i82596.c revision 1.21 1 1.21 tsutsui /* $NetBSD: i82596.c,v 1.21 2009/05/09 03:22:20 tsutsui Exp $ */
2 1.1 jkunz
3 1.1 jkunz /*
4 1.1 jkunz * Copyright (c) 2003 Jochen Kunz.
5 1.1 jkunz * All rights reserved.
6 1.1 jkunz *
7 1.1 jkunz * Redistribution and use in source and binary forms, with or without
8 1.1 jkunz * modification, are permitted provided that the following conditions
9 1.1 jkunz * are met:
10 1.1 jkunz * 1. Redistributions of source code must retain the above copyright
11 1.1 jkunz * notice, this list of conditions and the following disclaimer.
12 1.1 jkunz * 2. Redistributions in binary form must reproduce the above copyright
13 1.1 jkunz * notice, this list of conditions and the following disclaimer in the
14 1.1 jkunz * documentation and/or other materials provided with the distribution.
15 1.1 jkunz * 3. The name of Jochen Kunz may not be used to endorse or promote
16 1.1 jkunz * products derived from this software without specific prior
17 1.1 jkunz * written permission.
18 1.1 jkunz *
19 1.1 jkunz * THIS SOFTWARE IS PROVIDED BY JOCHEN KUNZ
20 1.1 jkunz * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
21 1.1 jkunz * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
22 1.1 jkunz * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL JOCHEN KUNZ
23 1.1 jkunz * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
24 1.1 jkunz * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
25 1.1 jkunz * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
26 1.1 jkunz * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
27 1.1 jkunz * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
28 1.1 jkunz * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
29 1.1 jkunz * POSSIBILITY OF SUCH DAMAGE.
30 1.1 jkunz */
31 1.1 jkunz
32 1.1 jkunz /*
33 1.14 skrll * Driver for the Intel i82596CA and i82596DX/SX 10MBit/s Ethernet chips.
34 1.14 skrll *
35 1.1 jkunz * It operates the i82596 in 32-Bit Linear Mode, opposed to the old i82586
36 1.8 perry * ie(4) driver (src/sys/dev/ic/i82586.c), that degrades the i82596 to
37 1.1 jkunz * i82586 compatibility mode.
38 1.13 skrll *
39 1.14 skrll * Documentation about these chips can be found at
40 1.14 skrll *
41 1.14 skrll * http://developer.intel.com/design/network/datashts/290218.htm
42 1.14 skrll * http://developer.intel.com/design/network/datashts/290219.htm
43 1.1 jkunz */
44 1.1 jkunz
45 1.1 jkunz #include <sys/cdefs.h>
46 1.21 tsutsui __KERNEL_RCSID(0, "$NetBSD: i82596.c,v 1.21 2009/05/09 03:22:20 tsutsui Exp $");
47 1.1 jkunz
48 1.1 jkunz /* autoconfig and device stuff */
49 1.1 jkunz #include <sys/param.h>
50 1.1 jkunz #include <sys/device.h>
51 1.1 jkunz #include <sys/conf.h>
52 1.1 jkunz #include "locators.h"
53 1.1 jkunz #include "ioconf.h"
54 1.1 jkunz
55 1.1 jkunz /* bus_space / bus_dma etc. */
56 1.18 ad #include <sys/bus.h>
57 1.18 ad #include <sys/intr.h>
58 1.1 jkunz
59 1.1 jkunz /* general system data and functions */
60 1.1 jkunz #include <sys/systm.h>
61 1.1 jkunz #include <sys/ioctl.h>
62 1.1 jkunz
63 1.1 jkunz /* tsleep / sleep / wakeup */
64 1.1 jkunz #include <sys/proc.h>
65 1.1 jkunz /* hz for above */
66 1.1 jkunz #include <sys/kernel.h>
67 1.1 jkunz
68 1.1 jkunz /* network stuff */
69 1.1 jkunz #include <net/if.h>
70 1.1 jkunz #include <net/if_dl.h>
71 1.1 jkunz #include <net/if_media.h>
72 1.1 jkunz #include <net/if_ether.h>
73 1.1 jkunz #include <sys/socket.h>
74 1.1 jkunz #include <sys/mbuf.h>
75 1.1 jkunz
76 1.1 jkunz #include "bpfilter.h"
77 1.8 perry #if NBPFILTER > 0
78 1.1 jkunz #include <net/bpf.h>
79 1.8 perry #endif
80 1.1 jkunz
81 1.1 jkunz #include <dev/ic/i82596reg.h>
82 1.1 jkunz #include <dev/ic/i82596var.h>
83 1.1 jkunz
84 1.1 jkunz /* Supported chip variants */
85 1.10 skrll const char *i82596_typenames[] = { "unknown", "DX/SX", "CA" };
86 1.1 jkunz
87 1.1 jkunz /* media change and status callback */
88 1.1 jkunz static int iee_mediachange(struct ifnet *);
89 1.1 jkunz static void iee_mediastatus(struct ifnet *, struct ifmediareq *);
90 1.1 jkunz
91 1.1 jkunz /* interface routines to upper protocols */
92 1.1 jkunz static void iee_start(struct ifnet *); /* initiate output */
93 1.15 christos static int iee_ioctl(struct ifnet *, u_long, void *); /* ioctl routine */
94 1.1 jkunz static int iee_init(struct ifnet *); /* init routine */
95 1.1 jkunz static void iee_stop(struct ifnet *, int); /* stop routine */
96 1.1 jkunz static void iee_watchdog(struct ifnet *); /* timer routine */
97 1.1 jkunz
98 1.1 jkunz /* internal helper functions */
99 1.7 tsutsui static void iee_cb_setup(struct iee_softc *, uint32_t);
100 1.1 jkunz
101 1.1 jkunz /*
102 1.13 skrll * Things a MD frontend has to provide:
103 1.13 skrll *
104 1.13 skrll * The functions via function pointers in the softc:
105 1.13 skrll * int (*sc_iee_cmd)(struct iee_softc *sc, uint32_t cmd);
106 1.13 skrll * int (*sc_iee_reset)(struct iee_softc *sc);
107 1.13 skrll * void (*sc_mediastatus)(struct ifnet *, struct ifmediareq *);
108 1.13 skrll * int (*sc_mediachange)(struct ifnet *);
109 1.13 skrll *
110 1.13 skrll * sc_iee_cmd(): send a command to the i82596 by writing the cmd parameter
111 1.13 skrll * to the SCP cmd word and issuing a Channel Attention.
112 1.13 skrll * sc_iee_reset(): initiate a reset, supply the address of the SCP to the
113 1.13 skrll * chip, wait for the chip to initialize and ACK interrupts that
114 1.13 skrll * this may have caused by calling (sc->sc_iee_cmd)(sc, IEE_SCB_ACK);
115 1.13 skrll * This functions must carefully bus_dmamap_sync() all data they have touched!
116 1.13 skrll *
117 1.13 skrll * sc_mediastatus() and sc_mediachange() are just MD hooks to the according
118 1.13 skrll * MI functions. The MD frontend may set this pointers to NULL when they
119 1.13 skrll * are not needed.
120 1.13 skrll *
121 1.13 skrll * sc->sc_type has to be set to I82596_UNKNOWN or I82596_DX or I82596_CA.
122 1.13 skrll * This is for printing out the correct chip type at attach time only. The
123 1.13 skrll * MI backend doesn't distinguish different chip types when programming
124 1.13 skrll * the chip.
125 1.13 skrll *
126 1.20 tsutsui * IEE_NEED_SWAP in sc->sc_flags has to be cleared on little endian hardware
127 1.20 tsutsui * and set on big endian hardware, when endianess conversion is not done
128 1.20 tsutsui * by the bus attachment but done by i82596 chip itself.
129 1.20 tsutsui * Usually you need to set IEE_NEED_SWAP on big endian machines
130 1.20 tsutsui * where the hardware (the LE/~BE pin) is configured as BE mode.
131 1.20 tsutsui *
132 1.20 tsutsui * If the chip is configured as BE mode, all 8 bit (byte) and 16 bit (word)
133 1.20 tsutsui * entities can be written in big endian. But Rev A chip doesn't support
134 1.20 tsutsui * 32 bit (dword) entities with big endian byte ordering, so we have to
135 1.20 tsutsui * treat all 32 bit (dword) entities as two 16 bit big endian entities.
136 1.20 tsutsui * Rev B and C chips support big endian byte ordering for 32 bit entities,
137 1.20 tsutsui * and this new feature is enabled by IEE_SYSBUS_BE in the sysbus byte.
138 1.20 tsutsui *
139 1.20 tsutsui * With the IEE_SYSBUS_BE feature, all 32 bit address ponters are
140 1.20 tsutsui * treated as true 32 bit entities but the SCB absolute address and
141 1.20 tsutsui * statistical counters are still treated as two 16 bit big endian entities,
142 1.20 tsutsui * so we have to always swap high and low words for these entities.
143 1.20 tsutsui * IEE_SWAP32() should be used for the SCB address and statistical counters,
144 1.20 tsutsui * and IEE_SWAPA32() should be used for other 32 bit pointers in the shmem.
