if_ti.c revision 1.99 1 1.99 msaitoh /* $NetBSD: if_ti.c,v 1.99 2016/07/14 04:15:27 msaitoh Exp $ */
2 1.1 drochner
3 1.1 drochner /*
4 1.1 drochner * Copyright (c) 1997, 1998, 1999
5 1.1 drochner * Bill Paul <wpaul (at) ctr.columbia.edu>. All rights reserved.
6 1.1 drochner *
7 1.1 drochner * Redistribution and use in source and binary forms, with or without
8 1.1 drochner * modification, are permitted provided that the following conditions
9 1.1 drochner * are met:
10 1.1 drochner * 1. Redistributions of source code must retain the above copyright
11 1.1 drochner * notice, this list of conditions and the following disclaimer.
12 1.1 drochner * 2. Redistributions in binary form must reproduce the above copyright
13 1.1 drochner * notice, this list of conditions and the following disclaimer in the
14 1.1 drochner * documentation and/or other materials provided with the distribution.
15 1.1 drochner * 3. All advertising materials mentioning features or use of this software
16 1.1 drochner * must display the following acknowledgement:
17 1.1 drochner * This product includes software developed by Bill Paul.
18 1.1 drochner * 4. Neither the name of the author nor the names of any co-contributors
19 1.1 drochner * may be used to endorse or promote products derived from this software
20 1.1 drochner * without specific prior written permission.
21 1.1 drochner *
22 1.1 drochner * THIS SOFTWARE IS PROVIDED BY Bill Paul AND CONTRIBUTORS ``AS IS'' AND
23 1.1 drochner * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
24 1.1 drochner * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
25 1.1 drochner * ARE DISCLAIMED. IN NO EVENT SHALL Bill Paul OR THE VOICES IN HIS HEAD
26 1.1 drochner * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
27 1.1 drochner * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
28 1.1 drochner * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
29 1.1 drochner * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
30 1.1 drochner * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
31 1.1 drochner * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF
32 1.1 drochner * THE POSSIBILITY OF SUCH DAMAGE.
33 1.1 drochner *
34 1.1 drochner * FreeBSD Id: if_ti.c,v 1.15 1999/08/14 15:45:03 wpaul Exp
35 1.1 drochner */
36 1.1 drochner
37 1.1 drochner /*
38 1.1 drochner * Alteon Networks Tigon PCI gigabit ethernet driver for FreeBSD.
39 1.1 drochner * Manuals, sample driver and firmware source kits are available
40 1.1 drochner * from http://www.alteon.com/support/openkits.
41 1.66 perry *
42 1.1 drochner * Written by Bill Paul <wpaul (at) ctr.columbia.edu>
43 1.1 drochner * Electrical Engineering Department
44 1.1 drochner * Columbia University, New York City
45 1.1 drochner */
46 1.1 drochner
47 1.1 drochner /*
48 1.1 drochner * The Alteon Networks Tigon chip contains an embedded R4000 CPU,
49 1.1 drochner * gigabit MAC, dual DMA channels and a PCI interface unit. NICs
50 1.1 drochner * using the Tigon may have anywhere from 512K to 2MB of SRAM. The
51 1.1 drochner * Tigon supports hardware IP, TCP and UCP checksumming, multicast
52 1.1 drochner * filtering and jumbo (9014 byte) frames. The hardware is largely
53 1.1 drochner * controlled by firmware, which must be loaded into the NIC during
54 1.1 drochner * initialization.
55 1.1 drochner *
56 1.1 drochner * The Tigon 2 contains 2 R4000 CPUs and requires a newer firmware
57 1.1 drochner * revision, which supports new features such as extended commands,
58 1.1 drochner * extended jumbo receive ring desciptors and a mini receive ring.
59 1.1 drochner *
60 1.1 drochner * Alteon Networks is to be commended for releasing such a vast amount
61 1.1 drochner * of development material for the Tigon NIC without requiring an NDA
62 1.1 drochner * (although they really should have done it a long time ago). With
63 1.1 drochner * any luck, the other vendors will finally wise up and follow Alteon's
64 1.1 drochner * stellar example.
65 1.1 drochner *
66 1.1 drochner * The firmware for the Tigon 1 and 2 NICs is compiled directly into
67 1.1 drochner * this driver by #including it as a C header file. This bloats the
68 1.1 drochner * driver somewhat, but it's the easiest method considering that the
69 1.1 drochner * driver code and firmware code need to be kept in sync. The source
70 1.1 drochner * for the firmware is not provided with the FreeBSD distribution since
71 1.1 drochner * compiling it requires a GNU toolchain targeted for mips-sgi-irix5.3.
