 1.52 thorpej /* We don't really know the bus characteristics here. */
1541 1.52 thorpej sc->sc_bus_speed = 33;
1542 1.73 tron } else if (sc->sc_type == WM_T_82547 || sc->sc_type == WM_T_82547_2) {
1543 1.73 tron /*
1544 1.73 tron * CSA (Communication Streaming Architecture) is about as fast
1545 1.73 tron * a 32-bit 66MHz PCI Bus.
1546 1.73 tron */
1547 1.73 tron sc->sc_flags |= WM_F_CSA;
1548 1.73 tron sc->sc_bus_speed = 66;
1549 1.160 christos aprint_verbose_dev(sc->sc_dev,
1550 1.160 christos "Communication Streaming Architecture\n");
1551 1.78 thorpej if (sc->sc_type == WM_T_82547) {
1552 1.272 ozaki callout_init(&sc->sc_txfifo_ch, CALLOUT_FLAGS);
1553 1.78 thorpej callout_setfunc(&sc->sc_txfifo_ch,
1554 1.78 thorpej wm_82547_txfifo_stall, sc);
1555 1.160 christos aprint_verbose_dev(sc->sc_dev,
1556 1.160 christos "using 82547 Tx FIFO stall work-around\n");
1557 1.78 thorpej }
1558 1.116 msaitoh } else if (sc->sc_type >= WM_T_82571) {
1559 1.139 bouyer sc->sc_flags |= WM_F_PCIE;
1560 1.167 msaitoh if ((sc->sc_type != WM_T_ICH8) && (sc->sc_type != WM_T_ICH9)
1561 1.190 msaitoh && (sc->sc_type != WM_T_ICH10)
1562 1.221 msaitoh && (sc->sc_type != WM_T_PCH)
1563 1.249 msaitoh && (sc->sc_type != WM_T_PCH2)
1564 1.249 msaitoh && (sc->sc_type != WM_T_PCH_LPT)) {
1565 1.221 msaitoh /* ICH* and PCH* have no PCIe capability registers */
1566 1.199 msaitoh if (pci_get_capability(pa->pa_pc, pa->pa_tag,
1567 1.199 msaitoh PCI_CAP_PCIEXPRESS, &sc->sc_pcixe_capoff,
1568 1.199 msaitoh NULL) == 0)
1569 1.199 msaitoh aprint_error_dev(sc->sc_dev,
1570 1.199 msaitoh "unable to find PCIe capability\n");
1571 1.199 msaitoh }
1572 1.160 christos aprint_verbose_dev(sc->sc_dev, "PCI-Express bus\n");
1573 1.73 tron } else {
1574 1.52 thorpej reg = CSR_READ(sc, WMREG_STATUS);
1575 1.52 thorpej if (reg & STATUS_BUS64)
1576 1.52 thorpej sc->sc_flags |= WM_F_BUS64;
1577 1.176 msaitoh if ((reg & STATUS_PCIX_MODE) != 0) {
1578 1.54 thorpej pcireg_t pcix_cmd, pcix_sts, bytecnt, maxb;
1579 1.54 thorpej
1580 1.52 thorpej sc->sc_flags |= WM_F_PCIX;
1581 1.54 thorpej if (pci_get_capability(pa->pa_pc, pa->pa_tag,
1582 1.199 msaitoh PCI_CAP_PCIX, &sc->sc_pcixe_capoff, NULL) == 0)
1583 1.160 christos aprint_error_dev(sc->sc_dev,
1584 1.160 christos "unable to find PCIX capability\n");
1585 1.54 thorpej else if (sc->sc_type != WM_T_82545_3 &&
1586 1.54 thorpej sc->sc_type != WM_T_82546_3) {
1587 1.54 thorpej /*
1588 1.54 thorpej * Work around a problem caused by the BIOS
1589 1.54 thorpej * setting the max memory read byte count
1590 1.54 thorpej * incorrectly.
1591 1.54 thorpej */
1592 1.54 thorpej pcix_cmd = pci_conf_read(pa->pa_pc, pa->pa_tag,
1593 1.248 msaitoh sc->sc_pcixe_capoff + PCIX_CMD);
1594 1.54 thorpej pcix_sts = pci_conf_read(pa->pa_pc, pa->pa_tag,
1595 1.248 msaitoh sc->sc_pcixe_capoff + PCIX_STATUS);
1596 1.54 thorpej
1597 1.54 thorpej bytecnt =
1598 1.248 msaitoh (pcix_cmd & PCIX_CMD_BYTECNT_MASK) >>
1599 1.248 msaitoh PCIX_CMD_BYTECNT_SHIFT;
1600 1.54 thorpej maxb =
1601 1.248 msaitoh (pcix_sts & PCIX_STATUS_MAXB_MASK) >>
1602 1.248 msaitoh PCIX_STATUS_MAXB_SHIFT;
1603 1.54 thorpej if (bytecnt > maxb) {
1604 1.160 christos aprint_verbose_dev(sc->sc_dev,
1605 1.160 christos "resetting PCI-X MMRBC: %d -> %d\n",
1606 1.54 thorpej 512 << bytecnt, 512 << maxb);
1607 1.54 thorpej pcix_cmd = (pcix_cmd &
1608 1.248 msaitoh ~PCIX_CMD_BYTECNT_MASK) |
1609 1.248 msaitoh (maxb << PCIX_CMD_BYTECNT_SHIFT);
1610 1.54 thorpej pci_conf_write(pa->pa_pc, pa->pa_tag,
1611 1.248 msaitoh sc->sc_pcixe_capoff + PCIX_CMD,
1612 1.54 thorpej pcix_cmd);
1613 1.54 thorpej }
1614 1.54 thorpej }
1615 1.54 thorpej }
1616 1.52 thorpej /*
1617 1.52 thorpej * The quad port adapter is special; it has a PCIX-PCIX
1618 1.52 thorpej * bridge on the board, and can run the secondary bus at
1619 1.52 thorpej * a higher speed.
1620 1.52 thorpej */
1621 1.52 thorpej if (wmp->wmp_product == PCI_PRODUCT_INTEL_82546EB_QUAD) {
1622 1.52 thorpej sc->sc_bus_speed = (sc->sc_flags & WM_F_PCIX) ? 120
1623 1.52 thorpej : 66;
1624 1.52 thorpej } else if (sc->sc_flags & WM_F_PCIX) {
1625 1.62 thorpej switch (reg & STATUS_PCIXSPD_MASK) {
1626 1.52 thorpej case STATUS_PCIXSPD_50_66:
1627 1.52 thorpej sc->sc_bus_speed = 66;
1628 1.52 thorpej break;
1629 1.52 thorpej case STATUS_PCIXSPD_66_100:
1630 1.52 thorpej sc->sc_bus_speed = 100;
1631 1.52 thorpej break;
1632 1.52 thorpej case STATUS_PCIXSPD_100_133:
1633 1.52 thorpej sc->sc_bus_speed = 133;
1634 1.52 thorpej break;
1635 1.52 thorpej default:
1636 1.160 christos aprint_error_dev(sc->sc_dev,
1637 1.158 cegger "unknown PCIXSPD %d; assuming 66MHz\n",
1638 1.62 thorpej reg & STATUS_PCIXSPD_MASK);
1639 1.52 thorpej sc->sc_bus_speed = 66;
1640 1.189 msaitoh break;
1641 1.52 thorpej }
1642 1.52 thorpej } else
1643 1.52 thorpej sc->sc_bus_speed = (reg & STATUS_PCI66) ? 66 : 33;
1644 1.160 christos aprint_verbose_dev(sc->sc_dev, "%d-bit %dMHz %s bus\n",
1645 1.52 thorpej (sc->sc_flags & WM_F_BUS64) ? 64 : 32, sc->sc_bus_speed,
1646 1.52 thorpej (sc->sc_flags & WM_F_PCIX) ? "PCIX" : "PCI");
1647 1.52 thorpej }
1648 1.1 thorpej
1649 1.1 thorpej /*
1650 1.1 thorpej * Allocate the control data structures, and create and load the
1651 1.1 thorpej * DMA map for it.
1652 1.69 thorpej *
1653 1.69 thorpej * NOTE: All Tx descriptors must be in the same 4G segment of
1654 1.69 thorpej * memory. So must Rx descriptors. We simplify by allocating
1655 1.69 thorpej * both sets within the same 4G segment.
1656 1.1 thorpej */
1657 1.75 thorpej WM_NTXDESC(sc) = sc->sc_type < WM_T_82544 ?
1658 1.75 thorpej WM_NTXDESC_82542 : WM_NTXDESC_82544;
1659 1.201 msaitoh sc->sc_cd_size = sc->sc_type < WM_T_82544 ?
1660 1.75 thorpej sizeof(struct wm_control_data_82542) :
1661 1.75 thorpej sizeof(struct wm_control_data_82544);
1662 1.201 msaitoh if ((error = bus_dmamem_alloc(sc->sc_dmat, sc->sc_cd_size, PAGE_SIZE,
1663 1.201 msaitoh (bus_size_t) 0x100000000ULL, &sc->sc_cd_seg, 1,
1664 1.201 msaitoh &sc->sc_cd_rseg, 0)) != 0) {
1665 1.160 christos aprint_error_dev(sc->sc_dev,
1666 1.158 cegger "unable to allocate control data, error = %d\n",
1667 1.158 cegger error);
1668 1.1 thorpej goto fail_0;
1669 1.1 thorpej }
1670 1.1 thorpej
1671 1.201 msaitoh if ((error = bus_dmamem_map(sc->sc_dmat, &sc->sc_cd_seg,
1672 1.201 msaitoh sc->sc_cd_rseg, sc->sc_cd_size,
1673 1.194 msaitoh (void **)&sc->sc_control_data, BUS_DMA_COHERENT)) != 0) {
1674 1.160 christos aprint_error_dev(sc->sc_dev,
1675 1.160 christos "unable to map control data, error = %d\n", error);
1676 1.1 thorpej goto fail_1;
1677 1.1 thorpej }
1678 1.1 thorpej
1679 1.201 msaitoh if ((error = bus_dmamap_create(sc->sc_dmat, sc->sc_cd_size, 1,
1680 1.201 msaitoh sc->sc_cd_size, 0, 0, &sc->sc_cddmamap)) != 0) {
1681 1.160 christos aprint_error_dev(sc->sc_dev,
1682 1.160 christos "unable to create control data DMA map, error = %d\n",
1683 1.160 christos error);
1684 1.1 thorpej goto fail_2;
1685 1.1 thorpej }
1686 1.1 thorpej
1687 1.1 thorpej if ((error = bus_dmamap_load(sc->sc_dmat, sc->sc_cddmamap,
1688 1.201 msaitoh sc->sc_control_data, sc->sc_cd_size, NULL, 0)) != 0) {
1689 1.160 christos aprint_error_dev(sc->sc_dev,
1690 1.158 cegger "unable to load control data DMA map, error = %d\n",
1691 1.158 cegger error);
1692 1.1 thorpej goto fail_3;
1693 1.1 thorpej }
1694 1.1 thorpej
1695 1.281 msaitoh /* Create the transmit buffer DMA maps. */
1696 1.74 tron WM_TXQUEUELEN(sc) =
1697 1.74 tron (sc->sc_type == WM_T_82547 || sc->sc_type == WM_T_82547_2) ?
1698 1.74 tron WM_TXQUEUELEN_MAX_82547 : WM_TXQUEUELEN_MAX;
1699 1.74 tron for (i = 0; i < WM_TXQUEUELEN(sc); i++) {
1700 1.82 thorpej if ((error = bus_dmamap_create(sc->sc_dmat, WM_MAXTXDMA,
1701 1.194 msaitoh WM_NTXSEGS, WTX_MAX_LEN, 0, 0,
1702 1.194 msaitoh &sc->sc_txsoft[i].txs_dmamap)) != 0) {
1703 1.160 christos aprint_error_dev(sc->sc_dev,
1704 1.160 christos "unable to create Tx DMA map %d, error = %d\n",
1705 1.160 christos i, error);
1706 1.1 thorpej goto fail_4;
1707 1.1 thorpej }
1708 1.1 thorpej }
1709 1.1 thorpej
1710 1.281 msaitoh /* Create the receive buffer DMA maps. */
1711 1.1 thorpej for (i = 0; i < WM_NRXDESC; i++) {
1712 1.1 thorpej if ((error = bus_dmamap_create(sc->sc_dmat, MCLBYTES, 1,
1713 1.194 msaitoh MCLBYTES, 0, 0,
1714 1.194 msaitoh &sc->sc_rxsoft[i].rxs_dmamap)) != 0) {
1715 1.160 christos aprint_error_dev(sc->sc_dev,
1716 1.160 christos "unable to create Rx DMA map %d error = %d\n",
1717 1.160 christos i, error);
1718 1.1 thorpej goto fail_5;
1719 1.1 thorpej }
1720 1.1 thorpej sc->sc_rxsoft[i].rxs_mbuf = NULL;
1721 1.1 thorpej }
1722 1.1 thorpej
1723 1.127 bouyer /* clear interesting stat counters */
1724 1.127 bouyer CSR_READ(sc, WMREG_COLC);
1725 1.127 bouyer CSR_READ(sc, WMREG_RXERRC);
1726 1.127 bouyer
1727 1.221 msaitoh /* get PHY control from SMBus to PCIe */
1728 1.249 msaitoh if ((sc->sc_type == WM_T_PCH) || (sc->sc_type == WM_T_PCH2)
1729 1.249 msaitoh || (sc->sc_type == WM_T_PCH_LPT))
1730 1.221 msaitoh wm_smbustopci(sc);
1731 1.221 msaitoh
1732 1.281 msaitoh /* Reset the chip to a known state. */
1733 1.1 thorpej wm_reset(sc);
1734 1.1 thorpej
1735 1.281 msaitoh /* Get some information about the EEPROM. */
1736 1.185 msaitoh switch (sc->sc_type) {
1737 1.185 msaitoh case WM_T_82542_2_0:
1738 1.185 msaitoh case WM_T_82542_2_1:
1739 1.185 msaitoh case WM_T_82543:
1740 1.185 msaitoh case WM_T_82544:
1741 1.185 msaitoh /* Microwire */
1742 1.294 msaitoh sc->sc_nvm_wordsize = 64;
1743 1.294 msaitoh sc->sc_nvm_addrbits = 6;
1744 1.185 msaitoh break;
1745 1.185 msaitoh case WM_T_82540:
1746 1.185 msaitoh case WM_T_82545:
1747 1.185 msaitoh case WM_T_82545_3:
1748 1.185 msaitoh case WM_T_82546:
1749 1.185 msaitoh case WM_T_82546_3:
1750 1.185 msaitoh /* Microwire */
1751 1.185 msaitoh reg = CSR_READ(sc, WMREG_EECD);
1752 1.294 msaitoh if (reg & EECD_EE_SIZE) {
1753 1.294 msaitoh sc->sc_nvm_wordsize = 256;
1754 1.294 msaitoh sc->sc_nvm_addrbits = 8;
1755 1.294 msaitoh } else {
1756 1.294 msaitoh sc->sc_nvm_wordsize = 64;
1757 1.294 msaitoh sc->sc_nvm_addrbits = 6;
1758 1.294 msaitoh }
1759 1.275 msaitoh sc->sc_flags |= WM_F_LOCK_EECD;
1760 1.185 msaitoh break;
1761 1.185 msaitoh case WM_T_82541:
1762 1.185 msaitoh case WM_T_82541_2:
1763 1.185 msaitoh case WM_T_82547:
1764 1.185 msaitoh case WM_T_82547_2:
1765 1.313 msaitoh sc->sc_flags |= WM_F_LOCK_EECD;
1766 1.185 msaitoh reg = CSR_READ(sc, WMREG_EECD);
1767 1.185 msaitoh if (reg & EECD_EE_TYPE) {
1768 1.185 msaitoh /* SPI */
1769 1.294 msaitoh sc->sc_flags |= WM_F_EEPROM_SPI;
1770 1.294 msaitoh wm_nvm_set_addrbits_size_eecd(sc);
1771 1.294 msaitoh } else {
1772 1.185 msaitoh /* Microwire */
1773 1.294 msaitoh if ((reg & EECD_EE_ABITS) != 0) {
1774 1.294 msaitoh sc->sc_nvm_wordsize = 256;
1775 1.294 msaitoh sc->sc_nvm_addrbits = 8;
1776 1.294 msaitoh } else {
1777 1.294 msaitoh sc->sc_nvm_wordsize = 64;
1778 1.294 msaitoh sc->sc_nvm_addrbits = 6;
1779 1.294 msaitoh }
1780 1.294 msaitoh }
1781 1.185 msaitoh break;
1782 1.185 msaitoh case WM_T_82571:
1783 1.185 msaitoh case WM_T_82572:
1784 1.185 msaitoh /* SPI */
1785 1.294 msaitoh sc->sc_flags |= WM_F_EEPROM_SPI;
1786 1.294 msaitoh wm_nvm_set_addrbits_size_eecd(sc);
1787 1.275 msaitoh sc->sc_flags |= WM_F_LOCK_EECD | WM_F_LOCK_SWSM;
1788 1.185 msaitoh break;
1789 1.185 msaitoh case WM_T_82573:
1790 1.275 msaitoh sc->sc_flags |= WM_F_LOCK_SWSM;
1791 1.273 msaitoh /* FALLTHROUGH */
1792 1.185 msaitoh case WM_T_82574:
1793 1.185 msaitoh case WM_T_82583:
1794 1.294 msaitoh if (wm_nvm_is_onboard_eeprom(sc) == 0) {
1795 1.185 msaitoh sc->sc_flags |= WM_F_EEPROM_FLASH;
1796 1.294 msaitoh sc->sc_nvm_wordsize = 2048;
1797 1.294 msaitoh } else {
1798 1.185 msaitoh /* SPI */
1799 1.294 msaitoh sc->sc_flags |= WM_F_EEPROM_SPI;
1800 1.294 msaitoh wm_nvm_set_addrbits_size_eecd(sc);
1801 1.185 msaitoh }
1802 1.185 msaitoh sc->sc_flags |= WM_F_EEPROM_EERDEEWR;
1803 1.185 msaitoh break;
1804 1.199 msaitoh case WM_T_82575:
1805 1.199 msaitoh case WM_T_82576:
1806 1.199 msaitoh case WM_T_82580:
1807 1.228 msaitoh case WM_T_I350:
1808 1.278 msaitoh case WM_T_I354:
1809 1.185 msaitoh case WM_T_80003:
1810 1.185 msaitoh /* SPI */
1811 1.294 msaitoh sc->sc_flags |= WM_F_EEPROM_SPI;
1812 1.294 msaitoh wm_nvm_set_addrbits_size_eecd(sc);
1813 1.275 msaitoh sc->sc_flags |= WM_F_EEPROM_EERDEEWR | WM_F_LOCK_SWFW
1814 1.275 msaitoh | WM_F_LOCK_SWSM;
1815 1.185 msaitoh break;
1816 1.185 msaitoh case WM_T_ICH8:
1817 1.185 msaitoh case WM_T_ICH9:
1818 1.185 msaitoh case WM_T_ICH10:
1819 1.190 msaitoh case WM_T_PCH:
1820 1.221 msaitoh case WM_T_PCH2:
1821 1.249 msaitoh case WM_T_PCH_LPT:
1822 1.185 msaitoh /* FLASH */
1823 1.276 msaitoh sc->sc_flags |= WM_F_EEPROM_FLASH | WM_F_LOCK_EXTCNF;
1824 1.294 msaitoh sc->sc_nvm_wordsize = 2048;
1825 1.139 bouyer memtype = pci_mapreg_type(pa->pa_pc, pa->pa_tag, WM_ICH8_FLASH);
1826 1.139 bouyer if (pci_mapreg_map(pa, WM_ICH8_FLASH, memtype, 0,
1827 1.139 bouyer &sc->sc_flasht, &sc->sc_flashh, NULL, NULL)) {
1828 1.160 christos aprint_error_dev(sc->sc_dev,
1829 1.160 christos "can't map FLASH registers\n");
1830 1.290 msaitoh goto fail_5;
1831 1.139 bouyer }
1832 1.185 msaitoh reg = ICH8_FLASH_READ32(sc, ICH_FLASH_GFPREG);
1833 1.185 msaitoh sc->sc_ich8_flash_base = (reg & ICH_GFPREG_BASE_MASK) *
1834 1.139 bouyer ICH_FLASH_SECTOR_SIZE;
1835 1.199 msaitoh sc->sc_ich8_flash_bank_size =
1836 1.199 msaitoh ((reg >> 16) & ICH_GFPREG_BASE_MASK) + 1;
1837 1.139 bouyer sc->sc_ich8_flash_bank_size -=
1838 1.199 msaitoh (reg & ICH_GFPREG_BASE_MASK);
1839 1.139 bouyer sc->sc_ich8_flash_bank_size *= ICH_FLASH_SECTOR_SIZE;
1840 1.139 bouyer sc->sc_ich8_flash_bank_size /= 2 * sizeof(uint16_t);
1841 1.185 msaitoh break;
1842 1.247 msaitoh case WM_T_I210:
1843 1.247 msaitoh case WM_T_I211:
1844 1.294 msaitoh wm_nvm_set_addrbits_size_eecd(sc);
1845 1.247 msaitoh sc->sc_flags |= WM_F_EEPROM_FLASH_HW;
1846 1.275 msaitoh sc->sc_flags |= WM_F_EEPROM_EERDEEWR | WM_F_LOCK_SWFW;
1847 1.247 msaitoh break;
1848 1.185 msaitoh default:
1849 1.185 msaitoh break;
1850 1.44 thorpej }
1851 1.112 gavan
1852 1.273 msaitoh /* Ensure the SMBI bit is clear before first NVM or PHY access */
1853 1.273 msaitoh switch (sc->sc_type) {
1854 1.273 msaitoh case WM_T_82571:
1855 1.273 msaitoh case WM_T_82572:
1856 1.273 msaitoh reg = CSR_READ(sc, WMREG_SWSM2);
1857 1.310 msaitoh if ((reg & SWSM2_LOCK) == 0) {
1858 1.273 msaitoh CSR_WRITE(sc, WMREG_SWSM2, reg | SWSM2_LOCK);
1859 1.273 msaitoh force_clear_smbi = true;
1860 1.273 msaitoh } else
1861 1.273 msaitoh force_clear_smbi = false;
1862 1.273 msaitoh break;
1863 1.284 msaitoh case WM_T_82573:
1864 1.284 msaitoh case WM_T_82574:
1865 1.284 msaitoh case WM_T_82583:
1866 1.284 msaitoh force_clear_smbi = true;
1867 1.284 msaitoh break;
1868 1.273 msaitoh default:
1869 1.284 msaitoh force_clear_smbi = false;
1870 1.273 msaitoh break;
1871 1.273 msaitoh }
1872 1.273 msaitoh if (force_clear_smbi) {
1873 1.273 msaitoh reg = CSR_READ(sc, WMREG_SWSM);
1874 1.284 msaitoh if ((reg & SWSM_SMBI) != 0)
1875 1.273 msaitoh aprint_error_dev(sc->sc_dev,
1876 1.273 msaitoh "Please update the Bootagent\n");
1877 1.273 msaitoh CSR_WRITE(sc, WMREG_SWSM, reg & ~SWSM_SMBI);
1878 1.273 msaitoh }
1879 1.273 msaitoh
1880 1.112 gavan /*
1881 1.112 gavan * Defer printing the EEPROM type until after verifying the checksum
1882 1.112 gavan * This allows the EEPROM type to be printed correctly in the case
1883 1.112 gavan * that no EEPROM is attached.
1884 1.112 gavan */
1885 1.185 msaitoh /*
1886 1.185 msaitoh * Validate the EEPROM checksum. If the checksum fails, flag
1887 1.185 msaitoh * this for later, so we can fail future reads from the EEPROM.
1888 1.185 msaitoh */
1889 1.280 msaitoh if (wm_nvm_validate_checksum(sc)) {
1890 1.169 msaitoh /*
1891 1.185 msaitoh * Read twice again because some PCI-e parts fail the
1892 1.185 msaitoh * first check due to the link being in sleep state.
1893 1.169 msaitoh */
1894 1.280 msaitoh if (wm_nvm_validate_checksum(sc))
1895 1.185 msaitoh sc->sc_flags |= WM_F_EEPROM_INVALID;
1896 1.169 msaitoh }
1897 1.185 msaitoh
1898 1.184 msaitoh /* Set device properties (macflags) */
1899 1.183 msaitoh prop_dictionary_set_uint32(dict, "macflags", sc->sc_flags);
1900 1.112 gavan
1901 1.113 gavan if (sc->sc_flags & WM_F_EEPROM_INVALID)
1902 1.160 christos aprint_verbose_dev(sc->sc_dev, "No EEPROM\n");
1903 1.294 msaitoh else {
1904 1.294 msaitoh aprint_verbose_dev(sc->sc_dev, "%u words ",
1905 1.294 msaitoh sc->sc_nvm_wordsize);
1906 1.294 msaitoh if (sc->sc_flags & WM_F_EEPROM_FLASH_HW) {
1907 1.294 msaitoh aprint_verbose("FLASH(HW)\n");
1908 1.294 msaitoh } else if (sc->sc_flags & WM_F_EEPROM_FLASH) {
1909 1.294 msaitoh aprint_verbose("FLASH\n");
1910 1.294 msaitoh } else {
1911 1.294 msaitoh if (sc->sc_flags & WM_F_EEPROM_SPI)
1912 1.294 msaitoh eetype = "SPI";
1913 1.294 msaitoh else
1914 1.294 msaitoh eetype = "MicroWire";
1915 1.294 msaitoh aprint_verbose("(%d address bits) %s EEPROM\n",
1916 1.294 msaitoh sc->sc_nvm_addrbits, eetype);
1917 1.294 msaitoh }
1918 1.112 gavan }
1919 1.112 gavan
1920 1.261 msaitoh switch (sc->sc_type) {
1921 1.261 msaitoh case WM_T_82571:
1922 1.261 msaitoh case WM_T_82572:
1923 1.261 msaitoh case WM_T_82573:
1924 1.261 msaitoh case WM_T_82574:
1925 1.261 msaitoh case WM_T_82583:
1926 1.261 msaitoh case WM_T_80003:
1927 1.261 msaitoh case WM_T_ICH8:
1928 1.261 msaitoh case WM_T_ICH9:
1929 1.261 msaitoh case WM_T_ICH10:
1930 1.261 msaitoh case WM_T_PCH:
1931 1.261 msaitoh case WM_T_PCH2:
1932 1.261 msaitoh case WM_T_PCH_LPT:
1933 1.263 msaitoh if (wm_check_mng_mode(sc) != 0)
1934 1.261 msaitoh wm_get_hw_control(sc);
1935 1.261 msaitoh break;
1936 1.261 msaitoh default:
1937 1.261 msaitoh break;
1938 1.261 msaitoh }
1939 1.261 msaitoh wm_get_wakeup(sc);
1940 1.113 gavan /*
1941 1.113 gavan * Read the Ethernet address from the EEPROM, if not first found
1942 1.113 gavan * in device properties.
1943 1.113 gavan */
1944 1.195 martin ea = prop_dictionary_get(dict, "mac-address");
1945 1.115 thorpej if (ea != NULL) {
1946 1.115 thorpej KASSERT(prop_object_type(ea) == PROP_TYPE_DATA);
1947 1.115 thorpej KASSERT(prop_data_size(ea) == ETHER_ADDR_LEN);
1948 1.115 thorpej memcpy(enaddr, prop_data_data_nocopy(ea), ETHER_ADDR_LEN);
1949 1.115 thorpej } else {
1950 1.210 msaitoh if (wm_read_mac_addr(sc, enaddr) != 0) {
1951 1.160 christos aprint_error_dev(sc->sc_dev,
1952 1.160 christos "unable to read Ethernet address\n");
1953 1.290 msaitoh goto fail_5;
1954 1.210 msaitoh }
1955 1.17 thorpej }
1956 1.17 thorpej
1957 1.160 christos aprint_normal_dev(sc->sc_dev, "Ethernet address %s\n",
1958 1.1 thorpej ether_sprintf(enaddr));
1959 1.1 thorpej
1960 1.1 thorpej /*
1961 1.1 thorpej * Read the config info from the EEPROM, and set up various
1962 1.1 thorpej * bits in the control registers based on their contents.
1963 1.1 thorpej */
1964 1.182 msaitoh pn = prop_dictionary_get(dict, "i82543-cfg1");
1965 1.115 thorpej if (pn != NULL) {
1966 1.115 thorpej KASSERT(prop_object_type(pn) == PROP_TYPE_NUMBER);
1967 1.115 thorpej cfg1 = (uint16_t) prop_number_integer_value(pn);
1968 1.115 thorpej } else {
1969 1.293 msaitoh if (wm_nvm_read(sc, NVM_OFF_CFG1, 1, &cfg1)) {
1970 1.160 christos aprint_error_dev(sc->sc_dev, "unable to read CFG1\n");
1971 1.290 msaitoh goto fail_5;
1972 1.113 gavan }
1973 1.51 thorpej }
1974 1.115 thorpej
1975 1.182 msaitoh pn = prop_dictionary_get(dict, "i82543-cfg2");
1976 1.115 thorpej if (pn != NULL) {
1977 1.115 thorpej KASSERT(prop_object_type(pn) == PROP_TYPE_NUMBER);
1978 1.115 thorpej cfg2 = (uint16_t) prop_number_integer_value(pn);
1979 1.115 thorpej } else {
1980 1.293 msaitoh if (wm_nvm_read(sc, NVM_OFF_CFG2, 1, &cfg2)) {
1981 1.160 christos aprint_error_dev(sc->sc_dev, "unable to read CFG2\n");
1982 1.290 msaitoh goto fail_5;
1983 1.113 gavan }
1984 1.51 thorpej }
1985 1.115 thorpej
1986 1.203 msaitoh /* check for WM_F_WOL */
1987 1.203 msaitoh switch (sc->sc_type) {
1988 1.203 msaitoh case WM_T_82542_2_0:
1989 1.203 msaitoh case WM_T_82542_2_1:
1990 1.203 msaitoh case WM_T_82543:
1991 1.203 msaitoh /* dummy? */
1992 1.203 msaitoh eeprom_data = 0;
1993 1.293 msaitoh apme_mask = NVM_CFG3_APME;
1994 1.203 msaitoh break;
1995 1.203 msaitoh case WM_T_82544:
1996 1.293 msaitoh apme_mask = NVM_CFG2_82544_APM_EN;
1997 1.203 msaitoh eeprom_data = cfg2;
1998 1.203 msaitoh break;
1999 1.203 msaitoh case WM_T_82546:
2000 1.203 msaitoh case WM_T_82546_3:
2001 1.203 msaitoh case WM_T_82571:
2002 1.203 msaitoh case WM_T_82572:
2003 1.203 msaitoh case WM_T_82573:
2004 1.203 msaitoh case WM_T_82574:
2005 1.203 msaitoh case WM_T_82583:
2006 1.203 msaitoh case WM_T_80003:
2007 1.203 msaitoh default:
2008 1.293 msaitoh apme_mask = NVM_CFG3_APME;
2009 1.293 msaitoh wm_nvm_read(sc, (sc->sc_funcid == 1) ? NVM_OFF_CFG3_PORTB
2010 1.293 msaitoh : NVM_OFF_CFG3_PORTA, 1, &eeprom_data);
2011 1.203 msaitoh break;
2012 1.203 msaitoh case WM_T_82575:
2013 1.203 msaitoh case WM_T_82576:
2014 1.203 msaitoh case WM_T_82580:
2015 1.228 msaitoh case WM_T_I350:
2016 1.265 msaitoh case WM_T_I354: /* XXX ok? */
2017 1.203 msaitoh case WM_T_ICH8:
2018 1.203 msaitoh case WM_T_ICH9:
2019 1.203 msaitoh case WM_T_ICH10:
2020 1.203 msaitoh case WM_T_PCH:
2021 1.221 msaitoh case WM_T_PCH2:
2022 1.249 msaitoh case WM_T_PCH_LPT:
2023 1.228 msaitoh /* XXX The funcid should be checked on some devices */
2024 1.203 msaitoh apme_mask = WUC_APME;
2025 1.203 msaitoh eeprom_data = CSR_READ(sc, WMREG_WUC);
2026 1.203 msaitoh break;
2027 1.203 msaitoh }
2028 1.203 msaitoh
2029 1.203 msaitoh /* Check for WM_F_WOL flag after the setting of the EEPROM stuff */
2030 1.203 msaitoh if ((eeprom_data & apme_mask) != 0)
2031 1.203 msaitoh sc->sc_flags |= WM_F_WOL;
2032 1.203 msaitoh #ifdef WM_DEBUG
2033 1.203 msaitoh if ((sc->sc_flags & WM_F_WOL) != 0)
2034 1.203 msaitoh printf("WOL\n");
2035 1.203 msaitoh #endif
2036 1.203 msaitoh
2037 1.203 msaitoh /*
2038 1.203 msaitoh * XXX need special handling for some multiple port cards
2039 1.203 msaitoh * to disable a paticular port.
2040 1.203 msaitoh */
2041 1.203 msaitoh
2042 1.51 thorpej if (sc->sc_type >= WM_T_82544) {
2043 1.182 msaitoh pn = prop_dictionary_get(dict, "i82543-swdpin");
2044 1.115 thorpej if (pn != NULL) {
2045 1.115 thorpej KASSERT(prop_object_type(pn) == PROP_TYPE_NUMBER);
2046 1.115 thorpej swdpin = (uint16_t) prop_number_integer_value(pn);
2047 1.115 thorpej } else {
2048 1.293 msaitoh if (wm_nvm_read(sc, NVM_OFF_SWDPIN, 1, &swdpin)) {
2049 1.160 christos aprint_error_dev(sc->sc_dev,
2050 1.160 christos "unable to read SWDPIN\n");
2051 1.290 msaitoh goto fail_5;
2052 1.113 gavan }
2053 1.51 thorpej }
2054 1.51 thorpej }
2055 1.1 thorpej
2056 1.293 msaitoh if (cfg1 & NVM_CFG1_ILOS)
2057 1.1 thorpej sc->sc_ctrl |= CTRL_ILOS;
2058 1.11 thorpej if (sc->sc_type >= WM_T_82544) {
2059 1.1 thorpej sc->sc_ctrl |=
2060 1.293 msaitoh ((swdpin >> NVM_SWDPIN_SWDPIO_SHIFT) & 0xf) <<
2061 1.1 thorpej CTRL_SWDPIO_SHIFT;
2062 1.1 thorpej sc->sc_ctrl |=
2063 1.293 msaitoh ((swdpin >> NVM_SWDPIN_SWDPIN_SHIFT) & 0xf) <<
2064 1.1 thorpej CTRL_SWDPINS_SHIFT;
2065 1.1 thorpej } else {
2066 1.1 thorpej sc->sc_ctrl |=
2067 1.293 msaitoh ((cfg1 >> NVM_CFG1_SWDPIO_SHIFT) & 0xf) <<
2068 1.1 thorpej CTRL_SWDPIO_SHIFT;
2069 1.1 thorpej }
2070 1.1 thorpej
2071 1.1 thorpej #if 0
2072 1.11 thorpej if (sc->sc_type >= WM_T_82544) {
2073 1.293 msaitoh if (cfg1 & NVM_CFG1_IPS0)
2074 1.1 thorpej sc->sc_ctrl_ext |= CTRL_EXT_IPS;
2075 1.293 msaitoh if (cfg1 & NVM_CFG1_IPS1)
2076 1.1 thorpej sc->sc_ctrl_ext |= CTRL_EXT_IPS1;
2077 1.1 thorpej sc->sc_ctrl_ext |=
2078 1.293 msaitoh ((swdpin >> (NVM_SWDPIN_SWDPIO_SHIFT + 4)) & 0xd) <<
2079 1.1 thorpej CTRL_EXT_SWDPIO_SHIFT;
2080 1.1 thorpej sc->sc_ctrl_ext |=
2081 1.293 msaitoh ((swdpin >> (NVM_SWDPIN_SWDPIN_SHIFT + 4)) & 0xd) <<
2082 1.1 thorpej CTRL_EXT_SWDPINS_SHIFT;
2083 1.1 thorpej } else {
2084 1.1 thorpej sc->sc_ctrl_ext |=
2085 1.293 msaitoh ((cfg2 >> NVM_CFG2_SWDPIO_SHIFT) & 0xf) <<
2086 1.1 thorpej CTRL_EXT_SWDPIO_SHIFT;
2087 1.1 thorpej }
2088 1.1 thorpej #endif
2089 1.1 thorpej
2090 1.1 thorpej CSR_WRITE(sc, WMREG_CTRL, sc->sc_ctrl);
2091 1.1 thorpej #if 0
2092 1.1 thorpej CSR_WRITE(sc, WMREG_CTRL_EXT, sc->sc_ctrl_ext);
2093 1.1 thorpej #endif
2094 1.1 thorpej
2095 1.1 thorpej /*
2096 1.1 thorpej * Set up some register offsets that are different between
2097 1.11 thorpej * the i82542 and the i82543 and later chips.
2098 1.1 thorpej */
2099 1.11 thorpej if (sc->sc_type < WM_T_82543) {
2100 1.1 thorpej sc->sc_rdt_reg = WMREG_OLD_RDT0;
2101 1.1 thorpej sc->sc_tdt_reg = WMREG_OLD_TDT;
2102 1.1 thorpej } else {
2103 1.1 thorpej sc->sc_rdt_reg = WMREG_RDT;
2104 1.1 thorpej sc->sc_tdt_reg = WMREG_TDT;
2105 1.1 thorpej }
2106 1.1 thorpej
2107 1.192 msaitoh if (sc->sc_type == WM_T_PCH) {
2108 1.192 msaitoh uint16_t val;
2109 1.192 msaitoh
2110 1.192 msaitoh /* Save the NVM K1 bit setting */
2111 1.293 msaitoh wm_nvm_read(sc, NVM_OFF_K1_CONFIG, 1, &val);
2112 1.192 msaitoh
2113 1.293 msaitoh if ((val & NVM_K1_CONFIG_ENABLE) != 0)
2114 1.192 msaitoh sc->sc_nvm_k1_enabled = 1;
2115 1.192 msaitoh else
2116 1.192 msaitoh sc->sc_nvm_k1_enabled = 0;
2117 1.192 msaitoh }
2118 1.192 msaitoh
2119 1.1 thorpej /*
2120 1.199 msaitoh * Determine if we're TBI,GMII or SGMII mode, and initialize the
2121 1.1 thorpej * media structures accordingly.
2122 1.1 thorpej */
2123 1.144 msaitoh if (sc->sc_type == WM_T_ICH8 || sc->sc_type == WM_T_ICH9
2124 1.190 msaitoh || sc->sc_type == WM_T_ICH10 || sc->sc_type == WM_T_PCH
2125 1.249 msaitoh || sc->sc_type == WM_T_PCH2 || sc->sc_type == WM_T_PCH_LPT
2126 1.249 msaitoh || sc->sc_type == WM_T_82573
2127 1.185 msaitoh || sc->sc_type == WM_T_82574 || sc->sc_type == WM_T_82583) {
2128 1.139 bouyer /* STATUS_TBIMODE reserved/reused, can't rely on it */
2129 1.191 msaitoh wm_gmii_mediainit(sc, wmp->wmp_product);
2130 1.139 bouyer } else if (sc->sc_type < WM_T_82543 ||
2131 1.1 thorpej (CSR_READ(sc, WMREG_STATUS) & STATUS_TBIMODE) != 0) {
2132 1.311 msaitoh if (sc->sc_mediatype == WM_MEDIATYPE_COPPER) {
2133 1.160 christos aprint_error_dev(sc->sc_dev,
2134 1.160 christos "WARNING: TBIMODE set on 1000BASE-T product!\n");
2135 1.311 msaitoh sc->sc_mediatype = WM_MEDIATYPE_FIBER;
2136 1.292 msaitoh }
2137 1.1 thorpej wm_tbi_mediainit(sc);
2138 1.1 thorpej } else {
2139 1.199 msaitoh switch (sc->sc_type) {
2140 1.199 msaitoh case WM_T_82575:
2141 1.199 msaitoh case WM_T_82576:
2142 1.199 msaitoh case WM_T_82580:
2143 1.228 msaitoh case WM_T_I350:
2144 1.265 msaitoh case WM_T_I354:
2145 1.247 msaitoh case WM_T_I210:
2146 1.247 msaitoh case WM_T_I211:
2147 1.199 msaitoh reg = CSR_READ(sc, WMREG_CTRL_EXT);
2148 1.292 msaitoh link_mode = reg & CTRL_EXT_LINK_MODE_MASK;
2149 1.292 msaitoh switch (link_mode) {
2150 1.265 msaitoh case CTRL_EXT_LINK_MODE_1000KX:
2151 1.265 msaitoh aprint_verbose_dev(sc->sc_dev, "1000KX\n");
2152 1.311 msaitoh sc->sc_mediatype = WM_MEDIATYPE_SERDES;
2153 1.199 msaitoh break;
2154 1.265 msaitoh case CTRL_EXT_LINK_MODE_SGMII:
2155 1.265 msaitoh if (wm_sgmii_uses_mdio(sc)) {
2156 1.265 msaitoh aprint_verbose_dev(sc->sc_dev,
2157 1.265 msaitoh "SGMII(MDIO)\n");
2158 1.265 msaitoh sc->sc_flags |= WM_F_SGMII;
2159 1.311 msaitoh sc->sc_mediatype = WM_MEDIATYPE_COPPER;
2160 1.265 msaitoh break;
2161 1.265 msaitoh }
2162 1.265 msaitoh aprint_verbose_dev(sc->sc_dev, "SGMII(I2C)\n");
2163 1.265 msaitoh /*FALLTHROUGH*/
2164 1.199 msaitoh case CTRL_EXT_LINK_MODE_PCIE_SERDES:
2165 1.295 msaitoh sc->sc_mediatype = wm_sfp_get_media_type(sc);
2166 1.311 msaitoh if (sc->sc_mediatype == WM_MEDIATYPE_UNKNOWN) {
2167 1.292 msaitoh if (link_mode
2168 1.292 msaitoh == CTRL_EXT_LINK_MODE_SGMII) {
2169 1.292 msaitoh sc->sc_mediatype
2170 1.311 msaitoh = WM_MEDIATYPE_COPPER;
2171 1.292 msaitoh sc->sc_flags |= WM_F_SGMII;
2172 1.292 msaitoh } else {
2173 1.292 msaitoh sc->sc_mediatype
2174 1.311 msaitoh = WM_MEDIATYPE_SERDES;
2175 1.292 msaitoh aprint_verbose_dev(sc->sc_dev,
2176 1.292 msaitoh "SERDES\n");
2177 1.292 msaitoh }
2178 1.292 msaitoh break;
2179 1.292 msaitoh }
2180 1.311 msaitoh if (sc->sc_mediatype == WM_MEDIATYPE_SERDES)
2181 1.292 msaitoh aprint_verbose_dev(sc->sc_dev,
2182 1.292 msaitoh "SERDES\n");
2183 1.292 msaitoh
2184 1.292 msaitoh /* Change current link mode setting */
2185 1.292 msaitoh reg &= ~CTRL_EXT_LINK_MODE_MASK;
2186 1.292 msaitoh switch (sc->sc_mediatype) {
2187 1.311 msaitoh case WM_MEDIATYPE_COPPER:
2188 1.292 msaitoh reg |= CTRL_EXT_LINK_MODE_SGMII;
2189 1.292 msaitoh break;
2190 1.311 msaitoh case WM_MEDIATYPE_SERDES:
2191 1.292 msaitoh reg |= CTRL_EXT_LINK_MODE_PCIE_SERDES;
2192 1.292 msaitoh break;
2193 1.292 msaitoh default:
2194 1.292 msaitoh break;
2195 1.292 msaitoh }
2196 1.292 msaitoh CSR_WRITE(sc, WMREG_CTRL_EXT, reg);
2197 1.199 msaitoh break;
2198 1.199 msaitoh case CTRL_EXT_LINK_MODE_GMII:
2199 1.199 msaitoh default:
2200 1.295 msaitoh aprint_verbose_dev(sc->sc_dev, "Copper\n");
2201 1.311 msaitoh sc->sc_mediatype = WM_MEDIATYPE_COPPER;
2202 1.199 msaitoh break;
2203 1.199 msaitoh }
2204 1.292 msaitoh
2205 1.292 msaitoh reg &= ~CTRL_EXT_I2C_ENA;
2206 1.292 msaitoh if ((sc->sc_flags & WM_F_SGMII) != 0)
2207 1.292 msaitoh reg |= CTRL_EXT_I2C_ENA;
2208 1.292 msaitoh else
2209 1.292 msaitoh reg &= ~CTRL_EXT_I2C_ENA;
2210 1.292 msaitoh CSR_WRITE(sc, WMREG_CTRL_EXT, reg);
2211 1.292 msaitoh
2212 1.311 msaitoh if (sc->sc_mediatype == WM_MEDIATYPE_COPPER)
2213 1.292 msaitoh wm_gmii_mediainit(sc, wmp->wmp_product);
2214 1.292 msaitoh else
2215 1.292 msaitoh wm_tbi_mediainit(sc);
2216 1.199 msaitoh break;
2217 1.199 msaitoh default:
2218 1.311 msaitoh if (sc->sc_mediatype == WM_MEDIATYPE_FIBER)
2219 1.199 msaitoh aprint_error_dev(sc->sc_dev,
2220 1.199 msaitoh "WARNING: TBIMODE clear on 1000BASE-X product!\n");
2221 1.311 msaitoh sc->sc_mediatype = WM_MEDIATYPE_COPPER;
2222 1.199 msaitoh wm_gmii_mediainit(sc, wmp->wmp_product);
2223 1.199 msaitoh }
2224 1.1 thorpej }
2225 1.1 thorpej
2226 1.1 thorpej ifp = &sc->sc_ethercom.ec_if;
2227 1.160 christos xname = device_xname(sc->sc_dev);
2228 1.160 christos strlcpy(ifp->if_xname, xname, IFNAMSIZ);
2229 1.1 thorpej ifp->if_softc = sc;
2230 1.1 thorpej ifp->if_flags = IFF_BROADCAST | IFF_SIMPLEX | IFF_MULTICAST;
2231 1.1 thorpej ifp->if_ioctl = wm_ioctl;
2232 1.233 msaitoh if ((sc->sc_flags & WM_F_NEWQUEUE) != 0)
2233 1.232 bouyer ifp->if_start = wm_nq_start;
2234 1.232 bouyer else
2235 1.232 bouyer ifp->if_start = wm_start;
2236 1.1 thorpej ifp->if_watchdog = wm_watchdog;
2237 1.1 thorpej ifp->if_init = wm_init;
2238 1.1 thorpej ifp->if_stop = wm_stop;
2239 1.58 ragge IFQ_SET_MAXLEN(&ifp->if_snd, max(WM_IFQUEUELEN, IFQ_MAXLEN));
2240 1.1 thorpej IFQ_SET_READY(&ifp->if_snd);
2241 1.1 thorpej
2242 1.187 msaitoh /* Check for jumbo frame */
2243 1.187 msaitoh switch (sc->sc_type) {
2244 1.187 msaitoh case WM_T_82573:
2245 1.187 msaitoh /* XXX limited to 9234 if ASPM is disabled */
2246 1.293 msaitoh wm_nvm_read(sc, NVM_OFF_INIT_3GIO_3, 1, &io3);
2247 1.293 msaitoh if ((io3 & NVM_3GIO_3_ASPM_MASK) != 0)
2248 1.187 msaitoh sc->sc_ethercom.ec_capabilities |= ETHERCAP_JUMBO_MTU;
2249 1.187 msaitoh break;
2250 1.187 msaitoh case WM_T_82571:
2251 1.187 msaitoh case WM_T_82572:
2252 1.187 msaitoh case WM_T_82574:
2253 1.199 msaitoh case WM_T_82575:
2254 1.199 msaitoh case WM_T_82576:
2255 1.199 msaitoh case WM_T_82580:
2256 1.228 msaitoh case WM_T_I350:
2257 1.265 msaitoh case WM_T_I354: /* XXXX ok? */
2258 1.247 msaitoh case WM_T_I210:
2259 1.247 msaitoh case WM_T_I211:
2260 1.187 msaitoh case WM_T_80003:
2261 1.187 msaitoh case WM_T_ICH9:
2262 1.187 msaitoh case WM_T_ICH10:
2263 1.221 msaitoh case WM_T_PCH2: /* PCH2 supports 9K frame size */
2264 1.249 msaitoh case WM_T_PCH_LPT:
2265 1.187 msaitoh /* XXX limited to 9234 */
2266 1.120 msaitoh sc->sc_ethercom.ec_capabilities |= ETHERCAP_JUMBO_MTU;
2267 1.187 msaitoh break;
2268 1.190 msaitoh case WM_T_PCH:
2269 1.190 msaitoh /* XXX limited to 4096 */
2270 1.190 msaitoh sc->sc_ethercom.ec_capabilities |= ETHERCAP_JUMBO_MTU;
2271 1.190 msaitoh break;
2272 1.187 msaitoh case WM_T_82542_2_0:
2273 1.187 msaitoh case WM_T_82542_2_1:
2274 1.187 msaitoh case WM_T_82583:
2275 1.187 msaitoh case WM_T_ICH8:
2276 1.187 msaitoh /* No support for jumbo frame */
2277 1.187 msaitoh break;
2278 1.187 msaitoh default:
2279 1.187 msaitoh /* ETHER_MAX_LEN_JUMBO */
2280 1.187 msaitoh sc->sc_ethercom.ec_capabilities |= ETHERCAP_JUMBO_MTU;
2281 1.187 msaitoh break;
2282 1.187 msaitoh }
2283 1.41 tls
2284 1.281 msaitoh /* If we're a i82543 or greater, we can support VLANs. */
2285 1.233 msaitoh if (sc->sc_type >= WM_T_82543)
2286 1.1 thorpej sc->sc_ethercom.ec_capabilities |=
2287 1.172 darran ETHERCAP_VLAN_MTU | ETHERCAP_VLAN_HWTAGGING;
2288 1.1 thorpej
2289 1.1 thorpej /*
2290 1.1 thorpej * We can perform TCPv4 and UDPv4 checkums in-bound. Only
2291 1.11 thorpej * on i82543 and later.
2292 1.1 thorpej */
2293 1.130 yamt if (sc->sc_type >= WM_T_82543) {
2294 1.1 thorpej ifp->if_capabilities |=
2295 1.103 yamt IFCAP_CSUM_IPv4_Tx | IFCAP_CSUM_IPv4_Rx |
2296 1.103 yamt IFCAP_CSUM_TCPv4_Tx | IFCAP_CSUM_TCPv4_Rx |
2297 1.107 yamt IFCAP_CSUM_UDPv4_Tx | IFCAP_CSUM_UDPv4_Rx |
2298 1.107 yamt IFCAP_CSUM_TCPv6_Tx |
2299 1.107 yamt IFCAP_CSUM_UDPv6_Tx;
2300 1.130 yamt }
2301 1.130 yamt
2302 1.130 yamt /*
2303 1.130 yamt * XXXyamt: i'm not sure which chips support RXCSUM_IPV6OFL.
2304 1.130 yamt *
2305 1.130 yamt * 82541GI (8086:1076) ... no
2306 1.130 yamt * 82572EI (8086:10b9) ... yes
2307 1.130 yamt */
2308 1.130 yamt if (sc->sc_type >= WM_T_82571) {
2309 1.130 yamt ifp->if_capabilities |=
2310 1.130 yamt IFCAP_CSUM_TCPv6_Rx | IFCAP_CSUM_UDPv6_Rx;
2311 1.130 yamt }
2312 1.1 thorpej
2313 1.198 msaitoh /*
2314 1.99 matt * If we're a i82544 or greater (except i82547), we can do
2315 1.99 matt * TCP segmentation offload.
2316 1.99 matt */
2317 1.131 yamt if (sc->sc_type >= WM_T_82544 && sc->sc_type != WM_T_82547) {
2318 1.99 matt ifp->if_capabilities |= IFCAP_TSOv4;
2319 1.131 yamt }
2320 1.131 yamt
2321 1.131 yamt if (sc->sc_type >= WM_T_82571) {
2322 1.131 yamt ifp->if_capabilities |= IFCAP_TSOv6;
2323 1.131 yamt }
2324 1.99 matt
2325 1.272 ozaki #ifdef WM_MPSAFE
2326 1.283 ozaki sc->sc_tx_lock = mutex_obj_alloc(MUTEX_DEFAULT, IPL_NET);
2327 1.283 ozaki sc->sc_rx_lock = mutex_obj_alloc(MUTEX_DEFAULT, IPL_NET);
2328 1.272 ozaki #else
2329 1.283 ozaki sc->sc_tx_lock = NULL;
2330 1.283 ozaki sc->sc_rx_lock = NULL;
2331 1.272 ozaki #endif
2332 1.272 ozaki
2333 1.281 msaitoh /* Attach the interface. */
2334 1.1 thorpej if_attach(ifp);
2335 1.1 thorpej ether_ifattach(ifp, enaddr);
2336 1.213 msaitoh ether_set_ifflags_cb(&sc->sc_ethercom, wm_ifflags_cb);
2337 1.289 tls rnd_attach_source(&sc->rnd_source, xname, RND_TYPE_NET,
2338 1.289 tls RND_FLAG_DEFAULT);
2339 1.1 thorpej
2340 1.1 thorpej #ifdef WM_EVENT_COUNTERS
2341 1.1 thorpej /* Attach event counters. */
2342 1.1 thorpej evcnt_attach_dynamic(&sc->sc_ev_txsstall, EVCNT_TYPE_MISC,
2343 1.160 christos NULL, xname, "txsstall");
2344 1.1 thorpej evcnt_attach_dynamic(&sc->sc_ev_txdstall, EVCNT_TYPE_MISC,
2345 1.160 christos NULL, xname, "txdstall");
2346 1.78 thorpej evcnt_attach_dynamic(&sc->sc_ev_txfifo_stall, EVCNT_TYPE_MISC,
2347 1.160 christos NULL, xname, "txfifo_stall");
2348 1.4 thorpej evcnt_attach_dynamic(&sc->sc_ev_txdw, EVCNT_TYPE_INTR,
2349 1.160 christos NULL, xname, "txdw");
2350 1.4 thorpej evcnt_attach_dynamic(&sc->sc_ev_txqe, EVCNT_TYPE_INTR,
2351 1.160 christos NULL, xname, "txqe");
2352 1.1 thorpej evcnt_attach_dynamic(&sc->sc_ev_rxintr, EVCNT_TYPE_INTR,
2353 1.160 christos NULL, xname, "rxintr");
2354 1.1 thorpej evcnt_attach_dynamic(&sc->sc_ev_linkintr, EVCNT_TYPE_INTR,
2355 1.160 christos NULL, xname, "linkintr");
2356 1.1 thorpej
2357 1.1 thorpej evcnt_attach_dynamic(&sc->sc_ev_rxipsum, EVCNT_TYPE_MISC,
2358 1.160 christos NULL, xname, "rxipsum");
2359 1.1 thorpej evcnt_attach_dynamic(&sc->sc_ev_rxtusum, EVCNT_TYPE_MISC,
2360 1.160 christos NULL, xname, "rxtusum");
2361 1.1 thorpej evcnt_attach_dynamic(&sc->sc_ev_txipsum, EVCNT_TYPE_MISC,
2362 1.160 christos NULL, xname, "txipsum");
2363 1.1 thorpej evcnt_attach_dynamic(&sc->sc_ev_txtusum, EVCNT_TYPE_MISC,
2364 1.160 christos NULL, xname, "txtusum");
2365 1.107 yamt evcnt_attach_dynamic(&sc->sc_ev_txtusum6, EVCNT_TYPE_MISC,
2366 1.160 christos NULL, xname, "txtusum6");
2367 1.1 thorpej
2368 1.99 matt evcnt_attach_dynamic(&sc->sc_ev_txtso, EVCNT_TYPE_MISC,
2369 1.160 christos NULL, xname, "txtso");
2370 1.131 yamt evcnt_attach_dynamic(&sc->sc_ev_txtso6, EVCNT_TYPE_MISC,
2371 1.160 christos NULL, xname, "txtso6");
2372 1.99 matt evcnt_attach_dynamic(&sc->sc_ev_txtsopain, EVCNT_TYPE_MISC,
2373 1.160 christos NULL, xname, "txtsopain");
2374 1.99 matt
2375 1.75 thorpej for (i = 0; i < WM_NTXSEGS; i++) {
2376 1.267 christos snprintf(wm_txseg_evcnt_names[i],
2377 1.267 christos sizeof(wm_txseg_evcnt_names[i]), "txseg%d", i);
2378 1.2 thorpej evcnt_attach_dynamic(&sc->sc_ev_txseg[i], EVCNT_TYPE_MISC,
2379 1.160 christos NULL, xname, wm_txseg_evcnt_names[i]);
2380 1.75 thorpej }
2381 1.2 thorpej
2382 1.1 thorpej evcnt_attach_dynamic(&sc->sc_ev_txdrop, EVCNT_TYPE_MISC,
2383 1.160 christos NULL, xname, "txdrop");
2384 1.1 thorpej
2385 1.1 thorpej evcnt_attach_dynamic(&sc->sc_ev_tu, EVCNT_TYPE_MISC,
2386 1.160 christos NULL, xname, "tu");
2387 1.71 thorpej
2388 1.71 thorpej evcnt_attach_dynamic(&sc->sc_ev_tx_xoff, EVCNT_TYPE_MISC,
2389 1.160 christos NULL, xname, "tx_xoff");
2390 1.71 thorpej evcnt_attach_dynamic(&sc->sc_ev_tx_xon, EVCNT_TYPE_MISC,
2391 1.160 christos NULL, xname, "tx_xon");
2392 1.71 thorpej evcnt_attach_dynamic(&sc->sc_ev_rx_xoff, EVCNT_TYPE_MISC,
2393 1.160 christos NULL, xname, "rx_xoff");
2394 1.71 thorpej evcnt_attach_dynamic(&sc->sc_ev_rx_xon, EVCNT_TYPE_MISC,
2395 1.160 christos NULL, xname, "rx_xon");
2396 1.71 thorpej evcnt_attach_dynamic(&sc->sc_ev_rx_macctl, EVCNT_TYPE_MISC,
2397 1.160 christos NULL, xname, "rx_macctl");
2398 1.1 thorpej #endif /* WM_EVENT_COUNTERS */
2399 1.1 thorpej
2400 1.203 msaitoh if (pmf_device_register(self, wm_suspend, wm_resume))
2401 1.180 tsutsui pmf_class_network_register(self, ifp);
2402 1.180 tsutsui else
2403 1.149 jmcneill aprint_error_dev(self, "couldn't establish power handler\n");
2404 1.123 jmcneill
2405 1.290 msaitoh sc->sc_flags |= WM_F_ATTACHED;
2406 1.1 thorpej return;
2407 1.1 thorpej
2408 1.1 thorpej /*
2409 1.1 thorpej * Free any resources we've allocated during the failed attach
2410 1.1 thorpej * attempt. Do this in reverse order and fall through.
2411 1.1 thorpej */
2412 1.1 thorpej fail_5:
2413 1.1 thorpej for (i = 0; i < WM_NRXDESC; i++) {
2414 1.1 thorpej if (sc->sc_rxsoft[i].rxs_dmamap != NULL)
2415 1.1 thorpej bus_dmamap_destroy(sc->sc_dmat,
2416 1.1 thorpej sc->sc_rxsoft[i].rxs_dmamap);
2417 1.1 thorpej }
2418 1.1 thorpej fail_4:
2419 1.74 tron for (i = 0; i < WM_TXQUEUELEN(sc); i++) {
2420 1.1 thorpej if (sc->sc_txsoft[i].txs_dmamap != NULL)
2421 1.1 thorpej bus_dmamap_destroy(sc->sc_dmat,
2422 1.1 thorpej sc->sc_txsoft[i].txs_dmamap);
2423 1.1 thorpej }
2424 1.1 thorpej bus_dmamap_unload(sc->sc_dmat, sc->sc_cddmamap);
2425 1.1 thorpej fail_3:
2426 1.1 thorpej bus_dmamap_destroy(sc->sc_dmat, sc->sc_cddmamap);
2427 1.1 thorpej fail_2:
2428 1.135 christos bus_dmamem_unmap(sc->sc_dmat, (void *)sc->sc_control_data,
2429 1.201 msaitoh sc->sc_cd_size);
2430 1.1 thorpej fail_1:
2431 1.201 msaitoh bus_dmamem_free(sc->sc_dmat, &sc->sc_cd_seg, sc->sc_cd_rseg);
2432 1.1 thorpej fail_0:
2433 1.1 thorpej return;
2434 1.1 thorpej }
2435 1.1 thorpej
2436 1.280 msaitoh /* The detach function (ca_detach) */
2437 1.201 msaitoh static int
2438 1.201 msaitoh wm_detach(device_t self, int flags __unused)
2439 1.201 msaitoh {
2440 1.201 msaitoh struct wm_softc *sc = device_private(self);
2441 1.201 msaitoh struct ifnet *ifp = &sc->sc_ethercom.ec_if;
2442 1.272 ozaki int i;
2443 1.272 ozaki #ifndef WM_MPSAFE
2444 1.272 ozaki int s;
2445 1.290 msaitoh #endif
2446 1.201 msaitoh
2447 1.290 msaitoh if ((sc->sc_flags & WM_F_ATTACHED) == 0)
2448 1.290 msaitoh return 0;
2449 1.290 msaitoh
2450 1.290 msaitoh #ifndef WM_MPSAFE
2451 1.201 msaitoh s = splnet();
2452 1.272 ozaki #endif
2453 1.201 msaitoh /* Stop the interface. Callouts are stopped in it. */
2454 1.201 msaitoh wm_stop(ifp, 1);
2455 1.272 ozaki
2456 1.272 ozaki #ifndef WM_MPSAFE
2457 1.201 msaitoh splx(s);
2458 1.272 ozaki #endif
2459 1.201 msaitoh
2460 1.201 msaitoh pmf_device_deregister(self);
2461 1.201 msaitoh
2462 1.201 msaitoh /* Tell the firmware about the release */
2463 1.283 ozaki WM_BOTH_LOCK(sc);
2464 1.201 msaitoh wm_release_manageability(sc);
2465 1.212 jakllsch wm_release_hw_control(sc);
2466 1.283 ozaki WM_BOTH_UNLOCK(sc);
2467 1.201 msaitoh
2468 1.201 msaitoh mii_detach(&sc->sc_mii, MII_PHY_ANY, MII_OFFSET_ANY);
2469 1.201 msaitoh
2470 1.201 msaitoh /* Delete all remaining media. */
2471 1.201 msaitoh ifmedia_delete_instance(&sc->sc_mii.mii_media, IFM_INST_ANY);
2472 1.201 msaitoh
2473 1.201 msaitoh ether_ifdetach(ifp);
2474 1.201 msaitoh if_detach(ifp);
2475 1.201 msaitoh
2476 1.201 msaitoh
2477 1.246 christos /* Unload RX dmamaps and free mbufs */
2478 1.283 ozaki WM_RX_LOCK(sc);
2479 1.201 msaitoh wm_rxdrain(sc);
2480 1.283 ozaki WM_RX_UNLOCK(sc);
2481 1.272 ozaki /* Must unlock here */
2482 1.201 msaitoh
2483 1.201 msaitoh /* Free dmamap. It's the same as the end of the wm_attach() function */
2484 1.201 msaitoh for (i = 0; i < WM_NRXDESC; i++) {
2485 1.201 msaitoh if (sc->sc_rxsoft[i].rxs_dmamap != NULL)
2486 1.201 msaitoh bus_dmamap_destroy(sc->sc_dmat,
2487 1.201 msaitoh sc->sc_rxsoft[i].rxs_dmamap);
2488 1.201 msaitoh }
2489 1.201 msaitoh for (i = 0; i < WM_TXQUEUELEN(sc); i++) {
2490 1.201 msaitoh if (sc->sc_txsoft[i].txs_dmamap != NULL)
2491 1.201 msaitoh bus_dmamap_destroy(sc->sc_dmat,
2492 1.201 msaitoh sc->sc_txsoft[i].txs_dmamap);
2493 1.201 msaitoh }
2494 1.201 msaitoh bus_dmamap_unload(sc->sc_dmat, sc->sc_cddmamap);
2495 1.201 msaitoh bus_dmamap_destroy(sc->sc_dmat, sc->sc_cddmamap);
2496 1.201 msaitoh bus_dmamem_unmap(sc->sc_dmat, (void *)sc->sc_control_data,
2497 1.201 msaitoh sc->sc_cd_size);
2498 1.201 msaitoh bus_dmamem_free(sc->sc_dmat, &sc->sc_cd_seg, sc->sc_cd_rseg);
2499 1.201 msaitoh
2500 1.201 msaitoh /* Disestablish the interrupt handler */
2501 1.201 msaitoh if (sc->sc_ih != NULL) {
2502 1.201 msaitoh pci_intr_disestablish(sc->sc_pc, sc->sc_ih);
2503 1.201 msaitoh sc->sc_ih = NULL;
2504 1.201 msaitoh }
2505 1.201 msaitoh
2506 1.212 jakllsch /* Unmap the registers */
2507 1.201 msaitoh if (sc->sc_ss) {
2508 1.201 msaitoh bus_space_unmap(sc->sc_st, sc->sc_sh, sc->sc_ss);
2509 1.201 msaitoh sc->sc_ss = 0;
2510 1.201 msaitoh }
2511 1.201 msaitoh
2512 1.212 jakllsch if (sc->sc_ios) {
2513 1.212 jakllsch bus_space_unmap(sc->sc_iot, sc->sc_ioh, sc->sc_ios);
2514 1.212 jakllsch sc->sc_ios = 0;
2515 1.212 jakllsch }
2516 1.201 msaitoh
2517 1.283 ozaki if (sc->sc_tx_lock)
2518 1.283 ozaki mutex_obj_free(sc->sc_tx_lock);
2519 1.283 ozaki if (sc->sc_rx_lock)
2520 1.283 ozaki mutex_obj_free(sc->sc_rx_lock);
2521 1.272 ozaki
2522 1.201 msaitoh return 0;
2523 1.201 msaitoh }
2524 1.201 msaitoh
2525 1.281 msaitoh static bool
2526 1.281 msaitoh wm_suspend(device_t self, const pmf_qual_t *qual)
2527 1.281 msaitoh {
2528 1.281 msaitoh struct wm_softc *sc = device_private(self);
2529 1.281 msaitoh
2530 1.281 msaitoh wm_release_manageability(sc);
2531 1.281 msaitoh wm_release_hw_control(sc);
2532 1.281 msaitoh #ifdef WM_WOL
2533 1.281 msaitoh wm_enable_wakeup(sc);
2534 1.281 msaitoh #endif
2535 1.281 msaitoh
2536 1.281 msaitoh return true;
2537 1.281 msaitoh }
2538 1.281 msaitoh
2539 1.281 msaitoh static bool
2540 1.281 msaitoh wm_resume(device_t self, const pmf_qual_t *qual)
2541 1.281 msaitoh {
2542 1.281 msaitoh struct wm_softc *sc = device_private(self);
2543 1.281 msaitoh
2544 1.281 msaitoh wm_init_manageability(sc);
2545 1.281 msaitoh
2546 1.281 msaitoh return true;
2547 1.281 msaitoh }
2548 1.281 msaitoh
2549 1.1 thorpej /*
2550 1.281 msaitoh * wm_watchdog: [ifnet interface function]
2551 1.1 thorpej *
2552 1.281 msaitoh * Watchdog timer handler.