145 1.20 tsutsui *
146 1.20 tsutsui * IEE_REV_A flag must be set in sc->sc_flags if the IEE_SYSBUS_BE feature
147 1.20 tsutsui * is disabled even on big endian machines for the old Rev A chip in backend.
148 1.13 skrll *
149 1.13 skrll * sc->sc_cl_align must be set to 1 or to the cache line size. When set to
150 1.13 skrll * 1 no special alignment of DMA descriptors is done. If sc->sc_cl_align != 1
151 1.13 skrll * it forces alignment of the data structures in the shared memory to a multiple
152 1.13 skrll * of sc->sc_cl_align. This is needed on archs like hp700 that have non DMA
153 1.13 skrll * I/O coherent caches and are unable to map the shared memory uncachable.
154 1.13 skrll * (At least pre PA7100LC CPUs are unable to map memory uncachable.)
155 1.13 skrll *
156 1.13 skrll * sc->sc_cl_align MUST BE INITIALIZED BEFORE THE FOLLOWING MACROS ARE USED:
157 1.13 skrll * SC_* IEE_*_SZ IEE_*_OFF IEE_SHMEM_MAX (shell style glob(3) pattern)
158 1.13 skrll *
159 1.21 tsutsui * The MD frontend also has to set sc->sc_cl_align and sc->sc_sysbus
160 1.21 tsutsui * to allocate and setup shared DMA memory in MI iee_attach().
161 1.21 tsutsui * All communication with the chip is done via this shared memory.
162 1.21 tsutsui * This memory is mapped with BUS_DMA_COHERENT so it will be uncached
163 1.21 tsutsui * if possible for archs with non DMA I/O coherent caches.
164 1.21 tsutsui * The base of the memory needs to be aligned to an even address
165 1.21 tsutsui * if sc->sc_cl_align == 1 and aligned to a cache line if sc->sc_cl_align != 1.
166 1.13 skrll *
167 1.13 skrll * An interrupt with iee_intr() as handler must be established.
168 1.13 skrll *
169 1.13 skrll * Call void iee_attach(struct iee_softc *sc, uint8_t *ether_address,
170 1.13 skrll * int *media, int nmedia, int defmedia); when everything is set up. First
171 1.13 skrll * parameter is a pointer to the MI softc, ether_address is an array that
172 1.13 skrll * contains the ethernet address. media is an array of the media types
173 1.13 skrll * provided by the hardware. The members of this array are supplied to
174 1.13 skrll * ifmedia_add() in sequence. nmedia is the count of elements in media.
175 1.13 skrll * defmedia is the default media that is set via ifmedia_set().
176 1.13 skrll * nmedia and defmedia are ignored when media == NULL.
177 1.13 skrll *
178 1.13 skrll * The MD backend may call iee_detach() to detach the device.
179 1.13 skrll *
180 1.13 skrll * See sys/arch/hp700/gsc/if_iee_gsc.c for an example.
181 1.13 skrll */
182 1.1 jkunz
183 1.1 jkunz
184 1.1 jkunz /*
185 1.13 skrll * How frame reception is done:
186 1.13 skrll * Each Receive Frame Descriptor has one associated Receive Buffer Descriptor.
187 1.13 skrll * Each RBD points to the data area of an mbuf cluster. The RFDs are linked
188 1.13 skrll * together in a circular list. sc->sc_rx_done is the count of RFDs in the
189 1.13 skrll * list already processed / the number of the RFD that has to be checked for
190 1.13 skrll * a new frame first at the next RX interrupt. Upon successful reception of
191 1.13 skrll * a frame the mbuf cluster is handled to upper protocol layers, a new mbuf
192 1.13 skrll * cluster is allocated and the RFD / RBD are reinitialized accordingly.
193 1.13 skrll *
194 1.13 skrll * When a RFD list overrun occurred the whole RFD and RBD lists are reinitialized
195 1.13 skrll * and frame reception is started again.
196 1.13 skrll */
197 1.1 jkunz int
198 1.1 jkunz iee_intr(void *intarg)
199 1.1 jkunz {
200 1.1 jkunz struct iee_softc *sc = intarg;
201 1.1 jkunz struct ifnet *ifp = &sc->sc_ethercom.ec_if;
202 1.1 jkunz struct iee_rfd *rfd;
203 1.1 jkunz struct iee_rbd *rbd;
204 1.1 jkunz bus_dmamap_t rx_map;
205 1.1 jkunz struct mbuf *rx_mbuf;
206 1.1 jkunz struct mbuf *new_mbuf;
207 1.1 jkunz int scb_status;
208 1.1 jkunz int scb_cmd;
209 1.6 tsutsui int n, col;
210 1.1 jkunz
211 1.1 jkunz if ((ifp->if_flags & IFF_RUNNING) == 0) {
212 1.1 jkunz (sc->sc_iee_cmd)(sc, IEE_SCB_ACK);
213 1.19 tsutsui return 1;
214 1.1 jkunz }
215 1.1 jkunz bus_dmamap_sync(sc->sc_dmat, sc->sc_shmem_map, 0, IEE_SHMEM_MAX,
216 1.1 jkunz BUS_DMASYNC_POSTREAD);
217 1.1 jkunz scb_status = SC_SCB->scb_status;
218 1.1 jkunz scb_cmd = SC_SCB->scb_cmd;
219 1.1 jkunz rfd = SC_RFD(sc->sc_rx_done);
220 1.2 jkunz while ((rfd->rfd_status & IEE_RFD_C) != 0) {
221 1.1 jkunz /* At least one packet was received. */
222 1.1 jkunz rbd = SC_RBD(sc->sc_rx_done);
223 1.1 jkunz rx_map = sc->sc_rx_map[sc->sc_rx_done];
224 1.1 jkunz rx_mbuf = sc->sc_rx_mbuf[sc->sc_rx_done];
225 1.1 jkunz SC_RBD((sc->sc_rx_done + IEE_NRFD - 1) % IEE_NRFD)->rbd_size
226 1.1 jkunz &= ~IEE_RBD_EL;
227 1.1 jkunz if ((rfd->rfd_status & IEE_RFD_OK) == 0
228 1.1 jkunz || (rbd->rbd_count & IEE_RBD_EOF) == 0
229 1.1 jkunz || (rbd->rbd_count & IEE_RBD_F) == 0){
230 1.1 jkunz /* Receive error, skip frame and reuse buffer. */
231 1.1 jkunz rfd->rfd_status = 0;
232 1.1 jkunz rbd->rbd_count = 0;
233 1.1 jkunz rbd->rbd_size = IEE_RBD_EL | rx_map->dm_segs[0].ds_len;
234 1.1 jkunz printf("%s: iee_intr: receive error %d, rfd_status="
235 1.19 tsutsui "0x%.4x, rfd_count=0x%.4x\n",
236 1.19 tsutsui device_xname(sc->sc_dev),
237 1.1 jkunz ++sc->sc_rx_err, rfd->rfd_status, rbd->rbd_count);
238 1.1 jkunz sc->sc_rx_done = (sc->sc_rx_done + 1) % IEE_NRFD;
239 1.1 jkunz continue;
240 1.1 jkunz }
241 1.1 jkunz rfd->rfd_status = 0;
242 1.1 jkunz bus_dmamap_sync(sc->sc_dmat, rx_map, 0, rx_mbuf->m_ext.ext_size,
243 1.1 jkunz BUS_DMASYNC_POSTREAD);
244 1.8 perry rx_mbuf->m_pkthdr.len = rx_mbuf->m_len =
245 1.1 jkunz rbd->rbd_count & IEE_RBD_COUNT;
246 1.1 jkunz rx_mbuf->m_pkthdr.rcvif = ifp;
247 1.1 jkunz MGETHDR(new_mbuf, M_DONTWAIT, MT_DATA);
248 1.1 jkunz if (new_mbuf == NULL) {
249 1.1 jkunz printf("%s: iee_intr: can't allocate mbuf\n",
250 1.19 tsutsui device_xname(sc->sc_dev));
251 1.1 jkunz break;
252 1.1 jkunz }
253 1.1 jkunz MCLAIM(new_mbuf, &sc->sc_ethercom.ec_rx_mowner);
254 1.1 jkunz MCLGET(new_mbuf, M_DONTWAIT);
255 1.1 jkunz if ((new_mbuf->m_flags & M_EXT) == 0) {
256 1.8 perry printf("%s: iee_intr: can't alloc mbuf cluster\n",
257 1.19 tsutsui device_xname(sc->sc_dev));
258 1.1 jkunz m_freem(new_mbuf);
259 1.1 jkunz break;
260 1.1 jkunz }
261 1.1 jkunz bus_dmamap_unload(sc->sc_dmat, rx_map);
262 1.8 perry if (bus_dmamap_load(sc->sc_dmat, rx_map,