72 1.1 drochner *
73 1.1 drochner * The following people deserve special thanks:
74 1.1 drochner * - Terry Murphy of 3Com, for providing a 3c985 Tigon 1 board
75 1.1 drochner * for testing
76 1.1 drochner * - Raymond Lee of Netgear, for providing a pair of Netgear
77 1.1 drochner * GA620 Tigon 2 boards for testing
78 1.3 thorpej * - Ulf Zimmermann, for bringing the GA620 to my attention and
79 1.1 drochner * convincing me to write this driver.
80 1.1 drochner * - Andrew Gallatin for providing FreeBSD/Alpha support.
81 1.1 drochner */
82 1.43 lukem
83 1.43 lukem #include <sys/cdefs.h>
84 1.99 msaitoh __KERNEL_RCSID(0, "$NetBSD: if_ti.c,v 1.99 2016/07/14 04:15:27 msaitoh Exp $");
85 1.1 drochner
86 1.1 drochner #include "opt_inet.h"
87 1.1 drochner
88 1.1 drochner #include <sys/param.h>
89 1.1 drochner #include <sys/systm.h>
90 1.1 drochner #include <sys/sockio.h>
91 1.1 drochner #include <sys/mbuf.h>
92 1.1 drochner #include <sys/malloc.h>
93 1.1 drochner #include <sys/kernel.h>
94 1.1 drochner #include <sys/socket.h>
95 1.1 drochner #include <sys/queue.h>
96 1.1 drochner #include <sys/device.h>
97 1.9 jdolecek #include <sys/reboot.h>
98 1.1 drochner
99 1.1 drochner #include <net/if.h>
100 1.1 drochner #include <net/if_arp.h>
101 1.1 drochner #include <net/if_ether.h>
102 1.1 drochner #include <net/if_dl.h>
103 1.1 drochner #include <net/if_media.h>
104 1.1 drochner
105 1.1 drochner #include <net/bpf.h>
106 1.1 drochner
107 1.1 drochner #ifdef INET
108 1.1 drochner #include <netinet/in.h>
109 1.1 drochner #include <netinet/if_inarp.h>
110 1.21 thorpej #include <netinet/in_systm.h>
111 1.21 thorpej #include <netinet/ip.h>
112 1.1 drochner #endif
113 1.1 drochner
114 1.2 drochner
115 1.78 ad #include <sys/bus.h>
116 1.1 drochner
117 1.1 drochner #include <dev/pci/pcireg.h>
118 1.1 drochner #include <dev/pci/pcivar.h>
119 1.1 drochner #include <dev/pci/pcidevs.h>
120 1.1 drochner
121 1.1 drochner #include <dev/pci/if_tireg.h>
122 1.28 thorpej
123 1.28 thorpej #include <dev/microcode/tigon/ti_fw.h>
124 1.28 thorpej #include <dev/microcode/tigon/ti_fw2.h>
125 1.1 drochner
126 1.1 drochner /*
127 1.1 drochner * Various supported device vendors/types and their names.
128 1.1 drochner */
129 1.1 drochner
130 1.19 jdolecek static const struct ti_type ti_devs[] = {
131 1.1 drochner { PCI_VENDOR_ALTEON, PCI_PRODUCT_ALTEON_ACENIC,
132 1.37 thorpej "Alteon AceNIC 1000BASE-SX Ethernet" },
133 1.15 bouyer { PCI_VENDOR_ALTEON, PCI_PRODUCT_ALTEON_ACENIC_COPPER,
134 1.37 thorpej "Alteon AceNIC 1000BASE-T Ethernet" },
135 1.1 drochner { PCI_VENDOR_3COM, PCI_PRODUCT_3COM_3C985,
136 1.1 drochner "3Com 3c985-SX Gigabit Ethernet" },
137 1.1 drochner { PCI_VENDOR_NETGEAR, PCI_PRODUCT_NETGEAR_GA620,
138 1.37 thorpej "Netgear GA620 1000BASE-SX Ethernet" },
139 1.15 bouyer { PCI_VENDOR_NETGEAR, PCI_PRODUCT_NETGEAR_GA620T,
140 1.37 thorpej "Netgear GA620 1000BASE-T Ethernet" },
141 1.1 drochner { PCI_VENDOR_SGI, PCI_PRODUCT_SGI_TIGON,
142 1.1 drochner "Silicon Graphics Gigabit Ethernet" },
143 1.1 drochner { 0, 0, NULL }
144 1.1 drochner };
145 1.1 drochner
146 1.64 perry static const struct ti_type *ti_type_match(struct pci_attach_args *);
147 1.84 cegger static int ti_probe(device_t, cfdata_t, void *);
148 1.84 cegger static void ti_attach(device_t, device_t, void *);
149 1.86 tsutsui static bool ti_shutdown(device_t, int);