2553 1.1 thorpej */
2554 1.281 msaitoh static void
2555 1.281 msaitoh wm_watchdog(struct ifnet *ifp)
2556 1.1 thorpej {
2557 1.281 msaitoh struct wm_softc *sc = ifp->if_softc;
2558 1.1 thorpej
2559 1.1 thorpej /*
2560 1.281 msaitoh * Since we're using delayed interrupts, sweep up
2561 1.281 msaitoh * before we report an error.
2562 1.1 thorpej */
2563 1.283 ozaki WM_TX_LOCK(sc);
2564 1.281 msaitoh wm_txintr(sc);
2565 1.283 ozaki WM_TX_UNLOCK(sc);
2566 1.281 msaitoh
2567 1.281 msaitoh if (sc->sc_txfree != WM_NTXDESC(sc)) {
2568 1.281 msaitoh #ifdef WM_DEBUG
2569 1.281 msaitoh int i, j;
2570 1.281 msaitoh struct wm_txsoft *txs;
2571 1.281 msaitoh #endif
2572 1.281 msaitoh log(LOG_ERR,
2573 1.281 msaitoh "%s: device timeout (txfree %d txsfree %d txnext %d)\n",
2574 1.281 msaitoh device_xname(sc->sc_dev), sc->sc_txfree, sc->sc_txsfree,
2575 1.281 msaitoh sc->sc_txnext);
2576 1.281 msaitoh ifp->if_oerrors++;
2577 1.281 msaitoh #ifdef WM_DEBUG
2578 1.281 msaitoh for (i = sc->sc_txsdirty; i != sc->sc_txsnext ;
2579 1.281 msaitoh i = WM_NEXTTXS(sc, i)) {
2580 1.281 msaitoh txs = &sc->sc_txsoft[i];
2581 1.281 msaitoh printf("txs %d tx %d -> %d\n",
2582 1.281 msaitoh i, txs->txs_firstdesc, txs->txs_lastdesc);
2583 1.281 msaitoh for (j = txs->txs_firstdesc; ;
2584 1.281 msaitoh j = WM_NEXTTX(sc, j)) {
2585 1.281 msaitoh printf("\tdesc %d: 0x%" PRIx64 "\n", j,
2586 1.281 msaitoh sc->sc_nq_txdescs[j].nqtx_data.nqtxd_addr);
2587 1.281 msaitoh printf("\t %#08x%08x\n",
2588 1.281 msaitoh sc->sc_nq_txdescs[j].nqtx_data.nqtxd_fields,
2589 1.281 msaitoh sc->sc_nq_txdescs[j].nqtx_data.nqtxd_cmdlen);
2590 1.281 msaitoh if (j == txs->txs_lastdesc)
2591 1.281 msaitoh break;
2592 1.281 msaitoh }
2593 1.281 msaitoh }
2594 1.281 msaitoh #endif
2595 1.281 msaitoh /* Reset the interface. */
2596 1.281 msaitoh (void) wm_init(ifp);
2597 1.281 msaitoh }
2598 1.281 msaitoh
2599 1.281 msaitoh /* Try to get more packets going. */
2600 1.281 msaitoh ifp->if_start(ifp);
2601 1.281 msaitoh }
2602 1.1 thorpej
2603 1.281 msaitoh /*
2604 1.281 msaitoh * wm_tick:
2605 1.281 msaitoh *
2606 1.281 msaitoh * One second timer, used to check link status, sweep up
2607 1.281 msaitoh * completed transmit jobs, etc.
2608 1.281 msaitoh */
2609 1.281 msaitoh static void
2610 1.281 msaitoh wm_tick(void *arg)
2611 1.281 msaitoh {
2612 1.281 msaitoh struct wm_softc *sc = arg;
2613 1.281 msaitoh struct ifnet *ifp = &sc->sc_ethercom.ec_if;
2614 1.281 msaitoh #ifndef WM_MPSAFE
2615 1.281 msaitoh int s;
2616 1.281 msaitoh
2617 1.281 msaitoh s = splnet();
2618 1.281 msaitoh #endif
2619 1.35 thorpej
2620 1.283 ozaki WM_TX_LOCK(sc);
2621 1.13 thorpej
2622 1.281 msaitoh if (sc->sc_stopping)
2623 1.281 msaitoh goto out;
2624 1.1 thorpej
2625 1.281 msaitoh if (sc->sc_type >= WM_T_82542_2_1) {
2626 1.281 msaitoh WM_EVCNT_ADD(&sc->sc_ev_rx_xon, CSR_READ(sc, WMREG_XONRXC));
2627 1.281 msaitoh WM_EVCNT_ADD(&sc->sc_ev_tx_xon, CSR_READ(sc, WMREG_XONTXC));
2628 1.281 msaitoh WM_EVCNT_ADD(&sc->sc_ev_rx_xoff, CSR_READ(sc, WMREG_XOFFRXC));
2629 1.281 msaitoh WM_EVCNT_ADD(&sc->sc_ev_tx_xoff, CSR_READ(sc, WMREG_XOFFTXC));
2630 1.281 msaitoh WM_EVCNT_ADD(&sc->sc_ev_rx_macctl, CSR_READ(sc, WMREG_FCRUC));
2631 1.107 yamt }
2632 1.1 thorpej
2633 1.281 msaitoh ifp->if_collisions += CSR_READ(sc, WMREG_COLC);
2634 1.281 msaitoh ifp->if_ierrors += 0ULL + /* ensure quad_t */
2635 1.281 msaitoh + CSR_READ(sc, WMREG_CRCERRS)
2636 1.281 msaitoh + CSR_READ(sc, WMREG_ALGNERRC)
2637 1.281 msaitoh + CSR_READ(sc, WMREG_SYMERRC)
2638 1.281 msaitoh + CSR_READ(sc, WMREG_RXERRC)
2639 1.281 msaitoh + CSR_READ(sc, WMREG_SEC)
2640 1.281 msaitoh + CSR_READ(sc, WMREG_CEXTERR)
2641 1.281 msaitoh + CSR_READ(sc, WMREG_RLEC);
2642 1.281 msaitoh ifp->if_iqdrops += CSR_READ(sc, WMREG_MPC) + CSR_READ(sc, WMREG_RNBC);
2643 1.98 thorpej
2644 1.281 msaitoh if (sc->sc_flags & WM_F_HAS_MII)
2645 1.281 msaitoh mii_tick(&sc->sc_mii);
2646 1.281 msaitoh else
2647 1.281 msaitoh wm_tbi_check_link(sc);
2648 1.131 yamt
2649 1.281 msaitoh out:
2650 1.283 ozaki WM_TX_UNLOCK(sc);
2651 1.281 msaitoh #ifndef WM_MPSAFE
2652 1.281 msaitoh splx(s);
2653 1.281 msaitoh #endif
2654 1.99 matt
2655 1.281 msaitoh if (!sc->sc_stopping)
2656 1.281 msaitoh callout_reset(&sc->sc_tick_ch, hz, wm_tick, sc);
2657 1.281 msaitoh }
2658 1.99 matt
2659 1.281 msaitoh static int
2660 1.281 msaitoh wm_ifflags_cb(struct ethercom *ec)
2661 1.281 msaitoh {
2662 1.281 msaitoh struct ifnet *ifp = &ec->ec_if;
2663 1.281 msaitoh struct wm_softc *sc = ifp->if_softc;
2664 1.281 msaitoh int change = ifp->if_flags ^ sc->sc_if_flags;
2665 1.281 msaitoh int rc = 0;
2666 1.99 matt
2667 1.283 ozaki WM_BOTH_LOCK(sc);
2668 1.99 matt
2669 1.281 msaitoh if (change != 0)
2670 1.281 msaitoh sc->sc_if_flags = ifp->if_flags;
2671 1.99 matt
2672 1.281 msaitoh if ((change & ~(IFF_CANTCHANGE|IFF_DEBUG)) != 0) {
2673 1.281 msaitoh rc = ENETRESET;
2674 1.281 msaitoh goto out;
2675 1.281 msaitoh }
2676 1.99 matt
2677 1.281 msaitoh if ((change & (IFF_PROMISC | IFF_ALLMULTI)) != 0)
2678 1.281 msaitoh wm_set_filter(sc);
2679 1.131 yamt
2680 1.281 msaitoh wm_set_vlan(sc);
2681 1.131 yamt
2682 1.281 msaitoh out:
2683 1.283 ozaki WM_BOTH_UNLOCK(sc);
2684 1.99 matt
2685 1.281 msaitoh return rc;
2686 1.75 thorpej }
2687 1.75 thorpej
2688 1.1 thorpej /*
2689 1.281 msaitoh * wm_ioctl: [ifnet interface function]
2690 1.78 thorpej *
2691 1.281 msaitoh * Handle control requests from the operator.
2692 1.78 thorpej */
2693 1.281 msaitoh static int
2694 1.281 msaitoh wm_ioctl(struct ifnet *ifp, u_long cmd, void *data)
2695 1.78 thorpej {
2696 1.281 msaitoh struct wm_softc *sc = ifp->if_softc;
2697 1.281 msaitoh struct ifreq *ifr = (struct ifreq *) data;
2698 1.281 msaitoh struct ifaddr *ifa = (struct ifaddr *)data;
2699 1.281 msaitoh struct sockaddr_dl *sdl;
2700 1.281 msaitoh int s, error;
2701 1.281 msaitoh
2702 1.272 ozaki #ifndef WM_MPSAFE
2703 1.78 thorpej s = splnet();
2704 1.272 ozaki #endif
2705 1.281 msaitoh switch (cmd) {
2706 1.281 msaitoh case SIOCSIFMEDIA:
2707 1.281 msaitoh case SIOCGIFMEDIA:
2708 1.303 ozaki WM_BOTH_LOCK(sc);
2709 1.281 msaitoh /* Flow control requires full-duplex mode. */
2710 1.281 msaitoh if (IFM_SUBTYPE(ifr->ifr_media) == IFM_AUTO ||
2711 1.281 msaitoh (ifr->ifr_media & IFM_FDX) == 0)
2712 1.281 msaitoh ifr->ifr_media &= ~IFM_ETH_FMASK;
2713 1.281 msaitoh if (IFM_SUBTYPE(ifr->ifr_media) != IFM_AUTO) {
2714 1.281 msaitoh if ((ifr->ifr_media & IFM_ETH_FMASK) == IFM_FLOW) {
2715 1.281 msaitoh /* We can do both TXPAUSE and RXPAUSE. */
2716 1.281 msaitoh ifr->ifr_media |=
2717 1.281 msaitoh IFM_ETH_TXPAUSE | IFM_ETH_RXPAUSE;
2718 1.281 msaitoh }
2719 1.281 msaitoh sc->sc_flowflags = ifr->ifr_media & IFM_ETH_FMASK;
2720 1.281 msaitoh }
2721 1.302 ozaki WM_BOTH_UNLOCK(sc);
2722 1.302 ozaki #ifdef WM_MPSAFE
2723 1.302 ozaki s = splnet();
2724 1.302 ozaki #endif
2725 1.281 msaitoh error = ifmedia_ioctl(ifp, ifr, &sc->sc_mii.mii_media, cmd);
2726 1.302 ozaki #ifdef WM_MPSAFE
2727 1.302 ozaki splx(s);
2728 1.302 ozaki #endif
2729 1.281 msaitoh break;
2730 1.281 msaitoh case SIOCINITIFADDR:
2731 1.303 ozaki WM_BOTH_LOCK(sc);
2732 1.281 msaitoh if (ifa->ifa_addr->sa_family == AF_LINK) {
2733 1.281 msaitoh sdl = satosdl(ifp->if_dl->ifa_addr);
2734 1.281 msaitoh (void)sockaddr_dl_setaddr(sdl, sdl->sdl_len,
2735 1.281 msaitoh LLADDR(satosdl(ifa->ifa_addr)), ifp->if_addrlen);
2736 1.281 msaitoh /* unicast address is first multicast entry */
2737 1.281 msaitoh wm_set_filter(sc);
2738 1.281 msaitoh error = 0;
2739 1.303 ozaki WM_BOTH_UNLOCK(sc);
2740 1.281 msaitoh break;
2741 1.281 msaitoh }
2742 1.303 ozaki WM_BOTH_UNLOCK(sc);
2743 1.281 msaitoh /*FALLTHROUGH*/
2744 1.281 msaitoh default:
2745 1.281 msaitoh #ifdef WM_MPSAFE
2746 1.281 msaitoh s = splnet();
2747 1.281 msaitoh #endif
2748 1.281 msaitoh /* It may call wm_start, so unlock here */
2749 1.281 msaitoh error = ether_ioctl(ifp, cmd, data);
2750 1.281 msaitoh #ifdef WM_MPSAFE
2751 1.281 msaitoh splx(s);
2752 1.281 msaitoh #endif
2753 1.281 msaitoh if (error != ENETRESET)
2754 1.281 msaitoh break;
2755 1.78 thorpej
2756 1.281 msaitoh error = 0;
2757 1.78 thorpej
2758 1.281 msaitoh if (cmd == SIOCSIFCAP) {
2759 1.281 msaitoh error = (*ifp->if_init)(ifp);
2760 1.281 msaitoh } else if (cmd != SIOCADDMULTI && cmd != SIOCDELMULTI)
2761 1.281 msaitoh ;
2762 1.281 msaitoh else if (ifp->if_flags & IFF_RUNNING) {
2763 1.78 thorpej /*
2764 1.281 msaitoh * Multicast list has changed; set the hardware filter
2765 1.281 msaitoh * accordingly.
2766 1.78 thorpej */
2767 1.303 ozaki WM_BOTH_LOCK(sc);
2768 1.281 msaitoh wm_set_filter(sc);
2769 1.303 ozaki WM_BOTH_UNLOCK(sc);
2770 1.78 thorpej }
2771 1.281 msaitoh break;
2772 1.78 thorpej }
2773 1.78 thorpej
2774 1.281 msaitoh /* Try to get more packets going. */
2775 1.281 msaitoh ifp->if_start(ifp);
2776 1.281 msaitoh
2777 1.272 ozaki #ifndef WM_MPSAFE
2778 1.78 thorpej splx(s);
2779 1.272 ozaki #endif
2780 1.281 msaitoh return error;
2781 1.78 thorpej }
2782 1.78 thorpej
2783 1.281 msaitoh /* MAC address related */
2784 1.281 msaitoh
2785 1.306 msaitoh /*
2786 1.306 msaitoh * Get the offset of MAC address and return it.
2787 1.306 msaitoh * If error occured, use offset 0.
2788 1.306 msaitoh */
2789 1.306 msaitoh static uint16_t
2790 1.281 msaitoh wm_check_alt_mac_addr(struct wm_softc *sc)
2791 1.221 msaitoh {
2792 1.281 msaitoh uint16_t myea[ETHER_ADDR_LEN / 2];
2793 1.293 msaitoh uint16_t offset = NVM_OFF_MACADDR;
2794 1.281 msaitoh
2795 1.281 msaitoh /* Try to read alternative MAC address pointer */
2796 1.293 msaitoh if (wm_nvm_read(sc, NVM_OFF_ALT_MAC_ADDR_PTR, 1, &offset) != 0)
2797 1.306 msaitoh return 0;
2798 1.221 msaitoh
2799 1.306 msaitoh /* Check pointer if it's valid or not. */
2800 1.306 msaitoh if ((offset == 0x0000) || (offset == 0xffff))
2801 1.306 msaitoh return 0;
2802 1.221 msaitoh
2803 1.306 msaitoh offset += NVM_OFF_MACADDR_82571(sc->sc_funcid);
2804 1.281 msaitoh /*
2805 1.281 msaitoh * Check whether alternative MAC address is valid or not.
2806 1.281 msaitoh * Some cards have non 0xffff pointer but those don't use
2807 1.281 msaitoh * alternative MAC address in reality.
2808 1.281 msaitoh *
2809 1.281 msaitoh * Check whether the broadcast bit is set or not.
2810 1.281 msaitoh */
2811 1.281 msaitoh if (wm_nvm_read(sc, offset, 1, myea) == 0)
2812 1.281 msaitoh if (((myea[0] & 0xff) & 0x01) == 0)
2813 1.306 msaitoh return offset; /* Found */
2814 1.221 msaitoh
2815 1.306 msaitoh /* Not found */
2816 1.306 msaitoh return 0;
2817 1.221 msaitoh }
2818 1.221 msaitoh
2819 1.78 thorpej static int
2820 1.281 msaitoh wm_read_mac_addr(struct wm_softc *sc, uint8_t *enaddr)
2821 1.78 thorpej {
2822 1.281 msaitoh uint16_t myea[ETHER_ADDR_LEN / 2];
2823 1.293 msaitoh uint16_t offset = NVM_OFF_MACADDR;
2824 1.281 msaitoh int do_invert = 0;
2825 1.78 thorpej
2826 1.281 msaitoh switch (sc->sc_type) {
2827 1.281 msaitoh case WM_T_82580:
2828 1.281 msaitoh case WM_T_I350:
2829 1.281 msaitoh case WM_T_I354:
2830 1.307 msaitoh /* EEPROM Top Level Partitioning */
2831 1.307 msaitoh offset = NVM_OFF_LAN_FUNC_82580(sc->sc_funcid) + 0;
2832 1.281 msaitoh break;
2833 1.281 msaitoh case WM_T_82571:
2834 1.281 msaitoh case WM_T_82575:
2835 1.281 msaitoh case WM_T_82576:
2836 1.281 msaitoh case WM_T_80003:
2837 1.281 msaitoh case WM_T_I210:
2838 1.281 msaitoh case WM_T_I211:
2839 1.306 msaitoh offset = wm_check_alt_mac_addr(sc);
2840 1.306 msaitoh if (offset == 0)
2841 1.281 msaitoh if ((sc->sc_funcid & 0x01) == 1)
2842 1.281 msaitoh do_invert = 1;
2843 1.281 msaitoh break;
2844 1.281 msaitoh default:
2845 1.281 msaitoh if ((sc->sc_funcid & 0x01) == 1)
2846 1.281 msaitoh do_invert = 1;
2847 1.281 msaitoh break;
2848 1.281 msaitoh }
2849 1.78 thorpej
2850 1.281 msaitoh if (wm_nvm_read(sc, offset, sizeof(myea) / sizeof(myea[0]),
2851 1.306 msaitoh myea) != 0)
2852 1.281 msaitoh goto bad;
2853 1.78 thorpej
2854 1.281 msaitoh enaddr[0] = myea[0] & 0xff;
2855 1.281 msaitoh enaddr[1] = myea[0] >> 8;
2856 1.281 msaitoh enaddr[2] = myea[1] & 0xff;
2857 1.281 msaitoh enaddr[3] = myea[1] >> 8;
2858 1.281 msaitoh enaddr[4] = myea[2] & 0xff;
2859 1.281 msaitoh enaddr[5] = myea[2] >> 8;
2860 1.78 thorpej
2861 1.281 msaitoh /*
2862 1.281 msaitoh * Toggle the LSB of the MAC address on the second port
2863 1.281 msaitoh * of some dual port cards.
2864 1.281 msaitoh */
2865 1.281 msaitoh if (do_invert != 0)
2866 1.281 msaitoh enaddr[5] ^= 1;
2867 1.78 thorpej
2868 1.194 msaitoh return 0;
2869 1.281 msaitoh
2870 1.281 msaitoh bad:
2871 1.281 msaitoh return -1;
2872 1.78 thorpej }
2873 1.78 thorpej
2874 1.78 thorpej /*
2875 1.281 msaitoh * wm_set_ral:
2876 1.1 thorpej *
2877 1.281 msaitoh * Set an entery in the receive address list.
2878 1.1 thorpej */
2879 1.47 thorpej static void
2880 1.281 msaitoh wm_set_ral(struct wm_softc *sc, const uint8_t *enaddr, int idx)
2881 1.281 msaitoh {
2882 1.281 msaitoh uint32_t ral_lo, ral_hi;
2883 1.281 msaitoh
2884 1.281 msaitoh if (enaddr != NULL) {
2885 1.281 msaitoh ral_lo = enaddr[0] | (enaddr[1] << 8) | (enaddr[2] << 16) |
2886 1.281 msaitoh (enaddr[3] << 24);
2887 1.281 msaitoh ral_hi = enaddr[4] | (enaddr[5] << 8);
2888 1.281 msaitoh ral_hi |= RAL_AV;
2889 1.281 msaitoh } else {
2890 1.281 msaitoh ral_lo = 0;
2891 1.281 msaitoh ral_hi = 0;
2892 1.281 msaitoh }
2893 1.281 msaitoh
2894 1.281 msaitoh if (sc->sc_type >= WM_T_82544) {
2895 1.281 msaitoh CSR_WRITE(sc, WMREG_RAL_LO(WMREG_CORDOVA_RAL_BASE, idx),
2896 1.281 msaitoh ral_lo);
2897 1.281 msaitoh CSR_WRITE(sc, WMREG_RAL_HI(WMREG_CORDOVA_RAL_BASE, idx),
2898 1.281 msaitoh ral_hi);
2899 1.281 msaitoh } else {
2900 1.281 msaitoh CSR_WRITE(sc, WMREG_RAL_LO(WMREG_RAL_BASE, idx), ral_lo);
2901 1.281 msaitoh CSR_WRITE(sc, WMREG_RAL_HI(WMREG_RAL_BASE, idx), ral_hi);
2902 1.281 msaitoh }
2903 1.281 msaitoh }
2904 1.281 msaitoh
2905 1.281 msaitoh /*
2906 1.281 msaitoh * wm_mchash:
2907 1.281 msaitoh *
2908 1.281 msaitoh * Compute the hash of the multicast address for the 4096-bit
2909 1.281 msaitoh * multicast filter.
2910 1.281 msaitoh */
2911 1.281 msaitoh static uint32_t
2912 1.281 msaitoh wm_mchash(struct wm_softc *sc, const uint8_t *enaddr)
2913 1.1 thorpej {
2914 1.281 msaitoh static const int lo_shift[4] = { 4, 3, 2, 0 };
2915 1.281 msaitoh static const int hi_shift[4] = { 4, 5, 6, 8 };
2916 1.281 msaitoh static const int ich8_lo_shift[4] = { 6, 5, 4, 2 };
2917 1.281 msaitoh static const int ich8_hi_shift[4] = { 2, 3, 4, 6 };
2918 1.281 msaitoh uint32_t hash;
2919 1.281 msaitoh
2920 1.281 msaitoh if ((sc->sc_type == WM_T_ICH8) || (sc->sc_type == WM_T_ICH9)
2921 1.281 msaitoh || (sc->sc_type == WM_T_ICH10) || (sc->sc_type == WM_T_PCH)
2922 1.281 msaitoh || (sc->sc_type == WM_T_PCH2) || (sc->sc_type == WM_T_PCH_LPT)) {
2923 1.281 msaitoh hash = (enaddr[4] >> ich8_lo_shift[sc->sc_mchash_type]) |
2924 1.281 msaitoh (((uint16_t) enaddr[5]) << ich8_hi_shift[sc->sc_mchash_type]);
2925 1.281 msaitoh return (hash & 0x3ff);
2926 1.281 msaitoh }
2927 1.281 msaitoh hash = (enaddr[4] >> lo_shift[sc->sc_mchash_type]) |
2928 1.281 msaitoh (((uint16_t) enaddr[5]) << hi_shift[sc->sc_mchash_type]);
2929 1.272 ozaki
2930 1.281 msaitoh return (hash & 0xfff);
2931 1.272 ozaki }
2932 1.272 ozaki
2933 1.281 msaitoh /*
2934 1.281 msaitoh * wm_set_filter:
2935 1.281 msaitoh *
2936 1.281 msaitoh * Set up the receive filter.
2937 1.281 msaitoh */
2938 1.272 ozaki static void
2939 1.281 msaitoh wm_set_filter(struct wm_softc *sc)
2940 1.272 ozaki {
2941 1.281 msaitoh struct ethercom *ec = &sc->sc_ethercom;
2942 1.281 msaitoh struct ifnet *ifp = &sc->sc_ethercom.ec_if;
2943 1.281 msaitoh struct ether_multi *enm;
2944 1.281 msaitoh struct ether_multistep step;
2945 1.281 msaitoh bus_addr_t mta_reg;
2946 1.281 msaitoh uint32_t hash, reg, bit;
2947 1.281 msaitoh int i, size;
2948 1.281 msaitoh
2949 1.281 msaitoh if (sc->sc_type >= WM_T_82544)
2950 1.281 msaitoh mta_reg = WMREG_CORDOVA_MTA;
2951 1.281 msaitoh else
2952 1.281 msaitoh mta_reg = WMREG_MTA;
2953 1.1 thorpej
2954 1.281 msaitoh sc->sc_rctl &= ~(RCTL_BAM | RCTL_UPE | RCTL_MPE);
2955 1.272 ozaki
2956 1.281 msaitoh if (ifp->if_flags & IFF_BROADCAST)
2957 1.281 msaitoh sc->sc_rctl |= RCTL_BAM;
2958 1.281 msaitoh if (ifp->if_flags & IFF_PROMISC) {
2959 1.281 msaitoh sc->sc_rctl |= RCTL_UPE;
2960 1.281 msaitoh goto allmulti;
2961 1.281 msaitoh }
2962 1.1 thorpej
2963 1.1 thorpej /*
2964 1.281 msaitoh * Set the station address in the first RAL slot, and
2965 1.281 msaitoh * clear the remaining slots.
2966 1.1 thorpej */
2967 1.281 msaitoh if (sc->sc_type == WM_T_ICH8)
2968 1.281 msaitoh size = WM_RAL_TABSIZE_ICH8 -1;
2969 1.281 msaitoh else if ((sc->sc_type == WM_T_ICH9) || (sc->sc_type == WM_T_ICH10)
2970 1.281 msaitoh || (sc->sc_type == WM_T_PCH) || (sc->sc_type == WM_T_PCH2)
2971 1.281 msaitoh || (sc->sc_type == WM_T_PCH_LPT))
2972 1.281 msaitoh size = WM_RAL_TABSIZE_ICH8;
2973 1.281 msaitoh else if (sc->sc_type == WM_T_82575)
2974 1.281 msaitoh size = WM_RAL_TABSIZE_82575;
2975 1.281 msaitoh else if ((sc->sc_type == WM_T_82576) || (sc->sc_type == WM_T_82580))
2976 1.281 msaitoh size = WM_RAL_TABSIZE_82576;
2977 1.281 msaitoh else if ((sc->sc_type == WM_T_I350) || (sc->sc_type == WM_T_I354))
2978 1.281 msaitoh size = WM_RAL_TABSIZE_I350;
2979 1.281 msaitoh else
2980 1.281 msaitoh size = WM_RAL_TABSIZE;
2981 1.281 msaitoh wm_set_ral(sc, CLLADDR(ifp->if_sadl), 0);
2982 1.281 msaitoh for (i = 1; i < size; i++)
2983 1.281 msaitoh wm_set_ral(sc, NULL, i);
2984 1.1 thorpej
2985 1.281 msaitoh if ((sc->sc_type == WM_T_ICH8) || (sc->sc_type == WM_T_ICH9)
2986 1.281 msaitoh || (sc->sc_type == WM_T_ICH10) || (sc->sc_type == WM_T_PCH)
2987 1.281 msaitoh || (sc->sc_type == WM_T_PCH2) || (sc->sc_type == WM_T_PCH_LPT))
2988 1.281 msaitoh size = WM_ICH8_MC_TABSIZE;
2989 1.281 msaitoh else
2990 1.281 msaitoh size = WM_MC_TABSIZE;
2991 1.281 msaitoh /* Clear out the multicast table. */
2992 1.281 msaitoh for (i = 0; i < size; i++)
2993 1.281 msaitoh CSR_WRITE(sc, mta_reg + (i << 2), 0);
2994 1.1 thorpej
2995 1.281 msaitoh ETHER_FIRST_MULTI(step, ec, enm);
2996 1.281 msaitoh while (enm != NULL) {
2997 1.281 msaitoh if (memcmp(enm->enm_addrlo, enm->enm_addrhi, ETHER_ADDR_LEN)) {
2998 1.281 msaitoh /*
2999 1.281 msaitoh * We must listen to a range of multicast addresses.
3000 1.281 msaitoh * For now, just accept all multicasts, rather than
3001 1.281 msaitoh * trying to set only those filter bits needed to match
3002 1.281 msaitoh * the range. (At this time, the only use of address
3003 1.281 msaitoh * ranges is for IP multicast routing, for which the
3004 1.281 msaitoh * range is big enough to require all bits set.)
3005 1.281 msaitoh */
3006 1.281 msaitoh goto allmulti;
3007 1.1 thorpej }
3008 1.1 thorpej
3009 1.281 msaitoh hash = wm_mchash(sc, enm->enm_addrlo);
3010 1.272 ozaki
3011 1.281 msaitoh reg = (hash >> 5);
3012 1.281 msaitoh if ((sc->sc_type == WM_T_ICH8) || (sc->sc_type == WM_T_ICH9)
3013 1.281 msaitoh || (sc->sc_type == WM_T_ICH10) || (sc->sc_type == WM_T_PCH)
3014 1.281 msaitoh || (sc->sc_type == WM_T_PCH2)
3015 1.281 msaitoh || (sc->sc_type == WM_T_PCH_LPT))
3016 1.281 msaitoh reg &= 0x1f;
3017 1.281 msaitoh else
3018 1.281 msaitoh reg &= 0x7f;
3019 1.281 msaitoh bit = hash & 0x1f;
3020 1.272 ozaki
3021 1.281 msaitoh hash = CSR_READ(sc, mta_reg + (reg << 2));
3022 1.281 msaitoh hash |= 1U << bit;
3023 1.1 thorpej
3024 1.281 msaitoh /* XXX Hardware bug?? */
3025 1.281 msaitoh if (sc->sc_type == WM_T_82544 && (reg & 0xe) == 1) {
3026 1.281 msaitoh bit = CSR_READ(sc, mta_reg + ((reg - 1) << 2));
3027 1.281 msaitoh CSR_WRITE(sc, mta_reg + (reg << 2), hash);
3028 1.281 msaitoh CSR_WRITE(sc, mta_reg + ((reg - 1) << 2), bit);
3029 1.281 msaitoh } else
3030 1.281 msaitoh CSR_WRITE(sc, mta_reg + (reg << 2), hash);
3031 1.99 matt
3032 1.281 msaitoh ETHER_NEXT_MULTI(step, enm);
3033 1.281 msaitoh }
3034 1.99 matt
3035 1.281 msaitoh ifp->if_flags &= ~IFF_ALLMULTI;
3036 1.281 msaitoh goto setit;
3037 1.1 thorpej
3038 1.281 msaitoh allmulti:
3039 1.281 msaitoh ifp->if_flags |= IFF_ALLMULTI;
3040 1.281 msaitoh sc->sc_rctl |= RCTL_MPE;
3041 1.80 thorpej
3042 1.281 msaitoh setit:
3043 1.281 msaitoh CSR_WRITE(sc, WMREG_RCTL, sc->sc_rctl);
3044 1.281 msaitoh }
3045 1.1 thorpej
3046 1.281 msaitoh /* Reset and init related */
3047 1.78 thorpej
3048 1.281 msaitoh static void
3049 1.281 msaitoh wm_set_vlan(struct wm_softc *sc)
3050 1.281 msaitoh {
3051 1.281 msaitoh /* Deal with VLAN enables. */
3052 1.281 msaitoh if (VLAN_ATTACHED(&sc->sc_ethercom))
3053 1.281 msaitoh sc->sc_ctrl |= CTRL_VME;
3054 1.281 msaitoh else
3055 1.281 msaitoh sc->sc_ctrl &= ~CTRL_VME;
3056 1.1 thorpej
3057 1.281 msaitoh /* Write the control registers. */
3058 1.281 msaitoh CSR_WRITE(sc, WMREG_CTRL, sc->sc_ctrl);
3059 1.281 msaitoh }
3060 1.1 thorpej
3061 1.281 msaitoh static void
3062 1.281 msaitoh wm_set_pcie_completion_timeout(struct wm_softc *sc)
3063 1.281 msaitoh {
3064 1.281 msaitoh uint32_t gcr;
3065 1.281 msaitoh pcireg_t ctrl2;
3066 1.1 thorpej
3067 1.281 msaitoh gcr = CSR_READ(sc, WMREG_GCR);
3068 1.4 thorpej
3069 1.281 msaitoh /* Only take action if timeout value is defaulted to 0 */
3070 1.281 msaitoh if ((gcr & GCR_CMPL_TMOUT_MASK) != 0)
3071 1.281 msaitoh goto out;
3072 1.1 thorpej
3073 1.281 msaitoh if ((gcr & GCR_CAP_VER2) == 0) {
3074 1.281 msaitoh gcr |= GCR_CMPL_TMOUT_10MS;
3075 1.281 msaitoh goto out;
3076 1.281 msaitoh }
3077 1.6 thorpej
3078 1.281 msaitoh ctrl2 = pci_conf_read(sc->sc_pc, sc->sc_pcitag,
3079 1.281 msaitoh sc->sc_pcixe_capoff + PCIE_DCSR2);
3080 1.281 msaitoh ctrl2 |= WM_PCIE_DCSR2_16MS;
3081 1.281 msaitoh pci_conf_write(sc->sc_pc, sc->sc_pcitag,
3082 1.281 msaitoh sc->sc_pcixe_capoff + PCIE_DCSR2, ctrl2);
3083 1.81 thorpej
3084 1.281 msaitoh out:
3085 1.281 msaitoh /* Disable completion timeout resend */
3086 1.281 msaitoh gcr &= ~GCR_CMPL_TMOUT_RESEND;
3087 1.80 thorpej
3088 1.281 msaitoh CSR_WRITE(sc, WMREG_GCR, gcr);
3089 1.281 msaitoh }
3090 1.99 matt
3091 1.281 msaitoh void
3092 1.281 msaitoh wm_get_auto_rd_done(struct wm_softc *sc)
3093 1.281 msaitoh {
3094 1.281 msaitoh int i;
3095 1.1 thorpej
3096 1.281 msaitoh /* wait for eeprom to reload */
3097 1.281 msaitoh switch (sc->sc_type) {
3098 1.281 msaitoh case WM_T_82571:
3099 1.281 msaitoh case WM_T_82572:
3100 1.281 msaitoh case WM_T_82573:
3101 1.281 msaitoh case WM_T_82574:
3102 1.281 msaitoh case WM_T_82583:
3103 1.281 msaitoh case WM_T_82575:
3104 1.281 msaitoh case WM_T_82576:
3105 1.281 msaitoh case WM_T_82580:
3106 1.281 msaitoh case WM_T_I350:
3107 1.281 msaitoh case WM_T_I354:
3108 1.281 msaitoh case WM_T_I210:
3109 1.281 msaitoh case WM_T_I211:
3110 1.281 msaitoh case WM_T_80003:
3111 1.281 msaitoh case WM_T_ICH8:
3112 1.281 msaitoh case WM_T_ICH9:
3113 1.281 msaitoh for (i = 0; i < 10; i++) {
3114 1.281 msaitoh if (CSR_READ(sc, WMREG_EECD) & EECD_EE_AUTORD)
3115 1.281 msaitoh break;
3116 1.281 msaitoh delay(1000);
3117 1.1 thorpej }
3118 1.281 msaitoh if (i == 10) {
3119 1.281 msaitoh log(LOG_ERR, "%s: auto read from eeprom failed to "
3120 1.281 msaitoh "complete\n", device_xname(sc->sc_dev));
3121 1.281 msaitoh }
3122 1.281 msaitoh break;
3123 1.281 msaitoh default:
3124 1.281 msaitoh break;
3125 1.281 msaitoh }
3126 1.281 msaitoh }
3127 1.59 christos
3128 1.281 msaitoh void
3129 1.281 msaitoh wm_lan_init_done(struct wm_softc *sc)
3130 1.281 msaitoh {
3131 1.281 msaitoh uint32_t reg = 0;
3132 1.281 msaitoh int i;
3133 1.1 thorpej
3134 1.281 msaitoh /* wait for eeprom to reload */
3135 1.281 msaitoh switch (sc->sc_type) {
3136 1.281 msaitoh case WM_T_ICH10:
3137 1.281 msaitoh case WM_T_PCH:
3138 1.281 msaitoh case WM_T_PCH2:
3139 1.281 msaitoh case WM_T_PCH_LPT:
3140 1.281 msaitoh for (i = 0; i < WM_ICH8_LAN_INIT_TIMEOUT; i++) {
3141 1.281 msaitoh reg = CSR_READ(sc, WMREG_STATUS);
3142 1.281 msaitoh if ((reg & STATUS_LAN_INIT_DONE) != 0)
3143 1.281 msaitoh break;
3144 1.281 msaitoh delay(100);
3145 1.281 msaitoh }
3146 1.281 msaitoh if (i >= WM_ICH8_LAN_INIT_TIMEOUT) {
3147 1.281 msaitoh log(LOG_ERR, "%s: %s: lan_init_done failed to "
3148 1.281 msaitoh "complete\n", device_xname(sc->sc_dev), __func__);
3149 1.1 thorpej }
3150 1.281 msaitoh break;
3151 1.281 msaitoh default:
3152 1.281 msaitoh panic("%s: %s: unknown type\n", device_xname(sc->sc_dev),
3153 1.281 msaitoh __func__);
3154 1.281 msaitoh break;
3155 1.281 msaitoh }
3156 1.1 thorpej
3157 1.281 msaitoh reg &= ~STATUS_LAN_INIT_DONE;
3158 1.281 msaitoh CSR_WRITE(sc, WMREG_STATUS, reg);
3159 1.281 msaitoh }
3160 1.6 thorpej
3161 1.281 msaitoh void
3162 1.281 msaitoh wm_get_cfg_done(struct wm_softc *sc)
3163 1.281 msaitoh {
3164 1.281 msaitoh int mask;
3165 1.281 msaitoh uint32_t reg;
3166 1.281 msaitoh int i;
3167 1.1 thorpej
3168 1.281 msaitoh /* wait for eeprom to reload */
3169 1.281 msaitoh switch (sc->sc_type) {
3170 1.281 msaitoh case WM_T_82542_2_0:
3171 1.281 msaitoh case WM_T_82542_2_1:
3172 1.281 msaitoh /* null */
3173 1.281 msaitoh break;
3174 1.281 msaitoh case WM_T_82543:
3175 1.281 msaitoh case WM_T_82544:
3176 1.281 msaitoh case WM_T_82540:
3177 1.281 msaitoh case WM_T_82545:
3178 1.281 msaitoh case WM_T_82545_3:
3179 1.281 msaitoh case WM_T_82546:
3180 1.281 msaitoh case WM_T_82546_3:
3181 1.281 msaitoh case WM_T_82541:
3182 1.281 msaitoh case WM_T_82541_2:
3183 1.281 msaitoh case WM_T_82547:
3184 1.281 msaitoh case WM_T_82547_2:
3185 1.281 msaitoh case WM_T_82573:
3186 1.281 msaitoh case WM_T_82574:
3187 1.281 msaitoh case WM_T_82583:
3188 1.281 msaitoh /* generic */
3189 1.281 msaitoh delay(10*1000);
3190 1.281 msaitoh break;
3191 1.281 msaitoh case WM_T_80003:
3192 1.281 msaitoh case WM_T_82571:
3193 1.281 msaitoh case WM_T_82572:
3194 1.281 msaitoh case WM_T_82575:
3195 1.281 msaitoh case WM_T_82576:
3196 1.281 msaitoh case WM_T_82580:
3197 1.281 msaitoh case WM_T_I350:
3198 1.281 msaitoh case WM_T_I354:
3199 1.281 msaitoh case WM_T_I210:
3200 1.281 msaitoh case WM_T_I211:
3201 1.281 msaitoh if (sc->sc_type == WM_T_82571) {
3202 1.281 msaitoh /* Only 82571 shares port 0 */
3203 1.281 msaitoh mask = EEMNGCTL_CFGDONE_0;
3204 1.281 msaitoh } else
3205 1.281 msaitoh mask = EEMNGCTL_CFGDONE_0 << sc->sc_funcid;
3206 1.281 msaitoh for (i = 0; i < WM_PHY_CFG_TIMEOUT; i++) {
3207 1.281 msaitoh if (CSR_READ(sc, WMREG_EEMNGCTL) & mask)
3208 1.281 msaitoh break;
3209 1.281 msaitoh delay(1000);
3210 1.281 msaitoh }
3211 1.281 msaitoh if (i >= WM_PHY_CFG_TIMEOUT) {
3212 1.281 msaitoh DPRINTF(WM_DEBUG_GMII, ("%s: %s failed\n",
3213 1.281 msaitoh device_xname(sc->sc_dev), __func__));
3214 1.281 msaitoh }
3215 1.281 msaitoh break;
3216 1.281 msaitoh case WM_T_ICH8:
3217 1.281 msaitoh case WM_T_ICH9:
3218 1.281 msaitoh case WM_T_ICH10:
3219 1.281 msaitoh case WM_T_PCH:
3220 1.281 msaitoh case WM_T_PCH2:
3221 1.281 msaitoh case WM_T_PCH_LPT:
3222 1.281 msaitoh delay(10*1000);
3223 1.281 msaitoh if (sc->sc_type >= WM_T_ICH10)
3224 1.281 msaitoh wm_lan_init_done(sc);
3225 1.281 msaitoh else
3226 1.281 msaitoh wm_get_auto_rd_done(sc);
3227 1.1 thorpej
3228 1.281 msaitoh reg = CSR_READ(sc, WMREG_STATUS);
3229 1.281 msaitoh if ((reg & STATUS_PHYRA) != 0)
3230 1.281 msaitoh CSR_WRITE(sc, WMREG_STATUS, reg & ~STATUS_PHYRA);
3231 1.281 msaitoh break;
3232 1.281 msaitoh default:
3233 1.281 msaitoh panic("%s: %s: unknown type\n", device_xname(sc->sc_dev),
3234 1.281 msaitoh __func__);
3235 1.281 msaitoh break;
3236 1.1 thorpej }
3237 1.1 thorpej }
3238 1.1 thorpej
3239 1.312 msaitoh /* Init hardware bits */
3240 1.312 msaitoh void
3241 1.312 msaitoh wm_initialize_hardware_bits(struct wm_softc *sc)
3242 1.312 msaitoh {
3243 1.312 msaitoh uint32_t tarc0, tarc1, reg;
3244 1.312 msaitoh
3245 1.312 msaitoh /* For 82571 variant, 80003 and ICHs */
3246 1.312 msaitoh if (((sc->sc_type >= WM_T_82571) && (sc->sc_type <= WM_T_82583))
3247 1.312 msaitoh || (sc->sc_type >= WM_T_80003)) {
3248 1.312 msaitoh
3249 1.312 msaitoh /* Transmit Descriptor Control 0 */
3250 1.312 msaitoh reg = CSR_READ(sc, WMREG_TXDCTL(0));
3251 1.312 msaitoh reg |= TXDCTL_COUNT_DESC;
3252 1.312 msaitoh CSR_WRITE(sc, WMREG_TXDCTL(0), reg);
3253 1.312 msaitoh
3254 1.312 msaitoh /* Transmit Descriptor Control 1 */
3255 1.312 msaitoh reg = CSR_READ(sc, WMREG_TXDCTL(1));
3256 1.312 msaitoh reg |= TXDCTL_COUNT_DESC;
3257 1.312 msaitoh CSR_WRITE(sc, WMREG_TXDCTL(1), reg);
3258 1.312 msaitoh
3259 1.312 msaitoh /* TARC0 */
3260 1.312 msaitoh tarc0 = CSR_READ(sc, WMREG_TARC0);
3261 1.312 msaitoh switch (sc->sc_type) {
3262 1.312 msaitoh case WM_T_82571:
3263 1.312 msaitoh case WM_T_82572:
3264 1.312 msaitoh case WM_T_82573:
3265 1.312 msaitoh case WM_T_82574:
3266 1.312 msaitoh case WM_T_82583:
3267 1.312 msaitoh case WM_T_80003:
3268 1.312 msaitoh /* Clear bits 30..27 */
3269 1.312 msaitoh tarc0 &= ~__BITS(30, 27);
3270 1.312 msaitoh break;
3271 1.312 msaitoh default:
3272 1.312 msaitoh break;
3273 1.312 msaitoh }
3274 1.312 msaitoh
3275 1.312 msaitoh switch (sc->sc_type) {
3276 1.312 msaitoh case WM_T_82571:
3277 1.312 msaitoh case WM_T_82572:
3278 1.312 msaitoh tarc0 |= __BITS(26, 23); /* TARC0 bits 23-26 */
3279 1.312 msaitoh
3280 1.312 msaitoh tarc1 = CSR_READ(sc, WMREG_TARC1);
3281 1.312 msaitoh tarc1 &= ~__BITS(30, 29); /* Clear bits 30 and 29 */
3282 1.312 msaitoh tarc1 |= __BITS(26, 24); /* TARC1 bits 26-24 */
3283 1.312 msaitoh /* 8257[12] Errata No.7 */
3284 1.312 msaitoh tarc1 |= __BIT(22); /* TARC1 bits 22 */
3285 1.312 msaitoh
3286 1.312 msaitoh /* TARC1 bit 28 */
3287 1.312 msaitoh if ((CSR_READ(sc, WMREG_TCTL) & TCTL_MULR) != 0)
3288 1.312 msaitoh tarc1 &= ~__BIT(28);
3289 1.312 msaitoh else
3290 1.312 msaitoh tarc1 |= __BIT(28);
3291 1.312 msaitoh CSR_WRITE(sc, WMREG_TARC1, tarc1);
3292 1.312 msaitoh
3293 1.312 msaitoh /*
3294 1.312 msaitoh * 8257[12] Errata No.13
3295 1.312 msaitoh * Disable Dyamic Clock Gating.
3296 1.312 msaitoh */
3297 1.312 msaitoh reg = CSR_READ(sc, WMREG_CTRL_EXT);
3298 1.312 msaitoh reg &= ~CTRL_EXT_DMA_DYN_CLK;
3299 1.312 msaitoh CSR_WRITE(sc, WMREG_CTRL_EXT, reg);
3300 1.312 msaitoh break;
3301 1.312 msaitoh case WM_T_82573:
3302 1.312 msaitoh case WM_T_82574:
3303 1.312 msaitoh case WM_T_82583:
3304 1.312 msaitoh if ((sc->sc_type == WM_T_82574)
3305 1.312 msaitoh || (sc->sc_type == WM_T_82583))
3306 1.312 msaitoh tarc0 |= __BIT(26); /* TARC0 bit 26 */
3307 1.312 msaitoh
3308 1.312 msaitoh /* Extended Device Control */
3309 1.312 msaitoh reg = CSR_READ(sc, WMREG_CTRL_EXT);
3310 1.312 msaitoh reg &= ~__BIT(23); /* Clear bit 23 */
3311 1.312 msaitoh reg |= __BIT(22); /* Set bit 22 */
3312 1.312 msaitoh CSR_WRITE(sc, WMREG_CTRL_EXT, reg);
3313 1.312 msaitoh
3314 1.312 msaitoh /* Device Control */
3315 1.312 msaitoh sc->sc_ctrl &= ~__BIT(29); /* Clear bit 29 */
3316 1.312 msaitoh CSR_WRITE(sc, WMREG_CTRL, sc->sc_ctrl);
3317 1.312 msaitoh
3318 1.312 msaitoh /* PCIe Control Register */
3319 1.312 msaitoh if ((sc->sc_type == WM_T_82574)
3320 1.312 msaitoh || (sc->sc_type == WM_T_82583)) {
3321 1.312 msaitoh /*
3322 1.312 msaitoh * Document says this bit must be set for
3323 1.312 msaitoh * proper operation.
3324 1.312 msaitoh */
3325 1.312 msaitoh reg = CSR_READ(sc, WMREG_GCR);
3326 1.312 msaitoh reg |= __BIT(22);
3327 1.312 msaitoh CSR_WRITE(sc, WMREG_GCR, reg);
3328 1.312 msaitoh
3329 1.312 msaitoh /*
3330 1.312 msaitoh * Apply workaround for hardware errata
3331 1.312 msaitoh * documented in errata docs Fixes issue where
3332 1.312 msaitoh * some error prone or unreliable PCIe
3333 1.312 msaitoh * completions are occurring, particularly
3334 1.312 msaitoh * with ASPM enabled. Without fix, issue can
3335 1.312 msaitoh * cause Tx timeouts.
3336 1.312 msaitoh */
3337 1.312 msaitoh reg = CSR_READ(sc, WMREG_GCR2);
3338 1.312 msaitoh reg |= __BIT(0);
3339 1.312 msaitoh CSR_WRITE(sc, WMREG_GCR2, reg);
3340 1.312 msaitoh }
3341 1.312 msaitoh break;
3342 1.312 msaitoh case WM_T_80003:
3343 1.312 msaitoh /* TARC0 */
3344 1.312 msaitoh if ((sc->sc_mediatype == WM_MEDIATYPE_FIBER)
3345 1.312 msaitoh || (sc->sc_mediatype == WM_MEDIATYPE_SERDES))
3346 1.312 msaitoh tarc0 &= ~__BIT(20); /* Clear bits 20 */
3347 1.312 msaitoh
3348 1.312 msaitoh /* TARC1 bit 28 */
3349 1.312 msaitoh tarc1 = CSR_READ(sc, WMREG_TARC1);
3350 1.312 msaitoh if ((CSR_READ(sc, WMREG_TCTL) & TCTL_MULR) != 0)
3351 1.312 msaitoh tarc1 &= ~__BIT(28);
3352 1.312 msaitoh else
3353 1.312 msaitoh tarc1 |= __BIT(28);
3354 1.312 msaitoh CSR_WRITE(sc, WMREG_TARC1, tarc1);
3355 1.312 msaitoh break;
3356 1.312 msaitoh case WM_T_ICH8:
3357 1.312 msaitoh case WM_T_ICH9:
3358 1.312 msaitoh case WM_T_ICH10:
3359 1.312 msaitoh case WM_T_PCH:
3360 1.312 msaitoh case WM_T_PCH2:
3361 1.312 msaitoh case WM_T_PCH_LPT:
3362 1.312 msaitoh /* TARC 0 */
3363 1.312 msaitoh if (sc->sc_type == WM_T_ICH8) {
3364 1.312 msaitoh /* Set TARC0 bits 29 and 28 */
3365 1.312 msaitoh tarc0 |= __BITS(29, 28);
3366 1.312 msaitoh }
3367 1.312 msaitoh /* Set TARC0 bits 23,24,26,27 */
3368 1.312 msaitoh tarc0 |= __BITS(27, 26) | __BITS(24, 23);
3369 1.312 msaitoh
3370 1.312 msaitoh /* CTRL_EXT */
3371 1.312 msaitoh reg = CSR_READ(sc, WMREG_CTRL_EXT);
3372 1.312 msaitoh reg |= __BIT(22); /* Set bit 22 */
3373 1.312 msaitoh /*
3374 1.312 msaitoh * Enable PHY low-power state when MAC is at D3
3375 1.312 msaitoh * w/o WoL
3376 1.312 msaitoh */
3377 1.312 msaitoh if (sc->sc_type >= WM_T_PCH)
3378 1.312 msaitoh reg |= CTRL_EXT_PHYPDEN;
3379 1.312 msaitoh CSR_WRITE(sc, WMREG_CTRL_EXT, reg);
3380 1.312 msaitoh
3381 1.312 msaitoh /* TARC1 */
3382 1.312 msaitoh tarc1 = CSR_READ(sc, WMREG_TARC1);
3383 1.312 msaitoh /* bit 28 */
3384 1.312 msaitoh if ((CSR_READ(sc, WMREG_TCTL) & TCTL_MULR) != 0)
3385 1.312 msaitoh tarc1 &= ~__BIT(28);
3386 1.312 msaitoh else
3387 1.312 msaitoh tarc1 |= __BIT(28);
3388 1.312 msaitoh tarc1 |= __BIT(24) | __BIT(26) | __BIT(30);
3389 1.312 msaitoh CSR_WRITE(sc, WMREG_TARC1, tarc1);
3390 1.312 msaitoh
3391 1.312 msaitoh /* Device Status */
3392 1.312 msaitoh if (sc->sc_type == WM_T_ICH8) {
3393 1.312 msaitoh reg = CSR_READ(sc, WMREG_STATUS);
3394 1.312 msaitoh reg &= ~__BIT(31);
3395 1.312 msaitoh CSR_WRITE(sc, WMREG_STATUS, reg);
3396 1.312 msaitoh
3397 1.312 msaitoh }
3398 1.312 msaitoh
3399 1.312 msaitoh /*
3400 1.312 msaitoh * Work-around descriptor data corruption issue during
3401 1.312 msaitoh * NFS v2 UDP traffic, just disable the NFS filtering
3402 1.312 msaitoh * capability.
3403 1.312 msaitoh */
3404 1.312 msaitoh reg = CSR_READ(sc, WMREG_RFCTL);
3405 1.312 msaitoh reg |= WMREG_RFCTL_NFSWDIS | WMREG_RFCTL_NFSRDIS;
3406 1.312 msaitoh CSR_WRITE(sc, WMREG_RFCTL, reg);
3407 1.312 msaitoh break;
3408 1.312 msaitoh default:
3409 1.312 msaitoh break;
3410 1.312 msaitoh }
3411 1.312 msaitoh CSR_WRITE(sc, WMREG_TARC0, tarc0);
3412 1.312 msaitoh
3413 1.312 msaitoh /*
3414 1.312 msaitoh * 8257[12] Errata No.52 and some others.
3415 1.312 msaitoh * Avoid RSS Hash Value bug.
3416 1.312 msaitoh */
3417 1.312 msaitoh switch (sc->sc_type) {
3418 1.312 msaitoh case WM_T_82571:
3419 1.312 msaitoh case WM_T_82572:
3420 1.312 msaitoh case WM_T_82573:
3421 1.312 msaitoh case WM_T_80003:
3422 1.312 msaitoh case WM_T_ICH8:
3423 1.312 msaitoh reg = CSR_READ(sc, WMREG_RFCTL);
3424 1.312 msaitoh reg |= WMREG_RFCTL_NEWIPV6EXDIS |WMREG_RFCTL_IPV6EXDIS;
3425 1.312 msaitoh CSR_WRITE(sc, WMREG_RFCTL, reg);
3426 1.312 msaitoh break;
3427 1.312 msaitoh default:
3428 1.312 msaitoh break;
3429 1.312 msaitoh }
3430 1.312 msaitoh }
3431 1.312 msaitoh }
3432 1.312 msaitoh
3433 1.320 msaitoh static uint32_t
3434 1.320 msaitoh wm_rxpbs_adjust_82580(uint32_t val)
3435 1.320 msaitoh {
3436 1.320 msaitoh uint32_t rv = 0;
3437 1.320 msaitoh
3438 1.320 msaitoh if (val < __arraycount(wm_82580_rxpbs_table))
3439 1.320 msaitoh rv = wm_82580_rxpbs_table[val];
3440 1.320 msaitoh
3441 1.320 msaitoh return rv;
3442 1.320 msaitoh }
3443 1.320 msaitoh
3444 1.1 thorpej /*
3445 1.281 msaitoh * wm_reset:
3446 1.232 bouyer *
3447 1.281 msaitoh * Reset the i82542 chip.
3448 1.232 bouyer */
3449 1.281 msaitoh static void
3450 1.281 msaitoh wm_reset(struct wm_softc *sc)
3451 1.232 bouyer {
3452 1.281 msaitoh int phy_reset = 0;
3453 1.281 msaitoh int error = 0;
3454 1.281 msaitoh uint32_t reg, mask;
3455 1.232 bouyer
3456 1.232 bouyer /*
3457 1.281 msaitoh * Allocate on-chip memory according to the MTU size.
3458 1.281 msaitoh * The Packet Buffer Allocation register must be written
3459 1.281 msaitoh * before the chip is reset.
3460 1.232 bouyer */
3461 1.281 msaitoh switch (sc->sc_type) {
3462 1.281 msaitoh case WM_T_82547:
3463 1.281 msaitoh case WM_T_82547_2:
3464 1.281 msaitoh sc->sc_pba = sc->sc_ethercom.ec_if.if_mtu > 8192 ?
3465 1.281 msaitoh PBA_22K : PBA_30K;
3466 1.281 msaitoh sc->sc_txfifo_head = 0;
3467 1.281 msaitoh sc->sc_txfifo_addr = sc->sc_pba << PBA_ADDR_SHIFT;
3468 1.281 msaitoh sc->sc_txfifo_size =
3469 1.281 msaitoh (PBA_40K - sc->sc_pba) << PBA_BYTE_SHIFT;
3470 1.281 msaitoh sc->sc_txfifo_stall = 0;
3471 1.281 msaitoh break;
3472 1.281 msaitoh case WM_T_82571:
3473 1.281 msaitoh case WM_T_82572:
3474 1.281 msaitoh case WM_T_82575: /* XXX need special handing for jumbo frames */
3475 1.281 msaitoh case WM_T_80003:
3476 1.281 msaitoh sc->sc_pba = PBA_32K;
3477 1.281 msaitoh break;
3478 1.281 msaitoh case WM_T_82573:
3479 1.281 msaitoh sc->sc_pba = PBA_12K;
3480 1.281 msaitoh break;
3481 1.281 msaitoh case WM_T_82574:
3482 1.281 msaitoh case WM_T_82583:
3483 1.281 msaitoh sc->sc_pba = PBA_20K;
3484 1.281 msaitoh break;
3485 1.320 msaitoh case WM_T_82576:
3486 1.320 msaitoh sc->sc_pba = CSR_READ(sc, WMREG_RXPBS);
3487 1.320 msaitoh sc->sc_pba &= RXPBS_SIZE_MASK_82576;
3488 1.320 msaitoh break;
3489 1.320 msaitoh case WM_T_82580:
3490 1.320 msaitoh case WM_T_I350:
3491 1.320 msaitoh case WM_T_I354:
3492 1.320 msaitoh sc->sc_pba = wm_rxpbs_adjust_82580(CSR_READ(sc, WMREG_RXPBS));
3493 1.320 msaitoh break;
3494 1.320 msaitoh case WM_T_I210:
3495 1.320 msaitoh case WM_T_I211:
3496 1.320 msaitoh sc->sc_pba = PBA_34K;
3497 1.320 msaitoh break;
3498 1.281 msaitoh case WM_T_ICH8:
3499 1.312 msaitoh /* Workaround for a bit corruption issue in FIFO memory */
3500 1.281 msaitoh sc->sc_pba = PBA_8K;
3501 1.281 msaitoh CSR_WRITE(sc, WMREG_PBS, PBA_16K);
3502 1.281 msaitoh break;
3503 1.281 msaitoh case WM_T_ICH9:
3504 1.281 msaitoh case WM_T_ICH10:
3505 1.318 msaitoh sc->sc_pba = sc->sc_ethercom.ec_if.if_mtu > 4096 ?
3506 1.318 msaitoh PBA_14K : PBA_10K;
3507 1.232 bouyer break;
3508 1.281 msaitoh case WM_T_PCH:
3509 1.281 msaitoh case WM_T_PCH2:
3510 1.281 msaitoh case WM_T_PCH_LPT:
3511 1.281 msaitoh sc->sc_pba = PBA_26K;
3512 1.232 bouyer break;
3513 1.232 bouyer default:
3514 1.281 msaitoh sc->sc_pba = sc->sc_ethercom.ec_if.if_mtu > 8192 ?
3515 1.281 msaitoh PBA_40K : PBA_48K;
3516 1.281 msaitoh break;
3517 1.232 bouyer }
3518 1.320 msaitoh /*
3519 1.320 msaitoh * Only old or non-multiqueue devices have the PBA register
3520 1.320 msaitoh * XXX Need special handling for 82575.
3521 1.320 msaitoh */
3522 1.320 msaitoh if (((sc->sc_flags & WM_F_NEWQUEUE) == 0)
3523 1.320 msaitoh || (sc->sc_type == WM_T_82575))
3524 1.320 msaitoh CSR_WRITE(sc, WMREG_PBA, sc->sc_pba);
3525 1.232 bouyer
3526 1.281 msaitoh /* Prevent the PCI-E bus from sticking */
3527 1.281 msaitoh if (sc->sc_flags & WM_F_PCIE) {
3528 1.281 msaitoh int timeout = 800;
3529 1.232 bouyer
3530 1.281 msaitoh sc->sc_ctrl |= CTRL_GIO_M_DIS;
3531 1.281 msaitoh CSR_WRITE(sc, WMREG_CTRL, sc->sc_ctrl);
3532 1.232 bouyer
3533 1.281 msaitoh while (timeout--) {
3534 1.281 msaitoh if ((CSR_READ(sc, WMREG_STATUS) & STATUS_GIO_M_ENA)
3535 1.281 msaitoh == 0)
3536 1.281 msaitoh break;
3537 1.281 msaitoh delay(100);
3538 1.281 msaitoh }
3539 1.232 bouyer }
3540 1.232 bouyer
3541 1.281 msaitoh /* Set the completion timeout for interface */
3542 1.281 msaitoh if ((sc->sc_type == WM_T_82575) || (sc->sc_type == WM_T_82576)
3543 1.300 msaitoh || (sc->sc_type == WM_T_82580)
3544 1.282 msaitoh || (sc->sc_type == WM_T_I350) || (sc->sc_type == WM_T_I354)
3545 1.282 msaitoh || (sc->sc_type == WM_T_I210) || (sc->sc_type == WM_T_I211))
3546 1.281 msaitoh wm_set_pcie_completion_timeout(sc);
3547 1.232 bouyer
3548 1.281 msaitoh /* Clear interrupt */
3549 1.281 msaitoh CSR_WRITE(sc, WMREG_IMC, 0xffffffffU);
3550 1.232 bouyer
3551 1.281 msaitoh /* Stop the transmit and receive processes. */
3552 1.281 msaitoh CSR_WRITE(sc, WMREG_RCTL, 0);
3553 1.281 msaitoh sc->sc_rctl &= ~RCTL_EN;
3554 1.281 msaitoh CSR_WRITE(sc, WMREG_TCTL, TCTL_PSP);
3555 1.281 msaitoh CSR_WRITE_FLUSH(sc);
3556 1.232 bouyer
3557 1.281 msaitoh /* XXX set_tbi_sbp_82543() */
3558 1.232 bouyer
3559 1.281 msaitoh delay(10*1000);
3560 1.232 bouyer
3561 1.281 msaitoh /* Must acquire the MDIO ownership before MAC reset */
3562 1.281 msaitoh switch (sc->sc_type) {
3563 1.281 msaitoh case WM_T_82573:
3564 1.281 msaitoh case WM_T_82574:
3565 1.281 msaitoh case WM_T_82583:
3566 1.281 msaitoh error = wm_get_hw_semaphore_82573(sc);
3567 1.281 msaitoh break;
3568 1.281 msaitoh default:
3569 1.281 msaitoh break;
3570 1.281 msaitoh }
3571 1.232 bouyer
3572 1.281 msaitoh /*
3573 1.281 msaitoh * 82541 Errata 29? & 82547 Errata 28?