263 1.8 perry new_mbuf->m_ext.ext_buf, new_mbuf->m_ext.ext_size,
264 1.1 jkunz NULL, BUS_DMA_READ | BUS_DMA_NOWAIT) != 0)
265 1.1 jkunz panic("%s: iee_intr: can't load RX DMA map\n",
266 1.19 tsutsui device_xname(sc->sc_dev));
267 1.1 jkunz bus_dmamap_sync(sc->sc_dmat, rx_map, 0,
268 1.1 jkunz new_mbuf->m_ext.ext_size, BUS_DMASYNC_PREREAD);
269 1.1 jkunz #if NBPFILTER > 0
270 1.1 jkunz if (ifp->if_bpf != 0)
271 1.1 jkunz bpf_mtap(ifp->if_bpf, rx_mbuf);
272 1.1 jkunz #endif /* NBPFILTER > 0 */
273 1.1 jkunz (*ifp->if_input)(ifp, rx_mbuf);
274 1.1 jkunz ifp->if_ipackets++;
275 1.1 jkunz sc->sc_rx_mbuf[sc->sc_rx_done] = new_mbuf;
276 1.1 jkunz rbd->rbd_count = 0;
277 1.1 jkunz rbd->rbd_size = IEE_RBD_EL | rx_map->dm_segs[0].ds_len;
278 1.20 tsutsui rbd->rbd_rb_addr = IEE_SWAPA32(rx_map->dm_segs[0].ds_addr);
279 1.1 jkunz sc->sc_rx_done = (sc->sc_rx_done + 1) % IEE_NRFD;
280 1.1 jkunz rfd = SC_RFD(sc->sc_rx_done);
281 1.1 jkunz }
282 1.1 jkunz if ((scb_status & IEE_SCB_RUS) == IEE_SCB_RUS_NR1
283 1.1 jkunz || (scb_status & IEE_SCB_RUS) == IEE_SCB_RUS_NR2
284 1.1 jkunz || (scb_status & IEE_SCB_RUS) == IEE_SCB_RUS_NR3) {
285 1.1 jkunz /* Receive Overrun, reinit receive ring buffer. */
286 1.1 jkunz for (n = 0 ; n < IEE_NRFD ; n++) {
287 1.1 jkunz SC_RFD(n)->rfd_cmd = IEE_RFD_SF;
288 1.20 tsutsui SC_RFD(n)->rfd_link_addr =
289 1.20 tsutsui IEE_SWAPA32(IEE_PHYS_SHMEM(IEE_RFD_OFF
290 1.20 tsutsui + IEE_RFD_SZ * ((n + 1) % IEE_NRFD)));
291 1.20 tsutsui SC_RBD(n)->rbd_next_rbd =
292 1.20 tsutsui IEE_SWAPA32(IEE_PHYS_SHMEM(IEE_RBD_OFF
293 1.20 tsutsui + IEE_RBD_SZ * ((n + 1) % IEE_NRFD)));
294 1.8 perry SC_RBD(n)->rbd_size = IEE_RBD_EL |
295 1.1 jkunz sc->sc_rx_map[n]->dm_segs[0].ds_len;
296 1.8 perry SC_RBD(n)->rbd_rb_addr =
297 1.20 tsutsui IEE_SWAPA32(sc->sc_rx_map[n]->dm_segs[0].ds_addr);
298 1.1 jkunz }
299 1.20 tsutsui SC_RFD(0)->rfd_rbd_addr =
300 1.20 tsutsui IEE_SWAPA32(IEE_PHYS_SHMEM(IEE_RBD_OFF));
301 1.1 jkunz sc->sc_rx_done = 0;
302 1.8 perry bus_dmamap_sync(sc->sc_dmat, sc->sc_shmem_map, IEE_RFD_OFF,
303 1.1 jkunz IEE_RFD_LIST_SZ + IEE_RBD_LIST_SZ, BUS_DMASYNC_PREWRITE);
304 1.1 jkunz (sc->sc_iee_cmd)(sc, IEE_SCB_RUC_ST);
305 1.8 perry printf("%s: iee_intr: receive ring buffer overrun\n",
306 1.19 tsutsui device_xname(sc->sc_dev));
307 1.2 jkunz }
308 1.1 jkunz
309 1.8 perry if (sc->sc_next_cb != 0
310 1.2 jkunz && (SC_CB(sc->sc_next_cb - 1)->cb_status & IEE_CB_C) != 0) {
311 1.1 jkunz /* CMD list finished */
312 1.1 jkunz ifp->if_timer = 0;
313 1.1 jkunz if (sc->sc_next_tbd != 0) {
314 1.12 skrll /* A TX CMD list finished, cleanup */
315 1.1 jkunz for (n = 0 ; n < sc->sc_next_cb ; n++) {
316 1.1 jkunz m_freem(sc->sc_tx_mbuf[n]);
317 1.1 jkunz sc->sc_tx_mbuf[n] = NULL;
318 1.1 jkunz bus_dmamap_unload(sc->sc_dmat,sc->sc_tx_map[n]);
319 1.8 perry if ((SC_CB(n)->cb_status & IEE_CB_COL) != 0 &&
320 1.1 jkunz (SC_CB(n)->cb_status & IEE_CB_MAXCOL) == 0)
321 1.6 tsutsui col = 16;
322 1.1 jkunz else
323 1.8 perry col = SC_CB(n)->cb_status
324 1.1 jkunz & IEE_CB_MAXCOL;
325 1.6 tsutsui sc->sc_tx_col += col;
326 1.6 tsutsui if ((SC_CB(n)->cb_status & IEE_CB_OK) != 0) {
327 1.6 tsutsui ifp->if_opackets++;
328 1.6 tsutsui ifp->if_collisions += col;
329 1.6 tsutsui }
330 1.1 jkunz }
331 1.1 jkunz sc->sc_next_tbd = 0;
332 1.1 jkunz ifp->if_flags &= ~IFF_OACTIVE;
333 1.1 jkunz }
334 1.1 jkunz for (n = 0 ; n < sc->sc_next_cb ; n++) {
335 1.1 jkunz /* Check if a CMD failed, but ignore TX errors. */
336 1.1 jkunz if ((SC_CB(n)->cb_cmd & IEE_CB_CMD) != IEE_CB_CMD_TR
337 1.2 jkunz && ((SC_CB(n)->cb_status & IEE_CB_OK) == 0))
338 1.8 perry printf("%s: iee_intr: scb_status=0x%x "
339 1.1 jkunz "scb_cmd=0x%x failed command %d: "
340 1.8 perry "cb_status[%d]=0x%.4x cb_cmd[%d]=0x%.4x\n",
341 1.19 tsutsui device_xname(sc->sc_dev),
342 1.19 tsutsui scb_status, scb_cmd,
343 1.1 jkunz ++sc->sc_cmd_err, n, SC_CB(n)->cb_status,
344 1.1 jkunz n, SC_CB(n)->cb_cmd);
345 1.1 jkunz }
346 1.1 jkunz sc->sc_next_cb = 0;
347 1.1 jkunz if ((sc->sc_flags & IEE_WANT_MCAST) != 0) {
348 1.8 perry iee_cb_setup(sc, IEE_CB_CMD_MCS | IEE_CB_S | IEE_CB_EL
349 1.1 jkunz | IEE_CB_I);
350 1.1 jkunz (sc->sc_iee_cmd)(sc, IEE_SCB_CUC_EXE);
351 1.1 jkunz } else
352 1.12 skrll /* Try to get deferred packets going. */
353 1.1 jkunz iee_start(ifp);
354 1.1 jkunz }
355 1.20 tsutsui if (IEE_SWAP32(SC_SCB->scb_crc_err) != sc->sc_crc_err) {
356 1.20 tsutsui sc->sc_crc_err = IEE_SWAP32(SC_SCB->scb_crc_err);
357 1.19 tsutsui printf("%s: iee_intr: crc_err=%d\n", device_xname(sc->sc_dev),
358 1.1 jkunz sc->sc_crc_err);
359 1.1 jkunz }
360 1.20 tsutsui if (IEE_SWAP32(SC_SCB->scb_align_err) != sc->sc_align_err) {
361 1.20 tsutsui sc->sc_align_err = IEE_SWAP32(SC_SCB->scb_align_err);
362 1.19 tsutsui printf("%s: iee_intr: align_err=%d\n", device_xname(sc->sc_dev),
363 1.1 jkunz sc->sc_align_err);
364 1.1 jkunz }
365 1.20 tsutsui if (IEE_SWAP32(SC_SCB->scb_resource_err) != sc->sc_resource_err) {
366 1.20 tsutsui sc->sc_resource_err = IEE_SWAP32(SC_SCB->scb_resource_err);
367 1.19 tsutsui printf("%s: iee_intr: resource_err=%d\n",
368 1.19 tsutsui device_xname(sc->sc_dev), sc->sc_resource_err);
369 1.1 jkunz }
370 1.20 tsutsui if (IEE_SWAP32(SC_SCB->scb_overrun_err) != sc->sc_overrun_err) {
371 1.20 tsutsui sc->sc_overrun_err = IEE_SWAP32(SC_SCB->scb_overrun_err);
372 1.19 tsutsui printf("%s: iee_intr: overrun_err=%d\n",
373 1.19 tsutsui device_xname(sc->sc_dev), sc->sc_overrun_err);
374 1.1 jkunz }
375 1.20 tsutsui if (IEE_SWAP32(SC_SCB->scb_rcvcdt_err) != sc->sc_rcvcdt_err) {
376 1.20 tsutsui sc->sc_rcvcdt_err = IEE_SWAP32(SC_SCB->scb_rcvcdt_err);
377 1.19 tsutsui printf("%s: iee_intr: rcvcdt_err=%d\n",
378 1.19 tsutsui device_xname(sc->sc_dev), sc->sc_rcvcdt_err);
379 1.1 jkunz }
380 1.20 tsutsui if (IEE_SWAP32(SC_SCB->scb_short_fr_err) != sc->sc_short_fr_err) {
381 1.20 tsutsui sc->sc_short_fr_err = IEE_SWAP32(SC_SCB->scb_short_fr_err);
382 1.19 tsutsui printf("%s: iee_intr: short_fr_err=%d\n",
383 1.19 tsutsui device_xname(sc->sc_dev), sc->sc_short_fr_err);
384 1.1 jkunz }
385 1.8 perry bus_dmamap_sync(sc->sc_dmat, sc->sc_shmem_map, 0, IEE_SHMEM_MAX,
386 1.2 jkunz BUS_DMASYNC_PREREAD | BUS_DMASYNC_PREWRITE);
387 1.1 jkunz (sc->sc_iee_cmd)(sc, IEE_SCB_ACK);
388 1.19 tsutsui return 1;
389 1.1 jkunz }
390 1.1 jkunz
391 1.1 jkunz
392 1.1 jkunz
393 1.1 jkunz /*
394 1.13 skrll * How Command Block List Processing is done.