150 1.64 perry static void ti_txeof_tigon1(struct ti_softc *);
151 1.64 perry static void ti_txeof_tigon2(struct ti_softc *);
152 1.64 perry static void ti_rxeof(struct ti_softc *);
153 1.64 perry
154 1.64 perry static void ti_stats_update(struct ti_softc *);
155 1.64 perry static int ti_encap_tigon1(struct ti_softc *, struct mbuf *, u_int32_t *);
156 1.64 perry static int ti_encap_tigon2(struct ti_softc *, struct mbuf *, u_int32_t *);
157 1.64 perry
158 1.64 perry static int ti_intr(void *);
159 1.64 perry static void ti_start(struct ifnet *);
160 1.74 christos static int ti_ioctl(struct ifnet *, u_long, void *);
161 1.64 perry static void ti_init(void *);
162 1.64 perry static void ti_init2(struct ti_softc *);
163 1.64 perry static void ti_stop(struct ti_softc *);
164 1.64 perry static void ti_watchdog(struct ifnet *);
165 1.64 perry static int ti_ifmedia_upd(struct ifnet *);
166 1.64 perry static void ti_ifmedia_sts(struct ifnet *, struct ifmediareq *);
167 1.64 perry
168 1.64 perry static u_int32_t ti_eeprom_putbyte(struct ti_softc *, int);
169 1.64 perry static u_int8_t ti_eeprom_getbyte(struct ti_softc *, int, u_int8_t *);
170 1.74 christos static int ti_read_eeprom(struct ti_softc *, void *, int, int);
171 1.64 perry
172 1.64 perry static void ti_add_mcast(struct ti_softc *, struct ether_addr *);
173 1.64 perry static void ti_del_mcast(struct ti_softc *, struct ether_addr *);
174 1.64 perry static void ti_setmulti(struct ti_softc *);
175 1.64 perry
176 1.68 christos static void ti_mem(struct ti_softc *, u_int32_t, u_int32_t, const void *);
177 1.64 perry static void ti_loadfw(struct ti_softc *);
178 1.64 perry static void ti_cmd(struct ti_softc *, struct ti_cmd_desc *);
179 1.74 christos static void ti_cmd_ext(struct ti_softc *, struct ti_cmd_desc *, void *, int);
180 1.64 perry static void ti_handle_events(struct ti_softc *);
181 1.64 perry static int ti_alloc_jumbo_mem(struct ti_softc *);
182 1.64 perry static void *ti_jalloc(struct ti_softc *);
183 1.74 christos static void ti_jfree(struct mbuf *, void *, size_t, void *);
184 1.64 perry static int ti_newbuf_std(struct ti_softc *, int, struct mbuf *, bus_dmamap_t);
185 1.64 perry static int ti_newbuf_mini(struct ti_softc *, int, struct mbuf *, bus_dmamap_t);
186 1.64 perry static int ti_newbuf_jumbo(struct ti_softc *, int, struct mbuf *);
187 1.64 perry static int ti_init_rx_ring_std(struct ti_softc *);
188 1.64 perry static void ti_free_rx_ring_std(struct ti_softc *);
189 1.64 perry static int ti_init_rx_ring_jumbo(struct ti_softc *);
190 1.64 perry static void ti_free_rx_ring_jumbo(struct ti_softc *);
191 1.64 perry static int ti_init_rx_ring_mini(struct ti_softc *);
192 1.64 perry static void ti_free_rx_ring_mini(struct ti_softc *);
193 1.64 perry static void ti_free_tx_ring(struct ti_softc *);
194 1.64 perry static int ti_init_tx_ring(struct ti_softc *);
195 1.64 perry
196 1.64 perry static int ti_64bitslot_war(struct ti_softc *);
197 1.64 perry static int ti_chipinit(struct ti_softc *);
198 1.64 perry static int ti_gibinit(struct ti_softc *);
199 1.1 drochner
200 1.74 christos static int ti_ether_ioctl(struct ifnet *, u_long, void *);
201 1.1 drochner
202 1.91 chs CFATTACH_DECL_NEW(ti, sizeof(struct ti_softc),
203 1.52 thorpej ti_probe, ti_attach, NULL, NULL);
204 1.1 drochner
205 1.1 drochner /*
206 1.1 drochner * Send an instruction or address to the EEPROM, check for ACK.