3574 1.281 msaitoh * See also the description about PHY_RST bit in CTRL register
3575 1.281 msaitoh * in 8254x_GBe_SDM.pdf.
3576 1.281 msaitoh */
3577 1.281 msaitoh if ((sc->sc_type == WM_T_82541) || (sc->sc_type == WM_T_82547)) {
3578 1.281 msaitoh CSR_WRITE(sc, WMREG_CTRL,
3579 1.281 msaitoh CSR_READ(sc, WMREG_CTRL) | CTRL_PHY_RESET);
3580 1.281 msaitoh CSR_WRITE_FLUSH(sc);
3581 1.281 msaitoh delay(5000);
3582 1.281 msaitoh }
3583 1.232 bouyer
3584 1.281 msaitoh switch (sc->sc_type) {
3585 1.281 msaitoh case WM_T_82544: /* XXX check whether WM_F_IOH_VALID is set */
3586 1.281 msaitoh case WM_T_82541:
3587 1.281 msaitoh case WM_T_82541_2:
3588 1.281 msaitoh case WM_T_82547:
3589 1.281 msaitoh case WM_T_82547_2:
3590 1.281 msaitoh /*
3591 1.281 msaitoh * On some chipsets, a reset through a memory-mapped write
3592 1.281 msaitoh * cycle can cause the chip to reset before completing the
3593 1.281 msaitoh * write cycle. This causes major headache that can be
3594 1.281 msaitoh * avoided by issuing the reset via indirect register writes
3595 1.281 msaitoh * through I/O space.
3596 1.281 msaitoh *
3597 1.281 msaitoh * So, if we successfully mapped the I/O BAR at attach time,
3598 1.281 msaitoh * use that. Otherwise, try our luck with a memory-mapped
3599 1.281 msaitoh * reset.
3600 1.281 msaitoh */
3601 1.281 msaitoh if (sc->sc_flags & WM_F_IOH_VALID)
3602 1.281 msaitoh wm_io_write(sc, WMREG_CTRL, CTRL_RST);
3603 1.281 msaitoh else
3604 1.281 msaitoh CSR_WRITE(sc, WMREG_CTRL, CTRL_RST);
3605 1.281 msaitoh break;
3606 1.281 msaitoh case WM_T_82545_3:
3607 1.281 msaitoh case WM_T_82546_3:
3608 1.281 msaitoh /* Use the shadow control register on these chips. */
3609 1.281 msaitoh CSR_WRITE(sc, WMREG_CTRL_SHADOW, CTRL_RST);
3610 1.281 msaitoh break;
3611 1.281 msaitoh case WM_T_80003:
3612 1.281 msaitoh mask = swfwphysem[sc->sc_funcid];
3613 1.281 msaitoh reg = CSR_READ(sc, WMREG_CTRL) | CTRL_RST;
3614 1.281 msaitoh wm_get_swfw_semaphore(sc, mask);
3615 1.281 msaitoh CSR_WRITE(sc, WMREG_CTRL, reg);
3616 1.281 msaitoh wm_put_swfw_semaphore(sc, mask);
3617 1.281 msaitoh break;
3618 1.281 msaitoh case WM_T_ICH8:
3619 1.281 msaitoh case WM_T_ICH9:
3620 1.281 msaitoh case WM_T_ICH10:
3621 1.281 msaitoh case WM_T_PCH:
3622 1.281 msaitoh case WM_T_PCH2:
3623 1.281 msaitoh case WM_T_PCH_LPT:
3624 1.281 msaitoh reg = CSR_READ(sc, WMREG_CTRL) | CTRL_RST;
3625 1.281 msaitoh if (wm_check_reset_block(sc) == 0) {
3626 1.232 bouyer /*
3627 1.281 msaitoh * Gate automatic PHY configuration by hardware on
3628 1.281 msaitoh * non-managed 82579
3629 1.232 bouyer */
3630 1.281 msaitoh if ((sc->sc_type == WM_T_PCH2)
3631 1.281 msaitoh && ((CSR_READ(sc, WMREG_FWSM) & FWSM_FW_VALID)
3632 1.281 msaitoh != 0))
3633 1.281 msaitoh wm_gate_hw_phy_config_ich8lan(sc, 1);
3634 1.232 bouyer
3635 1.232 bouyer
3636 1.281 msaitoh reg |= CTRL_PHY_RESET;
3637 1.281 msaitoh phy_reset = 1;
3638 1.232 bouyer }
3639 1.281 msaitoh wm_get_swfwhw_semaphore(sc);
3640 1.281 msaitoh CSR_WRITE(sc, WMREG_CTRL, reg);
3641 1.281 msaitoh /* Don't insert a completion barrier when reset */
3642 1.281 msaitoh delay(20*1000);
3643 1.281 msaitoh wm_put_swfwhw_semaphore(sc);
3644 1.281 msaitoh break;
3645 1.304 msaitoh case WM_T_82580:
3646 1.304 msaitoh case WM_T_I350:
3647 1.304 msaitoh case WM_T_I354:
3648 1.304 msaitoh case WM_T_I210:
3649 1.304 msaitoh case WM_T_I211:
3650 1.304 msaitoh CSR_WRITE(sc, WMREG_CTRL, CSR_READ(sc, WMREG_CTRL) | CTRL_RST);
3651 1.304 msaitoh if (sc->sc_pcidevid != PCI_PRODUCT_INTEL_DH89XXCC_SGMII)
3652 1.304 msaitoh CSR_WRITE_FLUSH(sc);
3653 1.304 msaitoh delay(5000);
3654 1.304 msaitoh break;
3655 1.281 msaitoh case WM_T_82542_2_0:
3656 1.281 msaitoh case WM_T_82542_2_1:
3657 1.281 msaitoh case WM_T_82543:
3658 1.281 msaitoh case WM_T_82540:
3659 1.281 msaitoh case WM_T_82545:
3660 1.281 msaitoh case WM_T_82546:
3661 1.281 msaitoh case WM_T_82571:
3662 1.281 msaitoh case WM_T_82572:
3663 1.281 msaitoh case WM_T_82573:
3664 1.281 msaitoh case WM_T_82574:
3665 1.281 msaitoh case WM_T_82575:
3666 1.281 msaitoh case WM_T_82576:
3667 1.281 msaitoh case WM_T_82583:
3668 1.281 msaitoh default:
3669 1.281 msaitoh /* Everything else can safely use the documented method. */
3670 1.281 msaitoh CSR_WRITE(sc, WMREG_CTRL, CSR_READ(sc, WMREG_CTRL) | CTRL_RST);
3671 1.281 msaitoh break;
3672 1.281 msaitoh }
3673 1.232 bouyer
3674 1.281 msaitoh /* Must release the MDIO ownership after MAC reset */
3675 1.281 msaitoh switch (sc->sc_type) {
3676 1.281 msaitoh case WM_T_82573:
3677 1.281 msaitoh case WM_T_82574:
3678 1.281 msaitoh case WM_T_82583:
3679 1.281 msaitoh if (error == 0)
3680 1.281 msaitoh wm_put_hw_semaphore_82573(sc);
3681 1.281 msaitoh break;
3682 1.281 msaitoh default:
3683 1.281 msaitoh break;
3684 1.232 bouyer }
3685 1.232 bouyer
3686 1.281 msaitoh if (phy_reset != 0)
3687 1.281 msaitoh wm_get_cfg_done(sc);
3688 1.232 bouyer
3689 1.281 msaitoh /* reload EEPROM */
3690 1.281 msaitoh switch (sc->sc_type) {
3691 1.281 msaitoh case WM_T_82542_2_0:
3692 1.281 msaitoh case WM_T_82542_2_1:
3693 1.281 msaitoh case WM_T_82543:
3694 1.281 msaitoh case WM_T_82544:
3695 1.281 msaitoh delay(10);
3696 1.281 msaitoh reg = CSR_READ(sc, WMREG_CTRL_EXT) | CTRL_EXT_EE_RST;
3697 1.281 msaitoh CSR_WRITE(sc, WMREG_CTRL_EXT, reg);
3698 1.281 msaitoh CSR_WRITE_FLUSH(sc);
3699 1.281 msaitoh delay(2000);
3700 1.281 msaitoh break;
3701 1.281 msaitoh case WM_T_82540:
3702 1.281 msaitoh case WM_T_82545:
3703 1.281 msaitoh case WM_T_82545_3:
3704 1.281 msaitoh case WM_T_82546:
3705 1.281 msaitoh case WM_T_82546_3:
3706 1.281 msaitoh delay(5*1000);
3707 1.281 msaitoh /* XXX Disable HW ARPs on ASF enabled adapters */
3708 1.281 msaitoh break;
3709 1.281 msaitoh case WM_T_82541:
3710 1.281 msaitoh case WM_T_82541_2:
3711 1.281 msaitoh case WM_T_82547:
3712 1.281 msaitoh case WM_T_82547_2:
3713 1.281 msaitoh delay(20000);
3714 1.281 msaitoh /* XXX Disable HW ARPs on ASF enabled adapters */
3715 1.281 msaitoh break;
3716 1.281 msaitoh case WM_T_82571:
3717 1.281 msaitoh case WM_T_82572:
3718 1.281 msaitoh case WM_T_82573:
3719 1.281 msaitoh case WM_T_82574:
3720 1.281 msaitoh case WM_T_82583:
3721 1.281 msaitoh if (sc->sc_flags & WM_F_EEPROM_FLASH) {
3722 1.281 msaitoh delay(10);
3723 1.281 msaitoh reg = CSR_READ(sc, WMREG_CTRL_EXT) | CTRL_EXT_EE_RST;
3724 1.281 msaitoh CSR_WRITE(sc, WMREG_CTRL_EXT, reg);
3725 1.281 msaitoh CSR_WRITE_FLUSH(sc);
3726 1.232 bouyer }
3727 1.281 msaitoh /* check EECD_EE_AUTORD */
3728 1.281 msaitoh wm_get_auto_rd_done(sc);
3729 1.281 msaitoh /*
3730 1.281 msaitoh * Phy configuration from NVM just starts after EECD_AUTO_RD
3731 1.281 msaitoh * is set.
3732 1.281 msaitoh */
3733 1.281 msaitoh if ((sc->sc_type == WM_T_82573) || (sc->sc_type == WM_T_82574)
3734 1.281 msaitoh || (sc->sc_type == WM_T_82583))
3735 1.281 msaitoh delay(25*1000);
3736 1.281 msaitoh break;
3737 1.281 msaitoh case WM_T_82575:
3738 1.281 msaitoh case WM_T_82576:
3739 1.281 msaitoh case WM_T_82580:
3740 1.281 msaitoh case WM_T_I350:
3741 1.281 msaitoh case WM_T_I354:
3742 1.281 msaitoh case WM_T_I210:
3743 1.281 msaitoh case WM_T_I211:
3744 1.281 msaitoh case WM_T_80003:
3745 1.281 msaitoh /* check EECD_EE_AUTORD */
3746 1.281 msaitoh wm_get_auto_rd_done(sc);
3747 1.281 msaitoh break;
3748 1.281 msaitoh case WM_T_ICH8:
3749 1.281 msaitoh case WM_T_ICH9:
3750 1.281 msaitoh case WM_T_ICH10:
3751 1.281 msaitoh case WM_T_PCH:
3752 1.281 msaitoh case WM_T_PCH2:
3753 1.281 msaitoh case WM_T_PCH_LPT:
3754 1.281 msaitoh break;
3755 1.281 msaitoh default:
3756 1.281 msaitoh panic("%s: unknown type\n", __func__);
3757 1.232 bouyer }
3758 1.281 msaitoh
3759 1.281 msaitoh /* Check whether EEPROM is present or not */
3760 1.281 msaitoh switch (sc->sc_type) {
3761 1.281 msaitoh case WM_T_82575:
3762 1.281 msaitoh case WM_T_82576:
3763 1.281 msaitoh #if 0 /* XXX */
3764 1.281 msaitoh case WM_T_82580:
3765 1.281 msaitoh #endif
3766 1.281 msaitoh case WM_T_I350:
3767 1.281 msaitoh case WM_T_I354:
3768 1.281 msaitoh case WM_T_ICH8:
3769 1.281 msaitoh case WM_T_ICH9:
3770 1.281 msaitoh if ((CSR_READ(sc, WMREG_EECD) & EECD_EE_PRES) == 0) {
3771 1.281 msaitoh /* Not found */
3772 1.281 msaitoh sc->sc_flags |= WM_F_EEPROM_INVALID;
3773 1.281 msaitoh if ((sc->sc_type == WM_T_82575)
3774 1.281 msaitoh || (sc->sc_type == WM_T_82576)
3775 1.281 msaitoh || (sc->sc_type == WM_T_82580)
3776 1.281 msaitoh || (sc->sc_type == WM_T_I350)
3777 1.281 msaitoh || (sc->sc_type == WM_T_I354))
3778 1.281 msaitoh wm_reset_init_script_82575(sc);
3779 1.232 bouyer }
3780 1.281 msaitoh break;
3781 1.281 msaitoh default:
3782 1.281 msaitoh break;
3783 1.281 msaitoh }
3784 1.281 msaitoh
3785 1.300 msaitoh if ((sc->sc_type == WM_T_82580)
3786 1.281 msaitoh || (sc->sc_type == WM_T_I350) || (sc->sc_type == WM_T_I354)) {
3787 1.281 msaitoh /* clear global device reset status bit */
3788 1.281 msaitoh CSR_WRITE(sc, WMREG_STATUS, STATUS_DEV_RST_SET);
3789 1.281 msaitoh }
3790 1.281 msaitoh
3791 1.281 msaitoh /* Clear any pending interrupt events. */
3792 1.281 msaitoh CSR_WRITE(sc, WMREG_IMC, 0xffffffffU);
3793 1.281 msaitoh reg = CSR_READ(sc, WMREG_ICR);
3794 1.281 msaitoh
3795 1.281 msaitoh /* reload sc_ctrl */
3796 1.281 msaitoh sc->sc_ctrl = CSR_READ(sc, WMREG_CTRL);
3797 1.281 msaitoh
3798 1.281 msaitoh if (sc->sc_type == WM_T_I350)
3799 1.281 msaitoh wm_set_eee_i350(sc);
3800 1.281 msaitoh
3801 1.281 msaitoh /* dummy read from WUC */
3802 1.281 msaitoh if (sc->sc_type == WM_T_PCH)
3803 1.281 msaitoh reg = wm_gmii_hv_readreg(sc->sc_dev, 1, BM_WUC);
3804 1.281 msaitoh /*
3805 1.281 msaitoh * For PCH, this write will make sure that any noise will be detected
3806 1.281 msaitoh * as a CRC error and be dropped rather than show up as a bad packet
3807 1.281 msaitoh * to the DMA engine
3808 1.281 msaitoh */
3809 1.281 msaitoh if (sc->sc_type == WM_T_PCH)
3810 1.281 msaitoh CSR_WRITE(sc, WMREG_CRC_OFFSET, 0x65656565);
3811 1.281 msaitoh
3812 1.281 msaitoh if ((sc->sc_flags & WM_F_NEWQUEUE) != 0)
3813 1.281 msaitoh CSR_WRITE(sc, WMREG_WUC, 0);
3814 1.281 msaitoh
3815 1.281 msaitoh /* XXX need special handling for 82580 */
3816 1.281 msaitoh }
3817 1.281 msaitoh
3818 1.281 msaitoh /*
3819 1.281 msaitoh * wm_add_rxbuf:
3820 1.281 msaitoh *
3821 1.281 msaitoh * Add a receive buffer to the indiciated descriptor.
3822 1.281 msaitoh */
3823 1.281 msaitoh static int
3824 1.281 msaitoh wm_add_rxbuf(struct wm_softc *sc, int idx)
3825 1.281 msaitoh {
3826 1.281 msaitoh struct wm_rxsoft *rxs = &sc->sc_rxsoft[idx];
3827 1.281 msaitoh struct mbuf *m;
3828 1.281 msaitoh int error;
3829 1.281 msaitoh
3830 1.283 ozaki KASSERT(WM_RX_LOCKED(sc));
3831 1.281 msaitoh
3832 1.281 msaitoh MGETHDR(m, M_DONTWAIT, MT_DATA);
3833 1.281 msaitoh if (m == NULL)
3834 1.281 msaitoh return ENOBUFS;
3835 1.281 msaitoh
3836 1.281 msaitoh MCLGET(m, M_DONTWAIT);
3837 1.281 msaitoh if ((m->m_flags & M_EXT) == 0) {
3838 1.281 msaitoh m_freem(m);
3839 1.281 msaitoh return ENOBUFS;
3840 1.281 msaitoh }
3841 1.281 msaitoh
3842 1.281 msaitoh if (rxs->rxs_mbuf != NULL)
3843 1.281 msaitoh bus_dmamap_unload(sc->sc_dmat, rxs->rxs_dmamap);
3844 1.281 msaitoh
3845 1.281 msaitoh rxs->rxs_mbuf = m;
3846 1.281 msaitoh
3847 1.281 msaitoh m->m_len = m->m_pkthdr.len = m->m_ext.ext_size;
3848 1.281 msaitoh error = bus_dmamap_load_mbuf(sc->sc_dmat, rxs->rxs_dmamap, m,
3849 1.281 msaitoh BUS_DMA_READ|BUS_DMA_NOWAIT);
3850 1.281 msaitoh if (error) {
3851 1.281 msaitoh /* XXX XXX XXX */
3852 1.281 msaitoh aprint_error_dev(sc->sc_dev,
3853 1.281 msaitoh "unable to load rx DMA map %d, error = %d\n",
3854 1.281 msaitoh idx, error);
3855 1.281 msaitoh panic("wm_add_rxbuf");
3856 1.232 bouyer }
3857 1.232 bouyer
3858 1.281 msaitoh bus_dmamap_sync(sc->sc_dmat, rxs->rxs_dmamap, 0,
3859 1.281 msaitoh rxs->rxs_dmamap->dm_mapsize, BUS_DMASYNC_PREREAD);
3860 1.281 msaitoh
3861 1.281 msaitoh if ((sc->sc_flags & WM_F_NEWQUEUE) != 0) {
3862 1.281 msaitoh if ((sc->sc_rctl & RCTL_EN) != 0)
3863 1.281 msaitoh WM_INIT_RXDESC(sc, idx);
3864 1.281 msaitoh } else
3865 1.281 msaitoh WM_INIT_RXDESC(sc, idx);
3866 1.281 msaitoh
3867 1.232 bouyer return 0;
3868 1.232 bouyer }
3869 1.232 bouyer
3870 1.232 bouyer /*
3871 1.281 msaitoh * wm_rxdrain:
3872 1.232 bouyer *
3873 1.281 msaitoh * Drain the receive queue.
3874 1.232 bouyer */
3875 1.232 bouyer static void
3876 1.281 msaitoh wm_rxdrain(struct wm_softc *sc)
3877 1.281 msaitoh {
3878 1.281 msaitoh struct wm_rxsoft *rxs;
3879 1.281 msaitoh int i;
3880 1.281 msaitoh
3881 1.283 ozaki KASSERT(WM_RX_LOCKED(sc));
3882 1.281 msaitoh
3883 1.281 msaitoh for (i = 0; i < WM_NRXDESC; i++) {
3884 1.281 msaitoh rxs = &sc->sc_rxsoft[i];
3885 1.281 msaitoh if (rxs->rxs_mbuf != NULL) {
3886 1.281 msaitoh bus_dmamap_unload(sc->sc_dmat, rxs->rxs_dmamap);
3887 1.281 msaitoh m_freem(rxs->rxs_mbuf);
3888 1.281 msaitoh rxs->rxs_mbuf = NULL;
3889 1.281 msaitoh }
3890 1.281 msaitoh }
3891 1.281 msaitoh }
3892 1.281 msaitoh
3893 1.281 msaitoh /*
3894 1.281 msaitoh * wm_init: [ifnet interface function]
3895 1.281 msaitoh *
3896 1.281 msaitoh * Initialize the interface.
3897 1.281 msaitoh */
3898 1.281 msaitoh static int
3899 1.281 msaitoh wm_init(struct ifnet *ifp)
3900 1.232 bouyer {
3901 1.232 bouyer struct wm_softc *sc = ifp->if_softc;
3902 1.281 msaitoh int ret;
3903 1.272 ozaki
3904 1.283 ozaki WM_BOTH_LOCK(sc);
3905 1.281 msaitoh ret = wm_init_locked(ifp);
3906 1.283 ozaki WM_BOTH_UNLOCK(sc);
3907 1.281 msaitoh
3908 1.281 msaitoh return ret;
3909 1.272 ozaki }
3910 1.272 ozaki
3911 1.281 msaitoh static int
3912 1.281 msaitoh wm_init_locked(struct ifnet *ifp)
3913 1.272 ozaki {
3914 1.272 ozaki struct wm_softc *sc = ifp->if_softc;
3915 1.281 msaitoh struct wm_rxsoft *rxs;
3916 1.281 msaitoh int i, j, trynum, error = 0;
3917 1.281 msaitoh uint32_t reg;
3918 1.232 bouyer
3919 1.283 ozaki KASSERT(WM_BOTH_LOCKED(sc));
3920 1.232 bouyer /*
3921 1.281 msaitoh * *_HDR_ALIGNED_P is constant 1 if __NO_STRICT_ALIGMENT is set.
3922 1.281 msaitoh * There is a small but measurable benefit to avoiding the adjusment
3923 1.281 msaitoh * of the descriptor so that the headers are aligned, for normal mtu,
3924 1.281 msaitoh * on such platforms. One possibility is that the DMA itself is
3925 1.281 msaitoh * slightly more efficient if the front of the entire packet (instead
3926 1.281 msaitoh * of the front of the headers) is aligned.
3927 1.281 msaitoh *
3928 1.281 msaitoh * Note we must always set align_tweak to 0 if we are using
3929 1.281 msaitoh * jumbo frames.
3930 1.232 bouyer */
3931 1.281 msaitoh #ifdef __NO_STRICT_ALIGNMENT
3932 1.281 msaitoh sc->sc_align_tweak = 0;
3933 1.281 msaitoh #else
3934 1.281 msaitoh if ((ifp->if_mtu + ETHER_HDR_LEN + ETHER_CRC_LEN) > (MCLBYTES - 2))
3935 1.281 msaitoh sc->sc_align_tweak = 0;
3936 1.281 msaitoh else
3937 1.281 msaitoh sc->sc_align_tweak = 2;
3938 1.281 msaitoh #endif /* __NO_STRICT_ALIGNMENT */
3939 1.281 msaitoh
3940 1.281 msaitoh /* Cancel any pending I/O. */
3941 1.281 msaitoh wm_stop_locked(ifp, 0);
3942 1.281 msaitoh
3943 1.281 msaitoh /* update statistics before reset */
3944 1.281 msaitoh ifp->if_collisions += CSR_READ(sc, WMREG_COLC);
3945 1.281 msaitoh ifp->if_ierrors += CSR_READ(sc, WMREG_RXERRC);
3946 1.281 msaitoh
3947 1.281 msaitoh /* Reset the chip to a known state. */
3948 1.281 msaitoh wm_reset(sc);
3949 1.281 msaitoh
3950 1.281 msaitoh switch (sc->sc_type) {
3951 1.281 msaitoh case WM_T_82571:
3952 1.281 msaitoh case WM_T_82572:
3953 1.281 msaitoh case WM_T_82573:
3954 1.281 msaitoh case WM_T_82574:
3955 1.281 msaitoh case WM_T_82583:
3956 1.281 msaitoh case WM_T_80003:
3957 1.281 msaitoh case WM_T_ICH8:
3958 1.281 msaitoh case WM_T_ICH9:
3959 1.281 msaitoh case WM_T_ICH10:
3960 1.281 msaitoh case WM_T_PCH:
3961 1.281 msaitoh case WM_T_PCH2:
3962 1.281 msaitoh case WM_T_PCH_LPT:
3963 1.281 msaitoh if (wm_check_mng_mode(sc) != 0)
3964 1.281 msaitoh wm_get_hw_control(sc);
3965 1.281 msaitoh break;
3966 1.281 msaitoh default:
3967 1.281 msaitoh break;
3968 1.281 msaitoh }
3969 1.232 bouyer
3970 1.312 msaitoh /* Init hardware bits */
3971 1.312 msaitoh wm_initialize_hardware_bits(sc);
3972 1.312 msaitoh
3973 1.281 msaitoh /* Reset the PHY. */
3974 1.281 msaitoh if (sc->sc_flags & WM_F_HAS_MII)
3975 1.281 msaitoh wm_gmii_reset(sc);
3976 1.232 bouyer
3977 1.319 msaitoh /* Calculate (E)ITR value */
3978 1.319 msaitoh if ((sc->sc_flags & WM_F_NEWQUEUE) != 0) {
3979 1.319 msaitoh sc->sc_itr = 450; /* For EITR */
3980 1.319 msaitoh } else if (sc->sc_type >= WM_T_82543) {
3981 1.319 msaitoh /*
3982 1.319 msaitoh * Set up the interrupt throttling register (units of 256ns)
3983 1.319 msaitoh * Note that a footnote in Intel's documentation says this
3984 1.319 msaitoh * ticker runs at 1/4 the rate when the chip is in 100Mbit
3985 1.319 msaitoh * or 10Mbit mode. Empirically, it appears to be the case
3986 1.319 msaitoh * that that is also true for the 1024ns units of the other
3987 1.319 msaitoh * interrupt-related timer registers -- so, really, we ought
3988 1.319 msaitoh * to divide this value by 4 when the link speed is low.
3989 1.319 msaitoh *
3990 1.319 msaitoh * XXX implement this division at link speed change!
3991 1.319 msaitoh */
3992 1.319 msaitoh
3993 1.319 msaitoh /*
3994 1.319 msaitoh * For N interrupts/sec, set this value to:
3995 1.319 msaitoh * 1000000000 / (N * 256). Note that we set the
3996 1.319 msaitoh * absolute and packet timer values to this value
3997 1.319 msaitoh * divided by 4 to get "simple timer" behavior.
3998 1.319 msaitoh */
3999 1.319 msaitoh
4000 1.319 msaitoh sc->sc_itr = 1500; /* 2604 ints/sec */
4001 1.319 msaitoh }
4002 1.319 msaitoh
4003 1.281 msaitoh /* Initialize the transmit descriptor ring. */
4004 1.281 msaitoh memset(sc->sc_txdescs, 0, WM_TXDESCSIZE(sc));
4005 1.281 msaitoh WM_CDTXSYNC(sc, 0, WM_NTXDESC(sc),
4006 1.281 msaitoh BUS_DMASYNC_PREREAD|BUS_DMASYNC_PREWRITE);
4007 1.281 msaitoh sc->sc_txfree = WM_NTXDESC(sc);
4008 1.281 msaitoh sc->sc_txnext = 0;
4009 1.272 ozaki
4010 1.281 msaitoh if (sc->sc_type < WM_T_82543) {
4011 1.281 msaitoh CSR_WRITE(sc, WMREG_OLD_TDBAH, WM_CDTXADDR_HI(sc, 0));
4012 1.281 msaitoh CSR_WRITE(sc, WMREG_OLD_TDBAL, WM_CDTXADDR_LO(sc, 0));
4013 1.281 msaitoh CSR_WRITE(sc, WMREG_OLD_TDLEN, WM_TXDESCSIZE(sc));
4014 1.281 msaitoh CSR_WRITE(sc, WMREG_OLD_TDH, 0);
4015 1.281 msaitoh CSR_WRITE(sc, WMREG_OLD_TDT, 0);
4016 1.281 msaitoh CSR_WRITE(sc, WMREG_OLD_TIDV, 128);
4017 1.281 msaitoh } else {
4018 1.281 msaitoh CSR_WRITE(sc, WMREG_TDBAH, WM_CDTXADDR_HI(sc, 0));
4019 1.281 msaitoh CSR_WRITE(sc, WMREG_TDBAL, WM_CDTXADDR_LO(sc, 0));
4020 1.281 msaitoh CSR_WRITE(sc, WMREG_TDLEN, WM_TXDESCSIZE(sc));
4021 1.281 msaitoh CSR_WRITE(sc, WMREG_TDH, 0);
4022 1.232 bouyer
4023 1.281 msaitoh if ((sc->sc_flags & WM_F_NEWQUEUE) != 0)
4024 1.232 bouyer /*
4025 1.281 msaitoh * Don't write TDT before TCTL.EN is set.
4026 1.281 msaitoh * See the document.
4027 1.232 bouyer */
4028 1.312 msaitoh CSR_WRITE(sc, WMREG_TXDCTL(0), TXDCTL_QUEUE_ENABLE
4029 1.281 msaitoh | TXDCTL_PTHRESH(0) | TXDCTL_HTHRESH(0)
4030 1.281 msaitoh | TXDCTL_WTHRESH(0));
4031 1.281 msaitoh else {
4032 1.319 msaitoh /* ITR / 4 */
4033 1.319 msaitoh CSR_WRITE(sc, WMREG_TIDV, sc->sc_itr / 4);
4034 1.319 msaitoh if (sc->sc_type >= WM_T_82540) {
4035 1.319 msaitoh /* should be same */
4036 1.319 msaitoh CSR_WRITE(sc, WMREG_TADV, sc->sc_itr / 4);
4037 1.319 msaitoh }
4038 1.319 msaitoh
4039 1.281 msaitoh CSR_WRITE(sc, WMREG_TDT, 0);
4040 1.312 msaitoh CSR_WRITE(sc, WMREG_TXDCTL(0), TXDCTL_PTHRESH(0) |
4041 1.281 msaitoh TXDCTL_HTHRESH(0) | TXDCTL_WTHRESH(0));
4042 1.281 msaitoh CSR_WRITE(sc, WMREG_RXDCTL, RXDCTL_PTHRESH(0) |
4043 1.281 msaitoh RXDCTL_HTHRESH(0) | RXDCTL_WTHRESH(1));
4044 1.232 bouyer }
4045 1.281 msaitoh }
4046 1.281 msaitoh
4047 1.281 msaitoh /* Initialize the transmit job descriptors. */
4048 1.281 msaitoh for (i = 0; i < WM_TXQUEUELEN(sc); i++)
4049 1.281 msaitoh sc->sc_txsoft[i].txs_mbuf = NULL;
4050 1.281 msaitoh sc->sc_txsfree = WM_TXQUEUELEN(sc);
4051 1.281 msaitoh sc->sc_txsnext = 0;
4052 1.281 msaitoh sc->sc_txsdirty = 0;
4053 1.232 bouyer
4054 1.281 msaitoh /*
4055 1.281 msaitoh * Initialize the receive descriptor and receive job
4056 1.281 msaitoh * descriptor rings.
4057 1.281 msaitoh */
4058 1.281 msaitoh if (sc->sc_type < WM_T_82543) {
4059 1.281 msaitoh CSR_WRITE(sc, WMREG_OLD_RDBAH0, WM_CDRXADDR_HI(sc, 0));
4060 1.281 msaitoh CSR_WRITE(sc, WMREG_OLD_RDBAL0, WM_CDRXADDR_LO(sc, 0));
4061 1.281 msaitoh CSR_WRITE(sc, WMREG_OLD_RDLEN0, sizeof(sc->sc_rxdescs));
4062 1.281 msaitoh CSR_WRITE(sc, WMREG_OLD_RDH0, 0);
4063 1.281 msaitoh CSR_WRITE(sc, WMREG_OLD_RDT0, 0);
4064 1.281 msaitoh CSR_WRITE(sc, WMREG_OLD_RDTR0, 28 | RDTR_FPD);
4065 1.232 bouyer
4066 1.281 msaitoh CSR_WRITE(sc, WMREG_OLD_RDBA1_HI, 0);
4067 1.281 msaitoh CSR_WRITE(sc, WMREG_OLD_RDBA1_LO, 0);
4068 1.281 msaitoh CSR_WRITE(sc, WMREG_OLD_RDLEN1, 0);
4069 1.281 msaitoh CSR_WRITE(sc, WMREG_OLD_RDH1, 0);
4070 1.281 msaitoh CSR_WRITE(sc, WMREG_OLD_RDT1, 0);
4071 1.281 msaitoh CSR_WRITE(sc, WMREG_OLD_RDTR1, 0);
4072 1.281 msaitoh } else {
4073 1.281 msaitoh CSR_WRITE(sc, WMREG_RDBAH, WM_CDRXADDR_HI(sc, 0));
4074 1.281 msaitoh CSR_WRITE(sc, WMREG_RDBAL, WM_CDRXADDR_LO(sc, 0));
4075 1.281 msaitoh CSR_WRITE(sc, WMREG_RDLEN, sizeof(sc->sc_rxdescs));
4076 1.319 msaitoh
4077 1.281 msaitoh if ((sc->sc_flags & WM_F_NEWQUEUE) != 0) {
4078 1.281 msaitoh if (MCLBYTES & ((1 << SRRCTL_BSIZEPKT_SHIFT) - 1))
4079 1.281 msaitoh panic("%s: MCLBYTES %d unsupported for i2575 or higher\n", __func__, MCLBYTES);
4080 1.281 msaitoh CSR_WRITE(sc, WMREG_SRRCTL, SRRCTL_DESCTYPE_LEGACY
4081 1.281 msaitoh | (MCLBYTES >> SRRCTL_BSIZEPKT_SHIFT));
4082 1.281 msaitoh CSR_WRITE(sc, WMREG_RXDCTL, RXDCTL_QUEUE_ENABLE
4083 1.281 msaitoh | RXDCTL_PTHRESH(16) | RXDCTL_HTHRESH(8)
4084 1.281 msaitoh | RXDCTL_WTHRESH(1));
4085 1.281 msaitoh } else {
4086 1.281 msaitoh CSR_WRITE(sc, WMREG_RDH, 0);
4087 1.281 msaitoh CSR_WRITE(sc, WMREG_RDT, 0);
4088 1.281 msaitoh CSR_WRITE(sc, WMREG_RDTR, 375 | RDTR_FPD); /* ITR/4 */
4089 1.281 msaitoh CSR_WRITE(sc, WMREG_RADV, 375); /* MUST be same */
4090 1.281 msaitoh }
4091 1.281 msaitoh }
4092 1.281 msaitoh for (i = 0; i < WM_NRXDESC; i++) {
4093 1.281 msaitoh rxs = &sc->sc_rxsoft[i];
4094 1.281 msaitoh if (rxs->rxs_mbuf == NULL) {
4095 1.281 msaitoh if ((error = wm_add_rxbuf(sc, i)) != 0) {
4096 1.281 msaitoh log(LOG_ERR, "%s: unable to allocate or map "
4097 1.281 msaitoh "rx buffer %d, error = %d\n",
4098 1.281 msaitoh device_xname(sc->sc_dev), i, error);
4099 1.281 msaitoh /*
4100 1.281 msaitoh * XXX Should attempt to run with fewer receive
4101 1.281 msaitoh * XXX buffers instead of just failing.
4102 1.281 msaitoh */
4103 1.281 msaitoh wm_rxdrain(sc);
4104 1.281 msaitoh goto out;
4105 1.281 msaitoh }
4106 1.281 msaitoh } else {
4107 1.281 msaitoh if ((sc->sc_flags & WM_F_NEWQUEUE) == 0)
4108 1.281 msaitoh WM_INIT_RXDESC(sc, i);
4109 1.232 bouyer /*
4110 1.281 msaitoh * For 82575 and newer device, the RX descriptors
4111 1.281 msaitoh * must be initialized after the setting of RCTL.EN in
4112 1.281 msaitoh * wm_set_filter()
4113 1.232 bouyer */
4114 1.232 bouyer }
4115 1.281 msaitoh }
4116 1.281 msaitoh sc->sc_rxptr = 0;
4117 1.281 msaitoh sc->sc_rxdiscard = 0;
4118 1.281 msaitoh WM_RXCHAIN_RESET(sc);
4119 1.232 bouyer
4120 1.281 msaitoh /*
4121 1.281 msaitoh * Clear out the VLAN table -- we don't use it (yet).
4122 1.281 msaitoh */
4123 1.281 msaitoh CSR_WRITE(sc, WMREG_VET, 0);
4124 1.281 msaitoh if ((sc->sc_type == WM_T_I350) || (sc->sc_type == WM_T_I354))
4125 1.281 msaitoh trynum = 10; /* Due to hw errata */
4126 1.281 msaitoh else
4127 1.281 msaitoh trynum = 1;
4128 1.281 msaitoh for (i = 0; i < WM_VLAN_TABSIZE; i++)
4129 1.281 msaitoh for (j = 0; j < trynum; j++)
4130 1.281 msaitoh CSR_WRITE(sc, WMREG_VFTA + (i << 2), 0);
4131 1.232 bouyer
4132 1.281 msaitoh /*
4133 1.281 msaitoh * Set up flow-control parameters.
4134 1.281 msaitoh *
4135 1.281 msaitoh * XXX Values could probably stand some tuning.
4136 1.281 msaitoh */
4137 1.281 msaitoh if ((sc->sc_type != WM_T_ICH8) && (sc->sc_type != WM_T_ICH9)
4138 1.281 msaitoh && (sc->sc_type != WM_T_ICH10) && (sc->sc_type != WM_T_PCH)
4139 1.281 msaitoh && (sc->sc_type != WM_T_PCH2) && (sc->sc_type != WM_T_PCH_LPT)) {
4140 1.281 msaitoh CSR_WRITE(sc, WMREG_FCAL, FCAL_CONST);
4141 1.281 msaitoh CSR_WRITE(sc, WMREG_FCAH, FCAH_CONST);
4142 1.281 msaitoh CSR_WRITE(sc, WMREG_FCT, ETHERTYPE_FLOWCONTROL);
4143 1.281 msaitoh }
4144 1.232 bouyer
4145 1.281 msaitoh sc->sc_fcrtl = FCRTL_DFLT;
4146 1.281 msaitoh if (sc->sc_type < WM_T_82543) {
4147 1.281 msaitoh CSR_WRITE(sc, WMREG_OLD_FCRTH, FCRTH_DFLT);
4148 1.281 msaitoh CSR_WRITE(sc, WMREG_OLD_FCRTL, sc->sc_fcrtl);
4149 1.281 msaitoh } else {
4150 1.281 msaitoh CSR_WRITE(sc, WMREG_FCRTH, FCRTH_DFLT);
4151 1.281 msaitoh CSR_WRITE(sc, WMREG_FCRTL, sc->sc_fcrtl);
4152 1.281 msaitoh }
4153 1.232 bouyer
4154 1.281 msaitoh if (sc->sc_type == WM_T_80003)
4155 1.281 msaitoh CSR_WRITE(sc, WMREG_FCTTV, 0xffff);
4156 1.281 msaitoh else
4157 1.281 msaitoh CSR_WRITE(sc, WMREG_FCTTV, FCTTV_DFLT);
4158 1.232 bouyer
4159 1.281 msaitoh /* Writes the control register. */
4160 1.281 msaitoh wm_set_vlan(sc);
4161 1.232 bouyer
4162 1.281 msaitoh if (sc->sc_flags & WM_F_HAS_MII) {
4163 1.281 msaitoh int val;
4164 1.232 bouyer
4165 1.281 msaitoh switch (sc->sc_type) {
4166 1.281 msaitoh case WM_T_80003:
4167 1.281 msaitoh case WM_T_ICH8:
4168 1.281 msaitoh case WM_T_ICH9:
4169 1.281 msaitoh case WM_T_ICH10:
4170 1.281 msaitoh case WM_T_PCH:
4171 1.281 msaitoh case WM_T_PCH2:
4172 1.281 msaitoh case WM_T_PCH_LPT:
4173 1.281 msaitoh /*
4174 1.281 msaitoh * Set the mac to wait the maximum time between each
4175 1.281 msaitoh * iteration and increase the max iterations when
4176 1.281 msaitoh * polling the phy; this fixes erroneous timeouts at
4177 1.281 msaitoh * 10Mbps.
4178 1.281 msaitoh */
4179 1.281 msaitoh wm_kmrn_writereg(sc, KUMCTRLSTA_OFFSET_TIMEOUTS,
4180 1.281 msaitoh 0xFFFF);
4181 1.281 msaitoh val = wm_kmrn_readreg(sc,
4182 1.281 msaitoh KUMCTRLSTA_OFFSET_INB_PARAM);
4183 1.281 msaitoh val |= 0x3F;
4184 1.281 msaitoh wm_kmrn_writereg(sc,
4185 1.281 msaitoh KUMCTRLSTA_OFFSET_INB_PARAM, val);
4186 1.281 msaitoh break;
4187 1.281 msaitoh default:
4188 1.281 msaitoh break;
4189 1.232 bouyer }
4190 1.232 bouyer
4191 1.281 msaitoh if (sc->sc_type == WM_T_80003) {
4192 1.281 msaitoh val = CSR_READ(sc, WMREG_CTRL_EXT);
4193 1.281 msaitoh val &= ~CTRL_EXT_LINK_MODE_MASK;
4194 1.281 msaitoh CSR_WRITE(sc, WMREG_CTRL_EXT, val);
4195 1.232 bouyer
4196 1.281 msaitoh /* Bypass RX and TX FIFO's */
4197 1.281 msaitoh wm_kmrn_writereg(sc, KUMCTRLSTA_OFFSET_FIFO_CTRL,
4198 1.281 msaitoh KUMCTRLSTA_FIFO_CTRL_RX_BYPASS
4199 1.281 msaitoh | KUMCTRLSTA_FIFO_CTRL_TX_BYPASS);
4200 1.281 msaitoh wm_kmrn_writereg(sc, KUMCTRLSTA_OFFSET_INB_CTRL,
4201 1.281 msaitoh KUMCTRLSTA_INB_CTRL_DIS_PADDING |
4202 1.281 msaitoh KUMCTRLSTA_INB_CTRL_LINK_TMOUT_DFLT);
4203 1.232 bouyer }
4204 1.281 msaitoh }
4205 1.281 msaitoh #if 0
4206 1.281 msaitoh CSR_WRITE(sc, WMREG_CTRL_EXT, sc->sc_ctrl_ext);
4207 1.281 msaitoh #endif
4208 1.232 bouyer
4209 1.281 msaitoh /* Set up checksum offload parameters. */
4210 1.281 msaitoh reg = CSR_READ(sc, WMREG_RXCSUM);
4211 1.281 msaitoh reg &= ~(RXCSUM_IPOFL | RXCSUM_IPV6OFL | RXCSUM_TUOFL);
4212 1.281 msaitoh if (ifp->if_capenable & IFCAP_CSUM_IPv4_Rx)
4213 1.281 msaitoh reg |= RXCSUM_IPOFL;
4214 1.281 msaitoh if (ifp->if_capenable & (IFCAP_CSUM_TCPv4_Rx | IFCAP_CSUM_UDPv4_Rx))
4215 1.281 msaitoh reg |= RXCSUM_IPOFL | RXCSUM_TUOFL;
4216 1.281 msaitoh if (ifp->if_capenable & (IFCAP_CSUM_TCPv6_Rx | IFCAP_CSUM_UDPv6_Rx))
4217 1.281 msaitoh reg |= RXCSUM_IPV6OFL | RXCSUM_TUOFL;
4218 1.281 msaitoh CSR_WRITE(sc, WMREG_RXCSUM, reg);
4219 1.232 bouyer
4220 1.281 msaitoh /* Set up the interrupt registers. */
4221 1.281 msaitoh CSR_WRITE(sc, WMREG_IMC, 0xffffffffU);
4222 1.281 msaitoh sc->sc_icr = ICR_TXDW | ICR_LSC | ICR_RXSEQ | ICR_RXDMT0 |
4223 1.281 msaitoh ICR_RXO | ICR_RXT0;
4224 1.281 msaitoh CSR_WRITE(sc, WMREG_IMS, sc->sc_icr);
4225 1.232 bouyer
4226 1.281 msaitoh if ((sc->sc_type == WM_T_ICH8) || (sc->sc_type == WM_T_ICH9)
4227 1.281 msaitoh || (sc->sc_type == WM_T_ICH10) || (sc->sc_type == WM_T_PCH)
4228 1.281 msaitoh || (sc->sc_type == WM_T_PCH2) || (sc->sc_type == WM_T_PCH_LPT)) {
4229 1.281 msaitoh reg = CSR_READ(sc, WMREG_KABGTXD);
4230 1.281 msaitoh reg |= KABGTXD_BGSQLBIAS;
4231 1.281 msaitoh CSR_WRITE(sc, WMREG_KABGTXD, reg);
4232 1.281 msaitoh }
4233 1.232 bouyer
4234 1.281 msaitoh /* Set up the inter-packet gap. */
4235 1.281 msaitoh CSR_WRITE(sc, WMREG_TIPG, sc->sc_tipg);
4236 1.232 bouyer
4237 1.281 msaitoh if (sc->sc_type >= WM_T_82543) {
4238 1.281 msaitoh /*
4239 1.319 msaitoh * XXX 82574 has both ITR and EITR. SET EITR when we use
4240 1.319 msaitoh * the multi queue function with MSI-X.
4241 1.281 msaitoh */
4242 1.319 msaitoh if ((sc->sc_flags & WM_F_NEWQUEUE) != 0)
4243 1.319 msaitoh CSR_WRITE(sc, WMREG_EITR(0), sc->sc_itr);
4244 1.319 msaitoh else
4245 1.319 msaitoh CSR_WRITE(sc, WMREG_ITR, sc->sc_itr);
4246 1.281 msaitoh }
4247 1.232 bouyer
4248 1.281 msaitoh /* Set the VLAN ethernetype. */
4249 1.281 msaitoh CSR_WRITE(sc, WMREG_VET, ETHERTYPE_VLAN);
4250 1.232 bouyer
4251 1.281 msaitoh /*
4252 1.281 msaitoh * Set up the transmit control register; we start out with
4253 1.281 msaitoh * a collision distance suitable for FDX, but update it whe
4254 1.281 msaitoh * we resolve the media type.
4255 1.281 msaitoh */
4256 1.281 msaitoh sc->sc_tctl = TCTL_EN | TCTL_PSP | TCTL_RTLC
4257 1.281 msaitoh | TCTL_CT(TX_COLLISION_THRESHOLD)
4258 1.281 msaitoh | TCTL_COLD(TX_COLLISION_DISTANCE_FDX);
4259 1.281 msaitoh if (sc->sc_type >= WM_T_82571)
4260 1.281 msaitoh sc->sc_tctl |= TCTL_MULR;
4261 1.281 msaitoh CSR_WRITE(sc, WMREG_TCTL, sc->sc_tctl);
4262 1.232 bouyer
4263 1.281 msaitoh if ((sc->sc_flags & WM_F_NEWQUEUE) != 0) {
4264 1.281 msaitoh /* Write TDT after TCTL.EN is set. See the document. */
4265 1.281 msaitoh CSR_WRITE(sc, WMREG_TDT, 0);
4266 1.232 bouyer }
4267 1.232 bouyer
4268 1.281 msaitoh if (sc->sc_type == WM_T_80003) {
4269 1.281 msaitoh reg = CSR_READ(sc, WMREG_TCTL_EXT);
4270 1.281 msaitoh reg &= ~TCTL_EXT_GCEX_MASK;
4271 1.281 msaitoh reg |= DEFAULT_80003ES2LAN_TCTL_EXT_GCEX;
4272 1.281 msaitoh CSR_WRITE(sc, WMREG_TCTL_EXT, reg);
4273 1.272 ozaki }
4274 1.272 ozaki
4275 1.281 msaitoh /* Set the media. */
4276 1.281 msaitoh if ((error = mii_ifmedia_change(&sc->sc_mii)) != 0)
4277 1.281 msaitoh goto out;
4278 1.281 msaitoh
4279 1.281 msaitoh /* Configure for OS presence */
4280 1.281 msaitoh wm_init_manageability(sc);
4281 1.232 bouyer
4282 1.281 msaitoh /*
4283 1.281 msaitoh * Set up the receive control register; we actually program
4284 1.281 msaitoh * the register when we set the receive filter. Use multicast
4285 1.281 msaitoh * address offset type 0.
4286 1.281 msaitoh *
4287 1.281 msaitoh * Only the i82544 has the ability to strip the incoming
4288 1.281 msaitoh * CRC, so we don't enable that feature.
4289 1.281 msaitoh */
4290 1.281 msaitoh sc->sc_mchash_type = 0;
4291 1.281 msaitoh sc->sc_rctl = RCTL_EN | RCTL_LBM_NONE | RCTL_RDMTS_1_2 | RCTL_DPF
4292 1.281 msaitoh | RCTL_MO(sc->sc_mchash_type);
4293 1.281 msaitoh
4294 1.281 msaitoh /*
4295 1.281 msaitoh * The I350 has a bug where it always strips the CRC whether
4296 1.281 msaitoh * asked to or not. So ask for stripped CRC here and cope in rxeof
4297 1.281 msaitoh */
4298 1.281 msaitoh if ((sc->sc_type == WM_T_I350) || (sc->sc_type == WM_T_I354)
4299 1.281 msaitoh || (sc->sc_type == WM_T_I210))
4300 1.281 msaitoh sc->sc_rctl |= RCTL_SECRC;
4301 1.281 msaitoh
4302 1.281 msaitoh if (((sc->sc_ethercom.ec_capabilities & ETHERCAP_JUMBO_MTU) != 0)
4303 1.281 msaitoh && (ifp->if_mtu > ETHERMTU)) {
4304 1.281 msaitoh sc->sc_rctl |= RCTL_LPE;
4305 1.281 msaitoh if ((sc->sc_flags & WM_F_NEWQUEUE) != 0)
4306 1.281 msaitoh CSR_WRITE(sc, WMREG_RLPML, ETHER_MAX_LEN_JUMBO);
4307 1.281 msaitoh }
4308 1.281 msaitoh
4309 1.281 msaitoh if (MCLBYTES == 2048) {
4310 1.281 msaitoh sc->sc_rctl |= RCTL_2k;
4311 1.281 msaitoh } else {
4312 1.281 msaitoh if (sc->sc_type >= WM_T_82543) {
4313 1.281 msaitoh switch (MCLBYTES) {
4314 1.281 msaitoh case 4096:
4315 1.281 msaitoh sc->sc_rctl |= RCTL_BSEX | RCTL_BSEX_4k;
4316 1.281 msaitoh break;
4317 1.281 msaitoh case 8192:
4318 1.281 msaitoh sc->sc_rctl |= RCTL_BSEX | RCTL_BSEX_8k;
4319 1.281 msaitoh break;
4320 1.281 msaitoh case 16384:
4321 1.281 msaitoh sc->sc_rctl |= RCTL_BSEX | RCTL_BSEX_16k;
4322 1.281 msaitoh break;
4323 1.281 msaitoh default:
4324 1.281 msaitoh panic("wm_init: MCLBYTES %d unsupported",
4325 1.281 msaitoh MCLBYTES);
4326 1.281 msaitoh break;
4327 1.281 msaitoh }
4328 1.281 msaitoh } else panic("wm_init: i82542 requires MCLBYTES = 2048");
4329 1.281 msaitoh }
4330 1.281 msaitoh
4331 1.281 msaitoh /* Set the receive filter. */
4332 1.281 msaitoh wm_set_filter(sc);
4333 1.281 msaitoh
4334 1.281 msaitoh /* Enable ECC */
4335 1.281 msaitoh switch (sc->sc_type) {
4336 1.281 msaitoh case WM_T_82571:
4337 1.281 msaitoh reg = CSR_READ(sc, WMREG_PBA_ECC);
4338 1.281 msaitoh reg |= PBA_ECC_CORR_EN;
4339 1.281 msaitoh CSR_WRITE(sc, WMREG_PBA_ECC, reg);
4340 1.281 msaitoh break;
4341 1.281 msaitoh case WM_T_PCH_LPT:
4342 1.281 msaitoh reg = CSR_READ(sc, WMREG_PBECCSTS);
4343 1.281 msaitoh reg |= PBECCSTS_UNCORR_ECC_ENABLE;
4344 1.281 msaitoh CSR_WRITE(sc, WMREG_PBECCSTS, reg);
4345 1.281 msaitoh
4346 1.281 msaitoh reg = CSR_READ(sc, WMREG_CTRL);
4347 1.281 msaitoh reg |= CTRL_MEHE;
4348 1.281 msaitoh CSR_WRITE(sc, WMREG_CTRL, reg);
4349 1.281 msaitoh break;
4350 1.281 msaitoh default:
4351 1.281 msaitoh break;
4352 1.232 bouyer }
4353 1.281 msaitoh
4354 1.281 msaitoh /* On 575 and later set RDT only if RX enabled */
4355 1.281 msaitoh if ((sc->sc_flags & WM_F_NEWQUEUE) != 0)
4356 1.281 msaitoh for (i = 0; i < WM_NRXDESC; i++)
4357 1.281 msaitoh WM_INIT_RXDESC(sc, i);
4358 1.281 msaitoh
4359 1.281 msaitoh sc->sc_stopping = false;
4360 1.281 msaitoh
4361 1.281 msaitoh /* Start the one second link check clock. */
4362 1.281 msaitoh callout_reset(&sc->sc_tick_ch, hz, wm_tick, sc);
4363 1.281 msaitoh
4364 1.281 msaitoh /* ...all done! */
4365 1.281 msaitoh ifp->if_flags |= IFF_RUNNING;
4366 1.281 msaitoh ifp->if_flags &= ~IFF_OACTIVE;
4367 1.281 msaitoh
4368 1.281 msaitoh out:
4369 1.281 msaitoh sc->sc_if_flags = ifp->if_flags;
4370 1.281 msaitoh if (error)
4371 1.281 msaitoh log(LOG_ERR, "%s: interface not running\n",
4372 1.281 msaitoh device_xname(sc->sc_dev));
4373 1.281 msaitoh return error;
4374 1.232 bouyer }
4375 1.232 bouyer
4376 1.232 bouyer /*
4377 1.281 msaitoh * wm_stop: [ifnet interface function]
4378 1.1 thorpej *
4379 1.281 msaitoh * Stop transmission on the interface.
4380 1.1 thorpej */
4381 1.47 thorpej static void
4382 1.281 msaitoh wm_stop(struct ifnet *ifp, int disable)
4383 1.1 thorpej {
4384 1.1 thorpej struct wm_softc *sc = ifp->if_softc;
4385 1.1 thorpej
4386 1.283 ozaki WM_BOTH_LOCK(sc);
4387 1.281 msaitoh wm_stop_locked(ifp, disable);
4388 1.283 ozaki WM_BOTH_UNLOCK(sc);
4389 1.1 thorpej }
4390 1.1 thorpej
4391 1.281 msaitoh static void
4392 1.281 msaitoh wm_stop_locked(struct ifnet *ifp, int disable)
4393 1.213 msaitoh {
4394 1.213 msaitoh struct wm_softc *sc = ifp->if_softc;
4395 1.281 msaitoh struct wm_txsoft *txs;
4396 1.281 msaitoh int i;
4397 1.281 msaitoh
4398 1.283 ozaki KASSERT(WM_BOTH_LOCKED(sc));
4399 1.281 msaitoh
4400 1.281 msaitoh sc->sc_stopping = true;
4401 1.272 ozaki
4402 1.281 msaitoh /* Stop the one second clock. */
4403 1.281 msaitoh callout_stop(&sc->sc_tick_ch);
4404 1.213 msaitoh
4405 1.281 msaitoh /* Stop the 82547 Tx FIFO stall check timer. */
4406 1.281 msaitoh if (sc->sc_type == WM_T_82547)
4407 1.281 msaitoh callout_stop(&sc->sc_txfifo_ch);
4408 1.217 dyoung
4409 1.281 msaitoh if (sc->sc_flags & WM_F_HAS_MII) {
4410 1.281 msaitoh /* Down the MII. */
4411 1.281 msaitoh mii_down(&sc->sc_mii);
4412 1.281 msaitoh } else {
4413 1.281 msaitoh #if 0
4414 1.281 msaitoh /* Should we clear PHY's status properly? */
4415 1.281 msaitoh wm_reset(sc);
4416 1.281 msaitoh #endif
4417 1.272 ozaki }
4418 1.213 msaitoh
4419 1.281 msaitoh /* Stop the transmit and receive processes. */
4420 1.281 msaitoh CSR_WRITE(sc, WMREG_TCTL, 0);
4421 1.281 msaitoh CSR_WRITE(sc, WMREG_RCTL, 0);
4422 1.281 msaitoh sc->sc_rctl &= ~RCTL_EN;
4423 1.281 msaitoh
4424 1.281 msaitoh /*
4425 1.281 msaitoh * Clear the interrupt mask to ensure the device cannot assert its
4426 1.281 msaitoh * interrupt line.
4427 1.281 msaitoh * Clear sc->sc_icr to ensure wm_intr() makes no attempt to service
4428 1.281 msaitoh * any currently pending or shared interrupt.
4429 1.281 msaitoh */
4430 1.281 msaitoh CSR_WRITE(sc, WMREG_IMC, 0xffffffffU);
4431 1.281 msaitoh sc->sc_icr = 0;
4432 1.281 msaitoh
4433 1.281 msaitoh /* Release any queued transmit buffers. */
4434 1.281 msaitoh for (i = 0; i < WM_TXQUEUELEN(sc); i++) {
4435 1.281 msaitoh txs = &sc->sc_txsoft[i];
4436 1.281 msaitoh if (txs->txs_mbuf != NULL) {
4437 1.281 msaitoh bus_dmamap_unload(sc->sc_dmat, txs->txs_dmamap);
4438 1.281 msaitoh m_freem(txs->txs_mbuf);
4439 1.281 msaitoh txs->txs_mbuf = NULL;
4440 1.281 msaitoh }
4441 1.281 msaitoh }
4442 1.217 dyoung
4443 1.281 msaitoh /* Mark the interface as down and cancel the watchdog timer. */
4444 1.281 msaitoh ifp->if_flags &= ~(IFF_RUNNING | IFF_OACTIVE);
4445 1.281 msaitoh ifp->if_timer = 0;
4446 1.213 msaitoh
4447 1.281 msaitoh if (disable)
4448 1.281 msaitoh wm_rxdrain(sc);
4449 1.272 ozaki
4450 1.281 msaitoh #if 0 /* notyet */
4451 1.281 msaitoh if (sc->sc_type >= WM_T_82544)
4452 1.281 msaitoh CSR_WRITE(sc, WMREG_WUC, 0);
4453 1.281 msaitoh #endif
4454 1.213 msaitoh }
4455 1.213 msaitoh
4456 1.1 thorpej /*
4457 1.281 msaitoh * wm_tx_offload:
4458 1.1 thorpej *
4459 1.281 msaitoh * Set up TCP/IP checksumming parameters for the
4460 1.281 msaitoh * specified packet.
4461 1.1 thorpej */
4462 1.47 thorpej static int
4463 1.281 msaitoh wm_tx_offload(struct wm_softc *sc, struct wm_txsoft *txs, uint32_t *cmdp,
4464 1.281 msaitoh uint8_t *fieldsp)
4465 1.1 thorpej {
4466 1.281 msaitoh struct mbuf *m0 = txs->txs_mbuf;
4467 1.281 msaitoh struct livengood_tcpip_ctxdesc *t;
4468 1.281 msaitoh uint32_t ipcs, tucs, cmd, cmdlen, seg;
4469 1.281 msaitoh uint32_t ipcse;
4470 1.281 msaitoh struct ether_header *eh;
4471 1.281 msaitoh int offset, iphl;
4472 1.281 msaitoh uint8_t fields;
4473 1.281 msaitoh
4474 1.281 msaitoh /*
4475 1.281 msaitoh * XXX It would be nice if the mbuf pkthdr had offset
4476 1.281 msaitoh * fields for the protocol headers.
4477 1.281 msaitoh */
4478 1.281 msaitoh
4479 1.281 msaitoh eh = mtod(m0, struct ether_header *);
4480 1.281 msaitoh switch (htons(eh->ether_type)) {
4481 1.281 msaitoh case ETHERTYPE_IP:
4482 1.281 msaitoh case ETHERTYPE_IPV6:
4483 1.281 msaitoh offset = ETHER_HDR_LEN;
4484 1.281 msaitoh break;
4485 1.1 thorpej
4486 1.281 msaitoh case ETHERTYPE_VLAN:
4487 1.281 msaitoh offset = ETHER_HDR_LEN + ETHER_VLAN_ENCAP_LEN;
4488 1.281 msaitoh break;
4489 1.1 thorpej
4490 1.281 msaitoh default:
4491 1.281 msaitoh /*
4492 1.281 msaitoh * Don't support this protocol or encapsulation.
4493 1.281 msaitoh */
4494 1.281 msaitoh *fieldsp = 0;
4495 1.281 msaitoh *cmdp = 0;
4496 1.281 msaitoh return 0;
4497 1.281 msaitoh }
4498 1.281 msaitoh
4499 1.281 msaitoh if ((m0->m_pkthdr.csum_flags &
4500 1.281 msaitoh (M_CSUM_TSOv4|M_CSUM_UDPv4|M_CSUM_TCPv4)) != 0) {
4501 1.281 msaitoh iphl = M_CSUM_DATA_IPv4_IPHL(m0->m_pkthdr.csum_data);
4502 1.281 msaitoh } else {
4503 1.281 msaitoh iphl = M_CSUM_DATA_IPv6_HL(m0->m_pkthdr.csum_data);
4504 1.281 msaitoh }
4505 1.281 msaitoh ipcse = offset + iphl - 1;
4506 1.272 ozaki
4507 1.281 msaitoh cmd = WTX_CMD_DEXT | WTX_DTYP_D;
4508 1.281 msaitoh cmdlen = WTX_CMD_DEXT | WTX_DTYP_C | WTX_CMD_IDE;
4509 1.281 msaitoh seg = 0;
4510 1.281 msaitoh fields = 0;
4511 1.154 dyoung
4512 1.281 msaitoh if ((m0->m_pkthdr.csum_flags & (M_CSUM_TSOv4 | M_CSUM_TSOv6)) != 0) {
4513 1.281 msaitoh int hlen = offset + iphl;
4514 1.281 msaitoh bool v4 = (m0->m_pkthdr.csum_flags & M_CSUM_TSOv4) != 0;
4515 1.154 dyoung
4516 1.281 msaitoh if (__predict_false(m0->m_len <
4517 1.281 msaitoh (hlen + sizeof(struct tcphdr)))) {
4518 1.1 thorpej /*
4519 1.281 msaitoh * TCP/IP headers are not in the first mbuf; we need
4520 1.281 msaitoh * to do this the slow and painful way. Let's just
4521 1.281 msaitoh * hope this doesn't happen very often.
4522 1.1 thorpej */
4523 1.281 msaitoh struct tcphdr th;
4524 1.281 msaitoh
4525 1.281 msaitoh WM_EVCNT_INCR(&sc->sc_ev_txtsopain);
4526 1.1 thorpej
4527 1.281 msaitoh m_copydata(m0, hlen, sizeof(th), &th);
4528 1.281 msaitoh if (v4) {
4529 1.281 msaitoh struct ip ip;
4530 1.272 ozaki
4531 1.281 msaitoh m_copydata(m0, offset, sizeof(ip), &ip);
4532 1.281 msaitoh ip.ip_len = 0;
4533 1.281 msaitoh m_copyback(m0,
4534 1.281 msaitoh offset + offsetof(struct ip, ip_len),
4535 1.281 msaitoh sizeof(ip.ip_len), &ip.ip_len);
4536 1.281 msaitoh th.th_sum = in_cksum_phdr(ip.ip_src.s_addr,
4537 1.281 msaitoh ip.ip_dst.s_addr, htons(IPPROTO_TCP));
4538 1.281 msaitoh } else {
4539 1.281 msaitoh struct ip6_hdr ip6;
4540 1.1 thorpej
4541 1.281 msaitoh m_copydata(m0, offset, sizeof(ip6), &ip6);
4542 1.281 msaitoh ip6.ip6_plen = 0;
4543 1.281 msaitoh m_copyback(m0,
4544 1.281 msaitoh offset + offsetof(struct ip6_hdr, ip6_plen),
4545 1.281 msaitoh sizeof(ip6.ip6_plen), &ip6.ip6_plen);
4546 1.281 msaitoh th.th_sum = in6_cksum_phdr(&ip6.ip6_src,
4547 1.281 msaitoh &ip6.ip6_dst, 0, htonl(IPPROTO_TCP));
4548 1.281 msaitoh }
4549 1.281 msaitoh m_copyback(m0, hlen + offsetof(struct tcphdr, th_sum),
4550 1.281 msaitoh sizeof(th.th_sum), &th.th_sum);
4551 1.1 thorpej
4552 1.281 msaitoh hlen += th.th_off << 2;
4553 1.281 msaitoh } else {
4554 1.281 msaitoh /*
4555 1.281 msaitoh * TCP/IP headers are in the first mbuf; we can do
4556 1.281 msaitoh * this the easy way.