395 1.13 skrll *
396 1.13 skrll * A running CBL is never manipulated. If there is a CBL already running,
397 1.13 skrll * further CMDs are deferred until the current list is done. A new list is
398 1.13 skrll * setup when the old one has finished.
399 1.13 skrll * This eases programming. To manipulate a running CBL it is necessary to
400 1.13 skrll * suspend the Command Unit to avoid race conditions. After a suspend
401 1.13 skrll * is sent we have to wait for an interrupt that ACKs the suspend. Then
402 1.13 skrll * we can manipulate the CBL and resume operation. I am not sure that this
403 1.13 skrll * is more effective then the current, much simpler approach. => KISS
404 1.13 skrll * See i82596CA data sheet page 26.
405 1.13 skrll *
406 1.13 skrll * A CBL is running or on the way to be set up when (sc->sc_next_cb != 0).
407 1.13 skrll *
408 1.13 skrll * A CBL may consist of TX CMDs, and _only_ TX CMDs.
409 1.13 skrll * A TX CBL is running or on the way to be set up when
410 1.13 skrll * ((sc->sc_next_cb != 0) && (sc->sc_next_tbd != 0)).
411 1.13 skrll *
412 1.13 skrll * A CBL may consist of other non-TX CMDs like IAS or CONF, and _only_
413 1.13 skrll * non-TX CMDs.
414 1.13 skrll *
415 1.13 skrll * This comes mostly through the way how an Ethernet driver works and
416 1.13 skrll * because running CBLs are not manipulated when they are on the way. If
417 1.13 skrll * if_start() is called there will be TX CMDs enqueued so we have a running
418 1.13 skrll * CBL and other CMDs from e.g. if_ioctl() will be deferred and vice versa.
419 1.13 skrll *
420 1.13 skrll * The Multicast Setup Command is special. A MCS needs more space than
421 1.13 skrll * a single CB has. Actual space requirement depends on the length of the
422 1.13 skrll * multicast list. So we always defer MCS until other CBLs are finished,
423 1.13 skrll * then we setup a CONF CMD in the first CB. The CONF CMD is needed to
424 1.13 skrll * turn ALLMULTI on the hardware on or off. The MCS is the 2nd CB and may
425 1.13 skrll * use all the remaining space in the CBL and the Transmit Buffer Descriptor
426 1.13 skrll * List. (Therefore CBL and TBDL must be continuous in physical and virtual
427 1.13 skrll * memory. This is guaranteed through the definitions of the list offsets
428 1.13 skrll * in i82596reg.h and because it is only a single DMA segment used for all
429 1.13 skrll * lists.) When ALLMULTI is enabled via the CONF CMD, the MCS is run with
430 1.13 skrll * a multicast list length of 0, thus disabling the multicast filter.
431 1.13 skrll * A deferred MCS is signaled via ((sc->sc_flags & IEE_WANT_MCAST) != 0)
432 1.13 skrll */
433 1.1 jkunz void
434 1.7 tsutsui iee_cb_setup(struct iee_softc *sc, uint32_t cmd)
435 1.1 jkunz {
436 1.1 jkunz struct iee_cb *cb = SC_CB(sc->sc_next_cb);
437 1.1 jkunz struct ifnet *ifp = &sc->sc_ethercom.ec_if;
438 1.1 jkunz struct ether_multistep step;
439 1.1 jkunz struct ether_multi *enm;
440 1.1 jkunz
441 1.1 jkunz memset(cb, 0, IEE_CB_SZ);
442 1.1 jkunz cb->cb_cmd = cmd;
443 1.1 jkunz switch(cmd & IEE_CB_CMD) {
444 1.1 jkunz case IEE_CB_CMD_NOP: /* NOP CMD */
445 1.1 jkunz break;
446 1.1 jkunz case IEE_CB_CMD_IAS: /* Individual Address Setup */
447 1.17 dyoung memcpy(__UNVOLATILE(cb->cb_ind_addr), CLLADDR(ifp->if_sadl),
448 1.1 jkunz ETHER_ADDR_LEN);
449 1.1 jkunz break;
450 1.1 jkunz case IEE_CB_CMD_CONF: /* Configure */
451 1.9 he memcpy(__UNVOLATILE(cb->cb_cf), sc->sc_cf, sc->sc_cf[0]
452 1.1 jkunz & IEE_CF_0_CNT_M);
453 1.1 jkunz break;
454 1.1 jkunz case IEE_CB_CMD_MCS: /* Multicast Setup */
455 1.1 jkunz if (sc->sc_next_cb != 0) {
456 1.1 jkunz sc->sc_flags |= IEE_WANT_MCAST;
457 1.1 jkunz return;
458 1.1 jkunz }
459 1.1 jkunz sc->sc_flags &= ~IEE_WANT_MCAST;
460 1.1 jkunz if ((sc->sc_cf[8] & IEE_CF_8_PRM) != 0) {
461 1.1 jkunz /* Need no multicast filter in promisc mode. */
462 1.8 perry iee_cb_setup(sc, IEE_CB_CMD_CONF | IEE_CB_S | IEE_CB_EL
463 1.1 jkunz | IEE_CB_I);
464 1.1 jkunz return;
465 1.1 jkunz }
466 1.1 jkunz /* Leave room for a CONF CMD to en/dis-able ALLMULTI mode */
467 1.1 jkunz cb = SC_CB(sc->sc_next_cb + 1);
468 1.1 jkunz cb->cb_cmd = cmd;
469 1.1 jkunz cb->cb_mcast.mc_size = 0;
470 1.1 jkunz ETHER_FIRST_MULTI(step, &sc->sc_ethercom, enm);
471 1.1 jkunz while (enm != NULL) {
472 1.8 perry if (memcmp(enm->enm_addrlo, enm->enm_addrhi,
473 1.8 perry ETHER_ADDR_LEN) != 0 || cb->cb_mcast.mc_size
474 1.1 jkunz * ETHER_ADDR_LEN + 2 * IEE_CB_SZ
475 1.1 jkunz > IEE_CB_LIST_SZ + IEE_TBD_LIST_SZ) {
476 1.1 jkunz cb->cb_mcast.mc_size = 0;
477 1.1 jkunz break;
478 1.1 jkunz }
479 1.9 he memcpy(__UNVOLATILE(&cb->cb_mcast.mc_addrs[
480 1.9 he cb->cb_mcast.mc_size * ETHER_ADDR_LEN]),
481 1.1 jkunz enm->enm_addrlo, ETHER_ADDR_LEN);
482 1.1 jkunz ETHER_NEXT_MULTI(step, enm);
483 1.1 jkunz cb->cb_mcast.mc_size++;
484 1.1 jkunz }
485 1.1 jkunz if (cb->cb_mcast.mc_size == 0) {
486 1.1 jkunz /* Can't do exact mcast filtering, do ALLMULTI mode. */
487 1.1 jkunz ifp->if_flags |= IFF_ALLMULTI;
488 1.1 jkunz sc->sc_cf[11] &= ~IEE_CF_11_MCALL;
489 1.1 jkunz } else {
490 1.1 jkunz /* disable ALLMULTI and load mcast list */
491 1.1 jkunz ifp->if_flags &= ~IFF_ALLMULTI;
492 1.1 jkunz sc->sc_cf[11] |= IEE_CF_11_MCALL;
493 1.1 jkunz /* Mcast setup may need more then IEE_CB_SZ bytes. */
494 1.8 perry bus_dmamap_sync(sc->sc_dmat, sc->sc_shmem_map,
495 1.8 perry IEE_CB_OFF, IEE_CB_LIST_SZ + IEE_TBD_LIST_SZ,
496 1.1 jkunz BUS_DMASYNC_PREWRITE);
497 1.1 jkunz }
498 1.1 jkunz iee_cb_setup(sc, IEE_CB_CMD_CONF);
499 1.1 jkunz break;
500 1.1 jkunz case IEE_CB_CMD_TR: /* Transmit */
501 1.20 tsutsui cb->cb_transmit.tx_tbd_addr =
502 1.20 tsutsui IEE_SWAPA32(IEE_PHYS_SHMEM(IEE_TBD_OFF
503 1.20 tsutsui + IEE_TBD_SZ * sc->sc_next_tbd));
504 1.12 skrll cb->cb_cmd |= IEE_CB_SF; /* Always use Flexible Mode. */
505 1.1 jkunz break;
506 1.1 jkunz case IEE_CB_CMD_TDR: /* Time Domain Reflectometry */