207 1.1 drochner */
208 1.77 tnn static u_int32_t
209 1.77 tnn ti_eeprom_putbyte(struct ti_softc *sc, int byte)
210 1.1 drochner {
211 1.64 perry int i, ack = 0;
212 1.1 drochner
213 1.1 drochner /*
214 1.1 drochner * Make sure we're in TX mode.
215 1.1 drochner */
216 1.1 drochner TI_SETBIT(sc, TI_MISC_LOCAL_CTL, TI_MLC_EE_TXEN);
217 1.1 drochner
218 1.1 drochner /*
219 1.1 drochner * Feed in each bit and stobe the clock.
220 1.1 drochner */
221 1.1 drochner for (i = 0x80; i; i >>= 1) {
222 1.1 drochner if (byte & i) {
223 1.1 drochner TI_SETBIT(sc, TI_MISC_LOCAL_CTL, TI_MLC_EE_DOUT);
224 1.1 drochner } else {
225 1.1 drochner TI_CLRBIT(sc, TI_MISC_LOCAL_CTL, TI_MLC_EE_DOUT);
226 1.1 drochner }
227 1.1 drochner DELAY(1);
228 1.1 drochner TI_SETBIT(sc, TI_MISC_LOCAL_CTL, TI_MLC_EE_CLK);
229 1.1 drochner DELAY(1);
230 1.1 drochner TI_CLRBIT(sc, TI_MISC_LOCAL_CTL, TI_MLC_EE_CLK);
231 1.1 drochner }
232 1.1 drochner
233 1.1 drochner /*
234 1.1 drochner * Turn off TX mode.
235 1.1 drochner */
236 1.1 drochner TI_CLRBIT(sc, TI_MISC_LOCAL_CTL, TI_MLC_EE_TXEN);
237 1.1 drochner
238 1.1 drochner /*
239 1.1 drochner * Check for ack.
240 1.1 drochner */
241 1.1 drochner TI_SETBIT(sc, TI_MISC_LOCAL_CTL, TI_MLC_EE_CLK);
242 1.1 drochner ack = CSR_READ_4(sc, TI_MISC_LOCAL_CTL) & TI_MLC_EE_DIN;
243 1.1 drochner TI_CLRBIT(sc, TI_MISC_LOCAL_CTL, TI_MLC_EE_CLK);
244 1.1 drochner
245 1.77 tnn return (ack);
246 1.1 drochner }
247 1.1 drochner
248 1.1 drochner /*
249 1.1 drochner * Read a byte of data stored in the EEPROM at address 'addr.'
250 1.1 drochner * We have to send two address bytes since the EEPROM can hold
251 1.1 drochner * more than 256 bytes of data.
252 1.1 drochner */
253 1.77 tnn static u_int8_t
254 1.77 tnn ti_eeprom_getbyte(struct ti_softc *sc, int addr, u_int8_t *dest)
255 1.1 drochner {
256 1.8 augustss int i;
257 1.1 drochner u_int8_t byte = 0;
258 1.1 drochner
259 1.77 tnn EEPROM_START();
260 1.1 drochner
261 1.1 drochner /*
262 1.1 drochner * Send write control code to EEPROM.
263 1.1 drochner */
264 1.1 drochner if (ti_eeprom_putbyte(sc, EEPROM_CTL_WRITE)) {
265 1.1 drochner printf("%s: failed to send write command, status: %x\n",
266 1.91 chs device_xname(sc->sc_dev), CSR_READ_4(sc, TI_MISC_LOCAL_CTL));
267 1.77 tnn return (1);
268 1.1 drochner }
269 1.1 drochner
270 1.1 drochner /*
271 1.1 drochner * Send first byte of address of byte we want to read.
272 1.1 drochner */
273 1.1 drochner if (ti_eeprom_putbyte(sc, (addr >> 8) & 0xFF)) {
274 1.1 drochner printf("%s: failed to send address, status: %x\n",
275 1.91 chs device_xname(sc->sc_dev), CSR_READ_4(sc, TI_MISC_LOCAL_CTL));
276 1.77 tnn return (1);
277 1.1 drochner }
278 1.1 drochner /*
279 1.1 drochner * Send second byte address of byte we want to read.