4557 1.281 msaitoh */
4558 1.281 msaitoh struct tcphdr *th;
4559 1.1 thorpej
4560 1.281 msaitoh if (v4) {
4561 1.281 msaitoh struct ip *ip =
4562 1.281 msaitoh (void *)(mtod(m0, char *) + offset);
4563 1.281 msaitoh th = (void *)(mtod(m0, char *) + hlen);
4564 1.1 thorpej
4565 1.281 msaitoh ip->ip_len = 0;
4566 1.281 msaitoh th->th_sum = in_cksum_phdr(ip->ip_src.s_addr,
4567 1.281 msaitoh ip->ip_dst.s_addr, htons(IPPROTO_TCP));
4568 1.281 msaitoh } else {
4569 1.281 msaitoh struct ip6_hdr *ip6 =
4570 1.281 msaitoh (void *)(mtod(m0, char *) + offset);
4571 1.281 msaitoh th = (void *)(mtod(m0, char *) + hlen);
4572 1.272 ozaki
4573 1.281 msaitoh ip6->ip6_plen = 0;
4574 1.281 msaitoh th->th_sum = in6_cksum_phdr(&ip6->ip6_src,
4575 1.281 msaitoh &ip6->ip6_dst, 0, htonl(IPPROTO_TCP));
4576 1.281 msaitoh }
4577 1.281 msaitoh hlen += th->th_off << 2;
4578 1.272 ozaki }
4579 1.272 ozaki
4580 1.281 msaitoh if (v4) {
4581 1.281 msaitoh WM_EVCNT_INCR(&sc->sc_ev_txtso);
4582 1.281 msaitoh cmdlen |= WTX_TCPIP_CMD_IP;
4583 1.281 msaitoh } else {
4584 1.281 msaitoh WM_EVCNT_INCR(&sc->sc_ev_txtso6);
4585 1.281 msaitoh ipcse = 0;
4586 1.1 thorpej }
4587 1.281 msaitoh cmd |= WTX_TCPIP_CMD_TSE;
4588 1.281 msaitoh cmdlen |= WTX_TCPIP_CMD_TSE |
4589 1.281 msaitoh WTX_TCPIP_CMD_TCP | (m0->m_pkthdr.len - hlen);
4590 1.281 msaitoh seg = WTX_TCPIP_SEG_HDRLEN(hlen) |
4591 1.281 msaitoh WTX_TCPIP_SEG_MSS(m0->m_pkthdr.segsz);
4592 1.281 msaitoh }
4593 1.1 thorpej
4594 1.281 msaitoh /*
4595 1.281 msaitoh * NOTE: Even if we're not using the IP or TCP/UDP checksum
4596 1.281 msaitoh * offload feature, if we load the context descriptor, we
4597 1.281 msaitoh * MUST provide valid values for IPCSS and TUCSS fields.
4598 1.281 msaitoh */
4599 1.1 thorpej
4600 1.281 msaitoh ipcs = WTX_TCPIP_IPCSS(offset) |
4601 1.281 msaitoh WTX_TCPIP_IPCSO(offset + offsetof(struct ip, ip_sum)) |
4602 1.281 msaitoh WTX_TCPIP_IPCSE(ipcse);
4603 1.281 msaitoh if (m0->m_pkthdr.csum_flags & (M_CSUM_IPv4|M_CSUM_TSOv4)) {
4604 1.281 msaitoh WM_EVCNT_INCR(&sc->sc_ev_txipsum);
4605 1.281 msaitoh fields |= WTX_IXSM;
4606 1.281 msaitoh }
4607 1.1 thorpej
4608 1.281 msaitoh offset += iphl;
4609 1.272 ozaki
4610 1.281 msaitoh if (m0->m_pkthdr.csum_flags &
4611 1.281 msaitoh (M_CSUM_TCPv4|M_CSUM_UDPv4|M_CSUM_TSOv4)) {
4612 1.281 msaitoh WM_EVCNT_INCR(&sc->sc_ev_txtusum);
4613 1.281 msaitoh fields |= WTX_TXSM;
4614 1.281 msaitoh tucs = WTX_TCPIP_TUCSS(offset) |
4615 1.281 msaitoh WTX_TCPIP_TUCSO(offset +
4616 1.281 msaitoh M_CSUM_DATA_IPv4_OFFSET(m0->m_pkthdr.csum_data)) |
4617 1.281 msaitoh WTX_TCPIP_TUCSE(0) /* rest of packet */;
4618 1.281 msaitoh } else if ((m0->m_pkthdr.csum_flags &
4619 1.281 msaitoh (M_CSUM_TCPv6|M_CSUM_UDPv6|M_CSUM_TSOv6)) != 0) {
4620 1.281 msaitoh WM_EVCNT_INCR(&sc->sc_ev_txtusum6);
4621 1.281 msaitoh fields |= WTX_TXSM;
4622 1.281 msaitoh tucs = WTX_TCPIP_TUCSS(offset) |
4623 1.281 msaitoh WTX_TCPIP_TUCSO(offset +
4624 1.281 msaitoh M_CSUM_DATA_IPv6_OFFSET(m0->m_pkthdr.csum_data)) |
4625 1.281 msaitoh WTX_TCPIP_TUCSE(0) /* rest of packet */;
4626 1.281 msaitoh } else {
4627 1.281 msaitoh /* Just initialize it to a valid TCP context. */
4628 1.281 msaitoh tucs = WTX_TCPIP_TUCSS(offset) |
4629 1.281 msaitoh WTX_TCPIP_TUCSO(offset + offsetof(struct tcphdr, th_sum)) |
4630 1.281 msaitoh WTX_TCPIP_TUCSE(0) /* rest of packet */;
4631 1.1 thorpej }
4632 1.1 thorpej
4633 1.281 msaitoh /* Fill in the context descriptor. */
4634 1.281 msaitoh t = (struct livengood_tcpip_ctxdesc *)
4635 1.281 msaitoh &sc->sc_txdescs[sc->sc_txnext];
4636 1.281 msaitoh t->tcpip_ipcs = htole32(ipcs);
4637 1.281 msaitoh t->tcpip_tucs = htole32(tucs);
4638 1.281 msaitoh t->tcpip_cmdlen = htole32(cmdlen);
4639 1.281 msaitoh t->tcpip_seg = htole32(seg);
4640 1.281 msaitoh WM_CDTXSYNC(sc, sc->sc_txnext, 1, BUS_DMASYNC_PREWRITE);
4641 1.281 msaitoh
4642 1.281 msaitoh sc->sc_txnext = WM_NEXTTX(sc, sc->sc_txnext);
4643 1.281 msaitoh txs->txs_ndesc++;
4644 1.281 msaitoh
4645 1.281 msaitoh *cmdp = cmd;
4646 1.281 msaitoh *fieldsp = fields;
4647 1.1 thorpej
4648 1.281 msaitoh return 0;
4649 1.1 thorpej }
4650 1.1 thorpej
4651 1.47 thorpej static void
4652 1.281 msaitoh wm_dump_mbuf_chain(struct wm_softc *sc, struct mbuf *m0)
4653 1.1 thorpej {
4654 1.281 msaitoh struct mbuf *m;
4655 1.1 thorpej int i;
4656 1.1 thorpej
4657 1.281 msaitoh log(LOG_DEBUG, "%s: mbuf chain:\n", device_xname(sc->sc_dev));
4658 1.281 msaitoh for (m = m0, i = 0; m != NULL; m = m->m_next, i++)
4659 1.281 msaitoh log(LOG_DEBUG, "%s:\tm_data = %p, m_len = %d, "
4660 1.281 msaitoh "m_flags = 0x%08x\n", device_xname(sc->sc_dev),
4661 1.281 msaitoh m->m_data, m->m_len, m->m_flags);
4662 1.281 msaitoh log(LOG_DEBUG, "%s:\t%d mbuf%s in chain\n", device_xname(sc->sc_dev),
4663 1.281 msaitoh i, i == 1 ? "" : "s");
4664 1.281 msaitoh }
4665 1.272 ozaki
4666 1.281 msaitoh /*
4667 1.281 msaitoh * wm_82547_txfifo_stall:
4668 1.281 msaitoh *
4669 1.281 msaitoh * Callout used to wait for the 82547 Tx FIFO to drain,
4670 1.281 msaitoh * reset the FIFO pointers, and restart packet transmission.
4671 1.281 msaitoh */
4672 1.281 msaitoh static void
4673 1.281 msaitoh wm_82547_txfifo_stall(void *arg)
4674 1.281 msaitoh {
4675 1.281 msaitoh struct wm_softc *sc = arg;
4676 1.281 msaitoh #ifndef WM_MPSAFE
4677 1.281 msaitoh int s;
4678 1.1 thorpej
4679 1.281 msaitoh s = splnet();
4680 1.281 msaitoh #endif
4681 1.283 ozaki WM_TX_LOCK(sc);
4682 1.1 thorpej
4683 1.281 msaitoh if (sc->sc_stopping)
4684 1.281 msaitoh goto out;
4685 1.1 thorpej
4686 1.281 msaitoh if (sc->sc_txfifo_stall) {
4687 1.281 msaitoh if (CSR_READ(sc, WMREG_TDT) == CSR_READ(sc, WMREG_TDH) &&
4688 1.281 msaitoh CSR_READ(sc, WMREG_TDFT) == CSR_READ(sc, WMREG_TDFH) &&
4689 1.281 msaitoh CSR_READ(sc, WMREG_TDFTS) == CSR_READ(sc, WMREG_TDFHS)) {
4690 1.281 msaitoh /*
4691 1.281 msaitoh * Packets have drained. Stop transmitter, reset
4692 1.281 msaitoh * FIFO pointers, restart transmitter, and kick
4693 1.281 msaitoh * the packet queue.
4694 1.281 msaitoh */
4695 1.281 msaitoh uint32_t tctl = CSR_READ(sc, WMREG_TCTL);
4696 1.281 msaitoh CSR_WRITE(sc, WMREG_TCTL, tctl & ~TCTL_EN);
4697 1.281 msaitoh CSR_WRITE(sc, WMREG_TDFT, sc->sc_txfifo_addr);
4698 1.281 msaitoh CSR_WRITE(sc, WMREG_TDFH, sc->sc_txfifo_addr);
4699 1.281 msaitoh CSR_WRITE(sc, WMREG_TDFTS, sc->sc_txfifo_addr);
4700 1.281 msaitoh CSR_WRITE(sc, WMREG_TDFHS, sc->sc_txfifo_addr);
4701 1.281 msaitoh CSR_WRITE(sc, WMREG_TCTL, tctl);
4702 1.281 msaitoh CSR_WRITE_FLUSH(sc);
4703 1.1 thorpej
4704 1.281 msaitoh sc->sc_txfifo_head = 0;
4705 1.281 msaitoh sc->sc_txfifo_stall = 0;
4706 1.281 msaitoh wm_start_locked(&sc->sc_ethercom.ec_if);
4707 1.281 msaitoh } else {
4708 1.281 msaitoh /*
4709 1.281 msaitoh * Still waiting for packets to drain; try again in
4710 1.281 msaitoh * another tick.
4711 1.281 msaitoh */
4712 1.281 msaitoh callout_schedule(&sc->sc_txfifo_ch, 1);
4713 1.20 thorpej }
4714 1.281 msaitoh }
4715 1.1 thorpej
4716 1.281 msaitoh out:
4717 1.283 ozaki WM_TX_UNLOCK(sc);
4718 1.281 msaitoh #ifndef WM_MPSAFE
4719 1.281 msaitoh splx(s);
4720 1.281 msaitoh #endif
4721 1.281 msaitoh }
4722 1.1 thorpej
4723 1.281 msaitoh /*
4724 1.281 msaitoh * wm_82547_txfifo_bugchk:
4725 1.281 msaitoh *
4726 1.281 msaitoh * Check for bug condition in the 82547 Tx FIFO. We need to
4727 1.281 msaitoh * prevent enqueueing a packet that would wrap around the end
4728 1.281 msaitoh * if the Tx FIFO ring buffer, otherwise the chip will croak.
4729 1.281 msaitoh *
4730 1.281 msaitoh * We do this by checking the amount of space before the end
4731 1.281 msaitoh * of the Tx FIFO buffer. If the packet will not fit, we "stall"
4732 1.281 msaitoh * the Tx FIFO, wait for all remaining packets to drain, reset
4733 1.281 msaitoh * the internal FIFO pointers to the beginning, and restart
4734 1.281 msaitoh * transmission on the interface.
4735 1.281 msaitoh */
4736 1.281 msaitoh #define WM_FIFO_HDR 0x10
4737 1.281 msaitoh #define WM_82547_PAD_LEN 0x3e0
4738 1.281 msaitoh static int
4739 1.281 msaitoh wm_82547_txfifo_bugchk(struct wm_softc *sc, struct mbuf *m0)
4740 1.281 msaitoh {
4741 1.281 msaitoh int space = sc->sc_txfifo_size - sc->sc_txfifo_head;
4742 1.281 msaitoh int len = roundup(m0->m_pkthdr.len + WM_FIFO_HDR, WM_FIFO_HDR);
4743 1.1 thorpej
4744 1.281 msaitoh /* Just return if already stalled. */
4745 1.281 msaitoh if (sc->sc_txfifo_stall)
4746 1.281 msaitoh return 1;
4747 1.1 thorpej
4748 1.281 msaitoh if (sc->sc_mii.mii_media_active & IFM_FDX) {
4749 1.281 msaitoh /* Stall only occurs in half-duplex mode. */
4750 1.281 msaitoh goto send_packet;
4751 1.281 msaitoh }
4752 1.1 thorpej
4753 1.281 msaitoh if (len >= WM_82547_PAD_LEN + space) {
4754 1.281 msaitoh sc->sc_txfifo_stall = 1;
4755 1.281 msaitoh callout_schedule(&sc->sc_txfifo_ch, 1);
4756 1.281 msaitoh return 1;
4757 1.1 thorpej }
4758 1.1 thorpej
4759 1.281 msaitoh send_packet:
4760 1.281 msaitoh sc->sc_txfifo_head += len;
4761 1.281 msaitoh if (sc->sc_txfifo_head >= sc->sc_txfifo_size)
4762 1.281 msaitoh sc->sc_txfifo_head -= sc->sc_txfifo_size;
4763 1.1 thorpej
4764 1.281 msaitoh return 0;
4765 1.1 thorpej }
4766 1.1 thorpej
4767 1.1 thorpej /*
4768 1.281 msaitoh * wm_start: [ifnet interface function]
4769 1.1 thorpej *
4770 1.281 msaitoh * Start packet transmission on the interface.
4771 1.1 thorpej */
4772 1.47 thorpej static void
4773 1.281 msaitoh wm_start(struct ifnet *ifp)
4774 1.1 thorpej {
4775 1.281 msaitoh struct wm_softc *sc = ifp->if_softc;
4776 1.281 msaitoh
4777 1.283 ozaki WM_TX_LOCK(sc);
4778 1.281 msaitoh if (!sc->sc_stopping)
4779 1.281 msaitoh wm_start_locked(ifp);
4780 1.283 ozaki WM_TX_UNLOCK(sc);
4781 1.281 msaitoh }
4782 1.1 thorpej
4783 1.281 msaitoh static void
4784 1.281 msaitoh wm_start_locked(struct ifnet *ifp)
4785 1.281 msaitoh {
4786 1.281 msaitoh struct wm_softc *sc = ifp->if_softc;
4787 1.281 msaitoh struct mbuf *m0;
4788 1.281 msaitoh struct m_tag *mtag;
4789 1.281 msaitoh struct wm_txsoft *txs;
4790 1.281 msaitoh bus_dmamap_t dmamap;
4791 1.281 msaitoh int error, nexttx, lasttx = -1, ofree, seg, segs_needed, use_tso;
4792 1.281 msaitoh bus_addr_t curaddr;
4793 1.281 msaitoh bus_size_t seglen, curlen;
4794 1.281 msaitoh uint32_t cksumcmd;
4795 1.281 msaitoh uint8_t cksumfields;
4796 1.1 thorpej
4797 1.283 ozaki KASSERT(WM_TX_LOCKED(sc));
4798 1.1 thorpej
4799 1.281 msaitoh if ((ifp->if_flags & (IFF_RUNNING|IFF_OACTIVE)) != IFF_RUNNING)
4800 1.281 msaitoh return;
4801 1.1 thorpej
4802 1.281 msaitoh /* Remember the previous number of free descriptors. */
4803 1.281 msaitoh ofree = sc->sc_txfree;
4804 1.1 thorpej
4805 1.281 msaitoh /*
4806 1.281 msaitoh * Loop through the send queue, setting up transmit descriptors
4807 1.281 msaitoh * until we drain the queue, or use up all available transmit
4808 1.281 msaitoh * descriptors.
4809 1.281 msaitoh */
4810 1.281 msaitoh for (;;) {
4811 1.281 msaitoh m0 = NULL;
4812 1.1 thorpej
4813 1.281 msaitoh /* Get a work queue entry. */
4814 1.281 msaitoh if (sc->sc_txsfree < WM_TXQUEUE_GC(sc)) {
4815 1.281 msaitoh wm_txintr(sc);
4816 1.281 msaitoh if (sc->sc_txsfree == 0) {
4817 1.281 msaitoh DPRINTF(WM_DEBUG_TX,
4818 1.281 msaitoh ("%s: TX: no free job descriptors\n",
4819 1.281 msaitoh device_xname(sc->sc_dev)));
4820 1.281 msaitoh WM_EVCNT_INCR(&sc->sc_ev_txsstall);
4821 1.281 msaitoh break;
4822 1.1 thorpej }
4823 1.1 thorpej }
4824 1.1 thorpej
4825 1.281 msaitoh /* Grab a packet off the queue. */
4826 1.281 msaitoh IFQ_DEQUEUE(&ifp->if_snd, m0);
4827 1.281 msaitoh if (m0 == NULL)
4828 1.281 msaitoh break;
4829 1.281 msaitoh
4830 1.281 msaitoh DPRINTF(WM_DEBUG_TX,
4831 1.281 msaitoh ("%s: TX: have packet to transmit: %p\n",
4832 1.281 msaitoh device_xname(sc->sc_dev), m0));
4833 1.281 msaitoh
4834 1.281 msaitoh txs = &sc->sc_txsoft[sc->sc_txsnext];
4835 1.281 msaitoh dmamap = txs->txs_dmamap;
4836 1.1 thorpej
4837 1.281 msaitoh use_tso = (m0->m_pkthdr.csum_flags &
4838 1.281 msaitoh (M_CSUM_TSOv4 | M_CSUM_TSOv6)) != 0;
4839 1.1 thorpej
4840 1.1 thorpej /*
4841 1.281 msaitoh * So says the Linux driver:
4842 1.281 msaitoh * The controller does a simple calculation to make sure
4843 1.281 msaitoh * there is enough room in the FIFO before initiating the
4844 1.281 msaitoh * DMA for each buffer. The calc is:
4845 1.281 msaitoh * 4 = ceil(buffer len / MSS)
4846 1.281 msaitoh * To make sure we don't overrun the FIFO, adjust the max
4847 1.281 msaitoh * buffer len if the MSS drops.
4848 1.281 msaitoh */
4849 1.281 msaitoh dmamap->dm_maxsegsz =
4850 1.281 msaitoh (use_tso && (m0->m_pkthdr.segsz << 2) < WTX_MAX_LEN)
4851 1.281 msaitoh ? m0->m_pkthdr.segsz << 2
4852 1.281 msaitoh : WTX_MAX_LEN;
4853 1.281 msaitoh
4854 1.281 msaitoh /*
4855 1.281 msaitoh * Load the DMA map. If this fails, the packet either
4856 1.281 msaitoh * didn't fit in the allotted number of segments, or we
4857 1.281 msaitoh * were short on resources. For the too-many-segments
4858 1.281 msaitoh * case, we simply report an error and drop the packet,
4859 1.281 msaitoh * since we can't sanely copy a jumbo packet to a single
4860 1.281 msaitoh * buffer.
4861 1.1 thorpej */
4862 1.281 msaitoh error = bus_dmamap_load_mbuf(sc->sc_dmat, dmamap, m0,
4863 1.281 msaitoh BUS_DMA_WRITE|BUS_DMA_NOWAIT);
4864 1.281 msaitoh if (error) {
4865 1.281 msaitoh if (error == EFBIG) {
4866 1.281 msaitoh WM_EVCNT_INCR(&sc->sc_ev_txdrop);
4867 1.281 msaitoh log(LOG_ERR, "%s: Tx packet consumes too many "
4868 1.281 msaitoh "DMA segments, dropping...\n",
4869 1.281 msaitoh device_xname(sc->sc_dev));
4870 1.281 msaitoh wm_dump_mbuf_chain(sc, m0);
4871 1.281 msaitoh m_freem(m0);
4872 1.281 msaitoh continue;
4873 1.281 msaitoh }
4874 1.281 msaitoh /* Short on resources, just stop for now. */
4875 1.281 msaitoh DPRINTF(WM_DEBUG_TX,
4876 1.281 msaitoh ("%s: TX: dmamap load failed: %d\n",
4877 1.281 msaitoh device_xname(sc->sc_dev), error));
4878 1.281 msaitoh break;
4879 1.1 thorpej }
4880 1.1 thorpej
4881 1.281 msaitoh segs_needed = dmamap->dm_nsegs;
4882 1.281 msaitoh if (use_tso) {
4883 1.281 msaitoh /* For sentinel descriptor; see below. */
4884 1.281 msaitoh segs_needed++;
4885 1.281 msaitoh }
4886 1.1 thorpej
4887 1.1 thorpej /*
4888 1.281 msaitoh * Ensure we have enough descriptors free to describe
4889 1.281 msaitoh * the packet. Note, we always reserve one descriptor
4890 1.281 msaitoh * at the end of the ring due to the semantics of the
4891 1.281 msaitoh * TDT register, plus one more in the event we need
4892 1.281 msaitoh * to load offload context.
4893 1.1 thorpej */
4894 1.281 msaitoh if (segs_needed > sc->sc_txfree - 2) {
4895 1.281 msaitoh /*
4896 1.281 msaitoh * Not enough free descriptors to transmit this
4897 1.281 msaitoh * packet. We haven't committed anything yet,
4898 1.281 msaitoh * so just unload the DMA map, put the packet
4899 1.281 msaitoh * pack on the queue, and punt. Notify the upper
4900 1.281 msaitoh * layer that there are no more slots left.
4901 1.281 msaitoh */
4902 1.281 msaitoh DPRINTF(WM_DEBUG_TX,
4903 1.281 msaitoh ("%s: TX: need %d (%d) descriptors, have %d\n",
4904 1.281 msaitoh device_xname(sc->sc_dev), dmamap->dm_nsegs,
4905 1.281 msaitoh segs_needed, sc->sc_txfree - 1));
4906 1.281 msaitoh ifp->if_flags |= IFF_OACTIVE;
4907 1.281 msaitoh bus_dmamap_unload(sc->sc_dmat, dmamap);
4908 1.281 msaitoh WM_EVCNT_INCR(&sc->sc_ev_txdstall);
4909 1.281 msaitoh break;
4910 1.1 thorpej }
4911 1.1 thorpej
4912 1.1 thorpej /*
4913 1.281 msaitoh * Check for 82547 Tx FIFO bug. We need to do this
4914 1.281 msaitoh * once we know we can transmit the packet, since we
4915 1.281 msaitoh * do some internal FIFO space accounting here.
4916 1.1 thorpej */
4917 1.281 msaitoh if (sc->sc_type == WM_T_82547 &&
4918 1.281 msaitoh wm_82547_txfifo_bugchk(sc, m0)) {
4919 1.281 msaitoh DPRINTF(WM_DEBUG_TX,
4920 1.281 msaitoh ("%s: TX: 82547 Tx FIFO bug detected\n",
4921 1.281 msaitoh device_xname(sc->sc_dev)));
4922 1.281 msaitoh ifp->if_flags |= IFF_OACTIVE;
4923 1.281 msaitoh bus_dmamap_unload(sc->sc_dmat, dmamap);
4924 1.281 msaitoh WM_EVCNT_INCR(&sc->sc_ev_txfifo_stall);
4925 1.281 msaitoh break;
4926 1.281 msaitoh }
4927 1.93 thorpej
4928 1.281 msaitoh /* WE ARE NOW COMMITTED TO TRANSMITTING THE PACKET. */
4929 1.1 thorpej
4930 1.281 msaitoh DPRINTF(WM_DEBUG_TX,
4931 1.281 msaitoh ("%s: TX: packet has %d (%d) DMA segments\n",
4932 1.281 msaitoh device_xname(sc->sc_dev), dmamap->dm_nsegs, segs_needed));
4933 1.1 thorpej
4934 1.281 msaitoh WM_EVCNT_INCR(&sc->sc_ev_txseg[dmamap->dm_nsegs - 1]);
4935 1.1 thorpej
4936 1.1 thorpej /*
4937 1.281 msaitoh * Store a pointer to the packet so that we can free it
4938 1.281 msaitoh * later.
4939 1.281 msaitoh *
4940 1.281 msaitoh * Initially, we consider the number of descriptors the
4941 1.281 msaitoh * packet uses the number of DMA segments. This may be
4942 1.281 msaitoh * incremented by 1 if we do checksum offload (a descriptor
4943 1.281 msaitoh * is used to set the checksum context).
4944 1.1 thorpej */
4945 1.281 msaitoh txs->txs_mbuf = m0;
4946 1.281 msaitoh txs->txs_firstdesc = sc->sc_txnext;
4947 1.281 msaitoh txs->txs_ndesc = segs_needed;
4948 1.281 msaitoh
4949 1.281 msaitoh /* Set up offload parameters for this packet. */
4950 1.281 msaitoh if (m0->m_pkthdr.csum_flags &
4951 1.281 msaitoh (M_CSUM_TSOv4|M_CSUM_TSOv6|
4952 1.281 msaitoh M_CSUM_IPv4|M_CSUM_TCPv4|M_CSUM_UDPv4|
4953 1.281 msaitoh M_CSUM_TCPv6|M_CSUM_UDPv6)) {
4954 1.281 msaitoh if (wm_tx_offload(sc, txs, &cksumcmd,
4955 1.281 msaitoh &cksumfields) != 0) {
4956 1.281 msaitoh /* Error message already displayed. */
4957 1.281 msaitoh bus_dmamap_unload(sc->sc_dmat, dmamap);
4958 1.281 msaitoh continue;
4959 1.281 msaitoh }
4960 1.281 msaitoh } else {
4961 1.281 msaitoh cksumcmd = 0;
4962 1.281 msaitoh cksumfields = 0;
4963 1.1 thorpej }
4964 1.1 thorpej
4965 1.281 msaitoh cksumcmd |= WTX_CMD_IDE | WTX_CMD_IFCS;
4966 1.281 msaitoh
4967 1.281 msaitoh /* Sync the DMA map. */
4968 1.281 msaitoh bus_dmamap_sync(sc->sc_dmat, dmamap, 0, dmamap->dm_mapsize,
4969 1.281 msaitoh BUS_DMASYNC_PREWRITE);
4970 1.1 thorpej
4971 1.281 msaitoh /* Initialize the transmit descriptor. */
4972 1.281 msaitoh for (nexttx = sc->sc_txnext, seg = 0;
4973 1.281 msaitoh seg < dmamap->dm_nsegs; seg++) {
4974 1.281 msaitoh for (seglen = dmamap->dm_segs[seg].ds_len,
4975 1.281 msaitoh curaddr = dmamap->dm_segs[seg].ds_addr;
4976 1.281 msaitoh seglen != 0;
4977 1.281 msaitoh curaddr += curlen, seglen -= curlen,
4978 1.281 msaitoh nexttx = WM_NEXTTX(sc, nexttx)) {
4979 1.281 msaitoh curlen = seglen;
4980 1.1 thorpej
4981 1.106 yamt /*
4982 1.281 msaitoh * So says the Linux driver:
4983 1.281 msaitoh * Work around for premature descriptor
4984 1.281 msaitoh * write-backs in TSO mode. Append a
4985 1.281 msaitoh * 4-byte sentinel descriptor.
4986 1.106 yamt */
4987 1.281 msaitoh if (use_tso &&
4988 1.281 msaitoh seg == dmamap->dm_nsegs - 1 &&
4989 1.281 msaitoh curlen > 8)
4990 1.281 msaitoh curlen -= 4;
4991 1.281 msaitoh
4992 1.281 msaitoh wm_set_dma_addr(
4993 1.281 msaitoh &sc->sc_txdescs[nexttx].wtx_addr,
4994 1.281 msaitoh curaddr);
4995 1.281 msaitoh sc->sc_txdescs[nexttx].wtx_cmdlen =
4996 1.281 msaitoh htole32(cksumcmd | curlen);
4997 1.281 msaitoh sc->sc_txdescs[nexttx].wtx_fields.wtxu_status =
4998 1.281 msaitoh 0;
4999 1.281 msaitoh sc->sc_txdescs[nexttx].wtx_fields.wtxu_options =
5000 1.281 msaitoh cksumfields;
5001 1.281 msaitoh sc->sc_txdescs[nexttx].wtx_fields.wtxu_vlan = 0;
5002 1.281 msaitoh lasttx = nexttx;
5003 1.281 msaitoh
5004 1.281 msaitoh DPRINTF(WM_DEBUG_TX,
5005 1.281 msaitoh ("%s: TX: desc %d: low %#" PRIx64 ", "
5006 1.281 msaitoh "len %#04zx\n",
5007 1.281 msaitoh device_xname(sc->sc_dev), nexttx,
5008 1.281 msaitoh (uint64_t)curaddr, curlen));
5009 1.106 yamt }
5010 1.1 thorpej }
5011 1.1 thorpej
5012 1.281 msaitoh KASSERT(lasttx != -1);
5013 1.1 thorpej
5014 1.281 msaitoh /*
5015 1.281 msaitoh * Set up the command byte on the last descriptor of
5016 1.281 msaitoh * the packet. If we're in the interrupt delay window,
5017 1.281 msaitoh * delay the interrupt.
5018 1.281 msaitoh */
5019 1.281 msaitoh sc->sc_txdescs[lasttx].wtx_cmdlen |=
5020 1.281 msaitoh htole32(WTX_CMD_EOP | WTX_CMD_RS);
5021 1.281 msaitoh
5022 1.281 msaitoh /*
5023 1.281 msaitoh * If VLANs are enabled and the packet has a VLAN tag, set
5024 1.281 msaitoh * up the descriptor to encapsulate the packet for us.
5025 1.281 msaitoh *
5026 1.281 msaitoh * This is only valid on the last descriptor of the packet.
5027 1.281 msaitoh */
5028 1.281 msaitoh if ((mtag = VLAN_OUTPUT_TAG(&sc->sc_ethercom, m0)) != NULL) {
5029 1.281 msaitoh sc->sc_txdescs[lasttx].wtx_cmdlen |=
5030 1.281 msaitoh htole32(WTX_CMD_VLE);
5031 1.281 msaitoh sc->sc_txdescs[lasttx].wtx_fields.wtxu_vlan
5032 1.281 msaitoh = htole16(VLAN_TAG_VALUE(mtag) & 0xffff);
5033 1.281 msaitoh }
5034 1.281 msaitoh
5035 1.281 msaitoh txs->txs_lastdesc = lasttx;
5036 1.281 msaitoh
5037 1.281 msaitoh DPRINTF(WM_DEBUG_TX,
5038 1.281 msaitoh ("%s: TX: desc %d: cmdlen 0x%08x\n",
5039 1.281 msaitoh device_xname(sc->sc_dev),
5040 1.281 msaitoh lasttx, le32toh(sc->sc_txdescs[lasttx].wtx_cmdlen)));
5041 1.281 msaitoh
5042 1.281 msaitoh /* Sync the descriptors we're using. */
5043 1.281 msaitoh WM_CDTXSYNC(sc, sc->sc_txnext, txs->txs_ndesc,
5044 1.281 msaitoh BUS_DMASYNC_PREREAD|BUS_DMASYNC_PREWRITE);
5045 1.281 msaitoh
5046 1.281 msaitoh /* Give the packet to the chip. */
5047 1.281 msaitoh CSR_WRITE(sc, sc->sc_tdt_reg, nexttx);
5048 1.281 msaitoh
5049 1.281 msaitoh DPRINTF(WM_DEBUG_TX,
5050 1.281 msaitoh ("%s: TX: TDT -> %d\n", device_xname(sc->sc_dev), nexttx));
5051 1.281 msaitoh
5052 1.281 msaitoh DPRINTF(WM_DEBUG_TX,
5053 1.281 msaitoh ("%s: TX: finished transmitting packet, job %d\n",
5054 1.281 msaitoh device_xname(sc->sc_dev), sc->sc_txsnext));
5055 1.272 ozaki
5056 1.281 msaitoh /* Advance the tx pointer. */
5057 1.281 msaitoh sc->sc_txfree -= txs->txs_ndesc;
5058 1.281 msaitoh sc->sc_txnext = nexttx;
5059 1.1 thorpej
5060 1.281 msaitoh sc->sc_txsfree--;
5061 1.281 msaitoh sc->sc_txsnext = WM_NEXTTXS(sc, sc->sc_txsnext);
5062 1.272 ozaki
5063 1.281 msaitoh /* Pass the packet to any BPF listeners. */
5064 1.281 msaitoh bpf_mtap(ifp, m0);
5065 1.281 msaitoh }
5066 1.272 ozaki
5067 1.281 msaitoh if (m0 != NULL) {
5068 1.281 msaitoh ifp->if_flags |= IFF_OACTIVE;
5069 1.281 msaitoh WM_EVCNT_INCR(&sc->sc_ev_txdrop);
5070 1.281 msaitoh DPRINTF(WM_DEBUG_TX, ("%s: TX: error after IFQ_DEQUEUE\n", __func__));
5071 1.281 msaitoh m_freem(m0);
5072 1.1 thorpej }
5073 1.1 thorpej
5074 1.281 msaitoh if (sc->sc_txsfree == 0 || sc->sc_txfree <= 2) {
5075 1.281 msaitoh /* No more slots; notify upper layer. */
5076 1.281 msaitoh ifp->if_flags |= IFF_OACTIVE;
5077 1.281 msaitoh }
5078 1.1 thorpej
5079 1.281 msaitoh if (sc->sc_txfree != ofree) {
5080 1.281 msaitoh /* Set a watchdog timer in case the chip flakes out. */
5081 1.281 msaitoh ifp->if_timer = 5;
5082 1.281 msaitoh }
5083 1.1 thorpej }
5084 1.1 thorpej
5085 1.1 thorpej /*
5086 1.281 msaitoh * wm_nq_tx_offload:
5087 1.1 thorpej *
5088 1.281 msaitoh * Set up TCP/IP checksumming parameters for the
5089 1.281 msaitoh * specified packet, for NEWQUEUE devices
5090 1.1 thorpej */
5091 1.281 msaitoh static int
5092 1.281 msaitoh wm_nq_tx_offload(struct wm_softc *sc, struct wm_txsoft *txs,
5093 1.281 msaitoh uint32_t *cmdlenp, uint32_t *fieldsp, bool *do_csum)
5094 1.1 thorpej {
5095 1.281 msaitoh struct mbuf *m0 = txs->txs_mbuf;
5096 1.281 msaitoh struct m_tag *mtag;
5097 1.281 msaitoh uint32_t vl_len, mssidx, cmdc;
5098 1.281 msaitoh struct ether_header *eh;
5099 1.281 msaitoh int offset, iphl;
5100 1.281 msaitoh
5101 1.281 msaitoh /*
5102 1.281 msaitoh * XXX It would be nice if the mbuf pkthdr had offset
5103 1.281 msaitoh * fields for the protocol headers.
5104 1.281 msaitoh */
5105 1.281 msaitoh *cmdlenp = 0;
5106 1.281 msaitoh *fieldsp = 0;
5107 1.281 msaitoh
5108 1.281 msaitoh eh = mtod(m0, struct ether_header *);
5109 1.281 msaitoh switch (htons(eh->ether_type)) {
5110 1.281 msaitoh case ETHERTYPE_IP:
5111 1.281 msaitoh case ETHERTYPE_IPV6:
5112 1.281 msaitoh offset = ETHER_HDR_LEN;
5113 1.281 msaitoh break;
5114 1.281 msaitoh
5115 1.281 msaitoh case ETHERTYPE_VLAN:
5116 1.281 msaitoh offset = ETHER_HDR_LEN + ETHER_VLAN_ENCAP_LEN;
5117 1.281 msaitoh break;
5118 1.281 msaitoh
5119 1.281 msaitoh default:
5120 1.281 msaitoh /* Don't support this protocol or encapsulation. */
5121 1.281 msaitoh *do_csum = false;
5122 1.281 msaitoh return 0;
5123 1.281 msaitoh }
5124 1.281 msaitoh *do_csum = true;
5125 1.281 msaitoh *cmdlenp = NQTX_DTYP_D | NQTX_CMD_DEXT | NQTX_CMD_IFCS;
5126 1.281 msaitoh cmdc = NQTX_DTYP_C | NQTX_CMD_DEXT;
5127 1.1 thorpej
5128 1.281 msaitoh vl_len = (offset << NQTXC_VLLEN_MACLEN_SHIFT);
5129 1.281 msaitoh KASSERT((offset & ~NQTXC_VLLEN_MACLEN_MASK) == 0);
5130 1.281 msaitoh
5131 1.281 msaitoh if ((m0->m_pkthdr.csum_flags &
5132 1.281 msaitoh (M_CSUM_TSOv4|M_CSUM_UDPv4|M_CSUM_TCPv4|M_CSUM_IPv4)) != 0) {
5133 1.281 msaitoh iphl = M_CSUM_DATA_IPv4_IPHL(m0->m_pkthdr.csum_data);
5134 1.281 msaitoh } else {
5135 1.281 msaitoh iphl = M_CSUM_DATA_IPv6_HL(m0->m_pkthdr.csum_data);
5136 1.281 msaitoh }
5137 1.281 msaitoh vl_len |= (iphl << NQTXC_VLLEN_IPLEN_SHIFT);
5138 1.281 msaitoh KASSERT((iphl & ~NQTXC_VLLEN_IPLEN_MASK) == 0);
5139 1.281 msaitoh
5140 1.281 msaitoh if ((mtag = VLAN_OUTPUT_TAG(&sc->sc_ethercom, m0)) != NULL) {
5141 1.281 msaitoh vl_len |= ((VLAN_TAG_VALUE(mtag) & NQTXC_VLLEN_VLAN_MASK)
5142 1.281 msaitoh << NQTXC_VLLEN_VLAN_SHIFT);
5143 1.281 msaitoh *cmdlenp |= NQTX_CMD_VLE;
5144 1.281 msaitoh }
5145 1.272 ozaki
5146 1.281 msaitoh mssidx = 0;
5147 1.170 msaitoh
5148 1.281 msaitoh if ((m0->m_pkthdr.csum_flags & (M_CSUM_TSOv4 | M_CSUM_TSOv6)) != 0) {
5149 1.281 msaitoh int hlen = offset + iphl;
5150 1.281 msaitoh int tcp_hlen;
5151 1.281 msaitoh bool v4 = (m0->m_pkthdr.csum_flags & M_CSUM_TSOv4) != 0;
5152 1.192 msaitoh
5153 1.281 msaitoh if (__predict_false(m0->m_len <
5154 1.281 msaitoh (hlen + sizeof(struct tcphdr)))) {
5155 1.192 msaitoh /*
5156 1.281 msaitoh * TCP/IP headers are not in the first mbuf; we need
5157 1.281 msaitoh * to do this the slow and painful way. Let's just
5158 1.281 msaitoh * hope this doesn't happen very often.
5159 1.192 msaitoh */
5160 1.281 msaitoh struct tcphdr th;
5161 1.170 msaitoh
5162 1.281 msaitoh WM_EVCNT_INCR(&sc->sc_ev_txtsopain);
5163 1.192 msaitoh
5164 1.281 msaitoh m_copydata(m0, hlen, sizeof(th), &th);
5165 1.281 msaitoh if (v4) {
5166 1.281 msaitoh struct ip ip;
5167 1.192 msaitoh
5168 1.281 msaitoh m_copydata(m0, offset, sizeof(ip), &ip);
5169 1.281 msaitoh ip.ip_len = 0;
5170 1.281 msaitoh m_copyback(m0,
5171 1.281 msaitoh offset + offsetof(struct ip, ip_len),
5172 1.281 msaitoh sizeof(ip.ip_len), &ip.ip_len);
5173 1.281 msaitoh th.th_sum = in_cksum_phdr(ip.ip_src.s_addr,
5174 1.281 msaitoh ip.ip_dst.s_addr, htons(IPPROTO_TCP));
5175 1.281 msaitoh } else {
5176 1.281 msaitoh struct ip6_hdr ip6;
5177 1.192 msaitoh
5178 1.281 msaitoh m_copydata(m0, offset, sizeof(ip6), &ip6);
5179 1.281 msaitoh ip6.ip6_plen = 0;
5180 1.281 msaitoh m_copyback(m0,
5181 1.281 msaitoh offset + offsetof(struct ip6_hdr, ip6_plen),
5182 1.281 msaitoh sizeof(ip6.ip6_plen), &ip6.ip6_plen);
5183 1.281 msaitoh th.th_sum = in6_cksum_phdr(&ip6.ip6_src,
5184 1.281 msaitoh &ip6.ip6_dst, 0, htonl(IPPROTO_TCP));
5185 1.170 msaitoh }
5186 1.281 msaitoh m_copyback(m0, hlen + offsetof(struct tcphdr, th_sum),
5187 1.281 msaitoh sizeof(th.th_sum), &th.th_sum);
5188 1.192 msaitoh
5189 1.281 msaitoh tcp_hlen = th.th_off << 2;
5190 1.281 msaitoh } else {
5191 1.173 msaitoh /*
5192 1.281 msaitoh * TCP/IP headers are in the first mbuf; we can do
5193 1.281 msaitoh * this the easy way.
5194 1.173 msaitoh */
5195 1.281 msaitoh struct tcphdr *th;
5196 1.198 msaitoh
5197 1.281 msaitoh if (v4) {
5198 1.281 msaitoh struct ip *ip =
5199 1.281 msaitoh (void *)(mtod(m0, char *) + offset);
5200 1.281 msaitoh th = (void *)(mtod(m0, char *) + hlen);
5201 1.1 thorpej
5202 1.281 msaitoh ip->ip_len = 0;
5203 1.281 msaitoh th->th_sum = in_cksum_phdr(ip->ip_src.s_addr,
5204 1.281 msaitoh ip->ip_dst.s_addr, htons(IPPROTO_TCP));
5205 1.281 msaitoh } else {
5206 1.281 msaitoh struct ip6_hdr *ip6 =
5207 1.281 msaitoh (void *)(mtod(m0, char *) + offset);
5208 1.281 msaitoh th = (void *)(mtod(m0, char *) + hlen);
5209 1.192 msaitoh
5210 1.281 msaitoh ip6->ip6_plen = 0;
5211 1.281 msaitoh th->th_sum = in6_cksum_phdr(&ip6->ip6_src,
5212 1.281 msaitoh &ip6->ip6_dst, 0, htonl(IPPROTO_TCP));
5213 1.281 msaitoh }
5214 1.281 msaitoh tcp_hlen = th->th_off << 2;
5215 1.144 msaitoh }
5216 1.281 msaitoh hlen += tcp_hlen;
5217 1.281 msaitoh *cmdlenp |= NQTX_CMD_TSE;
5218 1.144 msaitoh
5219 1.281 msaitoh if (v4) {
5220 1.281 msaitoh WM_EVCNT_INCR(&sc->sc_ev_txtso);
5221 1.281 msaitoh *fieldsp |= NQTXD_FIELDS_IXSM | NQTXD_FIELDS_TUXSM;
5222 1.281 msaitoh } else {
5223 1.281 msaitoh WM_EVCNT_INCR(&sc->sc_ev_txtso6);
5224 1.281 msaitoh *fieldsp |= NQTXD_FIELDS_TUXSM;
5225 1.189 msaitoh }
5226 1.281 msaitoh *fieldsp |= ((m0->m_pkthdr.len - hlen) << NQTXD_FIELDS_PAYLEN_SHIFT);
5227 1.281 msaitoh KASSERT(((m0->m_pkthdr.len - hlen) & ~NQTXD_FIELDS_PAYLEN_MASK) == 0);
5228 1.281 msaitoh mssidx |= (m0->m_pkthdr.segsz << NQTXC_MSSIDX_MSS_SHIFT);
5229 1.281 msaitoh KASSERT((m0->m_pkthdr.segsz & ~NQTXC_MSSIDX_MSS_MASK) == 0);
5230 1.281 msaitoh mssidx |= (tcp_hlen << NQTXC_MSSIDX_L4LEN_SHIFT);
5231 1.281 msaitoh KASSERT((tcp_hlen & ~NQTXC_MSSIDX_L4LEN_MASK) == 0);
5232 1.281 msaitoh } else {
5233 1.281 msaitoh *fieldsp |= (m0->m_pkthdr.len << NQTXD_FIELDS_PAYLEN_SHIFT);
5234 1.281 msaitoh KASSERT((m0->m_pkthdr.len & ~NQTXD_FIELDS_PAYLEN_MASK) == 0);
5235 1.208 msaitoh }
5236 1.208 msaitoh
5237 1.281 msaitoh if (m0->m_pkthdr.csum_flags & M_CSUM_IPv4) {
5238 1.281 msaitoh *fieldsp |= NQTXD_FIELDS_IXSM;
5239 1.281 msaitoh cmdc |= NQTXC_CMD_IP4;
5240 1.281 msaitoh }
5241 1.144 msaitoh
5242 1.281 msaitoh if (m0->m_pkthdr.csum_flags &
5243 1.281 msaitoh (M_CSUM_UDPv4 | M_CSUM_TCPv4 | M_CSUM_TSOv4)) {
5244 1.281 msaitoh WM_EVCNT_INCR(&sc->sc_ev_txtusum);
5245 1.281 msaitoh if (m0->m_pkthdr.csum_flags & (M_CSUM_TCPv4 | M_CSUM_TSOv4)) {
5246 1.281 msaitoh cmdc |= NQTXC_CMD_TCP;
5247 1.281 msaitoh } else {
5248 1.281 msaitoh cmdc |= NQTXC_CMD_UDP;
5249 1.281 msaitoh }
5250 1.281 msaitoh cmdc |= NQTXC_CMD_IP4;
5251 1.281 msaitoh *fieldsp |= NQTXD_FIELDS_TUXSM;
5252 1.281 msaitoh }
5253 1.281 msaitoh if (m0->m_pkthdr.csum_flags &
5254 1.281 msaitoh (M_CSUM_UDPv6 | M_CSUM_TCPv6 | M_CSUM_TSOv6)) {
5255 1.281 msaitoh WM_EVCNT_INCR(&sc->sc_ev_txtusum6);
5256 1.281 msaitoh if (m0->m_pkthdr.csum_flags & (M_CSUM_TCPv6 | M_CSUM_TSOv6)) {
5257 1.281 msaitoh cmdc |= NQTXC_CMD_TCP;
5258 1.281 msaitoh } else {
5259 1.281 msaitoh cmdc |= NQTXC_CMD_UDP;
5260 1.281 msaitoh }
5261 1.281 msaitoh cmdc |= NQTXC_CMD_IP6;
5262 1.281 msaitoh *fieldsp |= NQTXD_FIELDS_TUXSM;
5263 1.281 msaitoh }
5264 1.1 thorpej
5265 1.281 msaitoh /* Fill in the context descriptor. */
5266 1.281 msaitoh sc->sc_nq_txdescs[sc->sc_txnext].nqrx_ctx.nqtxc_vl_len =
5267 1.281 msaitoh htole32(vl_len);
5268 1.281 msaitoh sc->sc_nq_txdescs[sc->sc_txnext].nqrx_ctx.nqtxc_sn = 0;
5269 1.281 msaitoh sc->sc_nq_txdescs[sc->sc_txnext].nqrx_ctx.nqtxc_cmd =
5270 1.281 msaitoh htole32(cmdc);
5271 1.281 msaitoh sc->sc_nq_txdescs[sc->sc_txnext].nqrx_ctx.nqtxc_mssidx =
5272 1.281 msaitoh htole32(mssidx);
5273 1.281 msaitoh WM_CDTXSYNC(sc, sc->sc_txnext, 1, BUS_DMASYNC_PREWRITE);
5274 1.281 msaitoh DPRINTF(WM_DEBUG_TX,
5275 1.281 msaitoh ("%s: TX: context desc %d 0x%08x%08x\n", device_xname(sc->sc_dev),
5276 1.281 msaitoh sc->sc_txnext, 0, vl_len));
5277 1.281 msaitoh DPRINTF(WM_DEBUG_TX, ("\t0x%08x%08x\n", mssidx, cmdc));
5278 1.281 msaitoh sc->sc_txnext = WM_NEXTTX(sc, sc->sc_txnext);
5279 1.281 msaitoh txs->txs_ndesc++;
5280 1.281 msaitoh return 0;
5281 1.217 dyoung }
5282 1.217 dyoung
5283 1.1 thorpej /*
5284 1.281 msaitoh * wm_nq_start: [ifnet interface function]
5285 1.1 thorpej *
5286 1.281 msaitoh * Start packet transmission on the interface for NEWQUEUE devices
5287 1.1 thorpej */
5288 1.281 msaitoh static void
5289 1.281 msaitoh wm_nq_start(struct ifnet *ifp)
5290 1.1 thorpej {
5291 1.1 thorpej struct wm_softc *sc = ifp->if_softc;
5292 1.272 ozaki
5293 1.283 ozaki WM_TX_LOCK(sc);
5294 1.281 msaitoh if (!sc->sc_stopping)
5295 1.281 msaitoh wm_nq_start_locked(ifp);
5296 1.283 ozaki WM_TX_UNLOCK(sc);
5297 1.272 ozaki }
5298 1.272 ozaki
5299 1.281 msaitoh static void
5300 1.281 msaitoh wm_nq_start_locked(struct ifnet *ifp)
5301 1.272 ozaki {
5302 1.272 ozaki struct wm_softc *sc = ifp->if_softc;
5303 1.281 msaitoh struct mbuf *m0;
5304 1.281 msaitoh struct m_tag *mtag;
5305 1.281 msaitoh struct wm_txsoft *txs;
5306 1.281 msaitoh bus_dmamap_t dmamap;
5307 1.281 msaitoh int error, nexttx, lasttx = -1, seg, segs_needed;
5308 1.281 msaitoh bool do_csum, sent;
5309 1.1 thorpej
5310 1.283 ozaki KASSERT(WM_TX_LOCKED(sc));
5311 1.41 tls
5312 1.281 msaitoh if ((ifp->if_flags & (IFF_RUNNING|IFF_OACTIVE)) != IFF_RUNNING)
5313 1.281 msaitoh return;
5314 1.1 thorpej
5315 1.281 msaitoh sent = false;
5316 1.1 thorpej
5317 1.1 thorpej /*
5318 1.281 msaitoh * Loop through the send queue, setting up transmit descriptors
5319 1.281 msaitoh * until we drain the queue, or use up all available transmit
5320 1.281 msaitoh * descriptors.
5321 1.1 thorpej */
5322 1.281 msaitoh for (;;) {
5323 1.281 msaitoh m0 = NULL;
5324 1.281 msaitoh
5325 1.281 msaitoh /* Get a work queue entry. */
5326 1.281 msaitoh if (sc->sc_txsfree < WM_TXQUEUE_GC(sc)) {
5327 1.281 msaitoh wm_txintr(sc);
5328 1.281 msaitoh if (sc->sc_txsfree == 0) {
5329 1.281 msaitoh DPRINTF(WM_DEBUG_TX,
5330 1.281 msaitoh ("%s: TX: no free job descriptors\n",
5331 1.281 msaitoh device_xname(sc->sc_dev)));
5332 1.281 msaitoh WM_EVCNT_INCR(&sc->sc_ev_txsstall);
5333 1.281 msaitoh break;
5334 1.281 msaitoh }
5335 1.281 msaitoh }
5336 1.1 thorpej
5337 1.281 msaitoh /* Grab a packet off the queue. */
5338 1.281 msaitoh IFQ_DEQUEUE(&ifp->if_snd, m0);
5339 1.281 msaitoh if (m0 == NULL)
5340 1.281 msaitoh break;
5341 1.71 thorpej
5342 1.281 msaitoh DPRINTF(WM_DEBUG_TX,
5343 1.281 msaitoh ("%s: TX: have packet to transmit: %p\n",
5344 1.281 msaitoh device_xname(sc->sc_dev), m0));
5345 1.177 msaitoh
5346 1.281 msaitoh txs = &sc->sc_txsoft[sc->sc_txsnext];
5347 1.281 msaitoh dmamap = txs->txs_dmamap;
5348 1.1 thorpej
5349 1.281 msaitoh /*
5350 1.281 msaitoh * Load the DMA map. If this fails, the packet either
5351 1.281 msaitoh * didn't fit in the allotted number of segments, or we
5352 1.281 msaitoh * were short on resources. For the too-many-segments
5353 1.281 msaitoh * case, we simply report an error and drop the packet,
5354 1.281 msaitoh * since we can't sanely copy a jumbo packet to a single
5355 1.281 msaitoh * buffer.
5356 1.281 msaitoh */
5357 1.281 msaitoh error = bus_dmamap_load_mbuf(sc->sc_dmat, dmamap, m0,
5358 1.281 msaitoh BUS_DMA_WRITE|BUS_DMA_NOWAIT);
5359 1.281 msaitoh if (error) {
5360 1.281 msaitoh if (error == EFBIG) {
5361 1.281 msaitoh WM_EVCNT_INCR(&sc->sc_ev_txdrop);
5362 1.281 msaitoh log(LOG_ERR, "%s: Tx packet consumes too many "
5363 1.281 msaitoh "DMA segments, dropping...\n",
5364 1.281 msaitoh device_xname(sc->sc_dev));
5365 1.281 msaitoh wm_dump_mbuf_chain(sc, m0);
5366 1.281 msaitoh m_freem(m0);
5367 1.281 msaitoh continue;
5368 1.281 msaitoh }
5369 1.281 msaitoh /* Short on resources, just stop for now. */
5370 1.281 msaitoh DPRINTF(WM_DEBUG_TX,
5371 1.281 msaitoh ("%s: TX: dmamap load failed: %d\n",
5372 1.281 msaitoh device_xname(sc->sc_dev), error));
5373 1.281 msaitoh break;
5374 1.281 msaitoh }
5375 1.177 msaitoh
5376 1.281 msaitoh segs_needed = dmamap->dm_nsegs;
5377 1.177 msaitoh
5378 1.281 msaitoh /*
5379 1.281 msaitoh * Ensure we have enough descriptors free to describe
5380 1.281 msaitoh * the packet. Note, we always reserve one descriptor
5381 1.281 msaitoh * at the end of the ring due to the semantics of the
5382 1.281 msaitoh * TDT register, plus one more in the event we need
5383 1.281 msaitoh * to load offload context.
5384 1.281 msaitoh */
5385 1.281 msaitoh if (segs_needed > sc->sc_txfree - 2) {
5386 1.177 msaitoh /*
5387 1.281 msaitoh * Not enough free descriptors to transmit this
5388 1.281 msaitoh * packet. We haven't committed anything yet,
5389 1.281 msaitoh * so just unload the DMA map, put the packet
5390 1.281 msaitoh * pack on the queue, and punt. Notify the upper
5391 1.281 msaitoh * layer that there are no more slots left.
5392 1.177 msaitoh */
5393 1.281 msaitoh DPRINTF(WM_DEBUG_TX,
5394 1.281 msaitoh ("%s: TX: need %d (%d) descriptors, have %d\n",
5395 1.281 msaitoh device_xname(sc->sc_dev), dmamap->dm_nsegs,
5396 1.281 msaitoh segs_needed, sc->sc_txfree - 1));
5397 1.281 msaitoh ifp->if_flags |= IFF_OACTIVE;
5398 1.281 msaitoh bus_dmamap_unload(sc->sc_dmat, dmamap);
5399 1.281 msaitoh WM_EVCNT_INCR(&sc->sc_ev_txdstall);
5400 1.177 msaitoh break;
5401 1.177 msaitoh }
5402 1.177 msaitoh
5403 1.281 msaitoh /* WE ARE NOW COMMITTED TO TRANSMITTING THE PACKET. */
5404 1.281 msaitoh
5405 1.281 msaitoh DPRINTF(WM_DEBUG_TX,
5406 1.281 msaitoh ("%s: TX: packet has %d (%d) DMA segments\n",
5407 1.281 msaitoh device_xname(sc->sc_dev), dmamap->dm_nsegs, segs_needed));
5408 1.177 msaitoh
5409 1.281 msaitoh WM_EVCNT_INCR(&sc->sc_ev_txseg[dmamap->dm_nsegs - 1]);
5410 1.1 thorpej
5411 1.281 msaitoh /*
5412 1.281 msaitoh * Store a pointer to the packet so that we can free it
5413 1.281 msaitoh * later.
5414 1.281 msaitoh *
5415 1.281 msaitoh * Initially, we consider the number of descriptors the
5416 1.281 msaitoh * packet uses the number of DMA segments. This may be
5417 1.281 msaitoh * incremented by 1 if we do checksum offload (a descriptor
5418 1.281 msaitoh * is used to set the checksum context).
5419 1.281 msaitoh */
5420 1.281 msaitoh txs->txs_mbuf = m0;
5421 1.281 msaitoh txs->txs_firstdesc = sc->sc_txnext;
5422 1.281 msaitoh txs->txs_ndesc = segs_needed;
5423 1.1 thorpej
5424 1.281 msaitoh /* Set up offload parameters for this packet. */
5425 1.281 msaitoh uint32_t cmdlen, fields, dcmdlen;
5426 1.281 msaitoh if (m0->m_pkthdr.csum_flags &
5427 1.281 msaitoh (M_CSUM_TSOv4|M_CSUM_TSOv6|
5428 1.281 msaitoh M_CSUM_IPv4|M_CSUM_TCPv4|M_CSUM_UDPv4|
5429 1.281 msaitoh M_CSUM_TCPv6|M_CSUM_UDPv6)) {
5430 1.281 msaitoh if (wm_nq_tx_offload(sc, txs, &cmdlen, &fields,
5431 1.281 msaitoh &do_csum) != 0) {
5432 1.281 msaitoh /* Error message already displayed. */
5433 1.281 msaitoh bus_dmamap_unload(sc->sc_dmat, dmamap);
5434 1.281 msaitoh continue;
5435 1.281 msaitoh }
5436 1.281 msaitoh } else {
5437 1.281 msaitoh do_csum = false;
5438 1.281 msaitoh cmdlen = 0;
5439 1.281 msaitoh fields = 0;
5440 1.281 msaitoh }
5441 1.173 msaitoh
5442 1.281 msaitoh /* Sync the DMA map. */
5443 1.281 msaitoh bus_dmamap_sync(sc->sc_dmat, dmamap, 0, dmamap->dm_mapsize,
5444 1.281 msaitoh BUS_DMASYNC_PREWRITE);
5445 1.1 thorpej
5446 1.281 msaitoh /* Initialize the first transmit descriptor. */
5447 1.281 msaitoh nexttx = sc->sc_txnext;
5448 1.281 msaitoh if (!do_csum) {
5449 1.281 msaitoh /* setup a legacy descriptor */
5450 1.281 msaitoh wm_set_dma_addr(
5451 1.281 msaitoh &sc->sc_txdescs[nexttx].wtx_addr,
5452 1.281 msaitoh dmamap->dm_segs[0].ds_addr);
5453 1.281 msaitoh sc->sc_txdescs[nexttx].wtx_cmdlen =
5454 1.281 msaitoh htole32(WTX_CMD_IFCS | dmamap->dm_segs[0].ds_len);
5455 1.281 msaitoh sc->sc_txdescs[nexttx].wtx_fields.wtxu_status = 0;
5456 1.281 msaitoh sc->sc_txdescs[nexttx].wtx_fields.wtxu_options = 0;
5457 1.281 msaitoh if ((mtag = VLAN_OUTPUT_TAG(&sc->sc_ethercom, m0)) !=
5458 1.281 msaitoh NULL) {
5459 1.281 msaitoh sc->sc_txdescs[nexttx].wtx_cmdlen |=
5460 1.281 msaitoh htole32(WTX_CMD_VLE);
5461 1.281 msaitoh sc->sc_txdescs[nexttx].wtx_fields.wtxu_vlan =
5462 1.281 msaitoh htole16(VLAN_TAG_VALUE(mtag) & 0xffff);
5463 1.281 msaitoh } else {
5464 1.281 msaitoh sc->sc_txdescs[nexttx].wtx_fields.wtxu_vlan = 0;
5465 1.281 msaitoh }
5466 1.281 msaitoh dcmdlen = 0;
5467 1.281 msaitoh } else {
5468 1.281 msaitoh /* setup an advanced data descriptor */
5469 1.281 msaitoh sc->sc_nq_txdescs[nexttx].nqtx_data.nqtxd_addr =
5470 1.281 msaitoh htole64(dmamap->dm_segs[0].ds_addr);
5471 1.281 msaitoh KASSERT((dmamap->dm_segs[0].ds_len & cmdlen) == 0);
5472 1.281 msaitoh sc->sc_nq_txdescs[nexttx].nqtx_data.nqtxd_cmdlen =
5473 1.281 msaitoh htole32(dmamap->dm_segs[0].ds_len | cmdlen );
5474 1.281 msaitoh sc->sc_nq_txdescs[nexttx].nqtx_data.nqtxd_fields =
5475 1.281 msaitoh htole32(fields);
5476 1.281 msaitoh DPRINTF(WM_DEBUG_TX,
5477 1.281 msaitoh ("%s: TX: adv data desc %d 0x%" PRIx64 "\n",
5478 1.281 msaitoh device_xname(sc->sc_dev), nexttx,
5479 1.281 msaitoh (uint64_t)dmamap->dm_segs[0].ds_addr));
5480 1.281 msaitoh DPRINTF(WM_DEBUG_TX,
5481 1.281 msaitoh ("\t 0x%08x%08x\n", fields,
5482 1.281 msaitoh (uint32_t)dmamap->dm_segs[0].ds_len | cmdlen));
5483 1.281 msaitoh dcmdlen = NQTX_DTYP_D | NQTX_CMD_DEXT;
5484 1.281 msaitoh }
5485 1.177 msaitoh
5486 1.281 msaitoh lasttx = nexttx;
5487 1.281 msaitoh nexttx = WM_NEXTTX(sc, nexttx);
5488 1.150 tls /*
5489 1.281 msaitoh * fill in the next descriptors. legacy or adcanced format
5490 1.281 msaitoh * is the same here
5491 1.150 tls */
5492 1.281 msaitoh for (seg = 1; seg < dmamap->dm_nsegs;
5493 1.281 msaitoh seg++, nexttx = WM_NEXTTX(sc, nexttx)) {
5494 1.281 msaitoh sc->sc_nq_txdescs[nexttx].nqtx_data.nqtxd_addr =
5495 1.281 msaitoh htole64(dmamap->dm_segs[seg].ds_addr);
5496 1.281 msaitoh sc->sc_nq_txdescs[nexttx].nqtx_data.nqtxd_cmdlen =
5497 1.281 msaitoh htole32(dcmdlen | dmamap->dm_segs[seg].ds_len);
5498 1.281 msaitoh KASSERT((dcmdlen & dmamap->dm_segs[seg].ds_len) == 0);
5499 1.281 msaitoh sc->sc_nq_txdescs[nexttx].nqtx_data.nqtxd_fields = 0;
5500 1.281 msaitoh lasttx = nexttx;
5501 1.153 tls
5502 1.281 msaitoh DPRINTF(WM_DEBUG_TX,
5503 1.281 msaitoh ("%s: TX: desc %d: %#" PRIx64 ", "
5504 1.281 msaitoh "len %#04zx\n",
5505 1.281 msaitoh device_xname(sc->sc_dev), nexttx,
5506 1.281 msaitoh (uint64_t)dmamap->dm_segs[seg].ds_addr,
5507 1.281 msaitoh dmamap->dm_segs[seg].ds_len));
5508 1.281 msaitoh }
5509 1.153 tls
5510 1.281 msaitoh KASSERT(lasttx != -1);
5511 1.1 thorpej
5512 1.211 msaitoh /*
5513 1.281 msaitoh * Set up the command byte on the last descriptor of
5514 1.281 msaitoh * the packet. If we're in the interrupt delay window,
5515 1.281 msaitoh * delay the interrupt.