507 1.1 jkunz break;
508 1.1 jkunz case IEE_CB_CMD_DUMP: /* Dump */
509 1.1 jkunz break;
510 1.1 jkunz case IEE_CB_CMD_DIAG: /* Diagnose */
511 1.1 jkunz break;
512 1.1 jkunz default:
513 1.1 jkunz /* can't happen */
514 1.1 jkunz break;
515 1.1 jkunz }
516 1.20 tsutsui cb->cb_link_addr = IEE_SWAPA32(IEE_PHYS_SHMEM(IEE_CB_OFF + IEE_CB_SZ *
517 1.20 tsutsui (sc->sc_next_cb + 1)));
518 1.8 perry bus_dmamap_sync(sc->sc_dmat, sc->sc_shmem_map, IEE_CB_OFF
519 1.1 jkunz + IEE_CB_SZ * sc->sc_next_cb, IEE_CB_SZ, BUS_DMASYNC_PREWRITE);
520 1.1 jkunz sc->sc_next_cb++;
521 1.1 jkunz ifp->if_timer = 5;
522 1.1 jkunz return;
523 1.1 jkunz }
524 1.1 jkunz
525 1.1 jkunz
526 1.1 jkunz
527 1.1 jkunz void
528 1.8 perry iee_attach(struct iee_softc *sc, uint8_t *eth_addr, int *media, int nmedia,
529 1.1 jkunz int defmedia)
530 1.1 jkunz {
531 1.1 jkunz struct ifnet *ifp = &sc->sc_ethercom.ec_if;
532 1.1 jkunz int n;
533 1.1 jkunz
534 1.21 tsutsui KASSERT(sc->sc_cl_align > 0);
535 1.21 tsutsui
536 1.21 tsutsui /* allocate memory for shared DMA descriptors */
537 1.21 tsutsui if (bus_dmamem_alloc(sc->sc_dmat, IEE_SHMEM_MAX, PAGE_SIZE, 0,
538 1.21 tsutsui &sc->sc_dma_segs, 1, &sc->sc_dma_rsegs, BUS_DMA_NOWAIT) != 0) {
539 1.21 tsutsui aprint_error(": iee_gsc_attach: can't allocate %d bytes of "
540 1.21 tsutsui "DMA memory\n", (int)IEE_SHMEM_MAX);
541 1.21 tsutsui return;
542 1.21 tsutsui }
543 1.21 tsutsui if (bus_dmamem_map(sc->sc_dmat, &sc->sc_dma_segs, sc->sc_dma_rsegs,
544 1.21 tsutsui IEE_SHMEM_MAX, (void **)&sc->sc_shmem_addr,
545 1.21 tsutsui BUS_DMA_COHERENT | BUS_DMA_NOWAIT) != 0) {
546 1.21 tsutsui aprint_error(": iee_gsc_attach: can't map DMA memory\n");
547 1.21 tsutsui bus_dmamem_free(sc->sc_dmat, &sc->sc_dma_segs,
548 1.21 tsutsui sc->sc_dma_rsegs);
549 1.21 tsutsui return;
550 1.21 tsutsui }
551 1.21 tsutsui if (bus_dmamap_create(sc->sc_dmat, IEE_SHMEM_MAX, sc->sc_dma_rsegs,
552 1.21 tsutsui IEE_SHMEM_MAX, 0, BUS_DMA_NOWAIT, &sc->sc_shmem_map) != 0) {
553 1.21 tsutsui aprint_error(": iee_gsc_attach: can't create DMA map\n");
554 1.21 tsutsui bus_dmamem_unmap(sc->sc_dmat, sc->sc_shmem_addr, IEE_SHMEM_MAX); bus_dmamem_free(sc->sc_dmat, &sc->sc_dma_segs,
555 1.21 tsutsui sc->sc_dma_rsegs);
556 1.21 tsutsui return;
557 1.21 tsutsui }
558 1.21 tsutsui if (bus_dmamap_load(sc->sc_dmat, sc->sc_shmem_map, sc->sc_shmem_addr,
559 1.21 tsutsui IEE_SHMEM_MAX, NULL, BUS_DMA_NOWAIT) != 0) {
560 1.21 tsutsui aprint_error(": iee_gsc_attach: can't load DMA map\n");
561 1.21 tsutsui bus_dmamap_destroy(sc->sc_dmat, sc->sc_shmem_map);
562 1.21 tsutsui bus_dmamem_unmap(sc->sc_dmat, sc->sc_shmem_addr, IEE_SHMEM_MAX); bus_dmamem_free(sc->sc_dmat, &sc->sc_dma_segs,
563 1.21 tsutsui sc->sc_dma_rsegs);
564 1.21 tsutsui return;
565 1.21 tsutsui }
566 1.21 tsutsui memset(sc->sc_shmem_addr, 0, IEE_SHMEM_MAX);
567 1.21 tsutsui
568 1.1 jkunz /* Set pointer to Intermediate System Configuration Pointer. */
569 1.1 jkunz /* Phys. addr. in big endian order. (Big endian as defined by Intel.) */
570 1.20 tsutsui SC_SCP->scp_iscp_addr = IEE_SWAP32(IEE_PHYS_SHMEM(IEE_ISCP_OFF));
571 1.21 tsutsui SC_SCP->scp_sysbus = sc->sc_sysbus;
572 1.1 jkunz /* Set pointer to System Control Block. */
573 1.1 jkunz /* Phys. addr. in big endian order. (Big endian as defined by Intel.) */
574 1.20 tsutsui SC_ISCP->iscp_scb_addr = IEE_SWAP32(IEE_PHYS_SHMEM(IEE_SCB_OFF));
575 1.1 jkunz /* Set pointer to Receive Frame Area. (physical address) */
576 1.20 tsutsui SC_SCB->scb_rfa_addr = IEE_SWAPA32(IEE_PHYS_SHMEM(IEE_RFD_OFF));
577 1.1 jkunz /* Set pointer to Command Block. (physical address) */
578 1.20 tsutsui SC_SCB->scb_cmd_blk_addr = IEE_SWAPA32(IEE_PHYS_SHMEM(IEE_CB_OFF));
579 1.1 jkunz
580 1.21 tsutsui bus_dmamap_sync(sc->sc_dmat, sc->sc_shmem_map, 0, IEE_SHMEM_MAX,
581 1.21 tsutsui BUS_DMASYNC_PREREAD|BUS_DMASYNC_PREWRITE);
582 1.21 tsutsui
583 1.1 jkunz ifmedia_init(&sc->sc_ifmedia, 0, iee_mediachange, iee_mediastatus);
584 1.1 jkunz if (media != NULL) {
585 1.1 jkunz for (n = 0 ; n < nmedia ; n++)
586 1.1 jkunz ifmedia_add(&sc->sc_ifmedia, media[n], 0, NULL);
587 1.1 jkunz ifmedia_set(&sc->sc_ifmedia, defmedia);
588 1.1 jkunz } else {
589 1.1 jkunz ifmedia_add(&sc->sc_ifmedia, IFM_ETHER | IFM_NONE, 0, NULL);
590 1.1 jkunz ifmedia_set(&sc->sc_ifmedia, IFM_ETHER | IFM_NONE);
591 1.1 jkunz }
592 1.1 jkunz
593 1.1 jkunz ifp->if_softc = sc;
594 1.19 tsutsui strcpy(ifp->if_xname, device_xname(sc->sc_dev));
595 1.1 jkunz ifp->if_flags = IFF_BROADCAST | IFF_SIMPLEX | IFF_MULTICAST;
596 1.1 jkunz ifp->if_start = iee_start; /* initiate output routine */
597 1.1 jkunz ifp->if_ioctl = iee_ioctl; /* ioctl routine */
598 1.1 jkunz ifp->if_init = iee_init; /* init routine */
599 1.1 jkunz ifp->if_stop = iee_stop; /* stop routine */
600 1.1 jkunz ifp->if_watchdog = iee_watchdog; /* timer routine */
601 1.1 jkunz IFQ_SET_READY(&ifp->if_snd);
602 1.1 jkunz /* iee supports IEEE 802.1Q Virtual LANs, see vlan(4). */
603 1.1 jkunz sc->sc_ethercom.ec_capabilities |= ETHERCAP_VLAN_MTU;
604 1.1 jkunz
605 1.1 jkunz if_attach(ifp);
606 1.1 jkunz ether_ifattach(ifp, eth_addr);
607 1.1 jkunz
608 1.1 jkunz aprint_normal(": Intel 82596%s address %s\n",
609 1.19 tsutsui i82596_typenames[sc->sc_type], ether_sprintf(eth_addr));
610 1.1 jkunz
611 1.1 jkunz for (n = 0 ; n < IEE_NCB ; n++)
612 1.1 jkunz sc->sc_tx_map[n] = NULL;
613 1.1 jkunz for (n = 0 ; n < IEE_NRFD ; n++) {
614 1.1 jkunz sc->sc_rx_mbuf[n] = NULL;
615 1.1 jkunz sc->sc_rx_map[n] = NULL;
616 1.1 jkunz }
617 1.1 jkunz sc->sc_tx_timeout = 0;
618 1.1 jkunz sc->sc_setup_timeout = 0;
619 1.1 jkunz (sc->sc_iee_reset)(sc);
620 1.1 jkunz }
621 1.1 jkunz
622 1.1 jkunz
623 1.1 jkunz
624 1.1 jkunz void
625 1.1 jkunz iee_detach(struct iee_softc *sc, int flags)
626 1.1 jkunz {
627 1.1 jkunz struct ifnet *ifp = &sc->sc_ethercom.ec_if;
628 1.1 jkunz
629 1.1 jkunz if ((ifp->if_flags & IFF_RUNNING) != 0)