280 1.1 drochner */
281 1.1 drochner if (ti_eeprom_putbyte(sc, addr & 0xFF)) {
282 1.1 drochner printf("%s: failed to send address, status: %x\n",
283 1.91 chs device_xname(sc->sc_dev), CSR_READ_4(sc, TI_MISC_LOCAL_CTL));
284 1.77 tnn return (1);
285 1.1 drochner }
286 1.1 drochner
287 1.77 tnn EEPROM_STOP();
288 1.77 tnn EEPROM_START();
289 1.1 drochner /*
290 1.1 drochner * Send read control code to EEPROM.
291 1.1 drochner */
292 1.1 drochner if (ti_eeprom_putbyte(sc, EEPROM_CTL_READ)) {
293 1.1 drochner printf("%s: failed to send read command, status: %x\n",
294 1.91 chs device_xname(sc->sc_dev), CSR_READ_4(sc, TI_MISC_LOCAL_CTL));
295 1.77 tnn return (1);
296 1.1 drochner }
297 1.1 drochner
298 1.1 drochner /*
299 1.1 drochner * Start reading bits from EEPROM.
300 1.1 drochner */
301 1.1 drochner TI_CLRBIT(sc, TI_MISC_LOCAL_CTL, TI_MLC_EE_TXEN);
302 1.1 drochner for (i = 0x80; i; i >>= 1) {
303 1.1 drochner TI_SETBIT(sc, TI_MISC_LOCAL_CTL, TI_MLC_EE_CLK);
304 1.1 drochner DELAY(1);
305 1.1 drochner if (CSR_READ_4(sc, TI_MISC_LOCAL_CTL) & TI_MLC_EE_DIN)
306 1.1 drochner byte |= i;
307 1.1 drochner TI_CLRBIT(sc, TI_MISC_LOCAL_CTL, TI_MLC_EE_CLK);
308 1.1 drochner DELAY(1);
309 1.1 drochner }
310 1.1 drochner
311 1.77 tnn EEPROM_STOP();
312 1.1 drochner
313 1.1 drochner /*
314 1.1 drochner * No ACK generated for read, so just return byte.
315 1.1 drochner */
316 1.1 drochner
317 1.1 drochner *dest = byte;
318 1.1 drochner
319 1.77 tnn return (0);
320 1.1 drochner }
321 1.1 drochner
322 1.1 drochner /*
323 1.1 drochner * Read a sequence of bytes from the EEPROM.
324 1.1 drochner */
325 1.77 tnn static int
326 1.77 tnn ti_read_eeprom(struct ti_softc *sc, void *destv, int off, int cnt)
327 1.1 drochner {
328 1.74 christos char *dest = destv;
329 1.74 christos int err = 0, i;
330 1.74 christos u_int8_t byte = 0;
331 1.1 drochner
332 1.1 drochner for (i = 0; i < cnt; i++) {
333 1.1 drochner err = ti_eeprom_getbyte(sc, off + i, &byte);
334 1.1 drochner if (err)
335 1.1 drochner break;
336 1.1 drochner *(dest + i) = byte;
337 1.1 drochner }
338 1.1 drochner
339 1.77 tnn return (err ? 1 : 0);
340 1.1 drochner }
341 1.1 drochner
342 1.1 drochner /*
343 1.1 drochner * NIC memory access function. Can be used to either clear a section
344 1.68 christos * of NIC local memory or (if tbuf is non-NULL) copy data into it.
345 1.1 drochner */
346 1.77 tnn static void
347 1.77 tnn ti_mem(struct ti_softc *sc, u_int32_t addr, u_int32_t len, const void *xbuf)
348 1.1 drochner {
349 1.1 drochner int segptr, segsize, cnt;
350 1.68 christos const void *ptr;
351 1.1 drochner
352 1.1 drochner segptr = addr;
353 1.1 drochner cnt = len;
354 1.68 christos ptr = xbuf;
355 1.1 drochner
356 1.77 tnn while (cnt) {
357 1.1 drochner if (cnt < TI_WINLEN)
358 1.1 drochner segsize = cnt;
359 1.1 drochner else
360 1.1 drochner segsize = TI_WINLEN - (segptr % TI_WINLEN);
361 1.1 drochner CSR_WRITE_4(sc, TI_WINBASE, (segptr & ~(TI_WINLEN - 1)));
362 1.68 christos if (xbuf == NULL) {
363 1.6 bouyer bus_space_set_region_4(sc->ti_btag, sc->ti_bhandle,
364 1.6 bouyer TI_WINDOW + (segptr & (TI_WINLEN - 1)), 0,
365 1.6 bouyer segsize / 4);
366 1.6 bouyer } else {
367 1.60 bouyer #ifdef __BUS_SPACE_HAS_STREAM_METHODS
368 1.60 bouyer bus_space_write_region_stream_4(sc->ti_btag,
369 1.60 bouyer sc->ti_bhandle,
370 1.60 bouyer TI_WINDOW + (segptr & (TI_WINLEN - 1)),
371 1.68 christos (const u_int32_t *)ptr, segsize / 4);
372 1.60 bouyer #else
373 1.6 bouyer bus_space_write_region_4(sc->ti_btag, sc->ti_bhandle,
374 1.6 bouyer TI_WINDOW + (segptr & (TI_WINLEN - 1)),
375 1.68 christos (const u_int32_t *)ptr, segsize / 4);
376 1.60 bouyer #endif
377 1.68 christos ptr = (const char *)ptr + segsize;
378 1.1 drochner }
379 1.1 drochner segptr += segsize;
380 1.1 drochner cnt -= segsize;
381 1.1 drochner }
382 1.1 drochner
383 1.1 drochner return;
384 1.1 drochner }
385 1.1 drochner
386 1.1 drochner /*
387 1.1 drochner * Load firmware image into the NIC. Check that the firmware revision
388 1.1 drochner * is acceptable and see if we want the firmware for the Tigon 1 or
389 1.1 drochner * Tigon 2.