5516 1.211 msaitoh */
5517 1.281 msaitoh KASSERT((WTX_CMD_EOP | WTX_CMD_RS) ==
5518 1.281 msaitoh (NQTX_CMD_EOP | NQTX_CMD_RS));
5519 1.281 msaitoh sc->sc_txdescs[lasttx].wtx_cmdlen |=
5520 1.281 msaitoh htole32(WTX_CMD_EOP | WTX_CMD_RS);
5521 1.211 msaitoh
5522 1.281 msaitoh txs->txs_lastdesc = lasttx;
5523 1.177 msaitoh
5524 1.281 msaitoh DPRINTF(WM_DEBUG_TX,
5525 1.281 msaitoh ("%s: TX: desc %d: cmdlen 0x%08x\n",
5526 1.281 msaitoh device_xname(sc->sc_dev),
5527 1.281 msaitoh lasttx, le32toh(sc->sc_txdescs[lasttx].wtx_cmdlen)));
5528 1.1 thorpej
5529 1.281 msaitoh /* Sync the descriptors we're using. */
5530 1.281 msaitoh WM_CDTXSYNC(sc, sc->sc_txnext, txs->txs_ndesc,
5531 1.281 msaitoh BUS_DMASYNC_PREREAD|BUS_DMASYNC_PREWRITE);
5532 1.203 msaitoh
5533 1.281 msaitoh /* Give the packet to the chip. */
5534 1.281 msaitoh CSR_WRITE(sc, sc->sc_tdt_reg, nexttx);
5535 1.281 msaitoh sent = true;
5536 1.120 msaitoh
5537 1.281 msaitoh DPRINTF(WM_DEBUG_TX,
5538 1.281 msaitoh ("%s: TX: TDT -> %d\n", device_xname(sc->sc_dev), nexttx));
5539 1.228 msaitoh
5540 1.281 msaitoh DPRINTF(WM_DEBUG_TX,
5541 1.281 msaitoh ("%s: TX: finished transmitting packet, job %d\n",
5542 1.281 msaitoh device_xname(sc->sc_dev), sc->sc_txsnext));
5543 1.41 tls
5544 1.281 msaitoh /* Advance the tx pointer. */
5545 1.281 msaitoh sc->sc_txfree -= txs->txs_ndesc;
5546 1.281 msaitoh sc->sc_txnext = nexttx;
5547 1.1 thorpej
5548 1.281 msaitoh sc->sc_txsfree--;
5549 1.281 msaitoh sc->sc_txsnext = WM_NEXTTXS(sc, sc->sc_txsnext);
5550 1.1 thorpej
5551 1.281 msaitoh /* Pass the packet to any BPF listeners. */
5552 1.281 msaitoh bpf_mtap(ifp, m0);
5553 1.281 msaitoh }
5554 1.257 msaitoh
5555 1.281 msaitoh if (m0 != NULL) {
5556 1.281 msaitoh ifp->if_flags |= IFF_OACTIVE;
5557 1.281 msaitoh WM_EVCNT_INCR(&sc->sc_ev_txdrop);
5558 1.281 msaitoh DPRINTF(WM_DEBUG_TX, ("%s: TX: error after IFQ_DEQUEUE\n", __func__));
5559 1.281 msaitoh m_freem(m0);
5560 1.257 msaitoh }
5561 1.257 msaitoh
5562 1.281 msaitoh if (sc->sc_txsfree == 0 || sc->sc_txfree <= 2) {
5563 1.281 msaitoh /* No more slots; notify upper layer. */
5564 1.281 msaitoh ifp->if_flags |= IFF_OACTIVE;
5565 1.281 msaitoh }
5566 1.199 msaitoh
5567 1.281 msaitoh if (sent) {
5568 1.281 msaitoh /* Set a watchdog timer in case the chip flakes out. */
5569 1.281 msaitoh ifp->if_timer = 5;
5570 1.281 msaitoh }
5571 1.281 msaitoh }
5572 1.272 ozaki
5573 1.281 msaitoh /* Interrupt */
5574 1.1 thorpej
5575 1.1 thorpej /*
5576 1.281 msaitoh * wm_txintr:
5577 1.1 thorpej *
5578 1.281 msaitoh * Helper; handle transmit interrupts.
5579 1.1 thorpej */
5580 1.47 thorpej static void
5581 1.281 msaitoh wm_txintr(struct wm_softc *sc)
5582 1.1 thorpej {
5583 1.281 msaitoh struct ifnet *ifp = &sc->sc_ethercom.ec_if;
5584 1.281 msaitoh struct wm_txsoft *txs;
5585 1.281 msaitoh uint8_t status;
5586 1.1 thorpej int i;
5587 1.1 thorpej
5588 1.281 msaitoh if (sc->sc_stopping)
5589 1.281 msaitoh return;
5590 1.281 msaitoh
5591 1.281 msaitoh ifp->if_flags &= ~IFF_OACTIVE;
5592 1.272 ozaki
5593 1.281 msaitoh /*
5594 1.281 msaitoh * Go through the Tx list and free mbufs for those
5595 1.281 msaitoh * frames which have been transmitted.
5596 1.281 msaitoh */
5597 1.281 msaitoh for (i = sc->sc_txsdirty; sc->sc_txsfree != WM_TXQUEUELEN(sc);
5598 1.281 msaitoh i = WM_NEXTTXS(sc, i), sc->sc_txsfree++) {
5599 1.281 msaitoh txs = &sc->sc_txsoft[i];
5600 1.1 thorpej
5601 1.281 msaitoh DPRINTF(WM_DEBUG_TX,
5602 1.281 msaitoh ("%s: TX: checking job %d\n", device_xname(sc->sc_dev), i));
5603 1.272 ozaki
5604 1.281 msaitoh WM_CDTXSYNC(sc, txs->txs_firstdesc, txs->txs_ndesc,
5605 1.281 msaitoh BUS_DMASYNC_POSTREAD|BUS_DMASYNC_POSTWRITE);
5606 1.272 ozaki
5607 1.281 msaitoh status =
5608 1.281 msaitoh sc->sc_txdescs[txs->txs_lastdesc].wtx_fields.wtxu_status;
5609 1.281 msaitoh if ((status & WTX_ST_DD) == 0) {
5610 1.281 msaitoh WM_CDTXSYNC(sc, txs->txs_lastdesc, 1,
5611 1.281 msaitoh BUS_DMASYNC_PREREAD);
5612 1.281 msaitoh break;
5613 1.281 msaitoh }
5614 1.1 thorpej
5615 1.281 msaitoh DPRINTF(WM_DEBUG_TX,
5616 1.281 msaitoh ("%s: TX: job %d done: descs %d..%d\n",
5617 1.281 msaitoh device_xname(sc->sc_dev), i, txs->txs_firstdesc,
5618 1.281 msaitoh txs->txs_lastdesc));
5619 1.272 ozaki
5620 1.281 msaitoh /*
5621 1.281 msaitoh * XXX We should probably be using the statistics
5622 1.281 msaitoh * XXX registers, but I don't know if they exist
5623 1.281 msaitoh * XXX on chips before the i82544.
5624 1.281 msaitoh */
5625 1.272 ozaki
5626 1.281 msaitoh #ifdef WM_EVENT_COUNTERS
5627 1.281 msaitoh if (status & WTX_ST_TU)
5628 1.281 msaitoh WM_EVCNT_INCR(&sc->sc_ev_tu);
5629 1.281 msaitoh #endif /* WM_EVENT_COUNTERS */
5630 1.1 thorpej
5631 1.281 msaitoh if (status & (WTX_ST_EC|WTX_ST_LC)) {
5632 1.281 msaitoh ifp->if_oerrors++;
5633 1.281 msaitoh if (status & WTX_ST_LC)
5634 1.281 msaitoh log(LOG_WARNING, "%s: late collision\n",
5635 1.281 msaitoh device_xname(sc->sc_dev));
5636 1.281 msaitoh else if (status & WTX_ST_EC) {
5637 1.281 msaitoh ifp->if_collisions += 16;
5638 1.281 msaitoh log(LOG_WARNING, "%s: excessive collisions\n",
5639 1.281 msaitoh device_xname(sc->sc_dev));
5640 1.281 msaitoh }
5641 1.281 msaitoh } else
5642 1.281 msaitoh ifp->if_opackets++;
5643 1.78 thorpej
5644 1.281 msaitoh sc->sc_txfree += txs->txs_ndesc;
5645 1.281 msaitoh bus_dmamap_sync(sc->sc_dmat, txs->txs_dmamap,
5646 1.281 msaitoh 0, txs->txs_dmamap->dm_mapsize, BUS_DMASYNC_POSTWRITE);
5647 1.281 msaitoh bus_dmamap_unload(sc->sc_dmat, txs->txs_dmamap);
5648 1.281 msaitoh m_freem(txs->txs_mbuf);
5649 1.281 msaitoh txs->txs_mbuf = NULL;
5650 1.1 thorpej }
5651 1.1 thorpej
5652 1.281 msaitoh /* Update the dirty transmit buffer pointer. */
5653 1.281 msaitoh sc->sc_txsdirty = i;
5654 1.281 msaitoh DPRINTF(WM_DEBUG_TX,
5655 1.281 msaitoh ("%s: TX: txsdirty -> %d\n", device_xname(sc->sc_dev), i));
5656 1.1 thorpej
5657 1.102 scw /*
5658 1.281 msaitoh * If there are no more pending transmissions, cancel the watchdog
5659 1.281 msaitoh * timer.
5660 1.102 scw */
5661 1.281 msaitoh if (sc->sc_txsfree == WM_TXQUEUELEN(sc))
5662 1.281 msaitoh ifp->if_timer = 0;
5663 1.281 msaitoh }
5664 1.102 scw
5665 1.281 msaitoh /*
5666 1.281 msaitoh * wm_rxintr:
5667 1.281 msaitoh *
5668 1.281 msaitoh * Helper; handle receive interrupts.
5669 1.281 msaitoh */
5670 1.281 msaitoh static void
5671 1.281 msaitoh wm_rxintr(struct wm_softc *sc)
5672 1.281 msaitoh {
5673 1.281 msaitoh struct ifnet *ifp = &sc->sc_ethercom.ec_if;
5674 1.281 msaitoh struct wm_rxsoft *rxs;
5675 1.281 msaitoh struct mbuf *m;
5676 1.281 msaitoh int i, len;
5677 1.281 msaitoh uint8_t status, errors;
5678 1.281 msaitoh uint16_t vlantag;
5679 1.1 thorpej
5680 1.281 msaitoh for (i = sc->sc_rxptr;; i = WM_NEXTRX(i)) {
5681 1.281 msaitoh rxs = &sc->sc_rxsoft[i];
5682 1.156 dyoung
5683 1.281 msaitoh DPRINTF(WM_DEBUG_RX,
5684 1.281 msaitoh ("%s: RX: checking descriptor %d\n",
5685 1.281 msaitoh device_xname(sc->sc_dev), i));
5686 1.199 msaitoh
5687 1.281 msaitoh WM_CDRXSYNC(sc, i, BUS_DMASYNC_POSTREAD|BUS_DMASYNC_POSTWRITE);
5688 1.1 thorpej
5689 1.281 msaitoh status = sc->sc_rxdescs[i].wrx_status;
5690 1.281 msaitoh errors = sc->sc_rxdescs[i].wrx_errors;
5691 1.281 msaitoh len = le16toh(sc->sc_rxdescs[i].wrx_len);
5692 1.281 msaitoh vlantag = sc->sc_rxdescs[i].wrx_special;
5693 1.145 msaitoh
5694 1.281 msaitoh if ((status & WRX_ST_DD) == 0) {
5695 1.281 msaitoh /* We have processed all of the receive descriptors. */
5696 1.281 msaitoh WM_CDRXSYNC(sc, i, BUS_DMASYNC_PREREAD);
5697 1.281 msaitoh break;
5698 1.145 msaitoh }
5699 1.189 msaitoh
5700 1.281 msaitoh if (__predict_false(sc->sc_rxdiscard)) {
5701 1.281 msaitoh DPRINTF(WM_DEBUG_RX,
5702 1.281 msaitoh ("%s: RX: discarding contents of descriptor %d\n",
5703 1.281 msaitoh device_xname(sc->sc_dev), i));
5704 1.281 msaitoh WM_INIT_RXDESC(sc, i);
5705 1.281 msaitoh if (status & WRX_ST_EOP) {
5706 1.281 msaitoh /* Reset our state. */
5707 1.281 msaitoh DPRINTF(WM_DEBUG_RX,
5708 1.281 msaitoh ("%s: RX: resetting rxdiscard -> 0\n",
5709 1.281 msaitoh device_xname(sc->sc_dev)));
5710 1.281 msaitoh sc->sc_rxdiscard = 0;
5711 1.281 msaitoh }
5712 1.281 msaitoh continue;
5713 1.189 msaitoh }
5714 1.189 msaitoh
5715 1.281 msaitoh bus_dmamap_sync(sc->sc_dmat, rxs->rxs_dmamap, 0,
5716 1.281 msaitoh rxs->rxs_dmamap->dm_mapsize, BUS_DMASYNC_POSTREAD);
5717 1.189 msaitoh
5718 1.281 msaitoh m = rxs->rxs_mbuf;
5719 1.189 msaitoh
5720 1.281 msaitoh /*
5721 1.281 msaitoh * Add a new receive buffer to the ring, unless of
5722 1.281 msaitoh * course the length is zero. Treat the latter as a
5723 1.281 msaitoh * failed mapping.
5724 1.281 msaitoh */
5725 1.281 msaitoh if ((len == 0) || (wm_add_rxbuf(sc, i) != 0)) {
5726 1.281 msaitoh /*
5727 1.281 msaitoh * Failed, throw away what we've done so
5728 1.281 msaitoh * far, and discard the rest of the packet.
5729 1.281 msaitoh */
5730 1.281 msaitoh ifp->if_ierrors++;
5731 1.281 msaitoh bus_dmamap_sync(sc->sc_dmat, rxs->rxs_dmamap, 0,
5732 1.281 msaitoh rxs->rxs_dmamap->dm_mapsize, BUS_DMASYNC_PREREAD);
5733 1.281 msaitoh WM_INIT_RXDESC(sc, i);
5734 1.281 msaitoh if ((status & WRX_ST_EOP) == 0)
5735 1.281 msaitoh sc->sc_rxdiscard = 1;
5736 1.281 msaitoh if (sc->sc_rxhead != NULL)
5737 1.281 msaitoh m_freem(sc->sc_rxhead);
5738 1.281 msaitoh WM_RXCHAIN_RESET(sc);
5739 1.281 msaitoh DPRINTF(WM_DEBUG_RX,
5740 1.281 msaitoh ("%s: RX: Rx buffer allocation failed, "
5741 1.281 msaitoh "dropping packet%s\n", device_xname(sc->sc_dev),
5742 1.281 msaitoh sc->sc_rxdiscard ? " (discard)" : ""));
5743 1.281 msaitoh continue;
5744 1.189 msaitoh }
5745 1.253 msaitoh
5746 1.281 msaitoh m->m_len = len;
5747 1.281 msaitoh sc->sc_rxlen += len;
5748 1.281 msaitoh DPRINTF(WM_DEBUG_RX,
5749 1.281 msaitoh ("%s: RX: buffer at %p len %d\n",
5750 1.281 msaitoh device_xname(sc->sc_dev), m->m_data, len));
5751 1.145 msaitoh
5752 1.281 msaitoh /* If this is not the end of the packet, keep looking. */
5753 1.281 msaitoh if ((status & WRX_ST_EOP) == 0) {
5754 1.281 msaitoh WM_RXCHAIN_LINK(sc, m);
5755 1.281 msaitoh DPRINTF(WM_DEBUG_RX,
5756 1.281 msaitoh ("%s: RX: not yet EOP, rxlen -> %d\n",
5757 1.281 msaitoh device_xname(sc->sc_dev), sc->sc_rxlen));
5758 1.281 msaitoh continue;
5759 1.281 msaitoh }
5760 1.45 thorpej
5761 1.281 msaitoh /*
5762 1.281 msaitoh * Okay, we have the entire packet now. The chip is
5763 1.281 msaitoh * configured to include the FCS except I350 and I21[01]
5764 1.281 msaitoh * (not all chips can be configured to strip it),
5765 1.281 msaitoh * so we need to trim it.
5766 1.281 msaitoh * May need to adjust length of previous mbuf in the
5767 1.281 msaitoh * chain if the current mbuf is too short.
5768 1.281 msaitoh * For an eratta, the RCTL_SECRC bit in RCTL register
5769 1.281 msaitoh * is always set in I350, so we don't trim it.
5770 1.281 msaitoh */
5771 1.281 msaitoh if ((sc->sc_type != WM_T_I350) && (sc->sc_type != WM_T_I354)
5772 1.281 msaitoh && (sc->sc_type != WM_T_I210)
5773 1.281 msaitoh && (sc->sc_type != WM_T_I211)) {
5774 1.281 msaitoh if (m->m_len < ETHER_CRC_LEN) {
5775 1.281 msaitoh sc->sc_rxtail->m_len
5776 1.281 msaitoh -= (ETHER_CRC_LEN - m->m_len);
5777 1.281 msaitoh m->m_len = 0;
5778 1.281 msaitoh } else
5779 1.281 msaitoh m->m_len -= ETHER_CRC_LEN;
5780 1.281 msaitoh len = sc->sc_rxlen - ETHER_CRC_LEN;
5781 1.281 msaitoh } else
5782 1.281 msaitoh len = sc->sc_rxlen;
5783 1.117 msaitoh
5784 1.281 msaitoh WM_RXCHAIN_LINK(sc, m);
5785 1.127 bouyer
5786 1.281 msaitoh *sc->sc_rxtailp = NULL;
5787 1.281 msaitoh m = sc->sc_rxhead;
5788 1.117 msaitoh
5789 1.281 msaitoh WM_RXCHAIN_RESET(sc);
5790 1.45 thorpej
5791 1.281 msaitoh DPRINTF(WM_DEBUG_RX,
5792 1.281 msaitoh ("%s: RX: have entire packet, len -> %d\n",
5793 1.281 msaitoh device_xname(sc->sc_dev), len));
5794 1.45 thorpej
5795 1.281 msaitoh /* If an error occurred, update stats and drop the packet. */
5796 1.281 msaitoh if (errors &
5797 1.281 msaitoh (WRX_ER_CE|WRX_ER_SE|WRX_ER_SEQ|WRX_ER_CXE|WRX_ER_RXE)) {
5798 1.281 msaitoh if (errors & WRX_ER_SE)
5799 1.281 msaitoh log(LOG_WARNING, "%s: symbol error\n",
5800 1.281 msaitoh device_xname(sc->sc_dev));
5801 1.281 msaitoh else if (errors & WRX_ER_SEQ)
5802 1.281 msaitoh log(LOG_WARNING, "%s: receive sequence error\n",
5803 1.281 msaitoh device_xname(sc->sc_dev));
5804 1.281 msaitoh else if (errors & WRX_ER_CE)
5805 1.281 msaitoh log(LOG_WARNING, "%s: CRC error\n",
5806 1.281 msaitoh device_xname(sc->sc_dev));
5807 1.281 msaitoh m_freem(m);
5808 1.281 msaitoh continue;
5809 1.45 thorpej }
5810 1.45 thorpej
5811 1.281 msaitoh /* No errors. Receive the packet. */
5812 1.281 msaitoh m->m_pkthdr.rcvif = ifp;
5813 1.281 msaitoh m->m_pkthdr.len = len;
5814 1.45 thorpej
5815 1.281 msaitoh /*
5816 1.281 msaitoh * If VLANs are enabled, VLAN packets have been unwrapped
5817 1.281 msaitoh * for us. Associate the tag with the packet.
5818 1.281 msaitoh */
5819 1.281 msaitoh /* XXXX should check for i350 and i354 */
5820 1.281 msaitoh if ((status & WRX_ST_VP) != 0) {
5821 1.281 msaitoh VLAN_INPUT_TAG(ifp, m,
5822 1.281 msaitoh le16toh(vlantag),
5823 1.281 msaitoh continue);
5824 1.281 msaitoh }
5825 1.45 thorpej
5826 1.281 msaitoh /* Set up checksum info for this packet. */
5827 1.281 msaitoh if ((status & WRX_ST_IXSM) == 0) {
5828 1.281 msaitoh if (status & WRX_ST_IPCS) {
5829 1.281 msaitoh WM_EVCNT_INCR(&sc->sc_ev_rxipsum);
5830 1.281 msaitoh m->m_pkthdr.csum_flags |= M_CSUM_IPv4;
5831 1.281 msaitoh if (errors & WRX_ER_IPE)
5832 1.281 msaitoh m->m_pkthdr.csum_flags |=
5833 1.281 msaitoh M_CSUM_IPv4_BAD;
5834 1.281 msaitoh }
5835 1.281 msaitoh if (status & WRX_ST_TCPCS) {
5836 1.281 msaitoh /*
5837 1.281 msaitoh * Note: we don't know if this was TCP or UDP,
5838 1.281 msaitoh * so we just set both bits, and expect the
5839 1.281 msaitoh * upper layers to deal.
5840 1.281 msaitoh */
5841 1.281 msaitoh WM_EVCNT_INCR(&sc->sc_ev_rxtusum);
5842 1.281 msaitoh m->m_pkthdr.csum_flags |=
5843 1.281 msaitoh M_CSUM_TCPv4 | M_CSUM_UDPv4 |
5844 1.281 msaitoh M_CSUM_TCPv6 | M_CSUM_UDPv6;
5845 1.281 msaitoh if (errors & WRX_ER_TCPE)
5846 1.281 msaitoh m->m_pkthdr.csum_flags |=
5847 1.281 msaitoh M_CSUM_TCP_UDP_BAD;
5848 1.281 msaitoh }
5849 1.281 msaitoh }
5850 1.117 msaitoh
5851 1.281 msaitoh ifp->if_ipackets++;
5852 1.117 msaitoh
5853 1.283 ozaki WM_RX_UNLOCK(sc);
5854 1.45 thorpej
5855 1.281 msaitoh /* Pass this up to any BPF listeners. */
5856 1.281 msaitoh bpf_mtap(ifp, m);
5857 1.46 thorpej
5858 1.281 msaitoh /* Pass it on. */
5859 1.281 msaitoh (*ifp->if_input)(ifp, m);
5860 1.46 thorpej
5861 1.283 ozaki WM_RX_LOCK(sc);
5862 1.46 thorpej
5863 1.281 msaitoh if (sc->sc_stopping)
5864 1.281 msaitoh break;
5865 1.48 thorpej }
5866 1.281 msaitoh
5867 1.281 msaitoh /* Update the receive pointer. */
5868 1.281 msaitoh sc->sc_rxptr = i;
5869 1.281 msaitoh
5870 1.281 msaitoh DPRINTF(WM_DEBUG_RX,
5871 1.281 msaitoh ("%s: RX: rxptr -> %d\n", device_xname(sc->sc_dev), i));
5872 1.48 thorpej }
5873 1.48 thorpej
5874 1.48 thorpej /*
5875 1.281 msaitoh * wm_linkintr_gmii:
5876 1.50 thorpej *
5877 1.281 msaitoh * Helper; handle link interrupts for GMII.
5878 1.50 thorpej */
5879 1.281 msaitoh static void
5880 1.281 msaitoh wm_linkintr_gmii(struct wm_softc *sc, uint32_t icr)
5881 1.50 thorpej {
5882 1.51 thorpej
5883 1.283 ozaki KASSERT(WM_TX_LOCKED(sc));
5884 1.281 msaitoh
5885 1.281 msaitoh DPRINTF(WM_DEBUG_LINK, ("%s: %s:\n", device_xname(sc->sc_dev),
5886 1.281 msaitoh __func__));
5887 1.281 msaitoh
5888 1.281 msaitoh if (icr & ICR_LSC) {
5889 1.281 msaitoh DPRINTF(WM_DEBUG_LINK,
5890 1.281 msaitoh ("%s: LINK: LSC -> mii_pollstat\n",
5891 1.281 msaitoh device_xname(sc->sc_dev)));
5892 1.281 msaitoh mii_pollstat(&sc->sc_mii);
5893 1.281 msaitoh if (sc->sc_type == WM_T_82543) {
5894 1.281 msaitoh int miistatus, active;
5895 1.281 msaitoh
5896 1.281 msaitoh /*
5897 1.281 msaitoh * With 82543, we need to force speed and
5898 1.281 msaitoh * duplex on the MAC equal to what the PHY
5899 1.281 msaitoh * speed and duplex configuration is.
5900 1.281 msaitoh */
5901 1.281 msaitoh miistatus = sc->sc_mii.mii_media_status;
5902 1.50 thorpej
5903 1.281 msaitoh if (miistatus & IFM_ACTIVE) {
5904 1.281 msaitoh active = sc->sc_mii.mii_media_active;
5905 1.281 msaitoh sc->sc_ctrl &= ~(CTRL_SPEED_MASK | CTRL_FD);
5906 1.281 msaitoh switch (IFM_SUBTYPE(active)) {
5907 1.281 msaitoh case IFM_10_T:
5908 1.281 msaitoh sc->sc_ctrl |= CTRL_SPEED_10;
5909 1.281 msaitoh break;
5910 1.281 msaitoh case IFM_100_TX:
5911 1.281 msaitoh sc->sc_ctrl |= CTRL_SPEED_100;
5912 1.281 msaitoh break;
5913 1.281 msaitoh case IFM_1000_T:
5914 1.281 msaitoh sc->sc_ctrl |= CTRL_SPEED_1000;
5915 1.281 msaitoh break;
5916 1.281 msaitoh default:
5917 1.281 msaitoh /*
5918 1.281 msaitoh * fiber?
5919 1.281 msaitoh * Shoud not enter here.
5920 1.281 msaitoh */
5921 1.281 msaitoh printf("unknown media (%x)\n",
5922 1.281 msaitoh active);
5923 1.281 msaitoh break;
5924 1.281 msaitoh }
5925 1.281 msaitoh if (active & IFM_FDX)
5926 1.281 msaitoh sc->sc_ctrl |= CTRL_FD;
5927 1.281 msaitoh CSR_WRITE(sc, WMREG_CTRL, sc->sc_ctrl);
5928 1.281 msaitoh }
5929 1.281 msaitoh } else if ((sc->sc_type == WM_T_ICH8)
5930 1.281 msaitoh && (sc->sc_phytype == WMPHY_IGP_3)) {
5931 1.281 msaitoh wm_kmrn_lock_loss_workaround_ich8lan(sc);
5932 1.281 msaitoh } else if (sc->sc_type == WM_T_PCH) {
5933 1.281 msaitoh wm_k1_gig_workaround_hv(sc,
5934 1.281 msaitoh ((sc->sc_mii.mii_media_status & IFM_ACTIVE) != 0));
5935 1.230 msaitoh }
5936 1.51 thorpej
5937 1.281 msaitoh if ((sc->sc_phytype == WMPHY_82578)
5938 1.281 msaitoh && (IFM_SUBTYPE(sc->sc_mii.mii_media_active)
5939 1.281 msaitoh == IFM_1000_T)) {
5940 1.51 thorpej
5941 1.281 msaitoh if ((sc->sc_mii.mii_media_status & IFM_ACTIVE) != 0) {
5942 1.281 msaitoh delay(200*1000); /* XXX too big */
5943 1.51 thorpej
5944 1.281 msaitoh /* Link stall fix for link up */
5945 1.281 msaitoh wm_gmii_hv_writereg(sc->sc_dev, 1,
5946 1.281 msaitoh HV_MUX_DATA_CTRL,
5947 1.281 msaitoh HV_MUX_DATA_CTRL_GEN_TO_MAC
5948 1.281 msaitoh | HV_MUX_DATA_CTRL_FORCE_SPEED);
5949 1.281 msaitoh wm_gmii_hv_writereg(sc->sc_dev, 1,
5950 1.281 msaitoh HV_MUX_DATA_CTRL,
5951 1.281 msaitoh HV_MUX_DATA_CTRL_GEN_TO_MAC);
5952 1.281 msaitoh }
5953 1.281 msaitoh }
5954 1.281 msaitoh } else if (icr & ICR_RXSEQ) {
5955 1.281 msaitoh DPRINTF(WM_DEBUG_LINK,
5956 1.281 msaitoh ("%s: LINK Receive sequence error\n",
5957 1.281 msaitoh device_xname(sc->sc_dev)));
5958 1.51 thorpej }
5959 1.50 thorpej }
5960 1.50 thorpej
5961 1.50 thorpej /*
5962 1.281 msaitoh * wm_linkintr_tbi:
5963 1.57 thorpej *
5964 1.281 msaitoh * Helper; handle link interrupts for TBI mode.
5965 1.57 thorpej */
5966 1.281 msaitoh static void
5967 1.281 msaitoh wm_linkintr_tbi(struct wm_softc *sc, uint32_t icr)
5968 1.57 thorpej {
5969 1.281 msaitoh uint32_t status;
5970 1.281 msaitoh
5971 1.281 msaitoh DPRINTF(WM_DEBUG_LINK, ("%s: %s:\n", device_xname(sc->sc_dev),
5972 1.281 msaitoh __func__));
5973 1.281 msaitoh
5974 1.281 msaitoh status = CSR_READ(sc, WMREG_STATUS);
5975 1.281 msaitoh if (icr & ICR_LSC) {
5976 1.281 msaitoh if (status & STATUS_LU) {
5977 1.281 msaitoh DPRINTF(WM_DEBUG_LINK, ("%s: LINK: LSC -> up %s\n",
5978 1.281 msaitoh device_xname(sc->sc_dev),
5979 1.281 msaitoh (status & STATUS_FD) ? "FDX" : "HDX"));
5980 1.281 msaitoh /*
5981 1.281 msaitoh * NOTE: CTRL will update TFCE and RFCE automatically,
5982 1.281 msaitoh * so we should update sc->sc_ctrl
5983 1.281 msaitoh */
5984 1.57 thorpej
5985 1.281 msaitoh sc->sc_ctrl = CSR_READ(sc, WMREG_CTRL);
5986 1.281 msaitoh sc->sc_tctl &= ~TCTL_COLD(0x3ff);
5987 1.281 msaitoh sc->sc_fcrtl &= ~FCRTL_XONE;
5988 1.281 msaitoh if (status & STATUS_FD)
5989 1.281 msaitoh sc->sc_tctl |=
5990 1.281 msaitoh TCTL_COLD(TX_COLLISION_DISTANCE_FDX);
5991 1.281 msaitoh else
5992 1.281 msaitoh sc->sc_tctl |=
5993 1.281 msaitoh TCTL_COLD(TX_COLLISION_DISTANCE_HDX);
5994 1.281 msaitoh if (sc->sc_ctrl & CTRL_TFCE)
5995 1.281 msaitoh sc->sc_fcrtl |= FCRTL_XONE;
5996 1.281 msaitoh CSR_WRITE(sc, WMREG_TCTL, sc->sc_tctl);
5997 1.281 msaitoh CSR_WRITE(sc, (sc->sc_type < WM_T_82543) ?
5998 1.281 msaitoh WMREG_OLD_FCRTL : WMREG_FCRTL,
5999 1.281 msaitoh sc->sc_fcrtl);
6000 1.281 msaitoh sc->sc_tbi_linkup = 1;
6001 1.281 msaitoh } else {
6002 1.281 msaitoh DPRINTF(WM_DEBUG_LINK, ("%s: LINK: LSC -> down\n",
6003 1.281 msaitoh device_xname(sc->sc_dev)));
6004 1.281 msaitoh sc->sc_tbi_linkup = 0;
6005 1.281 msaitoh }
6006 1.281 msaitoh wm_tbi_set_linkled(sc);
6007 1.281 msaitoh } else if (icr & ICR_RXSEQ) {
6008 1.281 msaitoh DPRINTF(WM_DEBUG_LINK,
6009 1.281 msaitoh ("%s: LINK: Receive sequence error\n",
6010 1.281 msaitoh device_xname(sc->sc_dev)));
6011 1.57 thorpej }
6012 1.57 thorpej }
6013 1.57 thorpej
6014 1.57 thorpej /*
6015 1.281 msaitoh * wm_linkintr:
6016 1.57 thorpej *
6017 1.281 msaitoh * Helper; handle link interrupts.
6018 1.57 thorpej */
6019 1.281 msaitoh static void
6020 1.281 msaitoh wm_linkintr(struct wm_softc *sc, uint32_t icr)
6021 1.57 thorpej {
6022 1.57 thorpej
6023 1.281 msaitoh if (sc->sc_flags & WM_F_HAS_MII)
6024 1.281 msaitoh wm_linkintr_gmii(sc, icr);
6025 1.281 msaitoh else
6026 1.281 msaitoh wm_linkintr_tbi(sc, icr);
6027 1.57 thorpej }
6028 1.57 thorpej
6029 1.112 gavan /*
6030 1.281 msaitoh * wm_intr:
6031 1.112 gavan *
6032 1.281 msaitoh * Interrupt service routine.
6033 1.112 gavan */
6034 1.112 gavan static int
6035 1.281 msaitoh wm_intr(void *arg)
6036 1.198 msaitoh {
6037 1.281 msaitoh struct wm_softc *sc = arg;
6038 1.281 msaitoh struct ifnet *ifp = &sc->sc_ethercom.ec_if;
6039 1.281 msaitoh uint32_t icr;
6040 1.281 msaitoh int handled = 0;
6041 1.281 msaitoh
6042 1.281 msaitoh while (1 /* CONSTCOND */) {
6043 1.281 msaitoh icr = CSR_READ(sc, WMREG_ICR);
6044 1.281 msaitoh if ((icr & sc->sc_icr) == 0)
6045 1.281 msaitoh break;
6046 1.281 msaitoh rnd_add_uint32(&sc->rnd_source, icr);
6047 1.112 gavan
6048 1.283 ozaki WM_RX_LOCK(sc);
6049 1.112 gavan
6050 1.281 msaitoh if (sc->sc_stopping) {
6051 1.283 ozaki WM_RX_UNLOCK(sc);
6052 1.281 msaitoh break;
6053 1.281 msaitoh }
6054 1.247 msaitoh
6055 1.281 msaitoh handled = 1;
6056 1.249 msaitoh
6057 1.281 msaitoh #if defined(WM_DEBUG) || defined(WM_EVENT_COUNTERS)
6058 1.281 msaitoh if (icr & (ICR_RXDMT0|ICR_RXT0)) {
6059 1.281 msaitoh DPRINTF(WM_DEBUG_RX,
6060 1.281 msaitoh ("%s: RX: got Rx intr 0x%08x\n",
6061 1.281 msaitoh device_xname(sc->sc_dev),
6062 1.281 msaitoh icr & (ICR_RXDMT0|ICR_RXT0)));
6063 1.281 msaitoh WM_EVCNT_INCR(&sc->sc_ev_rxintr);
6064 1.240 msaitoh }
6065 1.281 msaitoh #endif
6066 1.281 msaitoh wm_rxintr(sc);
6067 1.240 msaitoh
6068 1.283 ozaki WM_RX_UNLOCK(sc);
6069 1.283 ozaki WM_TX_LOCK(sc);
6070 1.283 ozaki
6071 1.281 msaitoh #if defined(WM_DEBUG) || defined(WM_EVENT_COUNTERS)
6072 1.281 msaitoh if (icr & ICR_TXDW) {
6073 1.281 msaitoh DPRINTF(WM_DEBUG_TX,
6074 1.281 msaitoh ("%s: TX: got TXDW interrupt\n",
6075 1.281 msaitoh device_xname(sc->sc_dev)));
6076 1.281 msaitoh WM_EVCNT_INCR(&sc->sc_ev_txdw);
6077 1.240 msaitoh }
6078 1.281 msaitoh #endif
6079 1.281 msaitoh wm_txintr(sc);
6080 1.240 msaitoh
6081 1.285 msaitoh if (icr & (ICR_LSC|ICR_RXSEQ)) {
6082 1.281 msaitoh WM_EVCNT_INCR(&sc->sc_ev_linkintr);
6083 1.281 msaitoh wm_linkintr(sc, icr);
6084 1.281 msaitoh }
6085 1.240 msaitoh
6086 1.283 ozaki WM_TX_UNLOCK(sc);
6087 1.112 gavan
6088 1.281 msaitoh if (icr & ICR_RXO) {
6089 1.281 msaitoh #if defined(WM_DEBUG)
6090 1.281 msaitoh log(LOG_WARNING, "%s: Receive overrun\n",
6091 1.281 msaitoh device_xname(sc->sc_dev));
6092 1.281 msaitoh #endif /* defined(WM_DEBUG) */
6093 1.281 msaitoh }
6094 1.249 msaitoh }
6095 1.112 gavan
6096 1.281 msaitoh if (handled) {
6097 1.281 msaitoh /* Try to get more packets going. */
6098 1.281 msaitoh ifp->if_start(ifp);
6099 1.117 msaitoh }
6100 1.119 uebayasi
6101 1.281 msaitoh return handled;
6102 1.117 msaitoh }
6103 1.117 msaitoh
6104 1.281 msaitoh /*
6105 1.281 msaitoh * Media related.
6106 1.281 msaitoh * GMII, SGMII, TBI (and SERDES)
6107 1.281 msaitoh */
6108 1.117 msaitoh
6109 1.281 msaitoh /* GMII related */
6110 1.117 msaitoh
6111 1.280 msaitoh /*
6112 1.281 msaitoh * wm_gmii_reset:
6113 1.280 msaitoh *
6114 1.281 msaitoh * Reset the PHY.
6115 1.280 msaitoh */
6116 1.281 msaitoh static void
6117 1.281 msaitoh wm_gmii_reset(struct wm_softc *sc)
6118 1.280 msaitoh {
6119 1.281 msaitoh uint32_t reg;
6120 1.280 msaitoh int rv;
6121 1.280 msaitoh
6122 1.281 msaitoh /* get phy semaphore */
6123 1.281 msaitoh switch (sc->sc_type) {
6124 1.281 msaitoh case WM_T_82571:
6125 1.281 msaitoh case WM_T_82572:
6126 1.281 msaitoh case WM_T_82573:
6127 1.281 msaitoh case WM_T_82574:
6128 1.281 msaitoh case WM_T_82583:
6129 1.281 msaitoh /* XXX should get sw semaphore, too */
6130 1.281 msaitoh rv = wm_get_swsm_semaphore(sc);
6131 1.281 msaitoh break;
6132 1.281 msaitoh case WM_T_82575:
6133 1.281 msaitoh case WM_T_82576:
6134 1.281 msaitoh case WM_T_82580:
6135 1.281 msaitoh case WM_T_I350:
6136 1.281 msaitoh case WM_T_I354:
6137 1.281 msaitoh case WM_T_I210:
6138 1.281 msaitoh case WM_T_I211:
6139 1.281 msaitoh case WM_T_80003:
6140 1.281 msaitoh rv = wm_get_swfw_semaphore(sc, swfwphysem[sc->sc_funcid]);
6141 1.281 msaitoh break;
6142 1.281 msaitoh case WM_T_ICH8:
6143 1.281 msaitoh case WM_T_ICH9:
6144 1.281 msaitoh case WM_T_ICH10:
6145 1.281 msaitoh case WM_T_PCH:
6146 1.281 msaitoh case WM_T_PCH2:
6147 1.281 msaitoh case WM_T_PCH_LPT:
6148 1.281 msaitoh rv = wm_get_swfwhw_semaphore(sc);
6149 1.281 msaitoh break;
6150 1.281 msaitoh default:
6151 1.281 msaitoh /* nothing to do*/
6152 1.281 msaitoh rv = 0;
6153 1.281 msaitoh break;
6154 1.281 msaitoh }
6155 1.281 msaitoh if (rv != 0) {
6156 1.281 msaitoh aprint_error_dev(sc->sc_dev, "%s: failed to get semaphore\n",
6157 1.281 msaitoh __func__);
6158 1.281 msaitoh return;
6159 1.281 msaitoh }
6160 1.280 msaitoh
6161 1.281 msaitoh switch (sc->sc_type) {
6162 1.281 msaitoh case WM_T_82542_2_0:
6163 1.281 msaitoh case WM_T_82542_2_1:
6164 1.281 msaitoh /* null */
6165 1.281 msaitoh break;
6166 1.281 msaitoh case WM_T_82543:
6167 1.281 msaitoh /*
6168 1.281 msaitoh * With 82543, we need to force speed and duplex on the MAC
6169 1.281 msaitoh * equal to what the PHY speed and duplex configuration is.
6170 1.281 msaitoh * In addition, we need to perform a hardware reset on the PHY
6171 1.281 msaitoh * to take it out of reset.
6172 1.281 msaitoh */
6173 1.281 msaitoh sc->sc_ctrl |= CTRL_FRCSPD | CTRL_FRCFDX;
6174 1.281 msaitoh CSR_WRITE(sc, WMREG_CTRL, sc->sc_ctrl);
6175 1.280 msaitoh
6176 1.281 msaitoh /* The PHY reset pin is active-low. */
6177 1.281 msaitoh reg = CSR_READ(sc, WMREG_CTRL_EXT);
6178 1.281 msaitoh reg &= ~((CTRL_EXT_SWDPIO_MASK << CTRL_EXT_SWDPIO_SHIFT) |
6179 1.281 msaitoh CTRL_EXT_SWDPIN(4));
6180 1.281 msaitoh reg |= CTRL_EXT_SWDPIO(4);
6181 1.218 msaitoh
6182 1.281 msaitoh CSR_WRITE(sc, WMREG_CTRL_EXT, reg);
6183 1.281 msaitoh CSR_WRITE_FLUSH(sc);
6184 1.281 msaitoh delay(10*1000);
6185 1.218 msaitoh
6186 1.281 msaitoh CSR_WRITE(sc, WMREG_CTRL_EXT, reg | CTRL_EXT_SWDPIN(4));
6187 1.281 msaitoh CSR_WRITE_FLUSH(sc);
6188 1.281 msaitoh delay(150);
6189 1.281 msaitoh #if 0
6190 1.281 msaitoh sc->sc_ctrl_ext = reg | CTRL_EXT_SWDPIN(4);
6191 1.281 msaitoh #endif
6192 1.281 msaitoh delay(20*1000); /* XXX extra delay to get PHY ID? */
6193 1.281 msaitoh break;
6194 1.281 msaitoh case WM_T_82544: /* reset 10000us */
6195 1.281 msaitoh case WM_T_82540:
6196 1.281 msaitoh case WM_T_82545:
6197 1.281 msaitoh case WM_T_82545_3:
6198 1.281 msaitoh case WM_T_82546:
6199 1.281 msaitoh case WM_T_82546_3:
6200 1.281 msaitoh case WM_T_82541:
6201 1.281 msaitoh case WM_T_82541_2:
6202 1.281 msaitoh case WM_T_82547:
6203 1.281 msaitoh case WM_T_82547_2:
6204 1.281 msaitoh case WM_T_82571: /* reset 100us */
6205 1.281 msaitoh case WM_T_82572:
6206 1.281 msaitoh case WM_T_82573:
6207 1.281 msaitoh case WM_T_82574:
6208 1.281 msaitoh case WM_T_82575:
6209 1.281 msaitoh case WM_T_82576:
6210 1.218 msaitoh case WM_T_82580:
6211 1.228 msaitoh case WM_T_I350:
6212 1.265 msaitoh case WM_T_I354:
6213 1.281 msaitoh case WM_T_I210:
6214 1.281 msaitoh case WM_T_I211:
6215 1.281 msaitoh case WM_T_82583:
6216 1.281 msaitoh case WM_T_80003:
6217 1.281 msaitoh /* generic reset */
6218 1.281 msaitoh CSR_WRITE(sc, WMREG_CTRL, sc->sc_ctrl | CTRL_PHY_RESET);
6219 1.281 msaitoh CSR_WRITE_FLUSH(sc);
6220 1.281 msaitoh delay(20000);
6221 1.281 msaitoh CSR_WRITE(sc, WMREG_CTRL, sc->sc_ctrl);
6222 1.281 msaitoh CSR_WRITE_FLUSH(sc);
6223 1.281 msaitoh delay(20000);
6224 1.281 msaitoh
6225 1.281 msaitoh if ((sc->sc_type == WM_T_82541)
6226 1.281 msaitoh || (sc->sc_type == WM_T_82541_2)
6227 1.281 msaitoh || (sc->sc_type == WM_T_82547)
6228 1.281 msaitoh || (sc->sc_type == WM_T_82547_2)) {
6229 1.281 msaitoh /* workaround for igp are done in igp_reset() */
6230 1.281 msaitoh /* XXX add code to set LED after phy reset */
6231 1.218 msaitoh }
6232 1.218 msaitoh break;
6233 1.281 msaitoh case WM_T_ICH8:
6234 1.281 msaitoh case WM_T_ICH9:
6235 1.281 msaitoh case WM_T_ICH10:
6236 1.281 msaitoh case WM_T_PCH:
6237 1.281 msaitoh case WM_T_PCH2:
6238 1.281 msaitoh case WM_T_PCH_LPT:
6239 1.281 msaitoh /* generic reset */
6240 1.281 msaitoh CSR_WRITE(sc, WMREG_CTRL, sc->sc_ctrl | CTRL_PHY_RESET);
6241 1.281 msaitoh CSR_WRITE_FLUSH(sc);
6242 1.281 msaitoh delay(100);
6243 1.281 msaitoh CSR_WRITE(sc, WMREG_CTRL, sc->sc_ctrl);
6244 1.281 msaitoh CSR_WRITE_FLUSH(sc);
6245 1.281 msaitoh delay(150);
6246 1.281 msaitoh break;
6247 1.281 msaitoh default:
6248 1.281 msaitoh panic("%s: %s: unknown type\n", device_xname(sc->sc_dev),
6249 1.281 msaitoh __func__);
6250 1.281 msaitoh break;
6251 1.281 msaitoh }
6252 1.281 msaitoh
6253 1.281 msaitoh /* release PHY semaphore */
6254 1.281 msaitoh switch (sc->sc_type) {
6255 1.218 msaitoh case WM_T_82571:
6256 1.281 msaitoh case WM_T_82572:
6257 1.281 msaitoh case WM_T_82573:
6258 1.281 msaitoh case WM_T_82574:
6259 1.281 msaitoh case WM_T_82583:
6260 1.281 msaitoh /* XXX should put sw semaphore, too */
6261 1.281 msaitoh wm_put_swsm_semaphore(sc);
6262 1.281 msaitoh break;
6263 1.218 msaitoh case WM_T_82575:
6264 1.218 msaitoh case WM_T_82576:
6265 1.281 msaitoh case WM_T_82580:
6266 1.281 msaitoh case WM_T_I350:
6267 1.281 msaitoh case WM_T_I354:
6268 1.247 msaitoh case WM_T_I210:
6269 1.247 msaitoh case WM_T_I211:
6270 1.281 msaitoh case WM_T_80003:
6271 1.281 msaitoh wm_put_swfw_semaphore(sc, swfwphysem[sc->sc_funcid]);
6272 1.281 msaitoh break;
6273 1.281 msaitoh case WM_T_ICH8:
6274 1.281 msaitoh case WM_T_ICH9:
6275 1.281 msaitoh case WM_T_ICH10:
6276 1.281 msaitoh case WM_T_PCH:
6277 1.281 msaitoh case WM_T_PCH2:
6278 1.281 msaitoh case WM_T_PCH_LPT:
6279 1.281 msaitoh wm_put_swfwhw_semaphore(sc);
6280 1.218 msaitoh break;
6281 1.218 msaitoh default:
6282 1.281 msaitoh /* nothing to do*/
6283 1.281 msaitoh rv = 0;
6284 1.218 msaitoh break;
6285 1.218 msaitoh }
6286 1.210 msaitoh
6287 1.281 msaitoh /* get_cfg_done */
6288 1.281 msaitoh wm_get_cfg_done(sc);
6289 1.208 msaitoh
6290 1.281 msaitoh /* extra setup */
6291 1.281 msaitoh switch (sc->sc_type) {
6292 1.281 msaitoh case WM_T_82542_2_0:
6293 1.281 msaitoh case WM_T_82542_2_1:
6294 1.281 msaitoh case WM_T_82543:
6295 1.281 msaitoh case WM_T_82544:
6296 1.281 msaitoh case WM_T_82540:
6297 1.281 msaitoh case WM_T_82545:
6298 1.281 msaitoh case WM_T_82545_3:
6299 1.281 msaitoh case WM_T_82546:
6300 1.281 msaitoh case WM_T_82546_3:
6301 1.281 msaitoh case WM_T_82541_2:
6302 1.281 msaitoh case WM_T_82547_2:
6303 1.281 msaitoh case WM_T_82571:
6304 1.281 msaitoh case WM_T_82572:
6305 1.281 msaitoh case WM_T_82573:
6306 1.281 msaitoh case WM_T_82574:
6307 1.281 msaitoh case WM_T_82575:
6308 1.281 msaitoh case WM_T_82576:
6309 1.281 msaitoh case WM_T_82580:
6310 1.281 msaitoh case WM_T_I350:
6311 1.281 msaitoh case WM_T_I354:
6312 1.281 msaitoh case WM_T_I210:
6313 1.281 msaitoh case WM_T_I211:
6314 1.281 msaitoh case WM_T_82583:
6315 1.281 msaitoh case WM_T_80003:
6316 1.281 msaitoh /* null */
6317 1.281 msaitoh break;
6318 1.281 msaitoh case WM_T_82541:
6319 1.281 msaitoh case WM_T_82547:
6320 1.281 msaitoh /* XXX Configure actively LED after PHY reset */
6321 1.281 msaitoh break;
6322 1.281 msaitoh case WM_T_ICH8:
6323 1.281 msaitoh case WM_T_ICH9:
6324 1.281 msaitoh case WM_T_ICH10:
6325 1.281 msaitoh case WM_T_PCH:
6326 1.281 msaitoh case WM_T_PCH2:
6327 1.281 msaitoh case WM_T_PCH_LPT:
6328 1.281 msaitoh /* Allow time for h/w to get to a quiescent state afer reset */
6329 1.281 msaitoh delay(10*1000);
6330 1.1 thorpej
6331 1.281 msaitoh if (sc->sc_type == WM_T_PCH)
6332 1.281 msaitoh wm_hv_phy_workaround_ich8lan(sc);
6333 1.1 thorpej
6334 1.281 msaitoh if (sc->sc_type == WM_T_PCH2)
6335 1.281 msaitoh wm_lv_phy_workaround_ich8lan(sc);
6336 1.1 thorpej
6337 1.281 msaitoh if ((sc->sc_type == WM_T_PCH) || (sc->sc_type == WM_T_PCH2)) {
6338 1.281 msaitoh /*
6339 1.281 msaitoh * dummy read to clear the phy wakeup bit after lcd
6340 1.281 msaitoh * reset
6341 1.281 msaitoh */
6342 1.281 msaitoh reg = wm_gmii_hv_readreg(sc->sc_dev, 1, BM_WUC);
6343 1.281 msaitoh }
6344 1.1 thorpej
6345 1.281 msaitoh /*
6346 1.281 msaitoh * XXX Configure the LCD with th extended configuration region
6347 1.281 msaitoh * in NVM
6348 1.281 msaitoh */
6349 1.1 thorpej
6350 1.281 msaitoh /* Configure the LCD with the OEM bits in NVM */
6351 1.281 msaitoh if ((sc->sc_type == WM_T_PCH) || (sc->sc_type == WM_T_PCH2)
6352 1.281 msaitoh || (sc->sc_type == WM_T_PCH_LPT)) {
6353 1.281 msaitoh /*
6354 1.281 msaitoh * Disable LPLU.
6355 1.281 msaitoh * XXX It seems that 82567 has LPLU, too.
6356 1.281 msaitoh */
6357 1.281 msaitoh reg = wm_gmii_hv_readreg(sc->sc_dev, 1, HV_OEM_BITS);
6358 1.281 msaitoh reg &= ~(HV_OEM_BITS_A1KDIS| HV_OEM_BITS_LPLU);
6359 1.281 msaitoh reg |= HV_OEM_BITS_ANEGNOW;
6360 1.281 msaitoh wm_gmii_hv_writereg(sc->sc_dev, 1, HV_OEM_BITS, reg);
6361 1.281 msaitoh }
6362 1.281 msaitoh break;
6363 1.281 msaitoh default:
6364 1.281 msaitoh panic("%s: unknown type\n", __func__);
6365 1.281 msaitoh break;
6366 1.1 thorpej }
6367 1.1 thorpej }
6368 1.1 thorpej
6369 1.1 thorpej /*
6370 1.281 msaitoh * wm_get_phy_id_82575:
6371 1.1 thorpej *
6372 1.281 msaitoh * Return PHY ID. Return -1 if it failed.
6373 1.1 thorpej */
6374 1.281 msaitoh static int
6375 1.281 msaitoh wm_get_phy_id_82575(struct wm_softc *sc)
6376 1.1 thorpej {
6377 1.281 msaitoh uint32_t reg;
6378 1.281 msaitoh int phyid = -1;
6379 1.281 msaitoh
6380 1.281 msaitoh /* XXX */
6381 1.281 msaitoh if ((sc->sc_flags & WM_F_SGMII) == 0)
6382 1.281 msaitoh return -1;
6383 1.1 thorpej
6384 1.281 msaitoh if (wm_sgmii_uses_mdio(sc)) {
6385 1.281 msaitoh switch (sc->sc_type) {
6386 1.281 msaitoh case WM_T_82575:
6387 1.281 msaitoh case WM_T_82576:
6388 1.281 msaitoh reg = CSR_READ(sc, WMREG_MDIC);
6389 1.281 msaitoh phyid = (reg & MDIC_PHY_MASK) >> MDIC_PHY_SHIFT;
6390 1.281 msaitoh break;
6391 1.281 msaitoh case WM_T_82580:
6392 1.281 msaitoh case WM_T_I350:
6393 1.281 msaitoh case WM_T_I354:
6394 1.281 msaitoh case WM_T_I210:
6395 1.281 msaitoh case WM_T_I211:
6396 1.281 msaitoh reg = CSR_READ(sc, WMREG_MDICNFG);
6397 1.281 msaitoh phyid = (reg & MDICNFG_PHY_MASK) >> MDICNFG_PHY_SHIFT;
6398 1.281 msaitoh break;
6399 1.281 msaitoh default:
6400 1.281 msaitoh return -1;
6401 1.281 msaitoh }
6402 1.139 bouyer }
6403 1.1 thorpej
6404 1.281 msaitoh return phyid;
6405 1.1 thorpej }
6406 1.1 thorpej
6407 1.281 msaitoh
6408 1.1 thorpej /*
6409 1.281 msaitoh * wm_gmii_mediainit:
6410 1.1 thorpej *
6411 1.281 msaitoh * Initialize media for use on 1000BASE-T devices.
6412 1.1 thorpej */
6413 1.47 thorpej static void
6414 1.281 msaitoh wm_gmii_mediainit(struct wm_softc *sc, pci_product_id_t prodid)
6415 1.1 thorpej {
6416 1.1 thorpej struct ifnet *ifp = &sc->sc_ethercom.ec_if;
6417 1.281 msaitoh struct mii_data *mii = &sc->sc_mii;
6418 1.282 msaitoh uint32_t reg;
6419 1.281 msaitoh
6420 1.292 msaitoh /* We have GMII. */
6421 1.281 msaitoh sc->sc_flags |= WM_F_HAS_MII;
6422 1.1 thorpej
6423 1.281 msaitoh if (sc->sc_type == WM_T_80003)
6424 1.281 msaitoh sc->sc_tipg = TIPG_1000T_80003_DFLT;
6425 1.1 thorpej else
6426 1.281 msaitoh sc->sc_tipg = TIPG_1000T_DFLT;
6427 1.1 thorpej
6428 1.282 msaitoh /* XXX Not for I354? FreeBSD's e1000_82575.c doesn't include it */
6429 1.300 msaitoh if ((sc->sc_type == WM_T_82580)
6430 1.282 msaitoh || (sc->sc_type == WM_T_I350) || (sc->sc_type == WM_T_I210)
6431 1.282 msaitoh || (sc->sc_type == WM_T_I211)) {
6432 1.282 msaitoh reg = CSR_READ(sc, WMREG_PHPM);
6433 1.282 msaitoh reg &= ~PHPM_GO_LINK_D;
6434 1.282 msaitoh CSR_WRITE(sc, WMREG_PHPM, reg);
6435 1.282 msaitoh }
6436 1.282 msaitoh
6437 1.281 msaitoh /*
6438 1.281 msaitoh * Let the chip set speed/duplex on its own based on
6439 1.281 msaitoh * signals from the PHY.
6440 1.281 msaitoh * XXXbouyer - I'm not sure this is right for the 80003,
6441 1.281 msaitoh * the em driver only sets CTRL_SLU here - but it seems to work.
6442 1.281 msaitoh */
6443 1.281 msaitoh sc->sc_ctrl |= CTRL_SLU;
6444 1.281 msaitoh CSR_WRITE(sc, WMREG_CTRL, sc->sc_ctrl);
6445 1.1 thorpej
6446 1.281 msaitoh /* Initialize our media structures and probe the GMII. */
6447 1.281 msaitoh mii->mii_ifp = ifp;
6448 1.1 thorpej
6449 1.1 thorpej /*
6450 1.281 msaitoh * Determine the PHY access method.
6451 1.281 msaitoh *
6452 1.281 msaitoh * For SGMII, use SGMII specific method.
6453 1.281 msaitoh *
6454 1.281 msaitoh * For some devices, we can determine the PHY access method
6455 1.281 msaitoh * from sc_type.
6456 1.281 msaitoh *
6457 1.316 msaitoh * For ICH and PCH variants, it's difficult to determine the PHY
6458 1.316 msaitoh * access method by sc_type, so use the PCI product ID for some
6459 1.316 msaitoh * devices.
6460 1.281 msaitoh * For other ICH8 variants, try to use igp's method. If the PHY
6461 1.281 msaitoh * can't detect, then use bm's method.
6462 1.1 thorpej */
6463 1.281 msaitoh switch (prodid) {
6464 1.281 msaitoh case PCI_PRODUCT_INTEL_PCH_M_LM:
6465 1.281 msaitoh case PCI_PRODUCT_INTEL_PCH_M_LC:
6466 1.281 msaitoh /* 82577 */
6467 1.281 msaitoh sc->sc_phytype = WMPHY_82577;
6468 1.281 msaitoh break;
6469 1.281 msaitoh case PCI_PRODUCT_INTEL_PCH_D_DM:
6470 1.281 msaitoh case PCI_PRODUCT_INTEL_PCH_D_DC:
6471 1.281 msaitoh /* 82578 */
6472 1.281 msaitoh sc->sc_phytype = WMPHY_82578;
6473 1.281 msaitoh break;
6474 1.281 msaitoh case PCI_PRODUCT_INTEL_PCH2_LV_LM:
6475 1.281 msaitoh case PCI_PRODUCT_INTEL_PCH2_LV_V:
6476 1.281 msaitoh /* 82579 */
6477 1.281 msaitoh sc->sc_phytype = WMPHY_82579;
6478 1.281 msaitoh break;
6479 1.281 msaitoh case PCI_PRODUCT_INTEL_82801I_BM:
6480 1.281 msaitoh case PCI_PRODUCT_INTEL_82801J_R_BM_LM:
6481 1.281 msaitoh case PCI_PRODUCT_INTEL_82801J_R_BM_LF:
6482 1.281 msaitoh case PCI_PRODUCT_INTEL_82801J_D_BM_LM:
6483 1.281 msaitoh case PCI_PRODUCT_INTEL_82801J_D_BM_LF:
6484 1.281 msaitoh case PCI_PRODUCT_INTEL_82801J_R_BM_V:
6485 1.281 msaitoh /* 82567 */
6486 1.281 msaitoh sc->sc_phytype = WMPHY_BM;
6487 1.281 msaitoh mii->mii_readreg = wm_gmii_bm_readreg;
6488 1.281 msaitoh mii->mii_writereg = wm_gmii_bm_writereg;
6489 1.281 msaitoh break;
6490 1.281 msaitoh default:
6491 1.281 msaitoh if (((sc->sc_flags & WM_F_SGMII) != 0)
6492 1.281 msaitoh && !wm_sgmii_uses_mdio(sc)){
6493 1.281 msaitoh mii->mii_readreg = wm_sgmii_readreg;
6494 1.281 msaitoh mii->mii_writereg = wm_sgmii_writereg;
6495 1.281 msaitoh } else if (sc->sc_type >= WM_T_80003) {
6496 1.281 msaitoh mii->mii_readreg = wm_gmii_i80003_readreg;
6497 1.281 msaitoh mii->mii_writereg = wm_gmii_i80003_writereg;
6498 1.281 msaitoh } else if (sc->sc_type >= WM_T_I210) {
6499 1.281 msaitoh mii->mii_readreg = wm_gmii_i82544_readreg;
6500 1.281 msaitoh mii->mii_writereg = wm_gmii_i82544_writereg;
6501 1.281 msaitoh } else if (sc->sc_type >= WM_T_82580) {
6502 1.281 msaitoh sc->sc_phytype = WMPHY_82580;
6503 1.281 msaitoh mii->mii_readreg = wm_gmii_82580_readreg;
6504 1.281 msaitoh mii->mii_writereg = wm_gmii_82580_writereg;
6505 1.281 msaitoh } else if (sc->sc_type >= WM_T_82544) {
6506 1.281 msaitoh mii->mii_readreg = wm_gmii_i82544_readreg;
6507 1.281 msaitoh mii->mii_writereg = wm_gmii_i82544_writereg;
6508 1.281 msaitoh } else {
6509 1.281 msaitoh mii->mii_readreg = wm_gmii_i82543_readreg;
6510 1.281 msaitoh mii->mii_writereg = wm_gmii_i82543_writereg;
6511 1.1 thorpej }
6512 1.281 msaitoh break;
6513 1.1 thorpej }
6514 1.316 msaitoh if ((sc->sc_type >= WM_T_PCH) && (sc->sc_type <= WM_T_PCH_LPT)) {
6515 1.316 msaitoh /* All PCH* use _hv_ */
6516 1.316 msaitoh mii->mii_readreg = wm_gmii_hv_readreg;
6517 1.316 msaitoh mii->mii_writereg = wm_gmii_hv_writereg;
6518 1.316 msaitoh }
6519 1.281 msaitoh mii->mii_statchg = wm_gmii_statchg;
6520 1.1 thorpej
6521 1.281 msaitoh wm_gmii_reset(sc);
6522 1.1 thorpej
6523 1.281 msaitoh sc->sc_ethercom.ec_mii = &sc->sc_mii;
6524 1.281 msaitoh ifmedia_init(&mii->mii_media, IFM_IMASK, wm_gmii_mediachange,
6525 1.281 msaitoh wm_gmii_mediastatus);
6526 1.1 thorpej
6527 1.281 msaitoh if ((sc->sc_type == WM_T_82575) || (sc->sc_type == WM_T_82576)
6528 1.300 msaitoh || (sc->sc_type == WM_T_82580)
6529 1.281 msaitoh || (sc->sc_type == WM_T_I350) || (sc->sc_type == WM_T_I354)
6530 1.281 msaitoh || (sc->sc_type == WM_T_I210) || (sc->sc_type == WM_T_I211)) {
6531 1.281 msaitoh if ((sc->sc_flags & WM_F_SGMII) == 0) {
6532 1.281 msaitoh /* Attach only one port */
6533 1.281 msaitoh mii_attach(sc->sc_dev, &sc->sc_mii, 0xffffffff, 1,
6534 1.281 msaitoh MII_OFFSET_ANY, MIIF_DOPAUSE);
6535 1.281 msaitoh } else {
6536 1.281 msaitoh int i, id;
6537 1.281 msaitoh uint32_t ctrl_ext;
6538 1.1 thorpej
6539 1.281 msaitoh id = wm_get_phy_id_82575(sc);
6540 1.281 msaitoh if (id != -1) {
6541 1.281 msaitoh mii_attach(sc->sc_dev, &sc->sc_mii, 0xffffffff,
6542 1.281 msaitoh id, MII_OFFSET_ANY, MIIF_DOPAUSE);
6543 1.281 msaitoh }
6544 1.281 msaitoh if ((id == -1)
6545 1.281 msaitoh || (LIST_FIRST(&mii->mii_phys) == NULL)) {
6546 1.281 msaitoh /* Power on sgmii phy if it is disabled */
6547 1.281 msaitoh ctrl_ext = CSR_READ(sc, WMREG_CTRL_EXT);
6548 1.281 msaitoh CSR_WRITE(sc, WMREG_CTRL_EXT,
6549 1.281 msaitoh ctrl_ext &~ CTRL_EXT_SWDPIN(3));
6550 1.281 msaitoh CSR_WRITE_FLUSH(sc);
6551 1.281 msaitoh delay(300*1000); /* XXX too long */
6552 1.1 thorpej
6553 1.281 msaitoh /* from 1 to 8 */
6554 1.281 msaitoh for (i = 1; i < 8; i++)
6555 1.281 msaitoh mii_attach(sc->sc_dev, &sc->sc_mii,
6556 1.281 msaitoh 0xffffffff, i, MII_OFFSET_ANY,
6557 1.281 msaitoh MIIF_DOPAUSE);
6558 1.1 thorpej
6559 1.281 msaitoh /* restore previous sfp cage power state */
6560 1.281 msaitoh CSR_WRITE(sc, WMREG_CTRL_EXT, ctrl_ext);
6561 1.281 msaitoh }
6562 1.281 msaitoh }
6563 1.281 msaitoh } else {
6564 1.281 msaitoh mii_attach(sc->sc_dev, &sc->sc_mii, 0xffffffff, MII_PHY_ANY,
6565 1.281 msaitoh MII_OFFSET_ANY, MIIF_DOPAUSE);
6566 1.281 msaitoh }
6567 1.173 msaitoh
6568 1.281 msaitoh /*
6569 1.281 msaitoh * If the MAC is PCH2 or PCH_LPT and failed to detect MII PHY, call
6570 1.281 msaitoh * wm_set_mdio_slow_mode_hv() for a workaround and retry.
6571 1.281 msaitoh */
6572 1.281 msaitoh if (((sc->sc_type == WM_T_PCH2) || (sc->sc_type == WM_T_PCH_LPT)) &&
6573 1.281 msaitoh (LIST_FIRST(&mii->mii_phys) == NULL)) {
6574 1.281 msaitoh wm_set_mdio_slow_mode_hv(sc);
6575 1.281 msaitoh mii_attach(sc->sc_dev, &sc->sc_mii, 0xffffffff, MII_PHY_ANY,
6576 1.281 msaitoh MII_OFFSET_ANY, MIIF_DOPAUSE);
6577 1.281 msaitoh }
6578 1.1 thorpej
6579 1.1 thorpej /*
6580 1.281 msaitoh * (For ICH8 variants)
6581 1.281 msaitoh * If PHY detection failed, use BM's r/w function and retry.