630 1.1 jkunz iee_stop(ifp, 1);
631 1.1 jkunz ether_ifdetach(ifp);
632 1.1 jkunz if_detach(ifp);
633 1.21 tsutsui bus_dmamap_unload(sc->sc_dmat, sc->sc_shmem_map);
634 1.21 tsutsui bus_dmamap_destroy(sc->sc_dmat, sc->sc_shmem_map);
635 1.21 tsutsui bus_dmamem_unmap(sc->sc_dmat, sc->sc_shmem_addr, IEE_SHMEM_MAX);
636 1.21 tsutsui bus_dmamem_free(sc->sc_dmat, &sc->sc_dma_segs, sc->sc_dma_rsegs);
637 1.1 jkunz }
638 1.1 jkunz
639 1.1 jkunz
640 1.1 jkunz
641 1.1 jkunz /* media change and status callback */
642 1.1 jkunz int
643 1.1 jkunz iee_mediachange(struct ifnet *ifp)
644 1.1 jkunz {
645 1.1 jkunz struct iee_softc *sc = ifp->if_softc;
646 1.8 perry
647 1.1 jkunz if (sc->sc_mediachange != NULL)
648 1.19 tsutsui return (sc->sc_mediachange)(ifp);
649 1.19 tsutsui return 0;
650 1.1 jkunz }
651 1.1 jkunz
652 1.1 jkunz
653 1.1 jkunz
654 1.1 jkunz void
655 1.1 jkunz iee_mediastatus(struct ifnet *ifp, struct ifmediareq *ifmreq)
656 1.1 jkunz {
657 1.1 jkunz struct iee_softc *sc = ifp->if_softc;
658 1.1 jkunz
659 1.1 jkunz if (sc->sc_mediastatus != NULL)
660 1.19 tsutsui (sc->sc_mediastatus)(ifp, ifmreq);
661 1.1 jkunz }
662 1.1 jkunz
663 1.1 jkunz
664 1.1 jkunz
665 1.1 jkunz /* initiate output routine */
666 1.1 jkunz void
667 1.1 jkunz iee_start(struct ifnet *ifp)
668 1.1 jkunz {
669 1.1 jkunz struct iee_softc *sc = ifp->if_softc;
670 1.1 jkunz struct mbuf *m = NULL;
671 1.1 jkunz int t;
672 1.1 jkunz int n;
673 1.1 jkunz
674 1.1 jkunz if (sc->sc_next_cb != 0)
675 1.12 skrll /* There is already a CMD running. Defer packet enqueuing. */
676 1.1 jkunz return;
677 1.1 jkunz for (t = 0 ; t < IEE_NCB ; t++) {
678 1.1 jkunz IFQ_DEQUEUE(&ifp->if_snd, sc->sc_tx_mbuf[t]);
679 1.1 jkunz if (sc->sc_tx_mbuf[t] == NULL)
680 1.1 jkunz break;
681 1.1 jkunz if (bus_dmamap_load_mbuf(sc->sc_dmat, sc->sc_tx_map[t],
682 1.1 jkunz sc->sc_tx_mbuf[t], BUS_DMA_WRITE | BUS_DMA_NOWAIT) != 0) {
683 1.1 jkunz /*
684 1.8 perry * The packet needs more TBD then we support.
685 1.8 perry * Copy the packet into a mbuf cluster to get it out.
686 1.1 jkunz */
687 1.8 perry printf("%s: iee_start: failed to load DMA map\n",
688 1.19 tsutsui device_xname(sc->sc_dev));
689 1.1 jkunz MGETHDR(m, M_DONTWAIT, MT_DATA);
690 1.1 jkunz if (m == NULL) {
691 1.1 jkunz printf("%s: iee_start: can't allocate mbuf\n",
692 1.19 tsutsui device_xname(sc->sc_dev));
693 1.1 jkunz m_freem(sc->sc_tx_mbuf[t]);
694 1.1 jkunz t--;
695 1.1 jkunz continue;
696 1.1 jkunz }
697 1.1 jkunz MCLAIM(m, &sc->sc_ethercom.ec_rx_mowner);
698 1.1 jkunz MCLGET(m, M_DONTWAIT);
699 1.1 jkunz if ((m->m_flags & M_EXT) == 0) {
700 1.1 jkunz printf("%s: iee_start: can't allocate mbuf "
701 1.19 tsutsui "cluster\n", device_xname(sc->sc_dev));
702 1.1 jkunz m_freem(sc->sc_tx_mbuf[t]);
703 1.1 jkunz m_freem(m);
704 1.1 jkunz t--;
705 1.1 jkunz continue;
706 1.1 jkunz }
707 1.8 perry m_copydata(sc->sc_tx_mbuf[t], 0,
708 1.15 christos sc->sc_tx_mbuf[t]->m_pkthdr.len, mtod(m, void *));
709 1.1 jkunz m->m_pkthdr.len = sc->sc_tx_mbuf[t]->m_pkthdr.len;
710 1.1 jkunz m->m_len = sc->sc_tx_mbuf[t]->m_pkthdr.len;
711 1.1 jkunz m_freem(sc->sc_tx_mbuf[t]);
712 1.1 jkunz sc->sc_tx_mbuf[t] = m;
713 1.1 jkunz if(bus_dmamap_load_mbuf(sc->sc_dmat, sc->sc_tx_map[t],
714 1.1 jkunz m, BUS_DMA_WRITE | BUS_DMA_NOWAIT) != 0) {
715 1.1 jkunz printf("%s: iee_start: can't load TX DMA map\n",
716 1.19 tsutsui device_xname(sc->sc_dev));
717 1.1 jkunz m_freem(sc->sc_tx_mbuf[t]);
718 1.1 jkunz t--;
719 1.1 jkunz continue;
720 1.1 jkunz }
721 1.1 jkunz }
722 1.1 jkunz for (n = 0 ; n < sc->sc_tx_map[t]->dm_nsegs ; n++) {
723 1.1 jkunz SC_TBD(sc->sc_next_tbd + n)->tbd_tb_addr =
724 1.20 tsutsui IEE_SWAPA32(sc->sc_tx_map[t]->dm_segs[n].ds_addr);
725 1.1 jkunz SC_TBD(sc->sc_next_tbd + n)->tbd_size =
726 1.1 jkunz sc->sc_tx_map[t]->dm_segs[n].ds_len;
727 1.1 jkunz SC_TBD(sc->sc_next_tbd + n)->tbd_link_addr =
728 1.20 tsutsui IEE_SWAPA32(IEE_PHYS_SHMEM(IEE_TBD_OFF + IEE_TBD_SZ
729 1.20 tsutsui * (sc->sc_next_tbd + n + 1)));
730 1.1 jkunz }
731 1.1 jkunz SC_TBD(sc->sc_next_tbd + n - 1)->tbd_size |= IEE_CB_EL;
732 1.1 jkunz bus_dmamap_sync(sc->sc_dmat, sc->sc_tx_map[t], 0,
733 1.1 jkunz sc->sc_tx_map[t]->dm_mapsize, BUS_DMASYNC_PREWRITE);
734 1.1 jkunz IFQ_POLL(&ifp->if_snd, m);
735 1.1 jkunz if (m == NULL)
736 1.1 jkunz iee_cb_setup(sc, IEE_CB_CMD_TR | IEE_CB_S | IEE_CB_EL
737 1.1 jkunz | IEE_CB_I);
738 1.1 jkunz else
739 1.1 jkunz iee_cb_setup(sc, IEE_CB_CMD_TR);
740 1.1 jkunz sc->sc_next_tbd += n;
741 1.1 jkunz #if NBPFILTER > 0
742 1.1 jkunz /* Pass packet to bpf if someone listens. */
743 1.1 jkunz if (ifp->if_bpf)
744 1.1 jkunz bpf_mtap(ifp->if_bpf, sc->sc_tx_mbuf[t]);
745 1.1 jkunz #endif
746 1.1 jkunz }
747 1.1 jkunz if (t == 0)
748 1.1 jkunz /* No packets got set up for TX. */
749 1.1 jkunz return;
750 1.1 jkunz if (t == IEE_NCB)
751 1.1 jkunz ifp->if_flags |= IFF_OACTIVE;
752 1.1 jkunz bus_dmamap_sync(sc->sc_dmat, sc->sc_shmem_map, IEE_CB_SZ,
753 1.1 jkunz IEE_CB_LIST_SZ + IEE_TBD_LIST_SZ, BUS_DMASYNC_PREWRITE);
754 1.1 jkunz (sc->sc_iee_cmd)(sc, IEE_SCB_CUC_EXE);
755 1.1 jkunz }
756 1.1 jkunz
757 1.1 jkunz
758 1.1 jkunz
759 1.1 jkunz /* ioctl routine */
760 1.1 jkunz int
761 1.15 christos iee_ioctl(struct ifnet *ifp, u_long cmd, void *data)
762 1.1 jkunz {
763 1.1 jkunz struct iee_softc *sc = ifp->if_softc;
764 1.1 jkunz int s;
765 1.1 jkunz int err;
766 1.1 jkunz
767 1.1 jkunz s = splnet();
768 1.4 thorpej switch (cmd) {
769 1.4 thorpej case SIOCSIFMEDIA:
770 1.4 thorpej case SIOCGIFMEDIA:
771 1.4 thorpej err = ifmedia_ioctl(ifp, (struct ifreq *) data,
772 1.4 thorpej &sc->sc_ifmedia, cmd);
773 1.4 thorpej break;
774 1.4 thorpej
775 1.4 thorpej default:
776 1.1 jkunz err = ether_ioctl(ifp, cmd, data);
777 1.4 thorpej if (err == ENETRESET) {
778 1.4 thorpej /*
779 1.4 thorpej * Multicast list as changed; set the hardware filter
780 1.4 thorpej * accordingly.