390 1.1 drochner */
391 1.77 tnn static void
392 1.77 tnn ti_loadfw(struct ti_softc *sc)
393 1.1 drochner {
394 1.77 tnn switch (sc->ti_hwrev) {
395 1.1 drochner case TI_HWREV_TIGON:
396 1.1 drochner if (tigonFwReleaseMajor != TI_FIRMWARE_MAJOR ||
397 1.1 drochner tigonFwReleaseMinor != TI_FIRMWARE_MINOR ||
398 1.1 drochner tigonFwReleaseFix != TI_FIRMWARE_FIX) {
399 1.1 drochner printf("%s: firmware revision mismatch; want "
400 1.91 chs "%d.%d.%d, got %d.%d.%d\n", device_xname(sc->sc_dev),
401 1.1 drochner TI_FIRMWARE_MAJOR, TI_FIRMWARE_MINOR,
402 1.1 drochner TI_FIRMWARE_FIX, tigonFwReleaseMajor,
403 1.1 drochner tigonFwReleaseMinor, tigonFwReleaseFix);
404 1.1 drochner return;
405 1.1 drochner }
406 1.68 christos ti_mem(sc, tigonFwTextAddr, tigonFwTextLen, tigonFwText);
407 1.68 christos ti_mem(sc, tigonFwDataAddr, tigonFwDataLen, tigonFwData);
408 1.68 christos ti_mem(sc, tigonFwRodataAddr, tigonFwRodataLen, tigonFwRodata);
409 1.1 drochner ti_mem(sc, tigonFwBssAddr, tigonFwBssLen, NULL);
410 1.1 drochner ti_mem(sc, tigonFwSbssAddr, tigonFwSbssLen, NULL);
411 1.1 drochner CSR_WRITE_4(sc, TI_CPU_PROGRAM_COUNTER, tigonFwStartAddr);
412 1.1 drochner break;
413 1.1 drochner case TI_HWREV_TIGON_II:
414 1.1 drochner if (tigon2FwReleaseMajor != TI_FIRMWARE_MAJOR ||
415 1.1 drochner tigon2FwReleaseMinor != TI_FIRMWARE_MINOR ||
416 1.1 drochner tigon2FwReleaseFix != TI_FIRMWARE_FIX) {
417 1.1 drochner printf("%s: firmware revision mismatch; want "
418 1.91 chs "%d.%d.%d, got %d.%d.%d\n", device_xname(sc->sc_dev),
419 1.1 drochner TI_FIRMWARE_MAJOR, TI_FIRMWARE_MINOR,
420 1.1 drochner TI_FIRMWARE_FIX, tigon2FwReleaseMajor,
421 1.1 drochner tigon2FwReleaseMinor, tigon2FwReleaseFix);
422 1.1 drochner return;
423 1.1 drochner }
424 1.68 christos ti_mem(sc, tigon2FwTextAddr, tigon2FwTextLen, tigon2FwText);
425 1.68 christos ti_mem(sc, tigon2FwDataAddr, tigon2FwDataLen, tigon2FwData);
426 1.1 drochner ti_mem(sc, tigon2FwRodataAddr, tigon2FwRodataLen,
427 1.68 christos tigon2FwRodata);
428 1.1 drochner ti_mem(sc, tigon2FwBssAddr, tigon2FwBssLen, NULL);
429 1.1 drochner ti_mem(sc, tigon2FwSbssAddr, tigon2FwSbssLen, NULL);
430 1.1 drochner CSR_WRITE_4(sc, TI_CPU_PROGRAM_COUNTER, tigon2FwStartAddr);
431 1.1 drochner break;
432 1.1 drochner default:
433 1.1 drochner printf("%s: can't load firmware: unknown hardware rev\n",
434 1.91 chs device_xname(sc->sc_dev));
435 1.1 drochner break;
436 1.1 drochner }
437 1.1 drochner
438 1.1 drochner return;
439 1.1 drochner }
440 1.1 drochner
441 1.1 drochner /*
442 1.1 drochner * Send the NIC a command via the command ring.