6582 1.1 thorpej */
6583 1.281 msaitoh if (LIST_FIRST(&mii->mii_phys) == NULL) {
6584 1.281 msaitoh /* if failed, retry with *_bm_* */
6585 1.281 msaitoh mii->mii_readreg = wm_gmii_bm_readreg;
6586 1.281 msaitoh mii->mii_writereg = wm_gmii_bm_writereg;
6587 1.1 thorpej
6588 1.281 msaitoh mii_attach(sc->sc_dev, &sc->sc_mii, 0xffffffff, MII_PHY_ANY,
6589 1.281 msaitoh MII_OFFSET_ANY, MIIF_DOPAUSE);
6590 1.281 msaitoh }
6591 1.1 thorpej
6592 1.281 msaitoh if (LIST_FIRST(&mii->mii_phys) == NULL) {
6593 1.281 msaitoh /* Any PHY wasn't find */
6594 1.281 msaitoh ifmedia_add(&mii->mii_media, IFM_ETHER|IFM_NONE, 0, NULL);
6595 1.281 msaitoh ifmedia_set(&mii->mii_media, IFM_ETHER|IFM_NONE);
6596 1.281 msaitoh sc->sc_phytype = WMPHY_NONE;
6597 1.281 msaitoh } else {
6598 1.281 msaitoh /*
6599 1.281 msaitoh * PHY Found!
6600 1.281 msaitoh * Check PHY type.
6601 1.281 msaitoh */
6602 1.281 msaitoh uint32_t model;
6603 1.281 msaitoh struct mii_softc *child;
6604 1.1 thorpej
6605 1.281 msaitoh child = LIST_FIRST(&mii->mii_phys);
6606 1.281 msaitoh if (device_is_a(child->mii_dev, "igphy")) {
6607 1.281 msaitoh struct igphy_softc *isc = (struct igphy_softc *)child;
6608 1.1 thorpej
6609 1.281 msaitoh model = isc->sc_mii.mii_mpd_model;
6610 1.281 msaitoh if (model == MII_MODEL_yyINTEL_I82566)
6611 1.281 msaitoh sc->sc_phytype = WMPHY_IGP_3;
6612 1.281 msaitoh }
6613 1.1 thorpej
6614 1.281 msaitoh ifmedia_set(&mii->mii_media, IFM_ETHER | IFM_AUTO);
6615 1.281 msaitoh }
6616 1.1 thorpej }
6617 1.1 thorpej
6618 1.1 thorpej /*
6619 1.281 msaitoh * wm_gmii_mediastatus: [ifmedia interface function]
6620 1.1 thorpej *
6621 1.281 msaitoh * Get the current interface media status on a 1000BASE-T device.
6622 1.1 thorpej */
6623 1.47 thorpej static void
6624 1.281 msaitoh wm_gmii_mediastatus(struct ifnet *ifp, struct ifmediareq *ifmr)
6625 1.1 thorpej {
6626 1.1 thorpej struct wm_softc *sc = ifp->if_softc;
6627 1.1 thorpej
6628 1.281 msaitoh ether_mediastatus(ifp, ifmr);
6629 1.281 msaitoh ifmr->ifm_active = (ifmr->ifm_active & ~IFM_ETH_FMASK)
6630 1.281 msaitoh | sc->sc_flowflags;
6631 1.1 thorpej }
6632 1.1 thorpej
6633 1.1 thorpej /*
6634 1.281 msaitoh * wm_gmii_mediachange: [ifmedia interface function]
6635 1.1 thorpej *
6636 1.281 msaitoh * Set hardware to newly-selected media on a 1000BASE-T device.
6637 1.1 thorpej */
6638 1.47 thorpej static int
6639 1.281 msaitoh wm_gmii_mediachange(struct ifnet *ifp)
6640 1.1 thorpej {
6641 1.1 thorpej struct wm_softc *sc = ifp->if_softc;
6642 1.1 thorpej struct ifmedia_entry *ife = sc->sc_mii.mii_media.ifm_cur;
6643 1.281 msaitoh int rc;
6644 1.1 thorpej
6645 1.281 msaitoh if ((ifp->if_flags & IFF_UP) == 0)
6646 1.279 msaitoh return 0;
6647 1.279 msaitoh
6648 1.281 msaitoh sc->sc_ctrl &= ~(CTRL_SPEED_MASK | CTRL_FD);
6649 1.281 msaitoh sc->sc_ctrl |= CTRL_SLU;
6650 1.281 msaitoh if ((IFM_SUBTYPE(ife->ifm_media) == IFM_AUTO)
6651 1.281 msaitoh || (sc->sc_type > WM_T_82543)) {
6652 1.281 msaitoh sc->sc_ctrl &= ~(CTRL_FRCSPD | CTRL_FRCFDX);
6653 1.134 msaitoh } else {
6654 1.281 msaitoh sc->sc_ctrl &= ~CTRL_ASDE;
6655 1.281 msaitoh sc->sc_ctrl |= CTRL_FRCSPD | CTRL_FRCFDX;
6656 1.281 msaitoh if (ife->ifm_media & IFM_FDX)
6657 1.281 msaitoh sc->sc_ctrl |= CTRL_FD;
6658 1.281 msaitoh switch (IFM_SUBTYPE(ife->ifm_media)) {
6659 1.281 msaitoh case IFM_10_T:
6660 1.281 msaitoh sc->sc_ctrl |= CTRL_SPEED_10;
6661 1.281 msaitoh break;
6662 1.281 msaitoh case IFM_100_TX:
6663 1.281 msaitoh sc->sc_ctrl |= CTRL_SPEED_100;
6664 1.281 msaitoh break;
6665 1.281 msaitoh case IFM_1000_T:
6666 1.281 msaitoh sc->sc_ctrl |= CTRL_SPEED_1000;
6667 1.281 msaitoh break;
6668 1.281 msaitoh default:
6669 1.281 msaitoh panic("wm_gmii_mediachange: bad media 0x%x",
6670 1.281 msaitoh ife->ifm_media);
6671 1.281 msaitoh }
6672 1.134 msaitoh }
6673 1.281 msaitoh CSR_WRITE(sc, WMREG_CTRL, sc->sc_ctrl);
6674 1.281 msaitoh if (sc->sc_type <= WM_T_82543)
6675 1.281 msaitoh wm_gmii_reset(sc);
6676 1.281 msaitoh
6677 1.281 msaitoh if ((rc = mii_mediachg(&sc->sc_mii)) == ENXIO)
6678 1.281 msaitoh return 0;
6679 1.281 msaitoh return rc;
6680 1.281 msaitoh }
6681 1.1 thorpej
6682 1.281 msaitoh #define MDI_IO CTRL_SWDPIN(2)
6683 1.281 msaitoh #define MDI_DIR CTRL_SWDPIO(2) /* host -> PHY */
6684 1.281 msaitoh #define MDI_CLK CTRL_SWDPIN(3)
6685 1.1 thorpej
6686 1.281 msaitoh static void
6687 1.281 msaitoh wm_i82543_mii_sendbits(struct wm_softc *sc, uint32_t data, int nbits)
6688 1.281 msaitoh {
6689 1.281 msaitoh uint32_t i, v;
6690 1.134 msaitoh
6691 1.281 msaitoh v = CSR_READ(sc, WMREG_CTRL);
6692 1.281 msaitoh v &= ~(MDI_IO|MDI_CLK|(CTRL_SWDPIO_MASK << CTRL_SWDPIO_SHIFT));
6693 1.281 msaitoh v |= MDI_DIR | CTRL_SWDPIO(3);
6694 1.134 msaitoh
6695 1.281 msaitoh for (i = 1 << (nbits - 1); i != 0; i >>= 1) {
6696 1.281 msaitoh if (data & i)
6697 1.281 msaitoh v |= MDI_IO;
6698 1.281 msaitoh else
6699 1.281 msaitoh v &= ~MDI_IO;
6700 1.281 msaitoh CSR_WRITE(sc, WMREG_CTRL, v);
6701 1.281 msaitoh CSR_WRITE_FLUSH(sc);
6702 1.281 msaitoh delay(10);
6703 1.281 msaitoh CSR_WRITE(sc, WMREG_CTRL, v | MDI_CLK);
6704 1.281 msaitoh CSR_WRITE_FLUSH(sc);
6705 1.281 msaitoh delay(10);
6706 1.281 msaitoh CSR_WRITE(sc, WMREG_CTRL, v);
6707 1.281 msaitoh CSR_WRITE_FLUSH(sc);
6708 1.281 msaitoh delay(10);
6709 1.281 msaitoh }
6710 1.281 msaitoh }
6711 1.134 msaitoh
6712 1.281 msaitoh static uint32_t
6713 1.281 msaitoh wm_i82543_mii_recvbits(struct wm_softc *sc)
6714 1.281 msaitoh {
6715 1.281 msaitoh uint32_t v, i, data = 0;
6716 1.1 thorpej
6717 1.281 msaitoh v = CSR_READ(sc, WMREG_CTRL);
6718 1.281 msaitoh v &= ~(MDI_IO|MDI_CLK|(CTRL_SWDPIO_MASK << CTRL_SWDPIO_SHIFT));
6719 1.281 msaitoh v |= CTRL_SWDPIO(3);
6720 1.134 msaitoh
6721 1.281 msaitoh CSR_WRITE(sc, WMREG_CTRL, v);
6722 1.281 msaitoh CSR_WRITE_FLUSH(sc);
6723 1.281 msaitoh delay(10);
6724 1.281 msaitoh CSR_WRITE(sc, WMREG_CTRL, v | MDI_CLK);
6725 1.281 msaitoh CSR_WRITE_FLUSH(sc);
6726 1.281 msaitoh delay(10);
6727 1.281 msaitoh CSR_WRITE(sc, WMREG_CTRL, v);
6728 1.281 msaitoh CSR_WRITE_FLUSH(sc);
6729 1.281 msaitoh delay(10);
6730 1.173 msaitoh
6731 1.281 msaitoh for (i = 0; i < 16; i++) {
6732 1.281 msaitoh data <<= 1;
6733 1.281 msaitoh CSR_WRITE(sc, WMREG_CTRL, v | MDI_CLK);
6734 1.281 msaitoh CSR_WRITE_FLUSH(sc);
6735 1.281 msaitoh delay(10);
6736 1.281 msaitoh if (CSR_READ(sc, WMREG_CTRL) & MDI_IO)
6737 1.281 msaitoh data |= 1;
6738 1.281 msaitoh CSR_WRITE(sc, WMREG_CTRL, v);
6739 1.281 msaitoh CSR_WRITE_FLUSH(sc);
6740 1.281 msaitoh delay(10);
6741 1.1 thorpej }
6742 1.1 thorpej
6743 1.281 msaitoh CSR_WRITE(sc, WMREG_CTRL, v | MDI_CLK);
6744 1.281 msaitoh CSR_WRITE_FLUSH(sc);
6745 1.281 msaitoh delay(10);
6746 1.281 msaitoh CSR_WRITE(sc, WMREG_CTRL, v);
6747 1.281 msaitoh CSR_WRITE_FLUSH(sc);
6748 1.281 msaitoh delay(10);
6749 1.1 thorpej
6750 1.281 msaitoh return data;
6751 1.1 thorpej }
6752 1.1 thorpej
6753 1.281 msaitoh #undef MDI_IO
6754 1.281 msaitoh #undef MDI_DIR
6755 1.281 msaitoh #undef MDI_CLK
6756 1.281 msaitoh
6757 1.1 thorpej /*
6758 1.281 msaitoh * wm_gmii_i82543_readreg: [mii interface function]
6759 1.1 thorpej *
6760 1.281 msaitoh * Read a PHY register on the GMII (i82543 version).
6761 1.1 thorpej */
6762 1.281 msaitoh static int
6763 1.281 msaitoh wm_gmii_i82543_readreg(device_t self, int phy, int reg)
6764 1.1 thorpej {
6765 1.281 msaitoh struct wm_softc *sc = device_private(self);
6766 1.281 msaitoh int rv;
6767 1.1 thorpej
6768 1.281 msaitoh wm_i82543_mii_sendbits(sc, 0xffffffffU, 32);
6769 1.281 msaitoh wm_i82543_mii_sendbits(sc, reg | (phy << 5) |
6770 1.281 msaitoh (MII_COMMAND_READ << 10) | (MII_COMMAND_START << 12), 14);
6771 1.281 msaitoh rv = wm_i82543_mii_recvbits(sc) & 0xffff;
6772 1.1 thorpej
6773 1.281 msaitoh DPRINTF(WM_DEBUG_GMII,
6774 1.281 msaitoh ("%s: GMII: read phy %d reg %d -> 0x%04x\n",
6775 1.281 msaitoh device_xname(sc->sc_dev), phy, reg, rv));
6776 1.173 msaitoh
6777 1.281 msaitoh return rv;
6778 1.1 thorpej }
6779 1.1 thorpej
6780 1.1 thorpej /*
6781 1.281 msaitoh * wm_gmii_i82543_writereg: [mii interface function]
6782 1.1 thorpej *
6783 1.281 msaitoh * Write a PHY register on the GMII (i82543 version).
6784 1.1 thorpej */
6785 1.47 thorpej static void
6786 1.281 msaitoh wm_gmii_i82543_writereg(device_t self, int phy, int reg, int val)
6787 1.1 thorpej {
6788 1.281 msaitoh struct wm_softc *sc = device_private(self);
6789 1.1 thorpej
6790 1.281 msaitoh wm_i82543_mii_sendbits(sc, 0xffffffffU, 32);
6791 1.281 msaitoh wm_i82543_mii_sendbits(sc, val | (MII_COMMAND_ACK << 16) |
6792 1.281 msaitoh (reg << 18) | (phy << 23) | (MII_COMMAND_WRITE << 28) |
6793 1.281 msaitoh (MII_COMMAND_START << 30), 32);
6794 1.281 msaitoh }
6795 1.272 ozaki
6796 1.281 msaitoh /*
6797 1.281 msaitoh * wm_gmii_i82544_readreg: [mii interface function]
6798 1.281 msaitoh *
6799 1.281 msaitoh * Read a PHY register on the GMII.
6800 1.281 msaitoh */
6801 1.281 msaitoh static int
6802 1.281 msaitoh wm_gmii_i82544_readreg(device_t self, int phy, int reg)
6803 1.281 msaitoh {
6804 1.281 msaitoh struct wm_softc *sc = device_private(self);
6805 1.281 msaitoh uint32_t mdic = 0;
6806 1.281 msaitoh int i, rv;
6807 1.279 msaitoh
6808 1.281 msaitoh CSR_WRITE(sc, WMREG_MDIC, MDIC_OP_READ | MDIC_PHYADD(phy) |
6809 1.281 msaitoh MDIC_REGADD(reg));
6810 1.1 thorpej
6811 1.281 msaitoh for (i = 0; i < WM_GEN_POLL_TIMEOUT * 3; i++) {
6812 1.281 msaitoh mdic = CSR_READ(sc, WMREG_MDIC);
6813 1.281 msaitoh if (mdic & MDIC_READY)
6814 1.281 msaitoh break;
6815 1.281 msaitoh delay(50);
6816 1.1 thorpej }
6817 1.1 thorpej
6818 1.281 msaitoh if ((mdic & MDIC_READY) == 0) {
6819 1.281 msaitoh log(LOG_WARNING, "%s: MDIC read timed out: phy %d reg %d\n",
6820 1.281 msaitoh device_xname(sc->sc_dev), phy, reg);
6821 1.281 msaitoh rv = 0;
6822 1.281 msaitoh } else if (mdic & MDIC_E) {
6823 1.281 msaitoh #if 0 /* This is normal if no PHY is present. */
6824 1.281 msaitoh log(LOG_WARNING, "%s: MDIC read error: phy %d reg %d\n",
6825 1.281 msaitoh device_xname(sc->sc_dev), phy, reg);
6826 1.281 msaitoh #endif
6827 1.281 msaitoh rv = 0;
6828 1.281 msaitoh } else {
6829 1.281 msaitoh rv = MDIC_DATA(mdic);
6830 1.281 msaitoh if (rv == 0xffff)
6831 1.281 msaitoh rv = 0;
6832 1.173 msaitoh }
6833 1.173 msaitoh
6834 1.281 msaitoh return rv;
6835 1.1 thorpej }
6836 1.1 thorpej
6837 1.1 thorpej /*
6838 1.281 msaitoh * wm_gmii_i82544_writereg: [mii interface function]
6839 1.1 thorpej *
6840 1.281 msaitoh * Write a PHY register on the GMII.
6841 1.1 thorpej */
6842 1.47 thorpej static void
6843 1.281 msaitoh wm_gmii_i82544_writereg(device_t self, int phy, int reg, int val)
6844 1.1 thorpej {
6845 1.281 msaitoh struct wm_softc *sc = device_private(self);
6846 1.281 msaitoh uint32_t mdic = 0;
6847 1.281 msaitoh int i;
6848 1.281 msaitoh
6849 1.281 msaitoh CSR_WRITE(sc, WMREG_MDIC, MDIC_OP_WRITE | MDIC_PHYADD(phy) |
6850 1.281 msaitoh MDIC_REGADD(reg) | MDIC_DATA(val));
6851 1.1 thorpej
6852 1.281 msaitoh for (i = 0; i < WM_GEN_POLL_TIMEOUT * 3; i++) {
6853 1.281 msaitoh mdic = CSR_READ(sc, WMREG_MDIC);
6854 1.281 msaitoh if (mdic & MDIC_READY)
6855 1.281 msaitoh break;
6856 1.281 msaitoh delay(50);
6857 1.127 bouyer }
6858 1.1 thorpej
6859 1.281 msaitoh if ((mdic & MDIC_READY) == 0)
6860 1.281 msaitoh log(LOG_WARNING, "%s: MDIC write timed out: phy %d reg %d\n",
6861 1.281 msaitoh device_xname(sc->sc_dev), phy, reg);
6862 1.281 msaitoh else if (mdic & MDIC_E)
6863 1.281 msaitoh log(LOG_WARNING, "%s: MDIC write error: phy %d reg %d\n",
6864 1.281 msaitoh device_xname(sc->sc_dev), phy, reg);
6865 1.281 msaitoh }
6866 1.133 msaitoh
6867 1.281 msaitoh /*
6868 1.281 msaitoh * wm_gmii_i80003_readreg: [mii interface function]
6869 1.281 msaitoh *
6870 1.281 msaitoh * Read a PHY register on the kumeran
6871 1.281 msaitoh * This could be handled by the PHY layer if we didn't have to lock the
6872 1.281 msaitoh * ressource ...
6873 1.281 msaitoh */
6874 1.281 msaitoh static int
6875 1.281 msaitoh wm_gmii_i80003_readreg(device_t self, int phy, int reg)
6876 1.281 msaitoh {
6877 1.281 msaitoh struct wm_softc *sc = device_private(self);
6878 1.281 msaitoh int sem;
6879 1.281 msaitoh int rv;
6880 1.1 thorpej
6881 1.281 msaitoh if (phy != 1) /* only one PHY on kumeran bus */
6882 1.281 msaitoh return 0;
6883 1.1 thorpej
6884 1.281 msaitoh sem = swfwphysem[sc->sc_funcid];
6885 1.281 msaitoh if (wm_get_swfw_semaphore(sc, sem)) {
6886 1.281 msaitoh aprint_error_dev(sc->sc_dev, "%s: failed to get semaphore\n",
6887 1.189 msaitoh __func__);
6888 1.281 msaitoh return 0;
6889 1.1 thorpej }
6890 1.186 msaitoh
6891 1.281 msaitoh if ((reg & GG82563_MAX_REG_ADDRESS) < GG82563_MIN_ALT_REG) {
6892 1.281 msaitoh wm_gmii_i82544_writereg(self, phy, GG82563_PHY_PAGE_SELECT,
6893 1.281 msaitoh reg >> GG82563_PAGE_SHIFT);
6894 1.281 msaitoh } else {
6895 1.281 msaitoh wm_gmii_i82544_writereg(self, phy, GG82563_PHY_PAGE_SELECT_ALT,
6896 1.281 msaitoh reg >> GG82563_PAGE_SHIFT);
6897 1.189 msaitoh }
6898 1.281 msaitoh /* Wait more 200us for a bug of the ready bit in the MDIC register */
6899 1.281 msaitoh delay(200);
6900 1.281 msaitoh rv = wm_gmii_i82544_readreg(self, phy, reg & GG82563_MAX_REG_ADDRESS);
6901 1.281 msaitoh delay(200);
6902 1.189 msaitoh
6903 1.281 msaitoh wm_put_swfw_semaphore(sc, sem);
6904 1.281 msaitoh return rv;
6905 1.281 msaitoh }
6906 1.190 msaitoh
6907 1.281 msaitoh /*
6908 1.281 msaitoh * wm_gmii_i80003_writereg: [mii interface function]
6909 1.281 msaitoh *
6910 1.281 msaitoh * Write a PHY register on the kumeran.
6911 1.281 msaitoh * This could be handled by the PHY layer if we didn't have to lock the
6912 1.281 msaitoh * ressource ...
6913 1.281 msaitoh */
6914 1.281 msaitoh static void
6915 1.281 msaitoh wm_gmii_i80003_writereg(device_t self, int phy, int reg, int val)
6916 1.281 msaitoh {
6917 1.281 msaitoh struct wm_softc *sc = device_private(self);
6918 1.281 msaitoh int sem;
6919 1.221 msaitoh
6920 1.281 msaitoh if (phy != 1) /* only one PHY on kumeran bus */
6921 1.281 msaitoh return;
6922 1.190 msaitoh
6923 1.281 msaitoh sem = swfwphysem[sc->sc_funcid];
6924 1.281 msaitoh if (wm_get_swfw_semaphore(sc, sem)) {
6925 1.281 msaitoh aprint_error_dev(sc->sc_dev, "%s: failed to get semaphore\n",
6926 1.281 msaitoh __func__);
6927 1.281 msaitoh return;
6928 1.281 msaitoh }
6929 1.192 msaitoh
6930 1.281 msaitoh if ((reg & GG82563_MAX_REG_ADDRESS) < GG82563_MIN_ALT_REG) {
6931 1.281 msaitoh wm_gmii_i82544_writereg(self, phy, GG82563_PHY_PAGE_SELECT,
6932 1.281 msaitoh reg >> GG82563_PAGE_SHIFT);
6933 1.281 msaitoh } else {
6934 1.281 msaitoh wm_gmii_i82544_writereg(self, phy, GG82563_PHY_PAGE_SELECT_ALT,
6935 1.281 msaitoh reg >> GG82563_PAGE_SHIFT);
6936 1.189 msaitoh }
6937 1.281 msaitoh /* Wait more 200us for a bug of the ready bit in the MDIC register */
6938 1.281 msaitoh delay(200);
6939 1.281 msaitoh wm_gmii_i82544_writereg(self, phy, reg & GG82563_MAX_REG_ADDRESS, val);
6940 1.281 msaitoh delay(200);
6941 1.281 msaitoh
6942 1.281 msaitoh wm_put_swfw_semaphore(sc, sem);
6943 1.1 thorpej }
6944 1.1 thorpej
6945 1.1 thorpej /*
6946 1.281 msaitoh * wm_gmii_bm_readreg: [mii interface function]
6947 1.265 msaitoh *
6948 1.281 msaitoh * Read a PHY register on the kumeran
6949 1.281 msaitoh * This could be handled by the PHY layer if we didn't have to lock the
6950 1.281 msaitoh * ressource ...
6951 1.265 msaitoh */
6952 1.265 msaitoh static int
6953 1.281 msaitoh wm_gmii_bm_readreg(device_t self, int phy, int reg)
6954 1.265 msaitoh {
6955 1.281 msaitoh struct wm_softc *sc = device_private(self);
6956 1.281 msaitoh int sem;
6957 1.281 msaitoh int rv;
6958 1.265 msaitoh
6959 1.281 msaitoh sem = swfwphysem[sc->sc_funcid];
6960 1.281 msaitoh if (wm_get_swfw_semaphore(sc, sem)) {
6961 1.281 msaitoh aprint_error_dev(sc->sc_dev, "%s: failed to get semaphore\n",
6962 1.281 msaitoh __func__);
6963 1.281 msaitoh return 0;
6964 1.281 msaitoh }
6965 1.265 msaitoh
6966 1.281 msaitoh if (reg > BME1000_MAX_MULTI_PAGE_REG) {
6967 1.281 msaitoh if (phy == 1)
6968 1.281 msaitoh wm_gmii_i82544_writereg(self, phy, MII_IGPHY_PAGE_SELECT,
6969 1.281 msaitoh reg);
6970 1.281 msaitoh else
6971 1.281 msaitoh wm_gmii_i82544_writereg(self, phy,
6972 1.281 msaitoh GG82563_PHY_PAGE_SELECT,
6973 1.281 msaitoh reg >> GG82563_PAGE_SHIFT);
6974 1.265 msaitoh }
6975 1.265 msaitoh
6976 1.281 msaitoh rv = wm_gmii_i82544_readreg(self, phy, reg & GG82563_MAX_REG_ADDRESS);
6977 1.281 msaitoh wm_put_swfw_semaphore(sc, sem);
6978 1.281 msaitoh return rv;
6979 1.265 msaitoh }
6980 1.265 msaitoh
6981 1.265 msaitoh /*
6982 1.281 msaitoh * wm_gmii_bm_writereg: [mii interface function]
6983 1.1 thorpej *
6984 1.281 msaitoh * Write a PHY register on the kumeran.
6985 1.281 msaitoh * This could be handled by the PHY layer if we didn't have to lock the
6986 1.281 msaitoh * ressource ...
6987 1.1 thorpej */
6988 1.47 thorpej static void
6989 1.281 msaitoh wm_gmii_bm_writereg(device_t self, int phy, int reg, int val)
6990 1.281 msaitoh {
6991 1.281 msaitoh struct wm_softc *sc = device_private(self);
6992 1.281 msaitoh int sem;
6993 1.281 msaitoh
6994 1.281 msaitoh sem = swfwphysem[sc->sc_funcid];
6995 1.281 msaitoh if (wm_get_swfw_semaphore(sc, sem)) {
6996 1.281 msaitoh aprint_error_dev(sc->sc_dev, "%s: failed to get semaphore\n",
6997 1.281 msaitoh __func__);
6998 1.281 msaitoh return;
6999 1.281 msaitoh }
7000 1.281 msaitoh
7001 1.281 msaitoh if (reg > BME1000_MAX_MULTI_PAGE_REG) {
7002 1.281 msaitoh if (phy == 1)
7003 1.281 msaitoh wm_gmii_i82544_writereg(self, phy, MII_IGPHY_PAGE_SELECT,
7004 1.281 msaitoh reg);
7005 1.281 msaitoh else
7006 1.281 msaitoh wm_gmii_i82544_writereg(self, phy,
7007 1.281 msaitoh GG82563_PHY_PAGE_SELECT,
7008 1.281 msaitoh reg >> GG82563_PAGE_SHIFT);
7009 1.281 msaitoh }
7010 1.281 msaitoh
7011 1.281 msaitoh wm_gmii_i82544_writereg(self, phy, reg & GG82563_MAX_REG_ADDRESS, val);
7012 1.281 msaitoh wm_put_swfw_semaphore(sc, sem);
7013 1.281 msaitoh }
7014 1.281 msaitoh
7015 1.281 msaitoh static void
7016 1.281 msaitoh wm_access_phy_wakeup_reg_bm(device_t self, int offset, int16_t *val, int rd)
7017 1.1 thorpej {
7018 1.281 msaitoh struct wm_softc *sc = device_private(self);
7019 1.281 msaitoh uint16_t regnum = BM_PHY_REG_NUM(offset);
7020 1.281 msaitoh uint16_t wuce;
7021 1.281 msaitoh
7022 1.281 msaitoh /* XXX Gig must be disabled for MDIO accesses to page 800 */
7023 1.281 msaitoh if (sc->sc_type == WM_T_PCH) {
7024 1.281 msaitoh /* XXX e1000 driver do nothing... why? */
7025 1.281 msaitoh }
7026 1.281 msaitoh
7027 1.281 msaitoh /* Set page 769 */
7028 1.281 msaitoh wm_gmii_i82544_writereg(self, 1, MII_IGPHY_PAGE_SELECT,
7029 1.281 msaitoh BM_WUC_ENABLE_PAGE << BME1000_PAGE_SHIFT);
7030 1.281 msaitoh
7031 1.281 msaitoh wuce = wm_gmii_i82544_readreg(self, 1, BM_WUC_ENABLE_REG);
7032 1.281 msaitoh
7033 1.281 msaitoh wuce &= ~BM_WUC_HOST_WU_BIT;
7034 1.281 msaitoh wm_gmii_i82544_writereg(self, 1, BM_WUC_ENABLE_REG,
7035 1.281 msaitoh wuce | BM_WUC_ENABLE_BIT);
7036 1.281 msaitoh
7037 1.281 msaitoh /* Select page 800 */
7038 1.281 msaitoh wm_gmii_i82544_writereg(self, 1, MII_IGPHY_PAGE_SELECT,
7039 1.281 msaitoh BM_WUC_PAGE << BME1000_PAGE_SHIFT);
7040 1.1 thorpej
7041 1.281 msaitoh /* Write page 800 */
7042 1.281 msaitoh wm_gmii_i82544_writereg(self, 1, BM_WUC_ADDRESS_OPCODE, regnum);
7043 1.1 thorpej
7044 1.281 msaitoh if (rd)
7045 1.281 msaitoh *val = wm_gmii_i82544_readreg(self, 1, BM_WUC_DATA_OPCODE);
7046 1.127 bouyer else
7047 1.281 msaitoh wm_gmii_i82544_writereg(self, 1, BM_WUC_DATA_OPCODE, *val);
7048 1.281 msaitoh
7049 1.281 msaitoh /* Set page 769 */
7050 1.281 msaitoh wm_gmii_i82544_writereg(self, 1, MII_IGPHY_PAGE_SELECT,
7051 1.281 msaitoh BM_WUC_ENABLE_PAGE << BME1000_PAGE_SHIFT);
7052 1.281 msaitoh
7053 1.281 msaitoh wm_gmii_i82544_writereg(self, 1, BM_WUC_ENABLE_REG, wuce);
7054 1.281 msaitoh }
7055 1.281 msaitoh
7056 1.281 msaitoh /*
7057 1.281 msaitoh * wm_gmii_hv_readreg: [mii interface function]
7058 1.281 msaitoh *
7059 1.281 msaitoh * Read a PHY register on the kumeran
7060 1.281 msaitoh * This could be handled by the PHY layer if we didn't have to lock the
7061 1.281 msaitoh * ressource ...
7062 1.281 msaitoh */
7063 1.281 msaitoh static int
7064 1.281 msaitoh wm_gmii_hv_readreg(device_t self, int phy, int reg)
7065 1.281 msaitoh {
7066 1.281 msaitoh struct wm_softc *sc = device_private(self);
7067 1.281 msaitoh uint16_t page = BM_PHY_REG_PAGE(reg);
7068 1.281 msaitoh uint16_t regnum = BM_PHY_REG_NUM(reg);
7069 1.281 msaitoh uint16_t val;
7070 1.281 msaitoh int rv;
7071 1.281 msaitoh
7072 1.281 msaitoh if (wm_get_swfwhw_semaphore(sc)) {
7073 1.281 msaitoh aprint_error_dev(sc->sc_dev, "%s: failed to get semaphore\n",
7074 1.281 msaitoh __func__);
7075 1.281 msaitoh return 0;
7076 1.281 msaitoh }
7077 1.281 msaitoh
7078 1.281 msaitoh /* XXX Workaround failure in MDIO access while cable is disconnected */
7079 1.281 msaitoh if (sc->sc_phytype == WMPHY_82577) {
7080 1.281 msaitoh /* XXX must write */
7081 1.281 msaitoh }
7082 1.1 thorpej
7083 1.281 msaitoh /* Page 800 works differently than the rest so it has its own func */
7084 1.281 msaitoh if (page == BM_WUC_PAGE) {
7085 1.281 msaitoh wm_access_phy_wakeup_reg_bm(self, reg, &val, 1);
7086 1.281 msaitoh return val;
7087 1.281 msaitoh }
7088 1.1 thorpej
7089 1.244 msaitoh /*
7090 1.281 msaitoh * Lower than page 768 works differently than the rest so it has its
7091 1.281 msaitoh * own func
7092 1.244 msaitoh */
7093 1.281 msaitoh if ((page > 0) && (page < HV_INTC_FC_PAGE_START)) {
7094 1.281 msaitoh printf("gmii_hv_readreg!!!\n");
7095 1.281 msaitoh return 0;
7096 1.281 msaitoh }
7097 1.281 msaitoh
7098 1.281 msaitoh if (regnum > BME1000_MAX_MULTI_PAGE_REG) {
7099 1.281 msaitoh wm_gmii_i82544_writereg(self, 1, MII_IGPHY_PAGE_SELECT,
7100 1.281 msaitoh page << BME1000_PAGE_SHIFT);
7101 1.1 thorpej }
7102 1.1 thorpej
7103 1.281 msaitoh rv = wm_gmii_i82544_readreg(self, phy, regnum & IGPHY_MAXREGADDR);
7104 1.281 msaitoh wm_put_swfwhw_semaphore(sc);
7105 1.281 msaitoh return rv;
7106 1.281 msaitoh }
7107 1.1 thorpej
7108 1.281 msaitoh /*
7109 1.281 msaitoh * wm_gmii_hv_writereg: [mii interface function]
7110 1.281 msaitoh *
7111 1.281 msaitoh * Write a PHY register on the kumeran.
7112 1.281 msaitoh * This could be handled by the PHY layer if we didn't have to lock the
7113 1.281 msaitoh * ressource ...
7114 1.281 msaitoh */
7115 1.281 msaitoh static void
7116 1.281 msaitoh wm_gmii_hv_writereg(device_t self, int phy, int reg, int val)
7117 1.281 msaitoh {
7118 1.281 msaitoh struct wm_softc *sc = device_private(self);
7119 1.281 msaitoh uint16_t page = BM_PHY_REG_PAGE(reg);
7120 1.281 msaitoh uint16_t regnum = BM_PHY_REG_NUM(reg);
7121 1.1 thorpej
7122 1.281 msaitoh if (wm_get_swfwhw_semaphore(sc)) {
7123 1.281 msaitoh aprint_error_dev(sc->sc_dev, "%s: failed to get semaphore\n",
7124 1.281 msaitoh __func__);
7125 1.281 msaitoh return;
7126 1.281 msaitoh }
7127 1.208 msaitoh
7128 1.281 msaitoh /* XXX Workaround failure in MDIO access while cable is disconnected */
7129 1.265 msaitoh
7130 1.281 msaitoh /* Page 800 works differently than the rest so it has its own func */
7131 1.281 msaitoh if (page == BM_WUC_PAGE) {
7132 1.281 msaitoh uint16_t tmp;
7133 1.208 msaitoh
7134 1.281 msaitoh tmp = val;
7135 1.281 msaitoh wm_access_phy_wakeup_reg_bm(self, reg, &tmp, 0);
7136 1.281 msaitoh return;
7137 1.208 msaitoh }
7138 1.184 msaitoh
7139 1.244 msaitoh /*
7140 1.281 msaitoh * Lower than page 768 works differently than the rest so it has its
7141 1.281 msaitoh * own func
7142 1.244 msaitoh */
7143 1.281 msaitoh if ((page > 0) && (page < HV_INTC_FC_PAGE_START)) {
7144 1.281 msaitoh printf("gmii_hv_writereg!!!\n");
7145 1.281 msaitoh return;
7146 1.221 msaitoh }
7147 1.244 msaitoh
7148 1.244 msaitoh /*
7149 1.281 msaitoh * XXX Workaround MDIO accesses being disabled after entering IEEE
7150 1.281 msaitoh * Power Down (whenever bit 11 of the PHY control register is set)
7151 1.244 msaitoh */
7152 1.184 msaitoh
7153 1.281 msaitoh if (regnum > BME1000_MAX_MULTI_PAGE_REG) {
7154 1.281 msaitoh wm_gmii_i82544_writereg(self, 1, MII_IGPHY_PAGE_SELECT,
7155 1.281 msaitoh page << BME1000_PAGE_SHIFT);
7156 1.281 msaitoh }
7157 1.281 msaitoh
7158 1.281 msaitoh wm_gmii_i82544_writereg(self, phy, regnum & IGPHY_MAXREGADDR, val);
7159 1.281 msaitoh wm_put_swfwhw_semaphore(sc);
7160 1.281 msaitoh }
7161 1.281 msaitoh
7162 1.281 msaitoh /*
7163 1.281 msaitoh * wm_gmii_82580_readreg: [mii interface function]
7164 1.281 msaitoh *
7165 1.281 msaitoh * Read a PHY register on the 82580 and I350.
7166 1.281 msaitoh * This could be handled by the PHY layer if we didn't have to lock the
7167 1.281 msaitoh * ressource ...
7168 1.281 msaitoh */
7169 1.281 msaitoh static int
7170 1.281 msaitoh wm_gmii_82580_readreg(device_t self, int phy, int reg)
7171 1.281 msaitoh {
7172 1.281 msaitoh struct wm_softc *sc = device_private(self);
7173 1.281 msaitoh int sem;
7174 1.281 msaitoh int rv;
7175 1.281 msaitoh
7176 1.281 msaitoh sem = swfwphysem[sc->sc_funcid];
7177 1.281 msaitoh if (wm_get_swfw_semaphore(sc, sem)) {
7178 1.281 msaitoh aprint_error_dev(sc->sc_dev, "%s: failed to get semaphore\n",
7179 1.281 msaitoh __func__);
7180 1.281 msaitoh return 0;
7181 1.184 msaitoh }
7182 1.244 msaitoh
7183 1.281 msaitoh rv = wm_gmii_i82544_readreg(self, phy, reg);
7184 1.202 msaitoh
7185 1.281 msaitoh wm_put_swfw_semaphore(sc, sem);
7186 1.281 msaitoh return rv;
7187 1.281 msaitoh }
7188 1.202 msaitoh
7189 1.281 msaitoh /*
7190 1.281 msaitoh * wm_gmii_82580_writereg: [mii interface function]
7191 1.281 msaitoh *
7192 1.281 msaitoh * Write a PHY register on the 82580 and I350.
7193 1.281 msaitoh * This could be handled by the PHY layer if we didn't have to lock the
7194 1.281 msaitoh * ressource ...
7195 1.281 msaitoh */
7196 1.281 msaitoh static void
7197 1.281 msaitoh wm_gmii_82580_writereg(device_t self, int phy, int reg, int val)
7198 1.281 msaitoh {
7199 1.281 msaitoh struct wm_softc *sc = device_private(self);
7200 1.281 msaitoh int sem;
7201 1.202 msaitoh
7202 1.281 msaitoh sem = swfwphysem[sc->sc_funcid];
7203 1.281 msaitoh if (wm_get_swfw_semaphore(sc, sem)) {
7204 1.281 msaitoh aprint_error_dev(sc->sc_dev, "%s: failed to get semaphore\n",
7205 1.281 msaitoh __func__);
7206 1.281 msaitoh return;
7207 1.192 msaitoh }
7208 1.281 msaitoh
7209 1.281 msaitoh wm_gmii_i82544_writereg(self, phy, reg, val);
7210 1.281 msaitoh
7211 1.281 msaitoh wm_put_swfw_semaphore(sc, sem);
7212 1.1 thorpej }
7213 1.1 thorpej
7214 1.1 thorpej /*
7215 1.281 msaitoh * wm_gmii_statchg: [mii interface function]
7216 1.1 thorpej *
7217 1.281 msaitoh * Callback from MII layer when media changes.
7218 1.1 thorpej */
7219 1.47 thorpej static void
7220 1.281 msaitoh wm_gmii_statchg(struct ifnet *ifp)
7221 1.1 thorpej {
7222 1.1 thorpej struct wm_softc *sc = ifp->if_softc;
7223 1.281 msaitoh struct mii_data *mii = &sc->sc_mii;
7224 1.1 thorpej
7225 1.281 msaitoh sc->sc_ctrl &= ~(CTRL_TFCE | CTRL_RFCE);
7226 1.281 msaitoh sc->sc_tctl &= ~TCTL_COLD(0x3ff);
7227 1.281 msaitoh sc->sc_fcrtl &= ~FCRTL_XONE;
7228 1.1 thorpej
7229 1.281 msaitoh /*
7230 1.281 msaitoh * Get flow control negotiation result.
7231 1.281 msaitoh */
7232 1.281 msaitoh if (IFM_SUBTYPE(mii->mii_media.ifm_cur->ifm_media) == IFM_AUTO &&
7233 1.281 msaitoh (mii->mii_media_active & IFM_ETH_FMASK) != sc->sc_flowflags) {
7234 1.281 msaitoh sc->sc_flowflags = mii->mii_media_active & IFM_ETH_FMASK;
7235 1.281 msaitoh mii->mii_media_active &= ~IFM_ETH_FMASK;
7236 1.281 msaitoh }
7237 1.1 thorpej
7238 1.281 msaitoh if (sc->sc_flowflags & IFM_FLOW) {
7239 1.281 msaitoh if (sc->sc_flowflags & IFM_ETH_TXPAUSE) {
7240 1.281 msaitoh sc->sc_ctrl |= CTRL_TFCE;
7241 1.281 msaitoh sc->sc_fcrtl |= FCRTL_XONE;
7242 1.281 msaitoh }
7243 1.281 msaitoh if (sc->sc_flowflags & IFM_ETH_RXPAUSE)
7244 1.281 msaitoh sc->sc_ctrl |= CTRL_RFCE;
7245 1.281 msaitoh }
7246 1.152 dyoung
7247 1.281 msaitoh if (sc->sc_mii.mii_media_active & IFM_FDX) {
7248 1.281 msaitoh DPRINTF(WM_DEBUG_LINK,
7249 1.281 msaitoh ("%s: LINK: statchg: FDX\n", ifp->if_xname));
7250 1.281 msaitoh sc->sc_tctl |= TCTL_COLD(TX_COLLISION_DISTANCE_FDX);
7251 1.152 dyoung } else {
7252 1.281 msaitoh DPRINTF(WM_DEBUG_LINK,
7253 1.281 msaitoh ("%s: LINK: statchg: HDX\n", ifp->if_xname));
7254 1.281 msaitoh sc->sc_tctl |= TCTL_COLD(TX_COLLISION_DISTANCE_HDX);
7255 1.281 msaitoh }
7256 1.281 msaitoh
7257 1.281 msaitoh CSR_WRITE(sc, WMREG_CTRL, sc->sc_ctrl);
7258 1.281 msaitoh CSR_WRITE(sc, WMREG_TCTL, sc->sc_tctl);
7259 1.281 msaitoh CSR_WRITE(sc, (sc->sc_type < WM_T_82543) ? WMREG_OLD_FCRTL
7260 1.281 msaitoh : WMREG_FCRTL, sc->sc_fcrtl);
7261 1.281 msaitoh if (sc->sc_type == WM_T_80003) {
7262 1.281 msaitoh switch (IFM_SUBTYPE(sc->sc_mii.mii_media_active)) {
7263 1.152 dyoung case IFM_1000_T:
7264 1.281 msaitoh wm_kmrn_writereg(sc, KUMCTRLSTA_OFFSET_HD_CTRL,
7265 1.281 msaitoh KUMCTRLSTA_HD_CTRL_1000_DEFAULT);
7266 1.281 msaitoh sc->sc_tipg = TIPG_1000T_80003_DFLT;
7267 1.152 dyoung break;
7268 1.152 dyoung default:
7269 1.281 msaitoh wm_kmrn_writereg(sc, KUMCTRLSTA_OFFSET_HD_CTRL,
7270 1.281 msaitoh KUMCTRLSTA_HD_CTRL_10_100_DEFAULT);
7271 1.281 msaitoh sc->sc_tipg = TIPG_10_100_80003_DFLT;
7272 1.281 msaitoh break;
7273 1.127 bouyer }
7274 1.281 msaitoh CSR_WRITE(sc, WMREG_TIPG, sc->sc_tipg);
7275 1.127 bouyer }
7276 1.1 thorpej }
7277 1.1 thorpej
7278 1.281 msaitoh /*
7279 1.281 msaitoh * wm_kmrn_readreg:
7280 1.281 msaitoh *
7281 1.281 msaitoh * Read a kumeran register
7282 1.281 msaitoh */
7283 1.281 msaitoh static int
7284 1.281 msaitoh wm_kmrn_readreg(struct wm_softc *sc, int reg)
7285 1.1 thorpej {
7286 1.281 msaitoh int rv;
7287 1.1 thorpej
7288 1.281 msaitoh if (sc->sc_flags == WM_F_LOCK_SWFW) {
7289 1.281 msaitoh if (wm_get_swfw_semaphore(sc, SWFW_MAC_CSR_SM)) {
7290 1.281 msaitoh aprint_error_dev(sc->sc_dev,
7291 1.281 msaitoh "%s: failed to get semaphore\n", __func__);
7292 1.281 msaitoh return 0;
7293 1.281 msaitoh }
7294 1.281 msaitoh } else if (sc->sc_flags == WM_F_LOCK_EXTCNF) {
7295 1.281 msaitoh if (wm_get_swfwhw_semaphore(sc)) {
7296 1.281 msaitoh aprint_error_dev(sc->sc_dev,
7297 1.281 msaitoh "%s: failed to get semaphore\n", __func__);
7298 1.281 msaitoh return 0;
7299 1.281 msaitoh }
7300 1.1 thorpej }
7301 1.1 thorpej
7302 1.281 msaitoh CSR_WRITE(sc, WMREG_KUMCTRLSTA,
7303 1.281 msaitoh ((reg << KUMCTRLSTA_OFFSET_SHIFT) & KUMCTRLSTA_OFFSET) |
7304 1.281 msaitoh KUMCTRLSTA_REN);
7305 1.266 msaitoh CSR_WRITE_FLUSH(sc);
7306 1.281 msaitoh delay(2);
7307 1.1 thorpej
7308 1.281 msaitoh rv = CSR_READ(sc, WMREG_KUMCTRLSTA) & KUMCTRLSTA_MASK;
7309 1.1 thorpej
7310 1.281 msaitoh if (sc->sc_flags == WM_F_LOCK_SWFW)
7311 1.281 msaitoh wm_put_swfw_semaphore(sc, SWFW_MAC_CSR_SM);
7312 1.281 msaitoh else if (sc->sc_flags == WM_F_LOCK_EXTCNF)
7313 1.281 msaitoh wm_put_swfwhw_semaphore(sc);
7314 1.1 thorpej
7315 1.281 msaitoh return rv;
7316 1.1 thorpej }
7317 1.1 thorpej
7318 1.1 thorpej /*
7319 1.281 msaitoh * wm_kmrn_writereg:
7320 1.1 thorpej *
7321 1.281 msaitoh * Write a kumeran register
7322 1.1 thorpej */
7323 1.281 msaitoh static void
7324 1.281 msaitoh wm_kmrn_writereg(struct wm_softc *sc, int reg, int val)
7325 1.1 thorpej {
7326 1.1 thorpej
7327 1.281 msaitoh if (sc->sc_flags == WM_F_LOCK_SWFW) {
7328 1.281 msaitoh if (wm_get_swfw_semaphore(sc, SWFW_MAC_CSR_SM)) {
7329 1.281 msaitoh aprint_error_dev(sc->sc_dev,
7330 1.281 msaitoh "%s: failed to get semaphore\n", __func__);
7331 1.281 msaitoh return;
7332 1.281 msaitoh }
7333 1.281 msaitoh } else if (sc->sc_flags == WM_F_LOCK_EXTCNF) {
7334 1.281 msaitoh if (wm_get_swfwhw_semaphore(sc)) {
7335 1.281 msaitoh aprint_error_dev(sc->sc_dev,
7336 1.281 msaitoh "%s: failed to get semaphore\n", __func__);
7337 1.281 msaitoh return;
7338 1.281 msaitoh }
7339 1.281 msaitoh }
7340 1.1 thorpej
7341 1.281 msaitoh CSR_WRITE(sc, WMREG_KUMCTRLSTA,
7342 1.281 msaitoh ((reg << KUMCTRLSTA_OFFSET_SHIFT) & KUMCTRLSTA_OFFSET) |
7343 1.281 msaitoh (val & KUMCTRLSTA_MASK));
7344 1.1 thorpej
7345 1.281 msaitoh if (sc->sc_flags == WM_F_LOCK_SWFW)
7346 1.281 msaitoh wm_put_swfw_semaphore(sc, SWFW_MAC_CSR_SM);
7347 1.281 msaitoh else if (sc->sc_flags == WM_F_LOCK_EXTCNF)
7348 1.281 msaitoh wm_put_swfwhw_semaphore(sc);
7349 1.1 thorpej }
7350 1.1 thorpej
7351 1.281 msaitoh /* SGMII related */
7352 1.281 msaitoh
7353 1.1 thorpej /*
7354 1.281 msaitoh * wm_sgmii_uses_mdio
7355 1.1 thorpej *
7356 1.281 msaitoh * Check whether the transaction is to the internal PHY or the external
7357 1.281 msaitoh * MDIO interface. Return true if it's MDIO.
7358 1.281 msaitoh */
7359 1.281 msaitoh static bool
7360 1.281 msaitoh wm_sgmii_uses_mdio(struct wm_softc *sc)
7361 1.281 msaitoh {
7362 1.281 msaitoh uint32_t reg;
7363 1.281 msaitoh bool ismdio = false;
7364 1.281 msaitoh
7365 1.281 msaitoh switch (sc->sc_type) {
7366 1.281 msaitoh case WM_T_82575:
7367 1.281 msaitoh case WM_T_82576:
7368 1.281 msaitoh reg = CSR_READ(sc, WMREG_MDIC);
7369 1.281 msaitoh ismdio = ((reg & MDIC_DEST) != 0);
7370 1.281 msaitoh break;
7371 1.281 msaitoh case WM_T_82580:
7372 1.281 msaitoh case WM_T_I350:
7373 1.281 msaitoh case WM_T_I354:
7374 1.281 msaitoh case WM_T_I210:
7375 1.281 msaitoh case WM_T_I211:
7376 1.281 msaitoh reg = CSR_READ(sc, WMREG_MDICNFG);
7377 1.281 msaitoh ismdio = ((reg & MDICNFG_DEST) != 0);
7378 1.281 msaitoh break;
7379 1.281 msaitoh default:
7380 1.281 msaitoh break;
7381 1.281 msaitoh }
7382 1.1 thorpej
7383 1.281 msaitoh return ismdio;
7384 1.1 thorpej }
7385 1.1 thorpej
7386 1.1 thorpej /*
7387 1.281 msaitoh * wm_sgmii_readreg: [mii interface function]
7388 1.1 thorpej *
7389 1.281 msaitoh * Read a PHY register on the SGMII
7390 1.281 msaitoh * This could be handled by the PHY layer if we didn't have to lock the
7391 1.281 msaitoh * ressource ...
7392 1.1 thorpej */
7393 1.47 thorpej static int
7394 1.281 msaitoh wm_sgmii_readreg(device_t self, int phy, int reg)
7395 1.1 thorpej {
7396 1.157 dyoung struct wm_softc *sc = device_private(self);
7397 1.281 msaitoh uint32_t i2ccmd;
7398 1.1 thorpej int i, rv;
7399 1.1 thorpej
7400 1.281 msaitoh if (wm_get_swfw_semaphore(sc, swfwphysem[sc->sc_funcid])) {
7401 1.281 msaitoh aprint_error_dev(sc->sc_dev, "%s: failed to get semaphore\n",
7402 1.281 msaitoh __func__);
7403 1.281 msaitoh return 0;
7404 1.281 msaitoh }
7405 1.281 msaitoh
7406 1.281 msaitoh i2ccmd = (reg << I2CCMD_REG_ADDR_SHIFT)
7407 1.281 msaitoh | (phy << I2CCMD_PHY_ADDR_SHIFT)
7408 1.281 msaitoh | I2CCMD_OPCODE_READ;
7409 1.281 msaitoh CSR_WRITE(sc, WMREG_I2CCMD, i2ccmd);
7410 1.1 thorpej
7411 1.281 msaitoh /* Poll the ready bit */
7412 1.281 msaitoh for (i = 0; i < I2CCMD_PHY_TIMEOUT; i++) {
7413 1.281 msaitoh delay(50);
7414 1.281 msaitoh i2ccmd = CSR_READ(sc, WMREG_I2CCMD);
7415 1.281 msaitoh if (i2ccmd & I2CCMD_READY)
7416 1.1 thorpej break;
7417 1.1 thorpej }
7418 1.281 msaitoh if ((i2ccmd & I2CCMD_READY) == 0)
7419 1.281 msaitoh aprint_error_dev(sc->sc_dev, "I2CCMD Read did not complete\n");
7420 1.281 msaitoh if ((i2ccmd & I2CCMD_ERROR) != 0)
7421 1.281 msaitoh aprint_error_dev(sc->sc_dev, "I2CCMD Error bit set\n");
7422 1.1 thorpej
7423 1.281 msaitoh rv = ((i2ccmd >> 8) & 0x00ff) | ((i2ccmd << 8) & 0xff00);
7424 1.1 thorpej
7425 1.281 msaitoh wm_put_swfw_semaphore(sc, swfwphysem[sc->sc_funcid]);
7426 1.194 msaitoh return rv;
7427 1.1 thorpej }
7428 1.1 thorpej
7429 1.1 thorpej /*
7430 1.281 msaitoh * wm_sgmii_writereg: [mii interface function]
7431 1.1 thorpej *
7432 1.281 msaitoh * Write a PHY register on the SGMII.
7433 1.281 msaitoh * This could be handled by the PHY layer if we didn't have to lock the
7434 1.281 msaitoh * ressource ...
7435 1.1 thorpej */
7436 1.47 thorpej static void
7437 1.281 msaitoh wm_sgmii_writereg(device_t self, int phy, int reg, int val)
7438 1.1 thorpej {
7439 1.157 dyoung struct wm_softc *sc = device_private(self);
7440 1.281 msaitoh uint32_t i2ccmd;
7441 1.1 thorpej int i;
7442 1.314 msaitoh int val_swapped;
7443 1.1 thorpej
7444 1.281 msaitoh if (wm_get_swfw_semaphore(sc, swfwphysem[sc->sc_funcid])) {
7445 1.281 msaitoh aprint_error_dev(sc->sc_dev, "%s: failed to get semaphore\n",
7446 1.281 msaitoh __func__);
7447 1.281 msaitoh return;
7448 1.281 msaitoh }
7449 1.314 msaitoh /* Swap the data bytes for the I2C interface */
7450 1.314 msaitoh val_swapped = ((val >> 8) & 0x00FF) | ((val << 8) & 0xFF00);
7451 1.281 msaitoh i2ccmd = (reg << I2CCMD_REG_ADDR_SHIFT)
7452 1.281 msaitoh | (phy << I2CCMD_PHY_ADDR_SHIFT)
7453 1.314 msaitoh | I2CCMD_OPCODE_WRITE | val_swapped;
7454 1.281 msaitoh CSR_WRITE(sc, WMREG_I2CCMD, i2ccmd);
7455 1.1 thorpej
7456 1.281 msaitoh /* Poll the ready bit */
7457 1.281 msaitoh for (i = 0; i < I2CCMD_PHY_TIMEOUT; i++) {
7458 1.281 msaitoh delay(50);
7459 1.281 msaitoh i2ccmd = CSR_READ(sc, WMREG_I2CCMD);
7460 1.281 msaitoh if (i2ccmd & I2CCMD_READY)
7461 1.1 thorpej break;
7462 1.1 thorpej }
7463 1.281 msaitoh if ((i2ccmd & I2CCMD_READY) == 0)
7464 1.281 msaitoh aprint_error_dev(sc->sc_dev, "I2CCMD Write did not complete\n");
7465 1.281 msaitoh if ((i2ccmd & I2CCMD_ERROR) != 0)
7466 1.281 msaitoh aprint_error_dev(sc->sc_dev, "I2CCMD Error bit set\n");
7467 1.1 thorpej
7468 1.281 msaitoh wm_put_swfw_semaphore(sc, SWFW_PHY0_SM);
7469 1.1 thorpej }
7470 1.1 thorpej
7471 1.281 msaitoh /* TBI related */
7472 1.281 msaitoh
7473 1.281 msaitoh /* XXX Currently TBI only */
7474 1.127 bouyer static int
7475 1.281 msaitoh wm_check_for_link(struct wm_softc *sc)
7476 1.127 bouyer {
7477 1.281 msaitoh struct ifmedia_entry *ife = sc->sc_mii.mii_media.ifm_cur;
7478 1.281 msaitoh uint32_t rxcw;
7479 1.281 msaitoh uint32_t ctrl;
7480 1.281 msaitoh uint32_t status;
7481 1.281 msaitoh uint32_t sig;
7482 1.127 bouyer
7483 1.311 msaitoh if (sc->sc_mediatype == WM_MEDIATYPE_SERDES) {
7484 1.281 msaitoh sc->sc_tbi_linkup = 1;
7485 1.127 bouyer return 0;
7486 1.281 msaitoh }
7487 1.127 bouyer
7488 1.281 msaitoh rxcw = CSR_READ(sc, WMREG_RXCW);
7489 1.281 msaitoh ctrl = CSR_READ(sc, WMREG_CTRL);
7490 1.281 msaitoh status = CSR_READ(sc, WMREG_STATUS);
7491 1.281 msaitoh
7492 1.281 msaitoh sig = (sc->sc_type > WM_T_82544) ? CTRL_SWDPIN(1) : 0;
7493 1.281 msaitoh
7494 1.281 msaitoh DPRINTF(WM_DEBUG_LINK, ("%s: %s: sig = %d, status_lu = %d, rxcw_c = %d\n",
7495 1.281 msaitoh device_xname(sc->sc_dev), __func__,
7496 1.281 msaitoh ((ctrl & CTRL_SWDPIN(1)) == sig),
7497 1.281 msaitoh ((status & STATUS_LU) != 0),
7498 1.281 msaitoh ((rxcw & RXCW_C) != 0)
7499 1.281 msaitoh ));
7500 1.281 msaitoh
7501 1.281 msaitoh /*
7502 1.281 msaitoh * SWDPIN LU RXCW
7503 1.281 msaitoh * 0 0 0
7504 1.281 msaitoh * 0 0 1 (should not happen)
7505 1.281 msaitoh * 0 1 0 (should not happen)
7506 1.281 msaitoh * 0 1 1 (should not happen)
7507 1.281 msaitoh * 1 0 0 Disable autonego and force linkup
7508 1.281 msaitoh * 1 0 1 got /C/ but not linkup yet
7509 1.281 msaitoh * 1 1 0 (linkup)
7510 1.281 msaitoh * 1 1 1 If IFM_AUTO, back to autonego
7511 1.281 msaitoh *
7512 1.281 msaitoh */
7513 1.281 msaitoh if (((ctrl & CTRL_SWDPIN(1)) == sig)
7514 1.281 msaitoh && ((status & STATUS_LU) == 0)
7515 1.281 msaitoh && ((rxcw & RXCW_C) == 0)) {
7516 1.281 msaitoh DPRINTF(WM_DEBUG_LINK, ("%s: force linkup and fullduplex\n",
7517 1.281 msaitoh __func__));
7518 1.281 msaitoh sc->sc_tbi_linkup = 0;
7519 1.281 msaitoh /* Disable auto-negotiation in the TXCW register */
7520 1.281 msaitoh CSR_WRITE(sc, WMREG_TXCW, (sc->sc_txcw & ~TXCW_ANE));
7521 1.127 bouyer
7522 1.281 msaitoh /*
7523 1.281 msaitoh * Force link-up and also force full-duplex.
7524 1.281 msaitoh *
7525 1.281 msaitoh * NOTE: CTRL was updated TFCE and RFCE automatically,
7526 1.281 msaitoh * so we should update sc->sc_ctrl
7527 1.281 msaitoh */
7528 1.281 msaitoh sc->sc_ctrl = ctrl | CTRL_SLU | CTRL_FD;
7529 1.281 msaitoh CSR_WRITE(sc, WMREG_CTRL, sc->sc_ctrl);
7530 1.281 msaitoh } else if (((status & STATUS_LU) != 0)
7531 1.281 msaitoh && ((rxcw & RXCW_C) != 0)
7532 1.281 msaitoh && (IFM_SUBTYPE(ife->ifm_media) == IFM_AUTO)) {
7533 1.281 msaitoh sc->sc_tbi_linkup = 1;
7534 1.281 msaitoh DPRINTF(WM_DEBUG_LINK, ("%s: go back to autonego\n",
7535 1.281 msaitoh __func__));
7536 1.281 msaitoh CSR_WRITE(sc, WMREG_TXCW, sc->sc_txcw);
7537 1.281 msaitoh CSR_WRITE(sc, WMREG_CTRL, (ctrl & ~CTRL_SLU));
7538 1.281 msaitoh } else if (((ctrl & CTRL_SWDPIN(1)) == sig)
7539 1.281 msaitoh && ((rxcw & RXCW_C) != 0)) {
7540 1.281 msaitoh DPRINTF(WM_DEBUG_LINK, ("/C/"));
7541 1.127 bouyer } else {
7542 1.281 msaitoh DPRINTF(WM_DEBUG_LINK, ("%s: %x,%x,%x\n", __func__, rxcw, ctrl,
7543 1.281 msaitoh status));
7544 1.127 bouyer }
7545 1.127 bouyer
7546 1.281 msaitoh return 0;
7547 1.127 bouyer }
7548 1.127 bouyer
7549 1.127 bouyer /*
7550 1.281 msaitoh * wm_tbi_mediainit:
7551 1.127 bouyer *
7552 1.281 msaitoh * Initialize media for use on 1000BASE-X devices.
7553 1.127 bouyer */
7554 1.127 bouyer static void
7555 1.281 msaitoh wm_tbi_mediainit(struct wm_softc *sc)
7556 1.127 bouyer {
7557 1.281 msaitoh struct ifnet *ifp = &sc->sc_ethercom.ec_if;
7558 1.281 msaitoh const char *sep = "";
7559 1.281 msaitoh
7560 1.281 msaitoh if (sc->sc_type < WM_T_82543)
7561 1.281 msaitoh sc->sc_tipg = TIPG_WM_DFLT;
7562 1.281 msaitoh else
7563 1.281 msaitoh sc->sc_tipg = TIPG_LG_DFLT;
7564 1.281 msaitoh
7565 1.281 msaitoh sc->sc_tbi_anegticks = 5;
7566 1.281 msaitoh
7567 1.281 msaitoh /* Initialize our media structures */
7568 1.281 msaitoh sc->sc_mii.mii_ifp = ifp;
7569 1.281 msaitoh
7570 1.281 msaitoh sc->sc_ethercom.ec_mii = &sc->sc_mii;
7571 1.281 msaitoh ifmedia_init(&sc->sc_mii.mii_media, IFM_IMASK, wm_tbi_mediachange,
7572 1.281 msaitoh wm_tbi_mediastatus);
7573 1.281 msaitoh
7574 1.281 msaitoh /*
7575 1.281 msaitoh * SWD Pins:
7576 1.281 msaitoh *
7577 1.281 msaitoh * 0 = Link LED (output)
7578 1.281 msaitoh * 1 = Loss Of Signal (input)
7579 1.281 msaitoh */
7580 1.281 msaitoh sc->sc_ctrl |= CTRL_SWDPIO(0);
7581 1.281 msaitoh sc->sc_ctrl &= ~CTRL_SWDPIO(1);
7582 1.311 msaitoh if (sc->sc_mediatype == WM_MEDIATYPE_SERDES)
7583 1.281 msaitoh sc->sc_ctrl &= ~CTRL_LRST;
7584 1.281 msaitoh
7585 1.281 msaitoh CSR_WRITE(sc, WMREG_CTRL, sc->sc_ctrl);
7586 1.127 bouyer
7587 1.281 msaitoh #define ADD(ss, mm, dd) \
7588 1.281 msaitoh do { \
7589 1.281 msaitoh aprint_normal("%s%s", sep, ss); \
7590 1.281 msaitoh ifmedia_add(&sc->sc_mii.mii_media, IFM_ETHER|(mm), (dd), NULL); \
7591 1.281 msaitoh sep = ", "; \
7592 1.281 msaitoh } while (/*CONSTCOND*/0)
7593 1.127 bouyer
7594 1.281 msaitoh aprint_normal_dev(sc->sc_dev, "");
7595 1.285 msaitoh
7596 1.285 msaitoh /* Only 82545 is LX */
7597 1.285 msaitoh if (sc->sc_type == WM_T_82545) {
7598 1.285 msaitoh ADD("1000baseLX", IFM_1000_LX, ANAR_X_HD);
7599 1.285 msaitoh ADD("1000baseLX-FDX", IFM_1000_LX|IFM_FDX, ANAR_X_FD);
7600 1.285 msaitoh } else {
7601 1.285 msaitoh ADD("1000baseSX", IFM_1000_SX, ANAR_X_HD);
7602 1.285 msaitoh ADD("1000baseSX-FDX", IFM_1000_SX|IFM_FDX, ANAR_X_FD);
7603 1.285 msaitoh }
7604 1.281 msaitoh ADD("auto", IFM_AUTO, ANAR_X_FD|ANAR_X_HD);
7605 1.281 msaitoh aprint_normal("\n");
7606 1.127 bouyer
7607 1.281 msaitoh #undef ADD
7608 1.127 bouyer
7609 1.281 msaitoh ifmedia_set(&sc->sc_mii.mii_media, IFM_ETHER | IFM_AUTO);
7610 1.127 bouyer }
7611 1.127 bouyer
7612 1.127 bouyer /*
7613 1.281 msaitoh * wm_tbi_mediastatus: [ifmedia interface function]
7614 1.167 msaitoh *
7615 1.281 msaitoh * Get the current interface media status on a 1000BASE-X device.