781 1.4 thorpej */
782 1.4 thorpej if (ifp->if_flags & IFF_RUNNING) {
783 1.4 thorpej iee_cb_setup(sc, IEE_CB_CMD_MCS | IEE_CB_S |
784 1.4 thorpej IEE_CB_EL | IEE_CB_I);
785 1.4 thorpej if ((sc->sc_flags & IEE_WANT_MCAST) == 0)
786 1.4 thorpej (*sc->sc_iee_cmd)(sc, IEE_SCB_CUC_EXE);
787 1.4 thorpej }
788 1.3 thorpej err = 0;
789 1.4 thorpej }
790 1.4 thorpej break;
791 1.1 jkunz }
792 1.1 jkunz splx(s);
793 1.19 tsutsui return err;
794 1.1 jkunz }
795 1.1 jkunz
796 1.1 jkunz
797 1.1 jkunz
798 1.1 jkunz /* init routine */
799 1.1 jkunz int
800 1.1 jkunz iee_init(struct ifnet *ifp)
801 1.1 jkunz {
802 1.1 jkunz struct iee_softc *sc = ifp->if_softc;
803 1.1 jkunz int r;
804 1.1 jkunz int t;
805 1.1 jkunz int n;
806 1.1 jkunz int err;
807 1.1 jkunz
808 1.1 jkunz sc->sc_next_cb = 0;
809 1.1 jkunz sc->sc_next_tbd = 0;
810 1.1 jkunz sc->sc_flags &= ~IEE_WANT_MCAST;
811 1.1 jkunz sc->sc_rx_done = 0;
812 1.1 jkunz SC_SCB->scb_crc_err = 0;
813 1.1 jkunz SC_SCB->scb_align_err = 0;
814 1.1 jkunz SC_SCB->scb_resource_err = 0;
815 1.1 jkunz SC_SCB->scb_overrun_err = 0;
816 1.1 jkunz SC_SCB->scb_rcvcdt_err = 0;
817 1.1 jkunz SC_SCB->scb_short_fr_err = 0;
818 1.1 jkunz sc->sc_crc_err = 0;
819 1.1 jkunz sc->sc_align_err = 0;
820 1.1 jkunz sc->sc_resource_err = 0;
821 1.1 jkunz sc->sc_overrun_err = 0;
822 1.1 jkunz sc->sc_rcvcdt_err = 0;
823 1.1 jkunz sc->sc_short_fr_err = 0;
824 1.1 jkunz sc->sc_tx_col = 0;
825 1.1 jkunz sc->sc_rx_err = 0;
826 1.1 jkunz sc->sc_cmd_err = 0;
827 1.1 jkunz /* Create Transmit DMA maps. */
828 1.1 jkunz for (t = 0 ; t < IEE_NCB ; t++) {
829 1.1 jkunz if (sc->sc_tx_map[t] == NULL && bus_dmamap_create(sc->sc_dmat,
830 1.8 perry MCLBYTES, IEE_NTBD, MCLBYTES, 0, BUS_DMA_NOWAIT,
831 1.1 jkunz &sc->sc_tx_map[t]) != 0) {
832 1.8 perry printf("%s: iee_init: can't create TX DMA map\n",
833 1.19 tsutsui device_xname(sc->sc_dev));
834 1.1 jkunz for (n = 0 ; n < t ; n++)
835 1.8 perry bus_dmamap_destroy(sc->sc_dmat,
836 1.1 jkunz sc->sc_tx_map[n]);
837 1.19 tsutsui return ENOBUFS;
838 1.1 jkunz }
839 1.1 jkunz }
840 1.1 jkunz /* Initialize Receive Frame and Receive Buffer Descriptors */
841 1.1 jkunz err = 0;
842 1.1 jkunz memset(SC_RFD(0), 0, IEE_RFD_LIST_SZ);
843 1.1 jkunz memset(SC_RBD(0), 0, IEE_RBD_LIST_SZ);
844 1.1 jkunz for (r = 0 ; r < IEE_NRFD ; r++) {
845 1.1 jkunz SC_RFD(r)->rfd_cmd = IEE_RFD_SF;
846 1.20 tsutsui SC_RFD(r)->rfd_link_addr =
847 1.20 tsutsui IEE_SWAPA32(IEE_PHYS_SHMEM(IEE_RFD_OFF
848 1.20 tsutsui + IEE_RFD_SZ * ((r + 1) % IEE_NRFD)));
849 1.20 tsutsui
850 1.20 tsutsui SC_RBD(r)->rbd_next_rbd =
851 1.20 tsutsui IEE_SWAPA32(IEE_PHYS_SHMEM(IEE_RBD_OFF
852 1.20 tsutsui + IEE_RBD_SZ * ((r + 1) % IEE_NRFD)));
853 1.1 jkunz if (sc->sc_rx_mbuf[r] == NULL) {
854 1.1 jkunz MGETHDR(sc->sc_rx_mbuf[r], M_DONTWAIT, MT_DATA);
855 1.1 jkunz if (sc->sc_rx_mbuf[r] == NULL) {
856 1.8 perry printf("%s: iee_init: can't allocate mbuf\n",
857 1.19 tsutsui device_xname(sc->sc_dev));
858 1.1 jkunz err = 1;
859 1.1 jkunz break;
860 1.1 jkunz }
861 1.1 jkunz MCLAIM(sc->sc_rx_mbuf[r],&sc->sc_ethercom.ec_rx_mowner);
862 1.1 jkunz MCLGET(sc->sc_rx_mbuf[r], M_DONTWAIT);
863 1.1 jkunz if ((sc->sc_rx_mbuf[r]->m_flags & M_EXT) == 0) {
864 1.1 jkunz printf("%s: iee_init: can't allocate mbuf"
865 1.19 tsutsui " cluster\n", device_xname(sc->sc_dev));
866 1.1 jkunz m_freem(sc->sc_rx_mbuf[r]);
867 1.1 jkunz err = 1;
868 1.1 jkunz break;
869 1.1 jkunz }
870 1.1 jkunz }
871 1.1 jkunz if (sc->sc_rx_map[r] == NULL && bus_dmamap_create(sc->sc_dmat,
872 1.8 perry MCLBYTES, 1, MCLBYTES , 0, BUS_DMA_NOWAIT,
873 1.1 jkunz &sc->sc_rx_map[r]) != 0) {
874 1.1 jkunz printf("%s: iee_init: can't create RX "
875 1.19 tsutsui "DMA map\n", device_xname(sc->sc_dev));
876 1.1 jkunz m_freem(sc->sc_rx_mbuf[r]);
877 1.1 jkunz err = 1;
878 1.1 jkunz break;
879 1.1 jkunz }
880 1.1 jkunz if (bus_dmamap_load(sc->sc_dmat, sc->sc_rx_map[r],
881 1.8 perry sc->sc_rx_mbuf[r]->m_ext.ext_buf,
882 1.1 jkunz sc->sc_rx_mbuf[r]->m_ext.ext_size, NULL,
883 1.1 jkunz BUS_DMA_READ | BUS_DMA_NOWAIT) != 0) {
884 1.1 jkunz printf("%s: iee_init: can't load RX DMA map\n",
885 1.19 tsutsui device_xname(sc->sc_dev));
886 1.1 jkunz bus_dmamap_destroy(sc->sc_dmat, sc->sc_rx_map[r]);
887 1.1 jkunz m_freem(sc->sc_rx_mbuf[r]);
888 1.1 jkunz err = 1;
889 1.1 jkunz break;
890 1.1 jkunz }
891 1.1 jkunz bus_dmamap_sync(sc->sc_dmat, sc->sc_rx_map[r], 0,