7616 1.167 msaitoh */
7617 1.281 msaitoh static void
7618 1.281 msaitoh wm_tbi_mediastatus(struct ifnet *ifp, struct ifmediareq *ifmr)
7619 1.167 msaitoh {
7620 1.281 msaitoh struct wm_softc *sc = ifp->if_softc;
7621 1.281 msaitoh uint32_t ctrl, status;
7622 1.167 msaitoh
7623 1.281 msaitoh ifmr->ifm_status = IFM_AVALID;
7624 1.281 msaitoh ifmr->ifm_active = IFM_ETHER;
7625 1.167 msaitoh
7626 1.281 msaitoh status = CSR_READ(sc, WMREG_STATUS);
7627 1.281 msaitoh if ((status & STATUS_LU) == 0) {
7628 1.281 msaitoh ifmr->ifm_active |= IFM_NONE;
7629 1.281 msaitoh return;
7630 1.167 msaitoh }
7631 1.167 msaitoh
7632 1.281 msaitoh ifmr->ifm_status |= IFM_ACTIVE;
7633 1.285 msaitoh /* Only 82545 is LX */
7634 1.285 msaitoh if (sc->sc_type == WM_T_82545)
7635 1.285 msaitoh ifmr->ifm_active |= IFM_1000_LX;
7636 1.285 msaitoh else
7637 1.285 msaitoh ifmr->ifm_active |= IFM_1000_SX;
7638 1.281 msaitoh if (CSR_READ(sc, WMREG_STATUS) & STATUS_FD)
7639 1.281 msaitoh ifmr->ifm_active |= IFM_FDX;
7640 1.281 msaitoh else
7641 1.281 msaitoh ifmr->ifm_active |= IFM_HDX;
7642 1.281 msaitoh ctrl = CSR_READ(sc, WMREG_CTRL);
7643 1.281 msaitoh if (ctrl & CTRL_RFCE)
7644 1.281 msaitoh ifmr->ifm_active |= IFM_FLOW | IFM_ETH_RXPAUSE;
7645 1.281 msaitoh if (ctrl & CTRL_TFCE)
7646 1.281 msaitoh ifmr->ifm_active |= IFM_FLOW | IFM_ETH_TXPAUSE;
7647 1.167 msaitoh }
7648 1.167 msaitoh
7649 1.167 msaitoh /*
7650 1.281 msaitoh * wm_tbi_mediachange: [ifmedia interface function]
7651 1.167 msaitoh *
7652 1.281 msaitoh * Set hardware to newly-selected media on a 1000BASE-X device.
7653 1.167 msaitoh */
7654 1.281 msaitoh static int
7655 1.281 msaitoh wm_tbi_mediachange(struct ifnet *ifp)
7656 1.167 msaitoh {
7657 1.281 msaitoh struct wm_softc *sc = ifp->if_softc;
7658 1.281 msaitoh struct ifmedia_entry *ife = sc->sc_mii.mii_media.ifm_cur;
7659 1.281 msaitoh uint32_t status;
7660 1.281 msaitoh int i;
7661 1.167 msaitoh
7662 1.311 msaitoh if (sc->sc_mediatype == WM_MEDIATYPE_SERDES)
7663 1.281 msaitoh return 0;
7664 1.167 msaitoh
7665 1.285 msaitoh if ((sc->sc_type == WM_T_82571) || (sc->sc_type == WM_T_82572)
7666 1.285 msaitoh || (sc->sc_type >= WM_T_82575))
7667 1.285 msaitoh CSR_WRITE(sc, WMREG_SCTL, SCTL_DISABLE_SERDES_LOOPBACK);
7668 1.285 msaitoh
7669 1.285 msaitoh /* XXX power_up_serdes_link_82575() */
7670 1.285 msaitoh
7671 1.285 msaitoh sc->sc_ctrl &= ~CTRL_LRST;
7672 1.285 msaitoh sc->sc_txcw = TXCW_ANE;
7673 1.285 msaitoh if (IFM_SUBTYPE(ife->ifm_media) == IFM_AUTO)
7674 1.285 msaitoh sc->sc_txcw |= TXCW_FD | TXCW_HD;
7675 1.285 msaitoh else if (ife->ifm_media & IFM_FDX)
7676 1.285 msaitoh sc->sc_txcw |= TXCW_FD;
7677 1.285 msaitoh else
7678 1.285 msaitoh sc->sc_txcw |= TXCW_HD;
7679 1.285 msaitoh
7680 1.285 msaitoh if ((sc->sc_mii.mii_media.ifm_media & IFM_FLOW) != 0)
7681 1.281 msaitoh sc->sc_txcw |= TXCW_SYM_PAUSE | TXCW_ASYM_PAUSE;
7682 1.167 msaitoh
7683 1.281 msaitoh DPRINTF(WM_DEBUG_LINK,("%s: sc_txcw = 0x%x after autoneg check\n",
7684 1.285 msaitoh device_xname(sc->sc_dev), sc->sc_txcw));
7685 1.281 msaitoh CSR_WRITE(sc, WMREG_TXCW, sc->sc_txcw);
7686 1.285 msaitoh CSR_WRITE(sc, WMREG_CTRL, sc->sc_ctrl);
7687 1.281 msaitoh CSR_WRITE_FLUSH(sc);
7688 1.285 msaitoh delay(1000);
7689 1.167 msaitoh
7690 1.281 msaitoh i = CSR_READ(sc, WMREG_CTRL) & CTRL_SWDPIN(1);
7691 1.281 msaitoh DPRINTF(WM_DEBUG_LINK,("%s: i = 0x%x\n", device_xname(sc->sc_dev),i));
7692 1.192 msaitoh
7693 1.281 msaitoh /*
7694 1.281 msaitoh * On 82544 chips and later, the CTRL_SWDPIN(1) bit will be set if the
7695 1.281 msaitoh * optics detect a signal, 0 if they don't.
7696 1.281 msaitoh */
7697 1.281 msaitoh if (((i != 0) && (sc->sc_type > WM_T_82544)) || (i == 0)) {
7698 1.281 msaitoh /* Have signal; wait for the link to come up. */
7699 1.281 msaitoh for (i = 0; i < WM_LINKUP_TIMEOUT; i++) {
7700 1.281 msaitoh delay(10000);
7701 1.281 msaitoh if (CSR_READ(sc, WMREG_STATUS) & STATUS_LU)
7702 1.281 msaitoh break;
7703 1.281 msaitoh }
7704 1.192 msaitoh
7705 1.281 msaitoh DPRINTF(WM_DEBUG_LINK,("%s: i = %d after waiting for link\n",
7706 1.281 msaitoh device_xname(sc->sc_dev),i));
7707 1.192 msaitoh
7708 1.281 msaitoh status = CSR_READ(sc, WMREG_STATUS);
7709 1.281 msaitoh DPRINTF(WM_DEBUG_LINK,
7710 1.281 msaitoh ("%s: status after final read = 0x%x, STATUS_LU = 0x%x\n",
7711 1.281 msaitoh device_xname(sc->sc_dev),status, STATUS_LU));
7712 1.281 msaitoh if (status & STATUS_LU) {
7713 1.281 msaitoh /* Link is up. */
7714 1.281 msaitoh DPRINTF(WM_DEBUG_LINK,
7715 1.281 msaitoh ("%s: LINK: set media -> link up %s\n",
7716 1.281 msaitoh device_xname(sc->sc_dev),
7717 1.281 msaitoh (status & STATUS_FD) ? "FDX" : "HDX"));
7718 1.192 msaitoh
7719 1.281 msaitoh /*
7720 1.281 msaitoh * NOTE: CTRL will update TFCE and RFCE automatically,
7721 1.281 msaitoh * so we should update sc->sc_ctrl
7722 1.281 msaitoh */
7723 1.281 msaitoh sc->sc_ctrl = CSR_READ(sc, WMREG_CTRL);
7724 1.281 msaitoh sc->sc_tctl &= ~TCTL_COLD(0x3ff);
7725 1.281 msaitoh sc->sc_fcrtl &= ~FCRTL_XONE;
7726 1.281 msaitoh if (status & STATUS_FD)
7727 1.281 msaitoh sc->sc_tctl |=
7728 1.281 msaitoh TCTL_COLD(TX_COLLISION_DISTANCE_FDX);
7729 1.281 msaitoh else
7730 1.281 msaitoh sc->sc_tctl |=
7731 1.281 msaitoh TCTL_COLD(TX_COLLISION_DISTANCE_HDX);
7732 1.281 msaitoh if (CSR_READ(sc, WMREG_CTRL) & CTRL_TFCE)
7733 1.281 msaitoh sc->sc_fcrtl |= FCRTL_XONE;
7734 1.281 msaitoh CSR_WRITE(sc, WMREG_TCTL, sc->sc_tctl);
7735 1.281 msaitoh CSR_WRITE(sc, (sc->sc_type < WM_T_82543) ?
7736 1.281 msaitoh WMREG_OLD_FCRTL : WMREG_FCRTL,
7737 1.281 msaitoh sc->sc_fcrtl);
7738 1.281 msaitoh sc->sc_tbi_linkup = 1;
7739 1.281 msaitoh } else {
7740 1.281 msaitoh if (i == WM_LINKUP_TIMEOUT)
7741 1.281 msaitoh wm_check_for_link(sc);
7742 1.281 msaitoh /* Link is down. */
7743 1.281 msaitoh DPRINTF(WM_DEBUG_LINK,
7744 1.281 msaitoh ("%s: LINK: set media -> link down\n",
7745 1.281 msaitoh device_xname(sc->sc_dev)));
7746 1.281 msaitoh sc->sc_tbi_linkup = 0;
7747 1.281 msaitoh }
7748 1.281 msaitoh } else {
7749 1.281 msaitoh DPRINTF(WM_DEBUG_LINK, ("%s: LINK: set media -> no signal\n",
7750 1.281 msaitoh device_xname(sc->sc_dev)));
7751 1.281 msaitoh sc->sc_tbi_linkup = 0;
7752 1.281 msaitoh }
7753 1.198 msaitoh
7754 1.281 msaitoh wm_tbi_set_linkled(sc);
7755 1.192 msaitoh
7756 1.281 msaitoh return 0;
7757 1.192 msaitoh }
7758 1.192 msaitoh
7759 1.167 msaitoh /*
7760 1.281 msaitoh * wm_tbi_set_linkled:
7761 1.191 msaitoh *
7762 1.281 msaitoh * Update the link LED on 1000BASE-X devices.
7763 1.191 msaitoh */
7764 1.281 msaitoh static void
7765 1.281 msaitoh wm_tbi_set_linkled(struct wm_softc *sc)
7766 1.191 msaitoh {
7767 1.192 msaitoh
7768 1.281 msaitoh if (sc->sc_tbi_linkup)
7769 1.281 msaitoh sc->sc_ctrl |= CTRL_SWDPIN(0);
7770 1.281 msaitoh else
7771 1.281 msaitoh sc->sc_ctrl &= ~CTRL_SWDPIN(0);
7772 1.192 msaitoh
7773 1.281 msaitoh /* 82540 or newer devices are active low */
7774 1.281 msaitoh sc->sc_ctrl ^= (sc->sc_type >= WM_T_82540) ? CTRL_SWDPIN(0) : 0;
7775 1.191 msaitoh
7776 1.281 msaitoh CSR_WRITE(sc, WMREG_CTRL, sc->sc_ctrl);
7777 1.191 msaitoh }
7778 1.191 msaitoh
7779 1.191 msaitoh /*
7780 1.281 msaitoh * wm_tbi_check_link:
7781 1.191 msaitoh *
7782 1.281 msaitoh * Check the link on 1000BASE-X devices.
7783 1.191 msaitoh */
7784 1.191 msaitoh static void
7785 1.281 msaitoh wm_tbi_check_link(struct wm_softc *sc)
7786 1.191 msaitoh {
7787 1.281 msaitoh struct ifmedia_entry *ife = sc->sc_mii.mii_media.ifm_cur;
7788 1.281 msaitoh uint32_t status;
7789 1.281 msaitoh
7790 1.283 ozaki KASSERT(WM_TX_LOCKED(sc));
7791 1.191 msaitoh
7792 1.311 msaitoh if (sc->sc_mediatype == WM_MEDIATYPE_SERDES) {
7793 1.281 msaitoh sc->sc_tbi_linkup = 1;
7794 1.191 msaitoh return;
7795 1.191 msaitoh }
7796 1.191 msaitoh
7797 1.281 msaitoh status = CSR_READ(sc, WMREG_STATUS);
7798 1.192 msaitoh
7799 1.281 msaitoh /* XXX is this needed? */
7800 1.281 msaitoh (void)CSR_READ(sc, WMREG_RXCW);
7801 1.281 msaitoh (void)CSR_READ(sc, WMREG_CTRL);
7802 1.192 msaitoh
7803 1.281 msaitoh /* set link status */
7804 1.281 msaitoh if ((status & STATUS_LU) == 0) {
7805 1.281 msaitoh DPRINTF(WM_DEBUG_LINK,
7806 1.281 msaitoh ("%s: LINK: checklink -> down\n",
7807 1.281 msaitoh device_xname(sc->sc_dev)));
7808 1.281 msaitoh sc->sc_tbi_linkup = 0;
7809 1.281 msaitoh } else if (sc->sc_tbi_linkup == 0) {
7810 1.281 msaitoh DPRINTF(WM_DEBUG_LINK,
7811 1.281 msaitoh ("%s: LINK: checklink -> up %s\n",
7812 1.281 msaitoh device_xname(sc->sc_dev),
7813 1.281 msaitoh (status & STATUS_FD) ? "FDX" : "HDX"));
7814 1.281 msaitoh sc->sc_tbi_linkup = 1;
7815 1.192 msaitoh }
7816 1.192 msaitoh
7817 1.281 msaitoh if ((sc->sc_ethercom.ec_if.if_flags & IFF_UP)
7818 1.281 msaitoh && ((status & STATUS_LU) == 0)) {
7819 1.281 msaitoh sc->sc_tbi_linkup = 0;
7820 1.285 msaitoh if (IFM_SUBTYPE(ife->ifm_media) == IFM_AUTO) {
7821 1.281 msaitoh /* If the timer expired, retry autonegotiation */
7822 1.281 msaitoh if (++sc->sc_tbi_ticks >= sc->sc_tbi_anegticks) {
7823 1.281 msaitoh DPRINTF(WM_DEBUG_LINK, ("EXPIRE\n"));
7824 1.281 msaitoh sc->sc_tbi_ticks = 0;
7825 1.281 msaitoh /*
7826 1.281 msaitoh * Reset the link, and let autonegotiation do
7827 1.281 msaitoh * its thing
7828 1.281 msaitoh */
7829 1.281 msaitoh sc->sc_ctrl |= CTRL_LRST;
7830 1.281 msaitoh CSR_WRITE(sc, WMREG_CTRL, sc->sc_ctrl);
7831 1.281 msaitoh CSR_WRITE_FLUSH(sc);
7832 1.281 msaitoh delay(1000);
7833 1.281 msaitoh sc->sc_ctrl &= ~CTRL_LRST;
7834 1.281 msaitoh CSR_WRITE(sc, WMREG_CTRL, sc->sc_ctrl);
7835 1.281 msaitoh CSR_WRITE_FLUSH(sc);
7836 1.281 msaitoh delay(1000);
7837 1.281 msaitoh CSR_WRITE(sc, WMREG_TXCW,
7838 1.281 msaitoh sc->sc_txcw & ~TXCW_ANE);
7839 1.281 msaitoh CSR_WRITE(sc, WMREG_TXCW, sc->sc_txcw);
7840 1.281 msaitoh }
7841 1.281 msaitoh }
7842 1.192 msaitoh }
7843 1.192 msaitoh
7844 1.281 msaitoh wm_tbi_set_linkled(sc);
7845 1.191 msaitoh }
7846 1.191 msaitoh
7847 1.292 msaitoh /* SFP related */
7848 1.295 msaitoh
7849 1.295 msaitoh static int
7850 1.295 msaitoh wm_sfp_read_data_byte(struct wm_softc *sc, uint16_t offset, uint8_t *data)
7851 1.295 msaitoh {
7852 1.295 msaitoh uint32_t i2ccmd;
7853 1.295 msaitoh int i;
7854 1.295 msaitoh
7855 1.295 msaitoh i2ccmd = (offset << I2CCMD_REG_ADDR_SHIFT) | I2CCMD_OPCODE_READ;
7856 1.295 msaitoh CSR_WRITE(sc, WMREG_I2CCMD, i2ccmd);
7857 1.295 msaitoh
7858 1.295 msaitoh /* Poll the ready bit */
7859 1.295 msaitoh for (i = 0; i < I2CCMD_PHY_TIMEOUT; i++) {
7860 1.295 msaitoh delay(50);
7861 1.295 msaitoh i2ccmd = CSR_READ(sc, WMREG_I2CCMD);
7862 1.295 msaitoh if (i2ccmd & I2CCMD_READY)
7863 1.295 msaitoh break;
7864 1.295 msaitoh }
7865 1.295 msaitoh if ((i2ccmd & I2CCMD_READY) == 0)
7866 1.295 msaitoh return -1;
7867 1.295 msaitoh if ((i2ccmd & I2CCMD_ERROR) != 0)
7868 1.295 msaitoh return -1;
7869 1.295 msaitoh
7870 1.295 msaitoh *data = i2ccmd & 0x00ff;
7871 1.295 msaitoh
7872 1.295 msaitoh return 0;
7873 1.295 msaitoh }
7874 1.295 msaitoh
7875 1.292 msaitoh static uint32_t
7876 1.295 msaitoh wm_sfp_get_media_type(struct wm_softc *sc)
7877 1.292 msaitoh {
7878 1.295 msaitoh uint32_t ctrl_ext;
7879 1.295 msaitoh uint8_t val = 0;
7880 1.295 msaitoh int timeout = 3;
7881 1.311 msaitoh uint32_t mediatype = WM_MEDIATYPE_UNKNOWN;
7882 1.295 msaitoh int rv = -1;
7883 1.292 msaitoh
7884 1.295 msaitoh ctrl_ext = CSR_READ(sc, WMREG_CTRL_EXT);
7885 1.295 msaitoh ctrl_ext &= ~CTRL_EXT_SWDPIN(3);
7886 1.295 msaitoh CSR_WRITE(sc, WMREG_CTRL_EXT, ctrl_ext | CTRL_EXT_I2C_ENA);
7887 1.295 msaitoh CSR_WRITE_FLUSH(sc);
7888 1.295 msaitoh
7889 1.295 msaitoh /* Read SFP module data */
7890 1.295 msaitoh while (timeout) {
7891 1.295 msaitoh rv = wm_sfp_read_data_byte(sc, SFF_SFP_ID_OFF, &val);
7892 1.295 msaitoh if (rv == 0)
7893 1.295 msaitoh break;
7894 1.295 msaitoh delay(100*1000); /* XXX too big */
7895 1.295 msaitoh timeout--;
7896 1.295 msaitoh }
7897 1.295 msaitoh if (rv != 0)
7898 1.295 msaitoh goto out;
7899 1.295 msaitoh switch (val) {
7900 1.295 msaitoh case SFF_SFP_ID_SFF:
7901 1.295 msaitoh aprint_normal_dev(sc->sc_dev,
7902 1.295 msaitoh "Module/Connector soldered to board\n");
7903 1.295 msaitoh break;
7904 1.295 msaitoh case SFF_SFP_ID_SFP:
7905 1.295 msaitoh aprint_normal_dev(sc->sc_dev, "SFP\n");
7906 1.295 msaitoh break;
7907 1.295 msaitoh case SFF_SFP_ID_UNKNOWN:
7908 1.295 msaitoh goto out;
7909 1.295 msaitoh default:
7910 1.295 msaitoh break;
7911 1.295 msaitoh }
7912 1.295 msaitoh
7913 1.295 msaitoh rv = wm_sfp_read_data_byte(sc, SFF_SFP_ETH_FLAGS_OFF, &val);
7914 1.295 msaitoh if (rv != 0) {
7915 1.295 msaitoh goto out;
7916 1.295 msaitoh }
7917 1.295 msaitoh
7918 1.295 msaitoh if ((val & (SFF_SFP_ETH_FLAGS_1000SX | SFF_SFP_ETH_FLAGS_1000LX)) != 0)
7919 1.311 msaitoh mediatype = WM_MEDIATYPE_SERDES;
7920 1.295 msaitoh else if ((val & SFF_SFP_ETH_FLAGS_1000T) != 0){
7921 1.295 msaitoh sc->sc_flags |= WM_F_SGMII;
7922 1.311 msaitoh mediatype = WM_MEDIATYPE_COPPER;
7923 1.295 msaitoh } else if ((val & SFF_SFP_ETH_FLAGS_100FX) != 0){
7924 1.295 msaitoh sc->sc_flags |= WM_F_SGMII;
7925 1.311 msaitoh mediatype = WM_MEDIATYPE_SERDES;
7926 1.295 msaitoh }
7927 1.295 msaitoh
7928 1.295 msaitoh out:
7929 1.295 msaitoh /* Restore I2C interface setting */
7930 1.295 msaitoh CSR_WRITE(sc, WMREG_CTRL_EXT, ctrl_ext);
7931 1.295 msaitoh
7932 1.295 msaitoh return mediatype;
7933 1.292 msaitoh }
7934 1.191 msaitoh /*
7935 1.281 msaitoh * NVM related.
7936 1.281 msaitoh * Microwire, SPI (w/wo EERD) and Flash.
7937 1.265 msaitoh */
7938 1.265 msaitoh
7939 1.281 msaitoh /* Both spi and uwire */
7940 1.265 msaitoh
7941 1.265 msaitoh /*
7942 1.281 msaitoh * wm_eeprom_sendbits:
7943 1.199 msaitoh *
7944 1.281 msaitoh * Send a series of bits to the EEPROM.
7945 1.199 msaitoh */
7946 1.281 msaitoh static void
7947 1.281 msaitoh wm_eeprom_sendbits(struct wm_softc *sc, uint32_t bits, int nbits)
7948 1.199 msaitoh {
7949 1.281 msaitoh uint32_t reg;
7950 1.281 msaitoh int x;
7951 1.199 msaitoh
7952 1.281 msaitoh reg = CSR_READ(sc, WMREG_EECD);
7953 1.199 msaitoh
7954 1.281 msaitoh for (x = nbits; x > 0; x--) {
7955 1.281 msaitoh if (bits & (1U << (x - 1)))
7956 1.281 msaitoh reg |= EECD_DI;
7957 1.281 msaitoh else
7958 1.281 msaitoh reg &= ~EECD_DI;
7959 1.281 msaitoh CSR_WRITE(sc, WMREG_EECD, reg);
7960 1.281 msaitoh CSR_WRITE_FLUSH(sc);
7961 1.281 msaitoh delay(2);
7962 1.281 msaitoh CSR_WRITE(sc, WMREG_EECD, reg | EECD_SK);
7963 1.281 msaitoh CSR_WRITE_FLUSH(sc);
7964 1.281 msaitoh delay(2);
7965 1.281 msaitoh CSR_WRITE(sc, WMREG_EECD, reg);
7966 1.281 msaitoh CSR_WRITE_FLUSH(sc);
7967 1.281 msaitoh delay(2);
7968 1.199 msaitoh }
7969 1.199 msaitoh }
7970 1.199 msaitoh
7971 1.199 msaitoh /*
7972 1.281 msaitoh * wm_eeprom_recvbits:
7973 1.199 msaitoh *
7974 1.281 msaitoh * Receive a series of bits from the EEPROM.
7975 1.199 msaitoh */
7976 1.199 msaitoh static void
7977 1.281 msaitoh wm_eeprom_recvbits(struct wm_softc *sc, uint32_t *valp, int nbits)
7978 1.199 msaitoh {
7979 1.281 msaitoh uint32_t reg, val;
7980 1.281 msaitoh int x;
7981 1.199 msaitoh
7982 1.281 msaitoh reg = CSR_READ(sc, WMREG_EECD) & ~EECD_DI;
7983 1.199 msaitoh
7984 1.281 msaitoh val = 0;
7985 1.281 msaitoh for (x = nbits; x > 0; x--) {
7986 1.281 msaitoh CSR_WRITE(sc, WMREG_EECD, reg | EECD_SK);
7987 1.281 msaitoh CSR_WRITE_FLUSH(sc);
7988 1.281 msaitoh delay(2);
7989 1.281 msaitoh if (CSR_READ(sc, WMREG_EECD) & EECD_DO)
7990 1.281 msaitoh val |= (1U << (x - 1));
7991 1.281 msaitoh CSR_WRITE(sc, WMREG_EECD, reg);
7992 1.281 msaitoh CSR_WRITE_FLUSH(sc);
7993 1.281 msaitoh delay(2);
7994 1.199 msaitoh }
7995 1.281 msaitoh *valp = val;
7996 1.281 msaitoh }
7997 1.199 msaitoh
7998 1.281 msaitoh /* Microwire */
7999 1.199 msaitoh
8000 1.199 msaitoh /*
8001 1.281 msaitoh * wm_nvm_read_uwire:
8002 1.243 msaitoh *
8003 1.281 msaitoh * Read a word from the EEPROM using the MicroWire protocol.
8004 1.243 msaitoh */
8005 1.243 msaitoh static int
8006 1.281 msaitoh wm_nvm_read_uwire(struct wm_softc *sc, int word, int wordcnt, uint16_t *data)
8007 1.243 msaitoh {
8008 1.281 msaitoh uint32_t reg, val;
8009 1.281 msaitoh int i;
8010 1.281 msaitoh
8011 1.281 msaitoh for (i = 0; i < wordcnt; i++) {
8012 1.281 msaitoh /* Clear SK and DI. */
8013 1.281 msaitoh reg = CSR_READ(sc, WMREG_EECD) & ~(EECD_SK | EECD_DI);
8014 1.281 msaitoh CSR_WRITE(sc, WMREG_EECD, reg);
8015 1.281 msaitoh
8016 1.281 msaitoh /*
8017 1.281 msaitoh * XXX: workaround for a bug in qemu-0.12.x and prior
8018 1.281 msaitoh * and Xen.
8019 1.281 msaitoh *
8020 1.281 msaitoh * We use this workaround only for 82540 because qemu's
8021 1.281 msaitoh * e1000 act as 82540.
8022 1.281 msaitoh */
8023 1.281 msaitoh if (sc->sc_type == WM_T_82540) {
8024 1.281 msaitoh reg |= EECD_SK;
8025 1.281 msaitoh CSR_WRITE(sc, WMREG_EECD, reg);
8026 1.281 msaitoh reg &= ~EECD_SK;
8027 1.281 msaitoh CSR_WRITE(sc, WMREG_EECD, reg);
8028 1.281 msaitoh CSR_WRITE_FLUSH(sc);
8029 1.281 msaitoh delay(2);
8030 1.281 msaitoh }
8031 1.281 msaitoh /* XXX: end of workaround */
8032 1.281 msaitoh
8033 1.281 msaitoh /* Set CHIP SELECT. */
8034 1.281 msaitoh reg |= EECD_CS;
8035 1.281 msaitoh CSR_WRITE(sc, WMREG_EECD, reg);
8036 1.281 msaitoh CSR_WRITE_FLUSH(sc);
8037 1.281 msaitoh delay(2);
8038 1.281 msaitoh
8039 1.281 msaitoh /* Shift in the READ command. */
8040 1.281 msaitoh wm_eeprom_sendbits(sc, UWIRE_OPC_READ, 3);
8041 1.281 msaitoh
8042 1.281 msaitoh /* Shift in address. */
8043 1.294 msaitoh wm_eeprom_sendbits(sc, word + i, sc->sc_nvm_addrbits);
8044 1.281 msaitoh
8045 1.281 msaitoh /* Shift out the data. */
8046 1.281 msaitoh wm_eeprom_recvbits(sc, &val, 16);
8047 1.281 msaitoh data[i] = val & 0xffff;
8048 1.243 msaitoh
8049 1.281 msaitoh /* Clear CHIP SELECT. */
8050 1.281 msaitoh reg = CSR_READ(sc, WMREG_EECD) & ~EECD_CS;
8051 1.281 msaitoh CSR_WRITE(sc, WMREG_EECD, reg);
8052 1.281 msaitoh CSR_WRITE_FLUSH(sc);
8053 1.281 msaitoh delay(2);
8054 1.243 msaitoh }
8055 1.243 msaitoh
8056 1.281 msaitoh return 0;
8057 1.281 msaitoh }
8058 1.243 msaitoh
8059 1.281 msaitoh /* SPI */
8060 1.243 msaitoh
8061 1.294 msaitoh /*
8062 1.294 msaitoh * Set SPI and FLASH related information from the EECD register.
8063 1.294 msaitoh * For 82541 and 82547, the word size is taken from EEPROM.
8064 1.294 msaitoh */
8065 1.294 msaitoh static int
8066 1.294 msaitoh wm_nvm_set_addrbits_size_eecd(struct wm_softc *sc)
8067 1.243 msaitoh {
8068 1.294 msaitoh int size;
8069 1.281 msaitoh uint32_t reg;
8070 1.294 msaitoh uint16_t data;
8071 1.243 msaitoh
8072 1.281 msaitoh reg = CSR_READ(sc, WMREG_EECD);
8073 1.294 msaitoh sc->sc_nvm_addrbits = (reg & EECD_EE_ABITS) ? 16 : 8;
8074 1.294 msaitoh
8075 1.294 msaitoh /* Read the size of NVM from EECD by default */
8076 1.294 msaitoh size = __SHIFTOUT(reg, EECD_EE_SIZE_EX_MASK);
8077 1.294 msaitoh switch (sc->sc_type) {
8078 1.294 msaitoh case WM_T_82541:
8079 1.294 msaitoh case WM_T_82541_2:
8080 1.294 msaitoh case WM_T_82547:
8081 1.294 msaitoh case WM_T_82547_2:
8082 1.294 msaitoh /* Set dummy value to access EEPROM */
8083 1.294 msaitoh sc->sc_nvm_wordsize = 64;
8084 1.294 msaitoh wm_nvm_read(sc, NVM_OFF_EEPROM_SIZE, 1, &data);
8085 1.294 msaitoh reg = data;
8086 1.294 msaitoh size = __SHIFTOUT(reg, EECD_EE_SIZE_EX_MASK);
8087 1.294 msaitoh if (size == 0)
8088 1.294 msaitoh size = 6; /* 64 word size */
8089 1.294 msaitoh else
8090 1.294 msaitoh size += NVM_WORD_SIZE_BASE_SHIFT + 1;
8091 1.294 msaitoh break;
8092 1.294 msaitoh case WM_T_80003:
8093 1.294 msaitoh case WM_T_82571:
8094 1.294 msaitoh case WM_T_82572:
8095 1.294 msaitoh case WM_T_82573: /* SPI case */
8096 1.294 msaitoh case WM_T_82574: /* SPI case */
8097 1.294 msaitoh case WM_T_82583: /* SPI case */
8098 1.294 msaitoh size += NVM_WORD_SIZE_BASE_SHIFT;
8099 1.294 msaitoh if (size > 14)
8100 1.294 msaitoh size = 14;
8101 1.294 msaitoh break;
8102 1.294 msaitoh case WM_T_82575:
8103 1.294 msaitoh case WM_T_82576:
8104 1.294 msaitoh case WM_T_82580:
8105 1.294 msaitoh case WM_T_I350:
8106 1.294 msaitoh case WM_T_I354:
8107 1.294 msaitoh case WM_T_I210:
8108 1.294 msaitoh case WM_T_I211:
8109 1.294 msaitoh size += NVM_WORD_SIZE_BASE_SHIFT;
8110 1.294 msaitoh if (size > 15)
8111 1.294 msaitoh size = 15;
8112 1.294 msaitoh break;
8113 1.294 msaitoh default:
8114 1.294 msaitoh aprint_error_dev(sc->sc_dev,
8115 1.294 msaitoh "%s: unknown device(%d)?\n", __func__, sc->sc_type);
8116 1.294 msaitoh return -1;
8117 1.294 msaitoh break;
8118 1.294 msaitoh }
8119 1.294 msaitoh
8120 1.294 msaitoh sc->sc_nvm_wordsize = 1 << size;
8121 1.294 msaitoh
8122 1.294 msaitoh return 0;
8123 1.243 msaitoh }
8124 1.243 msaitoh
8125 1.243 msaitoh /*
8126 1.281 msaitoh * wm_nvm_ready_spi:
8127 1.1 thorpej *
8128 1.281 msaitoh * Wait for a SPI EEPROM to be ready for commands.
8129 1.1 thorpej */
8130 1.281 msaitoh static int
8131 1.281 msaitoh wm_nvm_ready_spi(struct wm_softc *sc)
8132 1.1 thorpej {
8133 1.281 msaitoh uint32_t val;
8134 1.281 msaitoh int usec;
8135 1.1 thorpej
8136 1.281 msaitoh for (usec = 0; usec < SPI_MAX_RETRIES; delay(5), usec += 5) {
8137 1.281 msaitoh wm_eeprom_sendbits(sc, SPI_OPC_RDSR, 8);
8138 1.281 msaitoh wm_eeprom_recvbits(sc, &val, 8);
8139 1.281 msaitoh if ((val & SPI_SR_RDY) == 0)
8140 1.281 msaitoh break;
8141 1.71 thorpej }
8142 1.281 msaitoh if (usec >= SPI_MAX_RETRIES) {
8143 1.281 msaitoh aprint_error_dev(sc->sc_dev, "EEPROM failed to become ready\n");
8144 1.281 msaitoh return 1;
8145 1.127 bouyer }
8146 1.281 msaitoh return 0;
8147 1.127 bouyer }
8148 1.127 bouyer
8149 1.127 bouyer /*
8150 1.281 msaitoh * wm_nvm_read_spi:
8151 1.127 bouyer *
8152 1.281 msaitoh * Read a work from the EEPROM using the SPI protocol.
8153 1.127 bouyer */
8154 1.127 bouyer static int
8155 1.281 msaitoh wm_nvm_read_spi(struct wm_softc *sc, int word, int wordcnt, uint16_t *data)
8156 1.127 bouyer {
8157 1.281 msaitoh uint32_t reg, val;
8158 1.281 msaitoh int i;
8159 1.281 msaitoh uint8_t opc;
8160 1.281 msaitoh
8161 1.281 msaitoh /* Clear SK and CS. */
8162 1.281 msaitoh reg = CSR_READ(sc, WMREG_EECD) & ~(EECD_SK | EECD_CS);
8163 1.281 msaitoh CSR_WRITE(sc, WMREG_EECD, reg);
8164 1.281 msaitoh CSR_WRITE_FLUSH(sc);
8165 1.281 msaitoh delay(2);
8166 1.127 bouyer
8167 1.281 msaitoh if (wm_nvm_ready_spi(sc))
8168 1.281 msaitoh return 1;
8169 1.127 bouyer
8170 1.281 msaitoh /* Toggle CS to flush commands. */
8171 1.281 msaitoh CSR_WRITE(sc, WMREG_EECD, reg | EECD_CS);
8172 1.281 msaitoh CSR_WRITE_FLUSH(sc);
8173 1.281 msaitoh delay(2);
8174 1.281 msaitoh CSR_WRITE(sc, WMREG_EECD, reg);
8175 1.266 msaitoh CSR_WRITE_FLUSH(sc);
8176 1.127 bouyer delay(2);
8177 1.127 bouyer
8178 1.281 msaitoh opc = SPI_OPC_READ;
8179 1.294 msaitoh if (sc->sc_nvm_addrbits == 8 && word >= 128)
8180 1.281 msaitoh opc |= SPI_OPC_A8;
8181 1.281 msaitoh
8182 1.281 msaitoh wm_eeprom_sendbits(sc, opc, 8);
8183 1.294 msaitoh wm_eeprom_sendbits(sc, word << 1, sc->sc_nvm_addrbits);
8184 1.281 msaitoh
8185 1.281 msaitoh for (i = 0; i < wordcnt; i++) {
8186 1.281 msaitoh wm_eeprom_recvbits(sc, &val, 16);
8187 1.281 msaitoh data[i] = ((val >> 8) & 0xff) | ((val & 0xff) << 8);
8188 1.281 msaitoh }
8189 1.178 msaitoh
8190 1.281 msaitoh /* Raise CS and clear SK. */
8191 1.281 msaitoh reg = (CSR_READ(sc, WMREG_EECD) & ~EECD_SK) | EECD_CS;
8192 1.281 msaitoh CSR_WRITE(sc, WMREG_EECD, reg);
8193 1.281 msaitoh CSR_WRITE_FLUSH(sc);
8194 1.281 msaitoh delay(2);
8195 1.178 msaitoh
8196 1.281 msaitoh return 0;
8197 1.127 bouyer }
8198 1.127 bouyer
8199 1.281 msaitoh /* Using with EERD */
8200 1.281 msaitoh
8201 1.281 msaitoh static int
8202 1.281 msaitoh wm_poll_eerd_eewr_done(struct wm_softc *sc, int rw)
8203 1.127 bouyer {
8204 1.281 msaitoh uint32_t attempts = 100000;
8205 1.281 msaitoh uint32_t i, reg = 0;
8206 1.281 msaitoh int32_t done = -1;
8207 1.281 msaitoh
8208 1.281 msaitoh for (i = 0; i < attempts; i++) {
8209 1.281 msaitoh reg = CSR_READ(sc, rw);
8210 1.127 bouyer
8211 1.281 msaitoh if (reg & EERD_DONE) {
8212 1.281 msaitoh done = 0;
8213 1.281 msaitoh break;
8214 1.178 msaitoh }
8215 1.281 msaitoh delay(5);
8216 1.169 msaitoh }
8217 1.127 bouyer
8218 1.281 msaitoh return done;
8219 1.1 thorpej }
8220 1.117 msaitoh
8221 1.117 msaitoh static int
8222 1.281 msaitoh wm_nvm_read_eerd(struct wm_softc *sc, int offset, int wordcnt,
8223 1.281 msaitoh uint16_t *data)
8224 1.117 msaitoh {
8225 1.281 msaitoh int i, eerd = 0;
8226 1.281 msaitoh int error = 0;
8227 1.117 msaitoh
8228 1.281 msaitoh for (i = 0; i < wordcnt; i++) {
8229 1.281 msaitoh eerd = ((offset + i) << EERD_ADDR_SHIFT) | EERD_START;
8230 1.117 msaitoh
8231 1.281 msaitoh CSR_WRITE(sc, WMREG_EERD, eerd);
8232 1.281 msaitoh error = wm_poll_eerd_eewr_done(sc, WMREG_EERD);
8233 1.281 msaitoh if (error != 0)
8234 1.281 msaitoh break;
8235 1.117 msaitoh
8236 1.281 msaitoh data[i] = (CSR_READ(sc, WMREG_EERD) >> EERD_DATA_SHIFT);
8237 1.117 msaitoh }
8238 1.281 msaitoh
8239 1.281 msaitoh return error;
8240 1.117 msaitoh }
8241 1.117 msaitoh
8242 1.281 msaitoh /* Flash */
8243 1.281 msaitoh
8244 1.117 msaitoh static int
8245 1.281 msaitoh wm_nvm_valid_bank_detect_ich8lan(struct wm_softc *sc, unsigned int *bank)
8246 1.117 msaitoh {
8247 1.281 msaitoh uint32_t eecd;
8248 1.281 msaitoh uint32_t act_offset = ICH_NVM_SIG_WORD * 2 + 1;
8249 1.281 msaitoh uint32_t bank1_offset = sc->sc_ich8_flash_bank_size * sizeof(uint16_t);
8250 1.281 msaitoh uint8_t sig_byte = 0;
8251 1.117 msaitoh
8252 1.281 msaitoh switch (sc->sc_type) {
8253 1.281 msaitoh case WM_T_ICH8:
8254 1.281 msaitoh case WM_T_ICH9:
8255 1.281 msaitoh eecd = CSR_READ(sc, WMREG_EECD);
8256 1.281 msaitoh if ((eecd & EECD_SEC1VAL_VALMASK) == EECD_SEC1VAL_VALMASK) {
8257 1.281 msaitoh *bank = ((eecd & EECD_SEC1VAL) != 0) ? 1 : 0;
8258 1.281 msaitoh return 0;
8259 1.281 msaitoh }
8260 1.281 msaitoh /* FALLTHROUGH */
8261 1.281 msaitoh default:
8262 1.281 msaitoh /* Default to 0 */
8263 1.281 msaitoh *bank = 0;
8264 1.271 ozaki
8265 1.281 msaitoh /* Check bank 0 */
8266 1.281 msaitoh wm_read_ich8_byte(sc, act_offset, &sig_byte);
8267 1.281 msaitoh if ((sig_byte & ICH_NVM_VALID_SIG_MASK) == ICH_NVM_SIG_VALUE) {
8268 1.281 msaitoh *bank = 0;
8269 1.281 msaitoh return 0;
8270 1.281 msaitoh }
8271 1.271 ozaki
8272 1.281 msaitoh /* Check bank 1 */
8273 1.281 msaitoh wm_read_ich8_byte(sc, act_offset + bank1_offset,
8274 1.281 msaitoh &sig_byte);
8275 1.281 msaitoh if ((sig_byte & ICH_NVM_VALID_SIG_MASK) == ICH_NVM_SIG_VALUE) {
8276 1.281 msaitoh *bank = 1;
8277 1.281 msaitoh return 0;
8278 1.281 msaitoh }
8279 1.271 ozaki }
8280 1.271 ozaki
8281 1.281 msaitoh DPRINTF(WM_DEBUG_NVM, ("%s: No valid NVM bank present\n",
8282 1.281 msaitoh device_xname(sc->sc_dev)));
8283 1.281 msaitoh return -1;
8284 1.281 msaitoh }
8285 1.281 msaitoh
8286 1.281 msaitoh /******************************************************************************
8287 1.281 msaitoh * This function does initial flash setup so that a new read/write/erase cycle
8288 1.281 msaitoh * can be started.
8289 1.281 msaitoh *
8290 1.281 msaitoh * sc - The pointer to the hw structure
8291 1.281 msaitoh ****************************************************************************/
8292 1.281 msaitoh static int32_t
8293 1.281 msaitoh wm_ich8_cycle_init(struct wm_softc *sc)
8294 1.281 msaitoh {
8295 1.281 msaitoh uint16_t hsfsts;
8296 1.281 msaitoh int32_t error = 1;
8297 1.281 msaitoh int32_t i = 0;
8298 1.271 ozaki
8299 1.281 msaitoh hsfsts = ICH8_FLASH_READ16(sc, ICH_FLASH_HSFSTS);
8300 1.117 msaitoh
8301 1.281 msaitoh /* May be check the Flash Des Valid bit in Hw status */
8302 1.281 msaitoh if ((hsfsts & HSFSTS_FLDVAL) == 0) {
8303 1.281 msaitoh return error;
8304 1.117 msaitoh }
8305 1.117 msaitoh
8306 1.281 msaitoh /* Clear FCERR in Hw status by writing 1 */
8307 1.281 msaitoh /* Clear DAEL in Hw status by writing a 1 */
8308 1.281 msaitoh hsfsts |= HSFSTS_ERR | HSFSTS_DAEL;
8309 1.117 msaitoh
8310 1.281 msaitoh ICH8_FLASH_WRITE16(sc, ICH_FLASH_HSFSTS, hsfsts);
8311 1.117 msaitoh
8312 1.281 msaitoh /*
8313 1.281 msaitoh * Either we should have a hardware SPI cycle in progress bit to check
8314 1.281 msaitoh * against, in order to start a new cycle or FDONE bit should be
8315 1.281 msaitoh * changed in the hardware so that it is 1 after harware reset, which
8316 1.281 msaitoh * can then be used as an indication whether a cycle is in progress or
8317 1.281 msaitoh * has been completed .. we should also have some software semaphore
8318 1.281 msaitoh * mechanism to guard FDONE or the cycle in progress bit so that two
8319 1.281 msaitoh * threads access to those bits can be sequentiallized or a way so that
8320 1.281 msaitoh * 2 threads dont start the cycle at the same time
8321 1.281 msaitoh */
8322 1.127 bouyer
8323 1.281 msaitoh if ((hsfsts & HSFSTS_FLINPRO) == 0) {
8324 1.281 msaitoh /*
8325 1.281 msaitoh * There is no cycle running at present, so we can start a
8326 1.281 msaitoh * cycle
8327 1.281 msaitoh */
8328 1.127 bouyer
8329 1.281 msaitoh /* Begin by setting Flash Cycle Done. */
8330 1.281 msaitoh hsfsts |= HSFSTS_DONE;
8331 1.281 msaitoh ICH8_FLASH_WRITE16(sc, ICH_FLASH_HSFSTS, hsfsts);
8332 1.281 msaitoh error = 0;
8333 1.281 msaitoh } else {
8334 1.281 msaitoh /*
8335 1.281 msaitoh * otherwise poll for sometime so the current cycle has a
8336 1.281 msaitoh * chance to end before giving up.
8337 1.281 msaitoh */
8338 1.281 msaitoh for (i = 0; i < ICH_FLASH_COMMAND_TIMEOUT; i++) {
8339 1.281 msaitoh hsfsts = ICH8_FLASH_READ16(sc, ICH_FLASH_HSFSTS);
8340 1.281 msaitoh if ((hsfsts & HSFSTS_FLINPRO) == 0) {
8341 1.281 msaitoh error = 0;
8342 1.281 msaitoh break;
8343 1.169 msaitoh }
8344 1.281 msaitoh delay(1);
8345 1.127 bouyer }
8346 1.281 msaitoh if (error == 0) {
8347 1.281 msaitoh /*
8348 1.281 msaitoh * Successful in waiting for previous cycle to timeout,
8349 1.281 msaitoh * now set the Flash Cycle Done.
8350 1.281 msaitoh */
8351 1.281 msaitoh hsfsts |= HSFSTS_DONE;
8352 1.281 msaitoh ICH8_FLASH_WRITE16(sc, ICH_FLASH_HSFSTS, hsfsts);
8353 1.127 bouyer }
8354 1.127 bouyer }
8355 1.281 msaitoh return error;
8356 1.127 bouyer }
8357 1.127 bouyer
8358 1.281 msaitoh /******************************************************************************
8359 1.281 msaitoh * This function starts a flash cycle and waits for its completion
8360 1.281 msaitoh *
8361 1.281 msaitoh * sc - The pointer to the hw structure
8362 1.281 msaitoh ****************************************************************************/
8363 1.281 msaitoh static int32_t
8364 1.281 msaitoh wm_ich8_flash_cycle(struct wm_softc *sc, uint32_t timeout)
8365 1.136 msaitoh {
8366 1.281 msaitoh uint16_t hsflctl;
8367 1.281 msaitoh uint16_t hsfsts;
8368 1.281 msaitoh int32_t error = 1;
8369 1.281 msaitoh uint32_t i = 0;
8370 1.127 bouyer
8371 1.281 msaitoh /* Start a cycle by writing 1 in Flash Cycle Go in Hw Flash Control */
8372 1.281 msaitoh hsflctl = ICH8_FLASH_READ16(sc, ICH_FLASH_HSFCTL);
8373 1.281 msaitoh hsflctl |= HSFCTL_GO;
8374 1.281 msaitoh ICH8_FLASH_WRITE16(sc, ICH_FLASH_HSFCTL, hsflctl);
8375 1.139 bouyer
8376 1.281 msaitoh /* Wait till FDONE bit is set to 1 */
8377 1.281 msaitoh do {
8378 1.281 msaitoh hsfsts = ICH8_FLASH_READ16(sc, ICH_FLASH_HSFSTS);
8379 1.281 msaitoh if (hsfsts & HSFSTS_DONE)
8380 1.281 msaitoh break;
8381 1.281 msaitoh delay(1);
8382 1.281 msaitoh i++;
8383 1.281 msaitoh } while (i < timeout);
8384 1.281 msaitoh if ((hsfsts & HSFSTS_DONE) == 1 && (hsfsts & HSFSTS_ERR) == 0)
8385 1.281 msaitoh error = 0;
8386 1.139 bouyer
8387 1.281 msaitoh return error;
8388 1.139 bouyer }
8389 1.139 bouyer
8390 1.281 msaitoh /******************************************************************************
8391 1.281 msaitoh * Reads a byte or word from the NVM using the ICH8 flash access registers.
8392 1.281 msaitoh *
8393 1.281 msaitoh * sc - The pointer to the hw structure
8394 1.281 msaitoh * index - The index of the byte or word to read.
8395 1.281 msaitoh * size - Size of data to read, 1=byte 2=word
8396 1.281 msaitoh * data - Pointer to the word to store the value read.
8397 1.281 msaitoh *****************************************************************************/
8398 1.281 msaitoh static int32_t
8399 1.281 msaitoh wm_read_ich8_data(struct wm_softc *sc, uint32_t index,
8400 1.281 msaitoh uint32_t size, uint16_t *data)
8401 1.139 bouyer {
8402 1.281 msaitoh uint16_t hsfsts;
8403 1.281 msaitoh uint16_t hsflctl;
8404 1.281 msaitoh uint32_t flash_linear_address;
8405 1.281 msaitoh uint32_t flash_data = 0;
8406 1.281 msaitoh int32_t error = 1;
8407 1.281 msaitoh int32_t count = 0;
8408 1.281 msaitoh
8409 1.281 msaitoh if (size < 1 || size > 2 || data == 0x0 ||
8410 1.281 msaitoh index > ICH_FLASH_LINEAR_ADDR_MASK)
8411 1.281 msaitoh return error;
8412 1.139 bouyer
8413 1.281 msaitoh flash_linear_address = (ICH_FLASH_LINEAR_ADDR_MASK & index) +
8414 1.281 msaitoh sc->sc_ich8_flash_base;
8415 1.259 msaitoh
8416 1.259 msaitoh do {
8417 1.281 msaitoh delay(1);
8418 1.281 msaitoh /* Steps */
8419 1.281 msaitoh error = wm_ich8_cycle_init(sc);
8420 1.281 msaitoh if (error)
8421 1.259 msaitoh break;
8422 1.259 msaitoh
8423 1.281 msaitoh hsflctl = ICH8_FLASH_READ16(sc, ICH_FLASH_HSFCTL);
8424 1.281 msaitoh /* 0b/1b corresponds to 1 or 2 byte size, respectively. */
8425 1.281 msaitoh hsflctl |= ((size - 1) << HSFCTL_BCOUNT_SHIFT)
8426 1.281 msaitoh & HSFCTL_BCOUNT_MASK;
8427 1.281 msaitoh hsflctl |= ICH_CYCLE_READ << HSFCTL_CYCLE_SHIFT;
8428 1.281 msaitoh ICH8_FLASH_WRITE16(sc, ICH_FLASH_HSFCTL, hsflctl);
8429 1.281 msaitoh
8430 1.281 msaitoh /*
8431 1.281 msaitoh * Write the last 24 bits of index into Flash Linear address
8432 1.281 msaitoh * field in Flash Address
8433 1.281 msaitoh */
8434 1.281 msaitoh /* TODO: TBD maybe check the index against the size of flash */
8435 1.281 msaitoh
8436 1.281 msaitoh ICH8_FLASH_WRITE32(sc, ICH_FLASH_FADDR, flash_linear_address);
8437 1.259 msaitoh
8438 1.281 msaitoh error = wm_ich8_flash_cycle(sc, ICH_FLASH_COMMAND_TIMEOUT);
8439 1.259 msaitoh
8440 1.281 msaitoh /*
8441 1.281 msaitoh * Check if FCERR is set to 1, if set to 1, clear it and try
8442 1.281 msaitoh * the whole sequence a few more times, else read in (shift in)
8443 1.281 msaitoh * the Flash Data0, the order is least significant byte first
8444 1.281 msaitoh * msb to lsb
8445 1.281 msaitoh */
8446 1.281 msaitoh if (error == 0) {
8447 1.281 msaitoh flash_data = ICH8_FLASH_READ32(sc, ICH_FLASH_FDATA0);
8448 1.281 msaitoh if (size == 1)
8449 1.281 msaitoh *data = (uint8_t)(flash_data & 0x000000FF);
8450 1.281 msaitoh else if (size == 2)
8451 1.281 msaitoh *data = (uint16_t)(flash_data & 0x0000FFFF);
8452 1.281 msaitoh break;
8453 1.281 msaitoh } else {
8454 1.281 msaitoh /*
8455 1.281 msaitoh * If we've gotten here, then things are probably
8456 1.281 msaitoh * completely hosed, but if the error condition is
8457 1.281 msaitoh * detected, it won't hurt to give it another try...
8458 1.281 msaitoh * ICH_FLASH_CYCLE_REPEAT_COUNT times.
8459 1.281 msaitoh */
8460 1.281 msaitoh hsfsts = ICH8_FLASH_READ16(sc, ICH_FLASH_HSFSTS);
8461 1.281 msaitoh if (hsfsts & HSFSTS_ERR) {
8462 1.281 msaitoh /* Repeat for some time before giving up. */
8463 1.281 msaitoh continue;
8464 1.281 msaitoh } else if ((hsfsts & HSFSTS_DONE) == 0)
8465 1.281 msaitoh break;
8466 1.281 msaitoh }
8467 1.281 msaitoh } while (count++ < ICH_FLASH_CYCLE_REPEAT_COUNT);
8468 1.259 msaitoh
8469 1.281 msaitoh return error;
8470 1.259 msaitoh }
8471 1.259 msaitoh
8472 1.281 msaitoh /******************************************************************************
8473 1.281 msaitoh * Reads a single byte from the NVM using the ICH8 flash access registers.
8474 1.281 msaitoh *
8475 1.281 msaitoh * sc - pointer to wm_hw structure
8476 1.281 msaitoh * index - The index of the byte to read.
8477 1.281 msaitoh * data - Pointer to a byte to store the value read.
8478 1.281 msaitoh *****************************************************************************/
8479 1.281 msaitoh static int32_t
8480 1.281 msaitoh wm_read_ich8_byte(struct wm_softc *sc, uint32_t index, uint8_t* data)
8481 1.169 msaitoh {
8482 1.281 msaitoh int32_t status;
8483 1.281 msaitoh uint16_t word = 0;
8484 1.250 msaitoh
8485 1.281 msaitoh status = wm_read_ich8_data(sc, index, 1, &word);
8486 1.281 msaitoh if (status == 0)
8487 1.281 msaitoh *data = (uint8_t)word;
8488 1.281 msaitoh else
8489 1.281 msaitoh *data = 0;
8490 1.169 msaitoh
8491 1.281 msaitoh return status;
8492 1.281 msaitoh }
8493 1.250 msaitoh
8494 1.281 msaitoh /******************************************************************************
8495 1.281 msaitoh * Reads a word from the NVM using the ICH8 flash access registers.
8496 1.281 msaitoh *
8497 1.281 msaitoh * sc - pointer to wm_hw structure
8498 1.281 msaitoh * index - The starting byte index of the word to read.
8499 1.281 msaitoh * data - Pointer to a word to store the value read.
8500 1.281 msaitoh *****************************************************************************/
8501 1.281 msaitoh static int32_t
8502 1.281 msaitoh wm_read_ich8_word(struct wm_softc *sc, uint32_t index, uint16_t *data)
8503 1.281 msaitoh {
8504 1.281 msaitoh int32_t status;
8505 1.169 msaitoh
8506 1.281 msaitoh status = wm_read_ich8_data(sc, index, 2, data);
8507 1.281 msaitoh return status;
8508 1.169 msaitoh }
8509 1.169 msaitoh
8510 1.139 bouyer /******************************************************************************
8511 1.139 bouyer * Reads a 16 bit word or words from the EEPROM using the ICH8's flash access
8512 1.139 bouyer * register.
8513 1.139 bouyer *
8514 1.139 bouyer * sc - Struct containing variables accessed by shared code
8515 1.139 bouyer * offset - offset of word in the EEPROM to read
8516 1.139 bouyer * data - word read from the EEPROM
8517 1.139 bouyer * words - number of words to read
8518 1.139 bouyer *****************************************************************************/
8519 1.139 bouyer static int
8520 1.280 msaitoh wm_nvm_read_ich8(struct wm_softc *sc, int offset, int words, uint16_t *data)
8521 1.139 bouyer {
8522 1.194 msaitoh int32_t error = 0;
8523 1.194 msaitoh uint32_t flash_bank = 0;
8524 1.194 msaitoh uint32_t act_offset = 0;
8525 1.194 msaitoh uint32_t bank_offset = 0;
8526 1.194 msaitoh uint16_t word = 0;
8527 1.194 msaitoh uint16_t i = 0;
8528 1.194 msaitoh
8529 1.281 msaitoh /*
8530 1.281 msaitoh * We need to know which is the valid flash bank. In the event
8531 1.194 msaitoh * that we didn't allocate eeprom_shadow_ram, we may not be
8532 1.194 msaitoh * managing flash_bank. So it cannot be trusted and needs
8533 1.194 msaitoh * to be updated with each read.
8534 1.194 msaitoh */
8535 1.280 msaitoh error = wm_nvm_valid_bank_detect_ich8lan(sc, &flash_bank);
8536 1.194 msaitoh if (error) {
8537 1.297 msaitoh DPRINTF(WM_DEBUG_NVM, ("%s: failed to detect NVM bank\n",
8538 1.297 msaitoh device_xname(sc->sc_dev)));
8539 1.262 msaitoh flash_bank = 0;
8540 1.194 msaitoh }
8541 1.139 bouyer
8542 1.238 msaitoh /*
8543 1.238 msaitoh * Adjust offset appropriately if we're on bank 1 - adjust for word
8544 1.238 msaitoh * size
8545 1.238 msaitoh */
8546 1.194 msaitoh bank_offset = flash_bank * (sc->sc_ich8_flash_bank_size * 2);
8547 1.139 bouyer
8548 1.194 msaitoh error = wm_get_swfwhw_semaphore(sc);
8549 1.194 msaitoh if (error) {
8550 1.194 msaitoh aprint_error_dev(sc->sc_dev, "%s: failed to get semaphore\n",
8551 1.169 msaitoh __func__);
8552 1.194 msaitoh return error;
8553 1.194 msaitoh }
8554 1.139 bouyer
8555 1.194 msaitoh for (i = 0; i < words; i++) {
8556 1.194 msaitoh /* The NVM part needs a byte offset, hence * 2 */
8557 1.194 msaitoh act_offset = bank_offset + ((offset + i) * 2);
8558 1.194 msaitoh error = wm_read_ich8_word(sc, act_offset, &word);
8559 1.194 msaitoh if (error) {
8560 1.238 msaitoh aprint_error_dev(sc->sc_dev,
8561 1.238 msaitoh "%s: failed to read NVM\n", __func__);
8562 1.194 msaitoh break;
8563 1.194 msaitoh }
8564 1.194 msaitoh data[i] = word;
8565 1.194 msaitoh }
8566 1.194 msaitoh
8567 1.194 msaitoh wm_put_swfwhw_semaphore(sc);
8568 1.194 msaitoh return error;
8569 1.139 bouyer }
8570 1.139 bouyer
8571 1.281 msaitoh /* Lock, detecting NVM type, validate checksum and read */
8572 1.281 msaitoh
8573 1.281 msaitoh /*
8574 1.281 msaitoh * wm_nvm_acquire:
8575 1.139 bouyer *
8576 1.281 msaitoh * Perform the EEPROM handshake required on some chips.
8577 1.281 msaitoh */
8578 1.281 msaitoh static int
8579 1.281 msaitoh wm_nvm_acquire(struct wm_softc *sc)
8580 1.139 bouyer {
8581 1.281 msaitoh uint32_t reg;
8582 1.281 msaitoh int x;
8583 1.281 msaitoh int ret = 0;
8584 1.194 msaitoh
8585 1.281 msaitoh /* always success */
8586 1.281 msaitoh if ((sc->sc_flags & WM_F_EEPROM_FLASH) != 0)
8587 1.281 msaitoh return 0;
8588 1.194 msaitoh
8589 1.281 msaitoh if (sc->sc_flags & WM_F_LOCK_EXTCNF) {
8590 1.281 msaitoh ret = wm_get_swfwhw_semaphore(sc);
8591 1.281 msaitoh } else if (sc->sc_flags & WM_F_LOCK_SWFW) {
8592 1.281 msaitoh /* This will also do wm_get_swsm_semaphore() if needed */
8593 1.281 msaitoh ret = wm_get_swfw_semaphore(sc, SWFW_EEP_SM);
8594 1.281 msaitoh } else if (sc->sc_flags & WM_F_LOCK_SWSM) {
8595 1.281 msaitoh ret = wm_get_swsm_semaphore(sc);
8596 1.194 msaitoh }
8597 1.194 msaitoh
8598 1.281 msaitoh if (ret) {
8599 1.281 msaitoh aprint_error_dev(sc->sc_dev, "%s: failed to get semaphore\n",
8600 1.281 msaitoh __func__);
8601 1.281 msaitoh return 1;
8602 1.281 msaitoh }
8603 1.194 msaitoh
8604 1.281 msaitoh if (sc->sc_flags & WM_F_LOCK_EECD) {
8605 1.281 msaitoh reg = CSR_READ(sc, WMREG_EECD);
8606 1.194 msaitoh
8607 1.281 msaitoh /* Request EEPROM access. */
8608 1.281 msaitoh reg |= EECD_EE_REQ;
8609 1.281 msaitoh CSR_WRITE(sc, WMREG_EECD, reg);
8610 1.194 msaitoh
8611 1.281 msaitoh /* ..and wait for it to be granted. */
8612 1.281 msaitoh for (x = 0; x < 1000; x++) {
8613 1.281 msaitoh reg = CSR_READ(sc, WMREG_EECD);
8614 1.281 msaitoh if (reg & EECD_EE_GNT)
8615 1.194 msaitoh break;
8616 1.281 msaitoh delay(5);
8617 1.194 msaitoh }
8618 1.281 msaitoh if ((reg & EECD_EE_GNT) == 0) {
8619 1.281 msaitoh aprint_error_dev(sc->sc_dev,
8620 1.281 msaitoh "could not acquire EEPROM GNT\n");
8621 1.281 msaitoh reg &= ~EECD_EE_REQ;
8622 1.281 msaitoh CSR_WRITE(sc, WMREG_EECD, reg);
8623 1.281 msaitoh if (sc->sc_flags & WM_F_LOCK_EXTCNF)
8624 1.281 msaitoh wm_put_swfwhw_semaphore(sc);
8625 1.281 msaitoh if (sc->sc_flags & WM_F_LOCK_SWFW)
8626 1.281 msaitoh wm_put_swfw_semaphore(sc, SWFW_EEP_SM);
8627 1.281 msaitoh else if (sc->sc_flags & WM_F_LOCK_SWSM)
8628 1.281 msaitoh wm_put_swsm_semaphore(sc);
8629 1.281 msaitoh return 1;
8630 1.194 msaitoh }
8631 1.194 msaitoh }
8632 1.281 msaitoh
8633 1.281 msaitoh return 0;
8634 1.139 bouyer }
8635 1.139 bouyer
8636 1.281 msaitoh /*
8637 1.281 msaitoh * wm_nvm_release:
8638 1.139 bouyer *
8639 1.281 msaitoh * Release the EEPROM mutex.
8640 1.281 msaitoh */
8641 1.281 msaitoh static void
8642 1.281 msaitoh wm_nvm_release(struct wm_softc *sc)
8643 1.139 bouyer {
8644 1.281 msaitoh uint32_t reg;
8645 1.194 msaitoh
8646 1.281 msaitoh /* always success */
8647 1.281 msaitoh if ((sc->sc_flags & WM_F_EEPROM_FLASH) != 0)
8648 1.281 msaitoh return;
8649 1.194 msaitoh
8650 1.281 msaitoh if (sc->sc_flags & WM_F_LOCK_EECD) {
8651 1.281 msaitoh reg = CSR_READ(sc, WMREG_EECD);
8652 1.281 msaitoh reg &= ~EECD_EE_REQ;
8653 1.281 msaitoh CSR_WRITE(sc, WMREG_EECD, reg);
8654 1.281 msaitoh }
8655 1.194 msaitoh
8656 1.281 msaitoh if (sc->sc_flags & WM_F_LOCK_EXTCNF)
8657 1.281 msaitoh wm_put_swfwhw_semaphore(sc);
8658 1.281 msaitoh if (sc->sc_flags & WM_F_LOCK_SWFW)
8659 1.281 msaitoh wm_put_swfw_semaphore(sc, SWFW_EEP_SM);
8660 1.281 msaitoh else if (sc->sc_flags & WM_F_LOCK_SWSM)
8661 1.281 msaitoh wm_put_swsm_semaphore(sc);
8662 1.139 bouyer }
8663 1.139 bouyer
8664 1.281 msaitoh static int
8665 1.281 msaitoh wm_nvm_is_onboard_eeprom(struct wm_softc *sc)
8666 1.139 bouyer {
8667 1.281 msaitoh uint32_t eecd = 0;
8668 1.281 msaitoh
8669 1.281 msaitoh if (sc->sc_type == WM_T_82573 || sc->sc_type == WM_T_82574
8670 1.281 msaitoh || sc->sc_type == WM_T_82583) {
8671 1.281 msaitoh eecd = CSR_READ(sc, WMREG_EECD);
8672 1.281 msaitoh
8673 1.281 msaitoh /* Isolate bits 15 & 16 */
8674 1.281 msaitoh eecd = ((eecd >> 15) & 0x03);
8675 1.194 msaitoh
8676 1.281 msaitoh /* If both bits are set, device is Flash type */
8677 1.281 msaitoh if (eecd == 0x03)
8678 1.281 msaitoh return 0;
8679 1.281 msaitoh }
8680 1.281 msaitoh return 1;
8681 1.281 msaitoh }
8682 1.194 msaitoh
8683 1.281 msaitoh /*
8684 1.281 msaitoh * wm_nvm_validate_checksum
8685 1.281 msaitoh *
8686 1.281 msaitoh * The checksum is defined as the sum of the first 64 (16 bit) words.