892 1.1 jkunz sc->sc_rx_mbuf[r]->m_ext.ext_size, BUS_DMASYNC_PREREAD);
893 1.1 jkunz SC_RBD(r)->rbd_size = sc->sc_rx_map[r]->dm_segs[0].ds_len;
894 1.20 tsutsui SC_RBD(r)->rbd_rb_addr =
895 1.20 tsutsui IEE_SWAPA32(sc->sc_rx_map[r]->dm_segs[0].ds_addr);
896 1.1 jkunz }
897 1.20 tsutsui SC_RFD(0)->rfd_rbd_addr = IEE_SWAPA32(IEE_PHYS_SHMEM(IEE_RBD_OFF));
898 1.1 jkunz if (err != 0) {
899 1.1 jkunz for (n = 0 ; n < r; n++) {
900 1.1 jkunz m_freem(sc->sc_rx_mbuf[n]);
901 1.1 jkunz sc->sc_rx_mbuf[n] = NULL;
902 1.1 jkunz bus_dmamap_unload(sc->sc_dmat, sc->sc_rx_map[n]);
903 1.1 jkunz bus_dmamap_destroy(sc->sc_dmat, sc->sc_rx_map[n]);
904 1.1 jkunz sc->sc_rx_map[n] = NULL;
905 1.1 jkunz }
906 1.1 jkunz for (n = 0 ; n < t ; n++) {
907 1.1 jkunz bus_dmamap_destroy(sc->sc_dmat, sc->sc_tx_map[n]);
908 1.1 jkunz sc->sc_tx_map[n] = NULL;
909 1.1 jkunz }
910 1.19 tsutsui return ENOBUFS;
911 1.1 jkunz }
912 1.1 jkunz
913 1.1 jkunz (sc->sc_iee_reset)(sc);
914 1.1 jkunz iee_cb_setup(sc, IEE_CB_CMD_IAS);
915 1.1 jkunz sc->sc_cf[0] = IEE_CF_0_DEF | IEE_CF_0_PREF;
916 1.1 jkunz sc->sc_cf[1] = IEE_CF_1_DEF;
917 1.1 jkunz sc->sc_cf[2] = IEE_CF_2_DEF;
918 1.8 perry sc->sc_cf[3] = IEE_CF_3_ADDRLEN_DEF | IEE_CF_3_NSAI
919 1.1 jkunz | IEE_CF_3_PREAMLEN_DEF;
920 1.1 jkunz sc->sc_cf[4] = IEE_CF_4_DEF;
921 1.1 jkunz sc->sc_cf[5] = IEE_CF_5_DEF;
922 1.1 jkunz sc->sc_cf[6] = IEE_CF_6_DEF;
923 1.1 jkunz sc->sc_cf[7] = IEE_CF_7_DEF;
924 1.1 jkunz sc->sc_cf[8] = IEE_CF_8_DEF;
925 1.1 jkunz sc->sc_cf[9] = IEE_CF_9_DEF;
926 1.1 jkunz sc->sc_cf[10] = IEE_CF_10_DEF;
927 1.1 jkunz sc->sc_cf[11] = IEE_CF_11_DEF & ~IEE_CF_11_LNGFLD;
928 1.1 jkunz sc->sc_cf[12] = IEE_CF_12_DEF;
929 1.1 jkunz sc->sc_cf[13] = IEE_CF_13_DEF;
930 1.1 jkunz iee_cb_setup(sc, IEE_CB_CMD_CONF | IEE_CB_S | IEE_CB_EL);
931 1.20 tsutsui SC_SCB->scb_rfa_addr = IEE_SWAPA32(IEE_PHYS_SHMEM(IEE_RFD_OFF));
932 1.1 jkunz bus_dmamap_sync(sc->sc_dmat, sc->sc_shmem_map, 0, IEE_SHMEM_MAX,
933 1.1 jkunz BUS_DMASYNC_PREWRITE);
934 1.1 jkunz (sc->sc_iee_cmd)(sc, IEE_SCB_CUC_EXE | IEE_SCB_RUC_ST);
935 1.1 jkunz /* Issue a Channel Attention to ACK interrupts we may have caused. */
936 1.1 jkunz (sc->sc_iee_cmd)(sc, IEE_SCB_ACK);
937 1.1 jkunz
938 1.1 jkunz /* Mark the interface as running and ready to RX/TX packets. */
939 1.1 jkunz ifp->if_flags |= IFF_RUNNING;
940 1.1 jkunz ifp->if_flags &= ~IFF_OACTIVE;
941 1.19 tsutsui return 0;
942 1.1 jkunz }
943 1.1 jkunz
944 1.1 jkunz
945 1.1 jkunz
946 1.1 jkunz /* stop routine */
947 1.1 jkunz void
948 1.1 jkunz iee_stop(struct ifnet *ifp, int disable)
949 1.1 jkunz {
950 1.1 jkunz struct iee_softc *sc = ifp->if_softc;
951 1.1 jkunz int n;
952 1.1 jkunz
953 1.1 jkunz ifp->if_flags &= ~IFF_RUNNING;
954 1.1 jkunz ifp->if_flags |= IFF_OACTIVE;
955 1.1 jkunz ifp->if_timer = 0;
956 1.1 jkunz /* Reset the chip to get it quiet. */
957 1.1 jkunz (sc->sc_iee_reset)(ifp->if_softc);
958 1.1 jkunz /* Issue a Channel Attention to ACK interrupts we may have caused. */
959 1.1 jkunz (sc->sc_iee_cmd)(ifp->if_softc, IEE_SCB_ACK);
960 1.12 skrll /* Release any dynamically allocated resources. */
961 1.1 jkunz for (n = 0 ; n < IEE_NCB ; n++) {
962 1.1 jkunz if (sc->sc_tx_map[n] != NULL)
963 1.1 jkunz bus_dmamap_destroy(sc->sc_dmat, sc->sc_tx_map[n]);
964 1.1 jkunz sc->sc_tx_map[n] = NULL;
965 1.1 jkunz }
966 1.1 jkunz for (n = 0 ; n < IEE_NRFD ; n++) {
967 1.1 jkunz if (sc->sc_rx_mbuf[n] != NULL)
968 1.1 jkunz m_freem(sc->sc_rx_mbuf[n]);
969 1.1 jkunz sc->sc_rx_mbuf[n] = NULL;
970 1.1 jkunz if (sc->sc_rx_map[n] != NULL) {
971 1.1 jkunz bus_dmamap_unload(sc->sc_dmat, sc->sc_rx_map[n]);
972 1.1 jkunz bus_dmamap_destroy(sc->sc_dmat, sc->sc_rx_map[n]);
973 1.1 jkunz }
974 1.1 jkunz sc->sc_rx_map[n] = NULL;
975 1.1 jkunz }
976 1.1 jkunz }
977 1.1 jkunz
978 1.1 jkunz
979 1.1 jkunz
980 1.1 jkunz /* timer routine */
981 1.1 jkunz void
982 1.1 jkunz iee_watchdog(struct ifnet *ifp)
983 1.1 jkunz {
984 1.1 jkunz struct iee_softc *sc = ifp->if_softc;
985 1.1 jkunz
986 1.1 jkunz (sc->sc_iee_reset)(sc);
987 1.1 jkunz if (sc->sc_next_tbd != 0)
988 1.8 perry printf("%s: iee_watchdog: transmit timeout %d\n",
989 1.19 tsutsui device_xname(sc->sc_dev), ++sc->sc_tx_timeout);
990 1.1 jkunz else
991 1.8 perry printf("%s: iee_watchdog: setup timeout %d\n",
992 1.19 tsutsui device_xname(sc->sc_dev), ++sc->sc_setup_timeout);
993 1.1 jkunz iee_init(ifp);
994 1.1 jkunz }
995