8687 1.281 msaitoh */
8688 1.281 msaitoh static int
8689 1.281 msaitoh wm_nvm_validate_checksum(struct wm_softc *sc)
8690 1.281 msaitoh {
8691 1.281 msaitoh uint16_t checksum;
8692 1.281 msaitoh uint16_t eeprom_data;
8693 1.281 msaitoh #ifdef WM_DEBUG
8694 1.281 msaitoh uint16_t csum_wordaddr, valid_checksum;
8695 1.281 msaitoh #endif
8696 1.281 msaitoh int i;
8697 1.194 msaitoh
8698 1.281 msaitoh checksum = 0;
8699 1.139 bouyer
8700 1.281 msaitoh /* Don't check for I211 */
8701 1.281 msaitoh if (sc->sc_type == WM_T_I211)
8702 1.281 msaitoh return 0;
8703 1.194 msaitoh
8704 1.281 msaitoh #ifdef WM_DEBUG
8705 1.281 msaitoh if (sc->sc_type == WM_T_PCH_LPT) {
8706 1.293 msaitoh csum_wordaddr = NVM_OFF_COMPAT;
8707 1.281 msaitoh valid_checksum = NVM_COMPAT_VALID_CHECKSUM;
8708 1.281 msaitoh } else {
8709 1.293 msaitoh csum_wordaddr = NVM_OFF_FUTURE_INIT_WORD1;
8710 1.281 msaitoh valid_checksum = NVM_FUTURE_INIT_WORD1_VALID_CHECKSUM;
8711 1.281 msaitoh }
8712 1.194 msaitoh
8713 1.281 msaitoh /* Dump EEPROM image for debug */
8714 1.281 msaitoh if ((sc->sc_type == WM_T_ICH8) || (sc->sc_type == WM_T_ICH9)
8715 1.281 msaitoh || (sc->sc_type == WM_T_ICH10) || (sc->sc_type == WM_T_PCH)
8716 1.281 msaitoh || (sc->sc_type == WM_T_PCH2) || (sc->sc_type == WM_T_PCH_LPT)) {
8717 1.281 msaitoh wm_nvm_read(sc, csum_wordaddr, 1, &eeprom_data);
8718 1.281 msaitoh if ((eeprom_data & valid_checksum) == 0) {
8719 1.281 msaitoh DPRINTF(WM_DEBUG_NVM,
8720 1.281 msaitoh ("%s: NVM need to be updated (%04x != %04x)\n",
8721 1.281 msaitoh device_xname(sc->sc_dev), eeprom_data,
8722 1.281 msaitoh valid_checksum));
8723 1.281 msaitoh }
8724 1.281 msaitoh }
8725 1.194 msaitoh
8726 1.281 msaitoh if ((wm_debug & WM_DEBUG_NVM) != 0) {
8727 1.281 msaitoh printf("%s: NVM dump:\n", device_xname(sc->sc_dev));
8728 1.293 msaitoh for (i = 0; i < NVM_SIZE; i++) {
8729 1.281 msaitoh if (wm_nvm_read(sc, i, 1, &eeprom_data))
8730 1.301 msaitoh printf("XXXX ");
8731 1.281 msaitoh else
8732 1.301 msaitoh printf("%04hx ", eeprom_data);
8733 1.281 msaitoh if (i % 8 == 7)
8734 1.281 msaitoh printf("\n");
8735 1.194 msaitoh }
8736 1.281 msaitoh }
8737 1.194 msaitoh
8738 1.281 msaitoh #endif /* WM_DEBUG */
8739 1.139 bouyer
8740 1.293 msaitoh for (i = 0; i < NVM_SIZE; i++) {
8741 1.281 msaitoh if (wm_nvm_read(sc, i, 1, &eeprom_data))
8742 1.281 msaitoh return 1;
8743 1.281 msaitoh checksum += eeprom_data;
8744 1.281 msaitoh }
8745 1.139 bouyer
8746 1.281 msaitoh if (checksum != (uint16_t) NVM_CHECKSUM) {
8747 1.281 msaitoh #ifdef WM_DEBUG
8748 1.281 msaitoh printf("%s: NVM checksum mismatch (%04x != %04x)\n",
8749 1.281 msaitoh device_xname(sc->sc_dev), checksum, NVM_CHECKSUM);
8750 1.281 msaitoh #endif
8751 1.281 msaitoh }
8752 1.139 bouyer
8753 1.281 msaitoh return 0;
8754 1.139 bouyer }
8755 1.139 bouyer
8756 1.281 msaitoh /*
8757 1.281 msaitoh * wm_nvm_read:
8758 1.139 bouyer *
8759 1.281 msaitoh * Read data from the serial EEPROM.
8760 1.281 msaitoh */
8761 1.169 msaitoh static int
8762 1.281 msaitoh wm_nvm_read(struct wm_softc *sc, int word, int wordcnt, uint16_t *data)
8763 1.169 msaitoh {
8764 1.169 msaitoh int rv;
8765 1.169 msaitoh
8766 1.281 msaitoh if (sc->sc_flags & WM_F_EEPROM_INVALID)
8767 1.281 msaitoh return 1;
8768 1.281 msaitoh
8769 1.281 msaitoh if (wm_nvm_acquire(sc))
8770 1.281 msaitoh return 1;
8771 1.281 msaitoh
8772 1.281 msaitoh if ((sc->sc_type == WM_T_ICH8) || (sc->sc_type == WM_T_ICH9)
8773 1.281 msaitoh || (sc->sc_type == WM_T_ICH10) || (sc->sc_type == WM_T_PCH)
8774 1.281 msaitoh || (sc->sc_type == WM_T_PCH2) || (sc->sc_type == WM_T_PCH_LPT))
8775 1.281 msaitoh rv = wm_nvm_read_ich8(sc, word, wordcnt, data);
8776 1.281 msaitoh else if (sc->sc_flags & WM_F_EEPROM_EERDEEWR)
8777 1.281 msaitoh rv = wm_nvm_read_eerd(sc, word, wordcnt, data);
8778 1.281 msaitoh else if (sc->sc_flags & WM_F_EEPROM_SPI)
8779 1.281 msaitoh rv = wm_nvm_read_spi(sc, word, wordcnt, data);
8780 1.281 msaitoh else
8781 1.281 msaitoh rv = wm_nvm_read_uwire(sc, word, wordcnt, data);
8782 1.169 msaitoh
8783 1.281 msaitoh wm_nvm_release(sc);
8784 1.169 msaitoh return rv;
8785 1.169 msaitoh }
8786 1.169 msaitoh
8787 1.281 msaitoh /*
8788 1.281 msaitoh * Hardware semaphores.
8789 1.281 msaitoh * Very complexed...
8790 1.281 msaitoh */
8791 1.281 msaitoh
8792 1.169 msaitoh static int
8793 1.281 msaitoh wm_get_swsm_semaphore(struct wm_softc *sc)
8794 1.169 msaitoh {
8795 1.281 msaitoh int32_t timeout;
8796 1.281 msaitoh uint32_t swsm;
8797 1.281 msaitoh
8798 1.287 msaitoh if (sc->sc_flags & WM_F_LOCK_SWSM) {
8799 1.287 msaitoh /* Get the SW semaphore. */
8800 1.294 msaitoh timeout = sc->sc_nvm_wordsize + 1;
8801 1.287 msaitoh while (timeout) {
8802 1.287 msaitoh swsm = CSR_READ(sc, WMREG_SWSM);
8803 1.281 msaitoh
8804 1.287 msaitoh if ((swsm & SWSM_SMBI) == 0)
8805 1.287 msaitoh break;
8806 1.169 msaitoh
8807 1.287 msaitoh delay(50);
8808 1.287 msaitoh timeout--;
8809 1.287 msaitoh }
8810 1.169 msaitoh
8811 1.287 msaitoh if (timeout == 0) {
8812 1.287 msaitoh aprint_error_dev(sc->sc_dev,
8813 1.287 msaitoh "could not acquire SWSM SMBI\n");
8814 1.287 msaitoh return 1;
8815 1.287 msaitoh }
8816 1.281 msaitoh }
8817 1.281 msaitoh
8818 1.281 msaitoh /* Get the FW semaphore. */
8819 1.294 msaitoh timeout = sc->sc_nvm_wordsize + 1;
8820 1.281 msaitoh while (timeout) {
8821 1.281 msaitoh swsm = CSR_READ(sc, WMREG_SWSM);
8822 1.281 msaitoh swsm |= SWSM_SWESMBI;
8823 1.281 msaitoh CSR_WRITE(sc, WMREG_SWSM, swsm);
8824 1.281 msaitoh /* If we managed to set the bit we got the semaphore. */
8825 1.281 msaitoh swsm = CSR_READ(sc, WMREG_SWSM);
8826 1.281 msaitoh if (swsm & SWSM_SWESMBI)
8827 1.281 msaitoh break;
8828 1.169 msaitoh
8829 1.281 msaitoh delay(50);
8830 1.281 msaitoh timeout--;
8831 1.281 msaitoh }
8832 1.281 msaitoh
8833 1.281 msaitoh if (timeout == 0) {
8834 1.281 msaitoh aprint_error_dev(sc->sc_dev, "could not acquire SWSM SWESMBI\n");
8835 1.281 msaitoh /* Release semaphores */
8836 1.281 msaitoh wm_put_swsm_semaphore(sc);
8837 1.281 msaitoh return 1;
8838 1.281 msaitoh }
8839 1.169 msaitoh return 0;
8840 1.169 msaitoh }
8841 1.169 msaitoh
8842 1.281 msaitoh static void
8843 1.281 msaitoh wm_put_swsm_semaphore(struct wm_softc *sc)
8844 1.169 msaitoh {
8845 1.281 msaitoh uint32_t swsm;
8846 1.169 msaitoh
8847 1.281 msaitoh swsm = CSR_READ(sc, WMREG_SWSM);
8848 1.281 msaitoh swsm &= ~(SWSM_SMBI | SWSM_SWESMBI);
8849 1.281 msaitoh CSR_WRITE(sc, WMREG_SWSM, swsm);
8850 1.169 msaitoh }
8851 1.169 msaitoh
8852 1.169 msaitoh static int
8853 1.281 msaitoh wm_get_swfw_semaphore(struct wm_softc *sc, uint16_t mask)
8854 1.169 msaitoh {
8855 1.281 msaitoh uint32_t swfw_sync;
8856 1.281 msaitoh uint32_t swmask = mask << SWFW_SOFT_SHIFT;
8857 1.281 msaitoh uint32_t fwmask = mask << SWFW_FIRM_SHIFT;
8858 1.281 msaitoh int timeout = 200;
8859 1.169 msaitoh
8860 1.281 msaitoh for (timeout = 0; timeout < 200; timeout++) {
8861 1.281 msaitoh if (sc->sc_flags & WM_F_LOCK_SWSM) {
8862 1.281 msaitoh if (wm_get_swsm_semaphore(sc)) {
8863 1.281 msaitoh aprint_error_dev(sc->sc_dev,
8864 1.281 msaitoh "%s: failed to get semaphore\n",
8865 1.281 msaitoh __func__);
8866 1.281 msaitoh return 1;
8867 1.281 msaitoh }
8868 1.281 msaitoh }
8869 1.281 msaitoh swfw_sync = CSR_READ(sc, WMREG_SW_FW_SYNC);
8870 1.281 msaitoh if ((swfw_sync & (swmask | fwmask)) == 0) {
8871 1.281 msaitoh swfw_sync |= swmask;
8872 1.281 msaitoh CSR_WRITE(sc, WMREG_SW_FW_SYNC, swfw_sync);
8873 1.281 msaitoh if (sc->sc_flags & WM_F_LOCK_SWSM)
8874 1.281 msaitoh wm_put_swsm_semaphore(sc);
8875 1.281 msaitoh return 0;
8876 1.281 msaitoh }
8877 1.281 msaitoh if (sc->sc_flags & WM_F_LOCK_SWSM)
8878 1.281 msaitoh wm_put_swsm_semaphore(sc);
8879 1.281 msaitoh delay(5000);
8880 1.281 msaitoh }
8881 1.281 msaitoh printf("%s: failed to get swfw semaphore mask 0x%x swfw 0x%x\n",
8882 1.281 msaitoh device_xname(sc->sc_dev), mask, swfw_sync);
8883 1.281 msaitoh return 1;
8884 1.281 msaitoh }
8885 1.169 msaitoh
8886 1.281 msaitoh static void
8887 1.281 msaitoh wm_put_swfw_semaphore(struct wm_softc *sc, uint16_t mask)
8888 1.281 msaitoh {
8889 1.281 msaitoh uint32_t swfw_sync;
8890 1.169 msaitoh
8891 1.281 msaitoh if (sc->sc_flags & WM_F_LOCK_SWSM) {
8892 1.281 msaitoh while (wm_get_swsm_semaphore(sc) != 0)
8893 1.281 msaitoh continue;
8894 1.281 msaitoh }
8895 1.281 msaitoh swfw_sync = CSR_READ(sc, WMREG_SW_FW_SYNC);
8896 1.281 msaitoh swfw_sync &= ~(mask << SWFW_SOFT_SHIFT);
8897 1.281 msaitoh CSR_WRITE(sc, WMREG_SW_FW_SYNC, swfw_sync);
8898 1.281 msaitoh if (sc->sc_flags & WM_F_LOCK_SWSM)
8899 1.281 msaitoh wm_put_swsm_semaphore(sc);
8900 1.169 msaitoh }
8901 1.169 msaitoh
8902 1.189 msaitoh static int
8903 1.281 msaitoh wm_get_swfwhw_semaphore(struct wm_softc *sc)
8904 1.203 msaitoh {
8905 1.281 msaitoh uint32_t ext_ctrl;
8906 1.281 msaitoh int timeout = 200;
8907 1.203 msaitoh
8908 1.281 msaitoh for (timeout = 0; timeout < 200; timeout++) {
8909 1.281 msaitoh ext_ctrl = CSR_READ(sc, WMREG_EXTCNFCTR);
8910 1.281 msaitoh ext_ctrl |= E1000_EXTCNF_CTRL_SWFLAG;
8911 1.281 msaitoh CSR_WRITE(sc, WMREG_EXTCNFCTR, ext_ctrl);
8912 1.203 msaitoh
8913 1.281 msaitoh ext_ctrl = CSR_READ(sc, WMREG_EXTCNFCTR);
8914 1.281 msaitoh if (ext_ctrl & E1000_EXTCNF_CTRL_SWFLAG)
8915 1.281 msaitoh return 0;
8916 1.281 msaitoh delay(5000);
8917 1.281 msaitoh }
8918 1.281 msaitoh printf("%s: failed to get swfwhw semaphore ext_ctrl 0x%x\n",
8919 1.281 msaitoh device_xname(sc->sc_dev), ext_ctrl);
8920 1.281 msaitoh return 1;
8921 1.281 msaitoh }
8922 1.203 msaitoh
8923 1.281 msaitoh static void
8924 1.281 msaitoh wm_put_swfwhw_semaphore(struct wm_softc *sc)
8925 1.281 msaitoh {
8926 1.281 msaitoh uint32_t ext_ctrl;
8927 1.281 msaitoh ext_ctrl = CSR_READ(sc, WMREG_EXTCNFCTR);
8928 1.281 msaitoh ext_ctrl &= ~E1000_EXTCNF_CTRL_SWFLAG;
8929 1.281 msaitoh CSR_WRITE(sc, WMREG_EXTCNFCTR, ext_ctrl);
8930 1.203 msaitoh }
8931 1.203 msaitoh
8932 1.203 msaitoh static int
8933 1.281 msaitoh wm_get_hw_semaphore_82573(struct wm_softc *sc)
8934 1.189 msaitoh {
8935 1.281 msaitoh int i = 0;
8936 1.189 msaitoh uint32_t reg;
8937 1.189 msaitoh
8938 1.281 msaitoh reg = CSR_READ(sc, WMREG_EXTCNFCTR);
8939 1.281 msaitoh do {
8940 1.281 msaitoh CSR_WRITE(sc, WMREG_EXTCNFCTR,
8941 1.281 msaitoh reg | EXTCNFCTR_MDIO_SW_OWNERSHIP);
8942 1.281 msaitoh reg = CSR_READ(sc, WMREG_EXTCNFCTR);
8943 1.281 msaitoh if ((reg & EXTCNFCTR_MDIO_SW_OWNERSHIP) != 0)
8944 1.281 msaitoh break;
8945 1.281 msaitoh delay(2*1000);
8946 1.281 msaitoh i++;
8947 1.281 msaitoh } while (i < WM_MDIO_OWNERSHIP_TIMEOUT);
8948 1.281 msaitoh
8949 1.281 msaitoh if (i == WM_MDIO_OWNERSHIP_TIMEOUT) {
8950 1.281 msaitoh wm_put_hw_semaphore_82573(sc);
8951 1.281 msaitoh log(LOG_ERR, "%s: Driver can't access the PHY\n",
8952 1.281 msaitoh device_xname(sc->sc_dev));
8953 1.281 msaitoh return -1;
8954 1.189 msaitoh }
8955 1.189 msaitoh
8956 1.189 msaitoh return 0;
8957 1.189 msaitoh }
8958 1.189 msaitoh
8959 1.169 msaitoh static void
8960 1.281 msaitoh wm_put_hw_semaphore_82573(struct wm_softc *sc)
8961 1.169 msaitoh {
8962 1.169 msaitoh uint32_t reg;
8963 1.169 msaitoh
8964 1.281 msaitoh reg = CSR_READ(sc, WMREG_EXTCNFCTR);
8965 1.281 msaitoh reg &= ~EXTCNFCTR_MDIO_SW_OWNERSHIP;
8966 1.281 msaitoh CSR_WRITE(sc, WMREG_EXTCNFCTR, reg);
8967 1.281 msaitoh }
8968 1.281 msaitoh
8969 1.281 msaitoh /*
8970 1.281 msaitoh * Management mode and power management related subroutines.
8971 1.281 msaitoh * BMC, AMT, suspend/resume and EEE.
8972 1.281 msaitoh */
8973 1.281 msaitoh
8974 1.281 msaitoh static int
8975 1.281 msaitoh wm_check_mng_mode(struct wm_softc *sc)
8976 1.281 msaitoh {
8977 1.281 msaitoh int rv;
8978 1.281 msaitoh
8979 1.169 msaitoh switch (sc->sc_type) {
8980 1.169 msaitoh case WM_T_ICH8:
8981 1.169 msaitoh case WM_T_ICH9:
8982 1.169 msaitoh case WM_T_ICH10:
8983 1.190 msaitoh case WM_T_PCH:
8984 1.221 msaitoh case WM_T_PCH2:
8985 1.249 msaitoh case WM_T_PCH_LPT:
8986 1.281 msaitoh rv = wm_check_mng_mode_ich8lan(sc);
8987 1.281 msaitoh break;
8988 1.281 msaitoh case WM_T_82574:
8989 1.281 msaitoh case WM_T_82583:
8990 1.281 msaitoh rv = wm_check_mng_mode_82574(sc);
8991 1.281 msaitoh break;
8992 1.281 msaitoh case WM_T_82571:
8993 1.281 msaitoh case WM_T_82572:
8994 1.281 msaitoh case WM_T_82573:
8995 1.281 msaitoh case WM_T_80003:
8996 1.281 msaitoh rv = wm_check_mng_mode_generic(sc);
8997 1.169 msaitoh break;
8998 1.169 msaitoh default:
8999 1.281 msaitoh /* noting to do */
9000 1.281 msaitoh rv = 0;
9001 1.169 msaitoh break;
9002 1.169 msaitoh }
9003 1.281 msaitoh
9004 1.281 msaitoh return rv;
9005 1.169 msaitoh }
9006 1.173 msaitoh
9007 1.281 msaitoh static int
9008 1.281 msaitoh wm_check_mng_mode_ich8lan(struct wm_softc *sc)
9009 1.203 msaitoh {
9010 1.281 msaitoh uint32_t fwsm;
9011 1.281 msaitoh
9012 1.281 msaitoh fwsm = CSR_READ(sc, WMREG_FWSM);
9013 1.203 msaitoh
9014 1.281 msaitoh if ((fwsm & FWSM_MODE_MASK) == (MNG_ICH_IAMT_MODE << FWSM_MODE_SHIFT))
9015 1.281 msaitoh return 1;
9016 1.246 christos
9017 1.281 msaitoh return 0;
9018 1.203 msaitoh }
9019 1.203 msaitoh
9020 1.173 msaitoh static int
9021 1.281 msaitoh wm_check_mng_mode_82574(struct wm_softc *sc)
9022 1.173 msaitoh {
9023 1.281 msaitoh uint16_t data;
9024 1.173 msaitoh
9025 1.293 msaitoh wm_nvm_read(sc, NVM_OFF_CFG2, 1, &data);
9026 1.279 msaitoh
9027 1.293 msaitoh if ((data & NVM_CFG2_MNGM_MASK) != 0)
9028 1.281 msaitoh return 1;
9029 1.173 msaitoh
9030 1.173 msaitoh return 0;
9031 1.173 msaitoh }
9032 1.192 msaitoh
9033 1.281 msaitoh static int
9034 1.281 msaitoh wm_check_mng_mode_generic(struct wm_softc *sc)
9035 1.202 msaitoh {
9036 1.281 msaitoh uint32_t fwsm;
9037 1.202 msaitoh
9038 1.281 msaitoh fwsm = CSR_READ(sc, WMREG_FWSM);
9039 1.202 msaitoh
9040 1.281 msaitoh if ((fwsm & FWSM_MODE_MASK) == (MNG_IAMT_MODE << FWSM_MODE_SHIFT))
9041 1.281 msaitoh return 1;
9042 1.202 msaitoh
9043 1.281 msaitoh return 0;
9044 1.202 msaitoh }
9045 1.202 msaitoh
9046 1.281 msaitoh static int
9047 1.281 msaitoh wm_enable_mng_pass_thru(struct wm_softc *sc)
9048 1.202 msaitoh {
9049 1.281 msaitoh uint32_t manc, fwsm, factps;
9050 1.202 msaitoh
9051 1.281 msaitoh if ((sc->sc_flags & WM_F_ASF_FIRMWARE_PRES) == 0)
9052 1.281 msaitoh return 0;
9053 1.202 msaitoh
9054 1.281 msaitoh manc = CSR_READ(sc, WMREG_MANC);
9055 1.203 msaitoh
9056 1.281 msaitoh DPRINTF(WM_DEBUG_MANAGE, ("%s: MANC (%08x)\n",
9057 1.281 msaitoh device_xname(sc->sc_dev), manc));
9058 1.281 msaitoh if ((manc & MANC_RECV_TCO_EN) == 0)
9059 1.281 msaitoh return 0;
9060 1.203 msaitoh
9061 1.281 msaitoh if ((sc->sc_flags & WM_F_ARC_SUBSYS_VALID) != 0) {
9062 1.281 msaitoh fwsm = CSR_READ(sc, WMREG_FWSM);
9063 1.281 msaitoh factps = CSR_READ(sc, WMREG_FACTPS);
9064 1.281 msaitoh if (((factps & FACTPS_MNGCG) == 0)
9065 1.281 msaitoh && ((fwsm & FWSM_MODE_MASK)
9066 1.281 msaitoh == (MNG_ICH_IAMT_MODE << FWSM_MODE_SHIFT)))
9067 1.281 msaitoh return 1;
9068 1.281 msaitoh } else if ((sc->sc_type == WM_T_82574) || (sc->sc_type == WM_T_82583)){
9069 1.281 msaitoh uint16_t data;
9070 1.203 msaitoh
9071 1.281 msaitoh factps = CSR_READ(sc, WMREG_FACTPS);
9072 1.293 msaitoh wm_nvm_read(sc, NVM_OFF_CFG2, 1, &data);
9073 1.281 msaitoh DPRINTF(WM_DEBUG_MANAGE, ("%s: FACTPS = %08x, CFG2=%04x\n",
9074 1.281 msaitoh device_xname(sc->sc_dev), factps, data));
9075 1.281 msaitoh if (((factps & FACTPS_MNGCG) == 0)
9076 1.293 msaitoh && ((data & NVM_CFG2_MNGM_MASK)
9077 1.293 msaitoh == (NVM_CFG2_MNGM_PT << NVM_CFG2_MNGM_SHIFT)))
9078 1.281 msaitoh return 1;
9079 1.281 msaitoh } else if (((manc & MANC_SMBUS_EN) != 0)
9080 1.281 msaitoh && ((manc & MANC_ASF_EN) == 0))
9081 1.281 msaitoh return 1;
9082 1.203 msaitoh
9083 1.281 msaitoh return 0;
9084 1.203 msaitoh }
9085 1.203 msaitoh
9086 1.281 msaitoh static int
9087 1.281 msaitoh wm_check_reset_block(struct wm_softc *sc)
9088 1.192 msaitoh {
9089 1.281 msaitoh uint32_t reg;
9090 1.192 msaitoh
9091 1.281 msaitoh switch (sc->sc_type) {
9092 1.281 msaitoh case WM_T_ICH8:
9093 1.281 msaitoh case WM_T_ICH9:
9094 1.281 msaitoh case WM_T_ICH10:
9095 1.281 msaitoh case WM_T_PCH:
9096 1.281 msaitoh case WM_T_PCH2:
9097 1.281 msaitoh case WM_T_PCH_LPT:
9098 1.281 msaitoh reg = CSR_READ(sc, WMREG_FWSM);
9099 1.281 msaitoh if ((reg & FWSM_RSPCIPHY) != 0)
9100 1.281 msaitoh return 0;
9101 1.281 msaitoh else
9102 1.281 msaitoh return -1;
9103 1.281 msaitoh break;
9104 1.281 msaitoh case WM_T_82571:
9105 1.281 msaitoh case WM_T_82572:
9106 1.281 msaitoh case WM_T_82573:
9107 1.281 msaitoh case WM_T_82574:
9108 1.281 msaitoh case WM_T_82583:
9109 1.281 msaitoh case WM_T_80003:
9110 1.281 msaitoh reg = CSR_READ(sc, WMREG_MANC);
9111 1.281 msaitoh if ((reg & MANC_BLK_PHY_RST_ON_IDE) != 0)
9112 1.281 msaitoh return -1;
9113 1.281 msaitoh else
9114 1.281 msaitoh return 0;
9115 1.281 msaitoh break;
9116 1.281 msaitoh default:
9117 1.281 msaitoh /* no problem */
9118 1.281 msaitoh break;
9119 1.192 msaitoh }
9120 1.192 msaitoh
9121 1.281 msaitoh return 0;
9122 1.192 msaitoh }
9123 1.192 msaitoh
9124 1.192 msaitoh static void
9125 1.281 msaitoh wm_get_hw_control(struct wm_softc *sc)
9126 1.221 msaitoh {
9127 1.281 msaitoh uint32_t reg;
9128 1.221 msaitoh
9129 1.281 msaitoh switch (sc->sc_type) {
9130 1.281 msaitoh case WM_T_82573:
9131 1.281 msaitoh reg = CSR_READ(sc, WMREG_SWSM);
9132 1.281 msaitoh CSR_WRITE(sc, WMREG_SWSM, reg | SWSM_DRV_LOAD);
9133 1.281 msaitoh break;
9134 1.281 msaitoh case WM_T_82571:
9135 1.281 msaitoh case WM_T_82572:
9136 1.281 msaitoh case WM_T_82574:
9137 1.281 msaitoh case WM_T_82583:
9138 1.281 msaitoh case WM_T_80003:
9139 1.281 msaitoh case WM_T_ICH8:
9140 1.281 msaitoh case WM_T_ICH9:
9141 1.281 msaitoh case WM_T_ICH10:
9142 1.281 msaitoh case WM_T_PCH:
9143 1.281 msaitoh case WM_T_PCH2:
9144 1.281 msaitoh case WM_T_PCH_LPT:
9145 1.281 msaitoh reg = CSR_READ(sc, WMREG_CTRL_EXT);
9146 1.281 msaitoh CSR_WRITE(sc, WMREG_CTRL_EXT, reg | CTRL_EXT_DRV_LOAD);
9147 1.281 msaitoh break;
9148 1.281 msaitoh default:
9149 1.281 msaitoh break;
9150 1.281 msaitoh }
9151 1.221 msaitoh }
9152 1.221 msaitoh
9153 1.221 msaitoh static void
9154 1.281 msaitoh wm_release_hw_control(struct wm_softc *sc)
9155 1.192 msaitoh {
9156 1.281 msaitoh uint32_t reg;
9157 1.192 msaitoh
9158 1.281 msaitoh if ((sc->sc_flags & WM_F_HAS_MANAGE) == 0)
9159 1.281 msaitoh return;
9160 1.192 msaitoh
9161 1.281 msaitoh if (sc->sc_type == WM_T_82573) {
9162 1.281 msaitoh reg = CSR_READ(sc, WMREG_SWSM);
9163 1.281 msaitoh reg &= ~SWSM_DRV_LOAD;
9164 1.281 msaitoh CSR_WRITE(sc, WMREG_SWSM, reg & ~SWSM_DRV_LOAD);
9165 1.192 msaitoh } else {
9166 1.281 msaitoh reg = CSR_READ(sc, WMREG_CTRL_EXT);
9167 1.281 msaitoh CSR_WRITE(sc, WMREG_CTRL_EXT, reg & ~CTRL_EXT_DRV_LOAD);
9168 1.192 msaitoh }
9169 1.192 msaitoh }
9170 1.192 msaitoh
9171 1.192 msaitoh static void
9172 1.281 msaitoh wm_gate_hw_phy_config_ich8lan(struct wm_softc *sc, int on)
9173 1.221 msaitoh {
9174 1.221 msaitoh uint32_t reg;
9175 1.221 msaitoh
9176 1.281 msaitoh reg = CSR_READ(sc, WMREG_EXTCNFCTR);
9177 1.221 msaitoh
9178 1.281 msaitoh if (on != 0)
9179 1.281 msaitoh reg |= EXTCNFCTR_GATE_PHY_CFG;
9180 1.192 msaitoh else
9181 1.281 msaitoh reg &= ~EXTCNFCTR_GATE_PHY_CFG;
9182 1.192 msaitoh
9183 1.281 msaitoh CSR_WRITE(sc, WMREG_EXTCNFCTR, reg);
9184 1.192 msaitoh }
9185 1.199 msaitoh
9186 1.199 msaitoh static void
9187 1.221 msaitoh wm_smbustopci(struct wm_softc *sc)
9188 1.221 msaitoh {
9189 1.221 msaitoh uint32_t fwsm;
9190 1.221 msaitoh
9191 1.221 msaitoh fwsm = CSR_READ(sc, WMREG_FWSM);
9192 1.221 msaitoh if (((fwsm & FWSM_FW_VALID) == 0)
9193 1.221 msaitoh && ((wm_check_reset_block(sc) == 0))) {
9194 1.221 msaitoh sc->sc_ctrl |= CTRL_LANPHYPC_OVERRIDE;
9195 1.221 msaitoh sc->sc_ctrl &= ~CTRL_LANPHYPC_VALUE;
9196 1.221 msaitoh CSR_WRITE(sc, WMREG_CTRL, sc->sc_ctrl);
9197 1.266 msaitoh CSR_WRITE_FLUSH(sc);
9198 1.221 msaitoh delay(10);
9199 1.221 msaitoh sc->sc_ctrl &= ~CTRL_LANPHYPC_OVERRIDE;
9200 1.221 msaitoh CSR_WRITE(sc, WMREG_CTRL, sc->sc_ctrl);
9201 1.266 msaitoh CSR_WRITE_FLUSH(sc);
9202 1.221 msaitoh delay(50*1000);
9203 1.221 msaitoh
9204 1.221 msaitoh /*
9205 1.221 msaitoh * Gate automatic PHY configuration by hardware on non-managed
9206 1.221 msaitoh * 82579
9207 1.221 msaitoh */
9208 1.221 msaitoh if (sc->sc_type == WM_T_PCH2)
9209 1.221 msaitoh wm_gate_hw_phy_config_ich8lan(sc, 1);
9210 1.221 msaitoh }
9211 1.221 msaitoh }
9212 1.221 msaitoh
9213 1.221 msaitoh static void
9214 1.203 msaitoh wm_init_manageability(struct wm_softc *sc)
9215 1.203 msaitoh {
9216 1.203 msaitoh
9217 1.203 msaitoh if (sc->sc_flags & WM_F_HAS_MANAGE) {
9218 1.203 msaitoh uint32_t manc2h = CSR_READ(sc, WMREG_MANC2H);
9219 1.203 msaitoh uint32_t manc = CSR_READ(sc, WMREG_MANC);
9220 1.203 msaitoh
9221 1.281 msaitoh /* Disable hardware interception of ARP */
9222 1.203 msaitoh manc &= ~MANC_ARP_EN;
9223 1.203 msaitoh
9224 1.281 msaitoh /* Enable receiving management packets to the host */
9225 1.203 msaitoh if (sc->sc_type >= WM_T_82571) {
9226 1.203 msaitoh manc |= MANC_EN_MNG2HOST;
9227 1.203 msaitoh manc2h |= MANC2H_PORT_623| MANC2H_PORT_624;
9228 1.203 msaitoh CSR_WRITE(sc, WMREG_MANC2H, manc2h);
9229 1.246 christos
9230 1.203 msaitoh }
9231 1.203 msaitoh
9232 1.203 msaitoh CSR_WRITE(sc, WMREG_MANC, manc);
9233 1.203 msaitoh }
9234 1.203 msaitoh }
9235 1.203 msaitoh
9236 1.203 msaitoh static void
9237 1.203 msaitoh wm_release_manageability(struct wm_softc *sc)
9238 1.203 msaitoh {
9239 1.203 msaitoh
9240 1.203 msaitoh if (sc->sc_flags & WM_F_HAS_MANAGE) {
9241 1.203 msaitoh uint32_t manc = CSR_READ(sc, WMREG_MANC);
9242 1.203 msaitoh
9243 1.260 msaitoh manc |= MANC_ARP_EN;
9244 1.203 msaitoh if (sc->sc_type >= WM_T_82571)
9245 1.203 msaitoh manc &= ~MANC_EN_MNG2HOST;
9246 1.203 msaitoh
9247 1.203 msaitoh CSR_WRITE(sc, WMREG_MANC, manc);
9248 1.203 msaitoh }
9249 1.203 msaitoh }
9250 1.203 msaitoh
9251 1.203 msaitoh static void
9252 1.203 msaitoh wm_get_wakeup(struct wm_softc *sc)
9253 1.203 msaitoh {
9254 1.203 msaitoh
9255 1.203 msaitoh /* 0: HAS_AMT, ARC_SUBSYS_VALID, ASF_FIRMWARE_PRES */
9256 1.203 msaitoh switch (sc->sc_type) {
9257 1.203 msaitoh case WM_T_82573:
9258 1.203 msaitoh case WM_T_82583:
9259 1.203 msaitoh sc->sc_flags |= WM_F_HAS_AMT;
9260 1.203 msaitoh /* FALLTHROUGH */
9261 1.246 christos case WM_T_80003:
9262 1.203 msaitoh case WM_T_82541:
9263 1.203 msaitoh case WM_T_82547:
9264 1.203 msaitoh case WM_T_82571:
9265 1.203 msaitoh case WM_T_82572:
9266 1.203 msaitoh case WM_T_82574:
9267 1.203 msaitoh case WM_T_82575:
9268 1.203 msaitoh case WM_T_82576:
9269 1.208 msaitoh case WM_T_82580:
9270 1.228 msaitoh case WM_T_I350:
9271 1.265 msaitoh case WM_T_I354:
9272 1.203 msaitoh if ((CSR_READ(sc, WMREG_FWSM) & FWSM_MODE_MASK) != 0)
9273 1.203 msaitoh sc->sc_flags |= WM_F_ARC_SUBSYS_VALID;
9274 1.203 msaitoh sc->sc_flags |= WM_F_ASF_FIRMWARE_PRES;
9275 1.203 msaitoh break;
9276 1.203 msaitoh case WM_T_ICH8:
9277 1.203 msaitoh case WM_T_ICH9:
9278 1.203 msaitoh case WM_T_ICH10:
9279 1.203 msaitoh case WM_T_PCH:
9280 1.221 msaitoh case WM_T_PCH2:
9281 1.249 msaitoh case WM_T_PCH_LPT:
9282 1.203 msaitoh sc->sc_flags |= WM_F_HAS_AMT;
9283 1.203 msaitoh sc->sc_flags |= WM_F_ASF_FIRMWARE_PRES;
9284 1.203 msaitoh break;
9285 1.203 msaitoh default:
9286 1.203 msaitoh break;
9287 1.203 msaitoh }
9288 1.203 msaitoh
9289 1.203 msaitoh /* 1: HAS_MANAGE */
9290 1.203 msaitoh if (wm_enable_mng_pass_thru(sc) != 0)
9291 1.203 msaitoh sc->sc_flags |= WM_F_HAS_MANAGE;
9292 1.203 msaitoh
9293 1.203 msaitoh #ifdef WM_DEBUG
9294 1.203 msaitoh printf("\n");
9295 1.203 msaitoh if ((sc->sc_flags & WM_F_HAS_AMT) != 0)
9296 1.203 msaitoh printf("HAS_AMT,");
9297 1.203 msaitoh if ((sc->sc_flags & WM_F_ARC_SUBSYS_VALID) != 0)
9298 1.203 msaitoh printf("ARC_SUBSYS_VALID,");
9299 1.203 msaitoh if ((sc->sc_flags & WM_F_ASF_FIRMWARE_PRES) != 0)
9300 1.203 msaitoh printf("ASF_FIRMWARE_PRES,");
9301 1.203 msaitoh if ((sc->sc_flags & WM_F_HAS_MANAGE) != 0)
9302 1.203 msaitoh printf("HAS_MANAGE,");
9303 1.203 msaitoh printf("\n");
9304 1.203 msaitoh #endif
9305 1.203 msaitoh /*
9306 1.203 msaitoh * Note that the WOL flags is set after the resetting of the eeprom
9307 1.203 msaitoh * stuff
9308 1.203 msaitoh */
9309 1.203 msaitoh }
9310 1.203 msaitoh
9311 1.203 msaitoh #ifdef WM_WOL
9312 1.203 msaitoh /* WOL in the newer chipset interfaces (pchlan) */
9313 1.203 msaitoh static void
9314 1.203 msaitoh wm_enable_phy_wakeup(struct wm_softc *sc)
9315 1.203 msaitoh {
9316 1.203 msaitoh #if 0
9317 1.203 msaitoh uint16_t preg;
9318 1.203 msaitoh
9319 1.203 msaitoh /* Copy MAC RARs to PHY RARs */
9320 1.203 msaitoh
9321 1.203 msaitoh /* Copy MAC MTA to PHY MTA */
9322 1.203 msaitoh
9323 1.281 msaitoh /* Configure PHY Rx Control register */
9324 1.281 msaitoh
9325 1.281 msaitoh /* Enable PHY wakeup in MAC register */
9326 1.281 msaitoh
9327 1.281 msaitoh /* Configure and enable PHY wakeup in PHY registers */
9328 1.281 msaitoh
9329 1.281 msaitoh /* Activate PHY wakeup */
9330 1.281 msaitoh
9331 1.281 msaitoh /* XXX */
9332 1.281 msaitoh #endif
9333 1.281 msaitoh }
9334 1.281 msaitoh
9335 1.281 msaitoh /* Power down workaround on D3 */
9336 1.281 msaitoh static void
9337 1.281 msaitoh wm_igp3_phy_powerdown_workaround_ich8lan(struct wm_softc *sc)
9338 1.281 msaitoh {
9339 1.281 msaitoh uint32_t reg;
9340 1.281 msaitoh int i;
9341 1.281 msaitoh
9342 1.281 msaitoh for (i = 0; i < 2; i++) {
9343 1.281 msaitoh /* Disable link */
9344 1.281 msaitoh reg = CSR_READ(sc, WMREG_PHY_CTRL);
9345 1.281 msaitoh reg |= PHY_CTRL_GBE_DIS | PHY_CTRL_NOND0A_GBE_DIS;
9346 1.281 msaitoh CSR_WRITE(sc, WMREG_PHY_CTRL, reg);
9347 1.281 msaitoh
9348 1.281 msaitoh /*
9349 1.281 msaitoh * Call gig speed drop workaround on Gig disable before
9350 1.281 msaitoh * accessing any PHY registers
9351 1.281 msaitoh */
9352 1.281 msaitoh if (sc->sc_type == WM_T_ICH8)
9353 1.281 msaitoh wm_gig_downshift_workaround_ich8lan(sc);
9354 1.203 msaitoh
9355 1.281 msaitoh /* Write VR power-down enable */
9356 1.281 msaitoh reg = sc->sc_mii.mii_readreg(sc->sc_dev, 1, IGP3_VR_CTRL);
9357 1.281 msaitoh reg &= ~IGP3_VR_CTRL_DEV_POWERDOWN_MODE_MASK;
9358 1.281 msaitoh reg |= IGP3_VR_CTRL_MODE_SHUTDOWN;
9359 1.281 msaitoh sc->sc_mii.mii_writereg(sc->sc_dev, 1, IGP3_VR_CTRL, reg);
9360 1.203 msaitoh
9361 1.281 msaitoh /* Read it back and test */
9362 1.281 msaitoh reg = sc->sc_mii.mii_readreg(sc->sc_dev, 1, IGP3_VR_CTRL);
9363 1.281 msaitoh reg &= IGP3_VR_CTRL_DEV_POWERDOWN_MODE_MASK;
9364 1.281 msaitoh if ((reg == IGP3_VR_CTRL_MODE_SHUTDOWN) || (i != 0))
9365 1.281 msaitoh break;
9366 1.203 msaitoh
9367 1.281 msaitoh /* Issue PHY reset and repeat at most one more time */
9368 1.281 msaitoh CSR_WRITE(sc, WMREG_CTRL, sc->sc_ctrl | CTRL_PHY_RESET);
9369 1.281 msaitoh }
9370 1.203 msaitoh }
9371 1.203 msaitoh
9372 1.203 msaitoh static void
9373 1.203 msaitoh wm_enable_wakeup(struct wm_softc *sc)
9374 1.203 msaitoh {
9375 1.203 msaitoh uint32_t reg, pmreg;
9376 1.203 msaitoh pcireg_t pmode;
9377 1.203 msaitoh
9378 1.203 msaitoh if (pci_get_capability(sc->sc_pc, sc->sc_pcitag, PCI_CAP_PWRMGMT,
9379 1.203 msaitoh &pmreg, NULL) == 0)
9380 1.203 msaitoh return;
9381 1.203 msaitoh
9382 1.203 msaitoh /* Advertise the wakeup capability */
9383 1.203 msaitoh CSR_WRITE(sc, WMREG_CTRL, sc->sc_ctrl | CTRL_SWDPIN(2)
9384 1.203 msaitoh | CTRL_SWDPIN(3));
9385 1.203 msaitoh CSR_WRITE(sc, WMREG_WUC, WUC_APME);
9386 1.203 msaitoh
9387 1.203 msaitoh /* ICH workaround */
9388 1.203 msaitoh switch (sc->sc_type) {
9389 1.203 msaitoh case WM_T_ICH8:
9390 1.203 msaitoh case WM_T_ICH9:
9391 1.203 msaitoh case WM_T_ICH10:
9392 1.203 msaitoh case WM_T_PCH:
9393 1.221 msaitoh case WM_T_PCH2:
9394 1.249 msaitoh case WM_T_PCH_LPT:
9395 1.203 msaitoh /* Disable gig during WOL */
9396 1.203 msaitoh reg = CSR_READ(sc, WMREG_PHY_CTRL);
9397 1.203 msaitoh reg |= PHY_CTRL_D0A_LPLU | PHY_CTRL_GBE_DIS;
9398 1.203 msaitoh CSR_WRITE(sc, WMREG_PHY_CTRL, reg);
9399 1.203 msaitoh if (sc->sc_type == WM_T_PCH)
9400 1.203 msaitoh wm_gmii_reset(sc);
9401 1.203 msaitoh
9402 1.203 msaitoh /* Power down workaround */
9403 1.203 msaitoh if (sc->sc_phytype == WMPHY_82577) {
9404 1.203 msaitoh struct mii_softc *child;
9405 1.203 msaitoh
9406 1.203 msaitoh /* Assume that the PHY is copper */
9407 1.203 msaitoh child = LIST_FIRST(&sc->sc_mii.mii_phys);
9408 1.203 msaitoh if (child->mii_mpd_rev <= 2)
9409 1.203 msaitoh sc->sc_mii.mii_writereg(sc->sc_dev, 1,
9410 1.203 msaitoh (768 << 5) | 25, 0x0444); /* magic num */
9411 1.203 msaitoh }
9412 1.203 msaitoh break;
9413 1.203 msaitoh default:
9414 1.203 msaitoh break;
9415 1.203 msaitoh }
9416 1.203 msaitoh
9417 1.203 msaitoh /* Keep the laser running on fiber adapters */
9418 1.311 msaitoh if ((sc->sc_mediatype == WM_MEDIATYPE_FIBER)
9419 1.311 msaitoh || (sc->sc_mediatype == WM_MEDIATYPE_SERDES)) {
9420 1.203 msaitoh reg = CSR_READ(sc, WMREG_CTRL_EXT);
9421 1.203 msaitoh reg |= CTRL_EXT_SWDPIN(3);
9422 1.203 msaitoh CSR_WRITE(sc, WMREG_CTRL_EXT, reg);
9423 1.203 msaitoh }
9424 1.203 msaitoh
9425 1.203 msaitoh reg = CSR_READ(sc, WMREG_WUFC) | WUFC_MAG;
9426 1.203 msaitoh #if 0 /* for the multicast packet */
9427 1.203 msaitoh reg |= WUFC_MC;
9428 1.203 msaitoh CSR_WRITE(sc, WMREG_RCTL, CSR_READ(sc, WMREG_RCTL) | RCTL_MPE);
9429 1.203 msaitoh #endif
9430 1.203 msaitoh
9431 1.203 msaitoh if (sc->sc_type == WM_T_PCH) {
9432 1.203 msaitoh wm_enable_phy_wakeup(sc);
9433 1.203 msaitoh } else {
9434 1.203 msaitoh CSR_WRITE(sc, WMREG_WUC, WUC_PME_EN);
9435 1.203 msaitoh CSR_WRITE(sc, WMREG_WUFC, reg);
9436 1.203 msaitoh }
9437 1.203 msaitoh
9438 1.203 msaitoh if (((sc->sc_type == WM_T_ICH8) || (sc->sc_type == WM_T_ICH9)
9439 1.221 msaitoh || (sc->sc_type == WM_T_ICH10) || (sc->sc_type == WM_T_PCH)
9440 1.221 msaitoh || (sc->sc_type == WM_T_PCH2))
9441 1.203 msaitoh && (sc->sc_phytype == WMPHY_IGP_3))
9442 1.203 msaitoh wm_igp3_phy_powerdown_workaround_ich8lan(sc);
9443 1.203 msaitoh
9444 1.203 msaitoh /* Request PME */
9445 1.203 msaitoh pmode = pci_conf_read(sc->sc_pc, sc->sc_pcitag, pmreg + PCI_PMCSR);
9446 1.203 msaitoh #if 0
9447 1.203 msaitoh /* Disable WOL */
9448 1.203 msaitoh pmode &= ~(PCI_PMCSR_PME_STS | PCI_PMCSR_PME_EN);
9449 1.203 msaitoh #else
9450 1.203 msaitoh /* For WOL */
9451 1.203 msaitoh pmode |= PCI_PMCSR_PME_STS | PCI_PMCSR_PME_EN;
9452 1.203 msaitoh #endif
9453 1.203 msaitoh pci_conf_write(sc->sc_pc, sc->sc_pcitag, pmreg + PCI_PMCSR, pmode);
9454 1.203 msaitoh }
9455 1.203 msaitoh #endif /* WM_WOL */
9456 1.203 msaitoh
9457 1.281 msaitoh /* EEE */
9458 1.228 msaitoh
9459 1.228 msaitoh static void
9460 1.281 msaitoh wm_set_eee_i350(struct wm_softc *sc)
9461 1.228 msaitoh {
9462 1.228 msaitoh uint32_t ipcnfg, eeer;
9463 1.228 msaitoh
9464 1.228 msaitoh ipcnfg = CSR_READ(sc, WMREG_IPCNFG);
9465 1.228 msaitoh eeer = CSR_READ(sc, WMREG_EEER);
9466 1.228 msaitoh
9467 1.228 msaitoh if ((sc->sc_flags & WM_F_EEE) != 0) {
9468 1.228 msaitoh ipcnfg |= (IPCNFG_EEE_1G_AN | IPCNFG_EEE_100M_AN);
9469 1.228 msaitoh eeer |= (EEER_TX_LPI_EN | EEER_RX_LPI_EN
9470 1.228 msaitoh | EEER_LPI_FC);
9471 1.228 msaitoh } else {
9472 1.228 msaitoh ipcnfg &= ~(IPCNFG_EEE_1G_AN | IPCNFG_EEE_100M_AN);
9473 1.228 msaitoh eeer &= ~(EEER_TX_LPI_EN | EEER_RX_LPI_EN
9474 1.228 msaitoh | EEER_LPI_FC);
9475 1.228 msaitoh }
9476 1.228 msaitoh
9477 1.228 msaitoh CSR_WRITE(sc, WMREG_IPCNFG, ipcnfg);
9478 1.228 msaitoh CSR_WRITE(sc, WMREG_EEER, eeer);
9479 1.228 msaitoh CSR_READ(sc, WMREG_IPCNFG); /* XXX flush? */
9480 1.228 msaitoh CSR_READ(sc, WMREG_EEER); /* XXX flush? */
9481 1.228 msaitoh }
9482 1.281 msaitoh
9483 1.281 msaitoh /*
9484 1.281 msaitoh * Workarounds (mainly PHY related).
9485 1.281 msaitoh * Basically, PHY's workarounds are in the PHY drivers.
9486 1.281 msaitoh */
9487 1.281 msaitoh
9488 1.281 msaitoh /* Work-around for 82566 Kumeran PCS lock loss */
9489 1.281 msaitoh static void
9490 1.281 msaitoh wm_kmrn_lock_loss_workaround_ich8lan(struct wm_softc *sc)
9491 1.281 msaitoh {
9492 1.281 msaitoh int miistatus, active, i;
9493 1.281 msaitoh int reg;
9494 1.281 msaitoh
9495 1.281 msaitoh miistatus = sc->sc_mii.mii_media_status;
9496 1.281 msaitoh
9497 1.281 msaitoh /* If the link is not up, do nothing */
9498 1.281 msaitoh if ((miistatus & IFM_ACTIVE) != 0)
9499 1.281 msaitoh return;
9500 1.281 msaitoh
9501 1.281 msaitoh active = sc->sc_mii.mii_media_active;
9502 1.281 msaitoh
9503 1.281 msaitoh /* Nothing to do if the link is other than 1Gbps */
9504 1.281 msaitoh if (IFM_SUBTYPE(active) != IFM_1000_T)
9505 1.281 msaitoh return;
9506 1.281 msaitoh
9507 1.281 msaitoh for (i = 0; i < 10; i++) {
9508 1.281 msaitoh /* read twice */
9509 1.281 msaitoh reg = wm_gmii_i80003_readreg(sc->sc_dev, 1, IGP3_KMRN_DIAG);
9510 1.281 msaitoh reg = wm_gmii_i80003_readreg(sc->sc_dev, 1, IGP3_KMRN_DIAG);
9511 1.281 msaitoh if ((reg & IGP3_KMRN_DIAG_PCS_LOCK_LOSS) != 0)
9512 1.281 msaitoh goto out; /* GOOD! */
9513 1.281 msaitoh
9514 1.281 msaitoh /* Reset the PHY */
9515 1.281 msaitoh wm_gmii_reset(sc);
9516 1.281 msaitoh delay(5*1000);
9517 1.281 msaitoh }
9518 1.281 msaitoh
9519 1.281 msaitoh /* Disable GigE link negotiation */
9520 1.281 msaitoh reg = CSR_READ(sc, WMREG_PHY_CTRL);
9521 1.281 msaitoh reg |= PHY_CTRL_GBE_DIS | PHY_CTRL_NOND0A_GBE_DIS;
9522 1.281 msaitoh CSR_WRITE(sc, WMREG_PHY_CTRL, reg);
9523 1.281 msaitoh
9524 1.281 msaitoh /*
9525 1.281 msaitoh * Call gig speed drop workaround on Gig disable before accessing
9526 1.281 msaitoh * any PHY registers.
9527 1.281 msaitoh */
9528 1.281 msaitoh wm_gig_downshift_workaround_ich8lan(sc);
9529 1.281 msaitoh
9530 1.281 msaitoh out:
9531 1.281 msaitoh return;
9532 1.281 msaitoh }
9533 1.281 msaitoh
9534 1.281 msaitoh /* WOL from S5 stops working */
9535 1.281 msaitoh static void
9536 1.281 msaitoh wm_gig_downshift_workaround_ich8lan(struct wm_softc *sc)
9537 1.281 msaitoh {
9538 1.281 msaitoh uint16_t kmrn_reg;
9539 1.281 msaitoh
9540 1.281 msaitoh /* Only for igp3 */
9541 1.281 msaitoh if (sc->sc_phytype == WMPHY_IGP_3) {
9542 1.281 msaitoh kmrn_reg = wm_kmrn_readreg(sc, KUMCTRLSTA_OFFSET_DIAG);
9543 1.281 msaitoh kmrn_reg |= KUMCTRLSTA_DIAG_NELPBK;
9544 1.281 msaitoh wm_kmrn_writereg(sc, KUMCTRLSTA_OFFSET_DIAG, kmrn_reg);
9545 1.281 msaitoh kmrn_reg &= ~KUMCTRLSTA_DIAG_NELPBK;
9546 1.281 msaitoh wm_kmrn_writereg(sc, KUMCTRLSTA_OFFSET_DIAG, kmrn_reg);
9547 1.281 msaitoh }
9548 1.281 msaitoh }
9549 1.281 msaitoh
9550 1.281 msaitoh /*
9551 1.281 msaitoh * Workaround for pch's PHYs
9552 1.281 msaitoh * XXX should be moved to new PHY driver?
9553 1.281 msaitoh */
9554 1.281 msaitoh static void
9555 1.281 msaitoh wm_hv_phy_workaround_ich8lan(struct wm_softc *sc)
9556 1.281 msaitoh {
9557 1.281 msaitoh if (sc->sc_phytype == WMPHY_82577)
9558 1.281 msaitoh wm_set_mdio_slow_mode_hv(sc);
9559 1.281 msaitoh
9560 1.281 msaitoh /* (PCH rev.2) && (82577 && (phy rev 2 or 3)) */
9561 1.281 msaitoh
9562 1.281 msaitoh /* (82577 && (phy rev 1 or 2)) || (82578 & phy rev 1)*/
9563 1.281 msaitoh
9564 1.281 msaitoh /* 82578 */
9565 1.281 msaitoh if (sc->sc_phytype == WMPHY_82578) {
9566 1.281 msaitoh /* PCH rev. < 3 */
9567 1.281 msaitoh if (sc->sc_rev < 3) {
9568 1.281 msaitoh /* XXX 6 bit shift? Why? Is it page2? */
9569 1.281 msaitoh wm_gmii_hv_writereg(sc->sc_dev, 1, ((1 << 6) | 0x29),
9570 1.281 msaitoh 0x66c0);
9571 1.281 msaitoh wm_gmii_hv_writereg(sc->sc_dev, 1, ((1 << 6) | 0x1e),
9572 1.281 msaitoh 0xffff);
9573 1.281 msaitoh }
9574 1.281 msaitoh
9575 1.281 msaitoh /* XXX phy rev. < 2 */
9576 1.281 msaitoh }
9577 1.281 msaitoh
9578 1.281 msaitoh /* Select page 0 */
9579 1.281 msaitoh
9580 1.281 msaitoh /* XXX acquire semaphore */
9581 1.281 msaitoh wm_gmii_i82544_writereg(sc->sc_dev, 1, MII_IGPHY_PAGE_SELECT, 0);
9582 1.281 msaitoh /* XXX release semaphore */
9583 1.281 msaitoh
9584 1.281 msaitoh /*
9585 1.281 msaitoh * Configure the K1 Si workaround during phy reset assuming there is
9586 1.281 msaitoh * link so that it disables K1 if link is in 1Gbps.
9587 1.281 msaitoh */
9588 1.281 msaitoh wm_k1_gig_workaround_hv(sc, 1);
9589 1.281 msaitoh }
9590 1.281 msaitoh
9591 1.281 msaitoh static void
9592 1.281 msaitoh wm_lv_phy_workaround_ich8lan(struct wm_softc *sc)
9593 1.281 msaitoh {
9594 1.281 msaitoh
9595 1.281 msaitoh wm_set_mdio_slow_mode_hv(sc);
9596 1.281 msaitoh }
9597 1.281 msaitoh
9598 1.281 msaitoh static void
9599 1.281 msaitoh wm_k1_gig_workaround_hv(struct wm_softc *sc, int link)
9600 1.281 msaitoh {
9601 1.281 msaitoh int k1_enable = sc->sc_nvm_k1_enabled;
9602 1.281 msaitoh
9603 1.281 msaitoh /* XXX acquire semaphore */
9604 1.281 msaitoh
9605 1.281 msaitoh if (link) {
9606 1.281 msaitoh k1_enable = 0;
9607 1.281 msaitoh
9608 1.281 msaitoh /* Link stall fix for link up */
9609 1.281 msaitoh wm_gmii_hv_writereg(sc->sc_dev, 1, IGP3_KMRN_DIAG, 0x0100);
9610 1.281 msaitoh } else {
9611 1.281 msaitoh /* Link stall fix for link down */
9612 1.281 msaitoh wm_gmii_hv_writereg(sc->sc_dev, 1, IGP3_KMRN_DIAG, 0x4100);
9613 1.281 msaitoh }
9614 1.281 msaitoh
9615 1.281 msaitoh wm_configure_k1_ich8lan(sc, k1_enable);
9616 1.281 msaitoh
9617 1.281 msaitoh /* XXX release semaphore */
9618 1.281 msaitoh }
9619 1.281 msaitoh
9620 1.281 msaitoh static void
9621 1.281 msaitoh wm_set_mdio_slow_mode_hv(struct wm_softc *sc)
9622 1.281 msaitoh {
9623 1.281 msaitoh uint32_t reg;
9624 1.281 msaitoh
9625 1.281 msaitoh reg = wm_gmii_hv_readreg(sc->sc_dev, 1, HV_KMRN_MODE_CTRL);
9626 1.281 msaitoh wm_gmii_hv_writereg(sc->sc_dev, 1, HV_KMRN_MODE_CTRL,
9627 1.281 msaitoh reg | HV_KMRN_MDIO_SLOW);
9628 1.281 msaitoh }
9629 1.281 msaitoh
9630 1.281 msaitoh static void
9631 1.281 msaitoh wm_configure_k1_ich8lan(struct wm_softc *sc, int k1_enable)
9632 1.281 msaitoh {
9633 1.281 msaitoh uint32_t ctrl, ctrl_ext, tmp;
9634 1.281 msaitoh uint16_t kmrn_reg;
9635 1.281 msaitoh
9636 1.281 msaitoh kmrn_reg = wm_kmrn_readreg(sc, KUMCTRLSTA_OFFSET_K1_CONFIG);
9637 1.281 msaitoh
9638 1.281 msaitoh if (k1_enable)
9639 1.281 msaitoh kmrn_reg |= KUMCTRLSTA_K1_ENABLE;
9640 1.281 msaitoh else
9641 1.281 msaitoh kmrn_reg &= ~KUMCTRLSTA_K1_ENABLE;
9642 1.281 msaitoh
9643 1.281 msaitoh wm_kmrn_writereg(sc, KUMCTRLSTA_OFFSET_K1_CONFIG, kmrn_reg);
9644 1.281 msaitoh
9645 1.281 msaitoh delay(20);
9646 1.281 msaitoh
9647 1.281 msaitoh ctrl = CSR_READ(sc, WMREG_CTRL);
9648 1.281 msaitoh ctrl_ext = CSR_READ(sc, WMREG_CTRL_EXT);
9649 1.281 msaitoh
9650 1.281 msaitoh tmp = ctrl & ~(CTRL_SPEED_1000 | CTRL_SPEED_100);
9651 1.281 msaitoh tmp |= CTRL_FRCSPD;
9652 1.281 msaitoh
9653 1.281 msaitoh CSR_WRITE(sc, WMREG_CTRL, tmp);
9654 1.281 msaitoh CSR_WRITE(sc, WMREG_CTRL_EXT, ctrl_ext | CTRL_EXT_SPD_BYPS);
9655 1.281 msaitoh CSR_WRITE_FLUSH(sc);
9656 1.281 msaitoh delay(20);
9657 1.281 msaitoh
9658 1.281 msaitoh CSR_WRITE(sc, WMREG_CTRL, ctrl);
9659 1.281 msaitoh CSR_WRITE(sc, WMREG_CTRL_EXT, ctrl_ext);
9660 1.281 msaitoh CSR_WRITE_FLUSH(sc);
9661 1.281 msaitoh delay(20);
9662 1.281 msaitoh }
9663 1.281 msaitoh
9664 1.281 msaitoh /* special case - for 82575 - need to do manual init ... */
9665 1.281 msaitoh static void
9666 1.281 msaitoh wm_reset_init_script_82575(struct wm_softc *sc)
9667 1.281 msaitoh {
9668 1.281 msaitoh /*
9669 1.281 msaitoh * remark: this is untested code - we have no board without EEPROM
9670 1.312 msaitoh * same setup as mentioned int the FreeBSD driver for the i82575
9671 1.281 msaitoh */
9672 1.281 msaitoh
9673 1.281 msaitoh /* SerDes configuration via SERDESCTRL */
9674 1.281 msaitoh wm_82575_write_8bit_ctlr_reg(sc, WMREG_SCTL, 0x00, 0x0c);
9675 1.281 msaitoh wm_82575_write_8bit_ctlr_reg(sc, WMREG_SCTL, 0x01, 0x78);
9676 1.281 msaitoh wm_82575_write_8bit_ctlr_reg(sc, WMREG_SCTL, 0x1b, 0x23);
9677 1.281 msaitoh wm_82575_write_8bit_ctlr_reg(sc, WMREG_SCTL, 0x23, 0x15);
9678 1.281 msaitoh
9679 1.281 msaitoh /* CCM configuration via CCMCTL register */
9680 1.281 msaitoh wm_82575_write_8bit_ctlr_reg(sc, WMREG_CCMCTL, 0x14, 0x00);
9681 1.281 msaitoh wm_82575_write_8bit_ctlr_reg(sc, WMREG_CCMCTL, 0x10, 0x00);
9682 1.281 msaitoh
9683 1.281 msaitoh /* PCIe lanes configuration */
9684 1.281 msaitoh wm_82575_write_8bit_ctlr_reg(sc, WMREG_GIOCTL, 0x00, 0xec);
9685 1.281 msaitoh wm_82575_write_8bit_ctlr_reg(sc, WMREG_GIOCTL, 0x61, 0xdf);
9686 1.281 msaitoh wm_82575_write_8bit_ctlr_reg(sc, WMREG_GIOCTL, 0x34, 0x05);
9687 1.281 msaitoh wm_82575_write_8bit_ctlr_reg(sc, WMREG_GIOCTL, 0x2f, 0x81);
9688 1.281 msaitoh
9689 1.281 msaitoh /* PCIe PLL Configuration */
9690 1.281 msaitoh wm_82575_write_8bit_ctlr_reg(sc, WMREG_SCCTL, 0x02, 0x47);
9691 1.281 msaitoh wm_82575_write_8bit_ctlr_reg(sc, WMREG_SCCTL, 0x14, 0x00);
9692 1.281 msaitoh wm_82575_write_8bit_ctlr_reg(sc, WMREG_SCCTL, 0x10, 0x00);
9693 1.281 msaitoh }
9694