443 1.1 drochner */
444 1.77 tnn static void
445 1.77 tnn ti_cmd(struct ti_softc *sc, struct ti_cmd_desc *cmd)
446 1.1 drochner {
447 1.1 drochner u_int32_t index;
448 1.1 drochner
449 1.1 drochner index = sc->ti_cmd_saved_prodidx;
450 1.1 drochner CSR_WRITE_4(sc, TI_GCR_CMDRING + (index * 4), *(u_int32_t *)(cmd));
451 1.1 drochner TI_INC(index, TI_CMD_RING_CNT);
452 1.1 drochner CSR_WRITE_4(sc, TI_MB_CMDPROD_IDX, index);
453 1.1 drochner sc->ti_cmd_saved_prodidx = index;
454 1.1 drochner }
455 1.1 drochner
456 1.1 drochner /*
457 1.1 drochner * Send the NIC an extended command. The 'len' parameter specifies the
458 1.1 drochner * number of command slots to include after the initial command.
459 1.1 drochner */
460 1.77 tnn static void
461 1.77 tnn ti_cmd_ext(struct ti_softc *sc, struct ti_cmd_desc *cmd, void *argv, int len)
462 1.1 drochner {
463 1.74 christos char *arg = argv;
464 1.1 drochner u_int32_t index;
465 1.8 augustss int i;
466 1.1 drochner
467 1.1 drochner index = sc->ti_cmd_saved_prodidx;
468 1.1 drochner CSR_WRITE_4(sc, TI_GCR_CMDRING + (index * 4), *(u_int32_t *)(cmd));
469 1.1 drochner TI_INC(index, TI_CMD_RING_CNT);
470 1.1 drochner for (i = 0; i < len; i++) {
471 1.1 drochner CSR_WRITE_4(sc, TI_GCR_CMDRING + (index * 4),
472 1.1 drochner *(u_int32_t *)(&arg[i * 4]));
473 1.1 drochner TI_INC(index, TI_CMD_RING_CNT);
474 1.1 drochner }
475 1.1 drochner CSR_WRITE_4(sc, TI_MB_CMDPROD_IDX, index);
476 1.1 drochner sc->ti_cmd_saved_prodidx = index;
477 1.1 drochner }
478 1.1 drochner
479 1.1 drochner /*
480 1.1 drochner * Handle events that have triggered interrupts.
481 1.1 drochner */
482 1.77 tnn static void
483 1.77 tnn ti_handle_events(struct ti_softc *sc)
484 1.1 drochner {
485 1.1 drochner struct ti_event_desc *e;
486 1.1 drochner
487 1.1 drochner while (sc->ti_ev_saved_considx != sc->ti_ev_prodidx.ti_idx) {
488 1.1 drochner e = &sc->ti_rdata->ti_event_ring[sc->ti_ev_saved_considx];
489 1.77 tnn switch (TI_EVENT_EVENT(e)) {
490 1.1 drochner case TI_EV_LINKSTAT_CHANGED:
491 1.77 tnn sc->ti_linkstat = TI_EVENT_CODE(e);
492 1.77 tnn if (sc->ti_linkstat == TI_EV_CODE_LINK_UP)
493 1.1 drochner printf("%s: 10/100 link up\n",
494 1.91 chs device_xname(sc->sc_dev));
495 1.77 tnn else if (sc->ti_linkstat == TI_EV_CODE_GIG_LINK_UP)
496 1.1 drochner printf("%s: gigabit link up\n",
497 1.91 chs device_xname(sc->sc_dev));
498 1.77 tnn else if (sc->ti_linkstat == TI_EV_CODE_LINK_DOWN)
499 1.1 drochner printf("%s: link down\n",
500 1.91 chs device_xname(sc->sc_dev));
501 1.1 drochner break;
502 1.1 drochner case TI_EV_ERROR:
503 1.77 tnn if (TI_EVENT_CODE(e) == TI_EV_CODE_ERR_INVAL_CMD)
504 1.1 drochner printf("%s: invalid command\n",
505 1.91 chs device_xname(sc->sc_dev));
506 1.77 tnn else if (TI_EVENT_CODE(e) == TI_EV_CODE_ERR_UNIMP_CMD)
507 1.1 drochner printf("%s: unknown command\n",
508 1.91 chs device_xname(sc->sc_dev));
509 1.77 tnn else if (TI_EVENT_CODE(e) == TI_EV_CODE_ERR_BADCFG)
510 1.1 drochner printf("%s: bad config data\n",
511 1.91 chs device_xname(sc->sc_dev));
512 1.1 drochner break;
513 1.1 drochner case TI_EV_FIRMWARE_UP:
514 1.1 drochner ti_init2(sc);
515 1.1 drochner break;
516 1.1 drochner case TI_EV_STATS_UPDATED:
517 1.1 drochner ti_stats_update(sc);
518 1.1 drochner break;
519 1.1 drochner case TI_EV_RESET_JUMBO_RING:
520 1.1 drochner case TI_EV_MCAST_UPDATED:
521 1.1 drochner /* Who cares. */
522 1.1 drochner break;
523 1.1 drochner default:
524 1.1 drochner printf("%s: unknown event: %d\n",
525 1.91 chs device_xname(sc->sc_dev), TI_EVENT_EVENT(e));
526 1.1 drochner break;
527 1.1 drochner }
528 1.1 drochner /* Advance the consumer index. */
529 1.1 drochner TI_INC(sc->ti_ev_saved_considx, TI_EVENT_RING_CNT);
530 1.1 drochner CSR_WRITE_4(sc, TI_GCR_EVENTCONS_IDX, sc->ti_ev_saved_considx);
531 1.1 drochner }
532 1.1 drochner
533 1.1 drochner return;
534 1.1 drochner }
535 1.1 drochner
536 1.1 drochner /*
537 1.1 drochner * Memory management for the jumbo receive ring is a pain in the
538 1.1 drochner * butt. We need to allocate at least 9018 bytes of space per frame,
539 1.1 drochner * _and_ it has to be contiguous (unless you use the extended
540 1.1 drochner * jumbo descriptor format). Using malloc() all the time won't
541 1.1 drochner * work: malloc() allocates memory in powers of two, which means we
542 1.1 drochner * would end up wasting a considerable amount of space by allocating
543 1.1 drochner * 9K chunks. We don't have a jumbo mbuf cluster pool. Thus, we have
544 1.1 drochner * to do our own memory management.
545 1.1 drochner *
546 1.1 drochner * The driver needs to allocate a contiguous chunk of memory at boot
547 1.1 drochner * time. We then chop this up ourselves into 9K pieces and use them
548 1.1 drochner * as external mbuf storage.
549 1.1 drochner *
550 1.1 drochner * One issue here is how much memory to allocate. The jumbo ring has
551 1.1 drochner * 256 slots in it, but at 9K per slot than can consume over 2MB of
552 1.1 drochner * RAM. This is a bit much, especially considering we also need
553 1.1 drochner * RAM for the standard ring and mini ring (on the Tigon 2). To
554 1.1 drochner * save space, we only actually allocate enough memory for 64 slots
555 1.1 drochner * by default, which works out to between 500 and 600K. This can
556 1.1 drochner * be tuned by changing a #define in if_tireg.h.
557 1.1 drochner */
558 1.1 drochner
559 1.77 tnn static int
560 1.77 tnn ti_alloc_jumbo_mem(struct ti_softc *sc)
561 1.1 drochner {
562 1.74 christos char *ptr;
563 1.74 christos int i;
564 1.1 drochner struct ti_jpool_entry *entry;
565 1.1 drochner bus_dma_segment_t dmaseg;
566 1.1 drochner int error, dmanseg;
567 1.1 drochner
568 1.1 drochner /* Grab a big chunk o' storage. */
569 1.1 drochner if ((error = bus_dmamem_alloc(sc->sc_dmat,
570 1.13 thorpej TI_JMEM, PAGE_SIZE, 0, &dmaseg, 1, &dmanseg,
571 1.1 drochner BUS_DMA_NOWAIT)) != 0) {
572 1.99 msaitoh aprint_error_dev(sc->sc_dev,
573 1.99 msaitoh "can't allocate jumbo buffer, error = %d\n", error);
574 1.1 drochner return (error);
575 1.1 drochner }
576 1.1 drochner
577 1.1 drochner if ((error = bus_dmamem_map(sc->sc_dmat, &dmaseg, dmanseg,
578 1.74 christos TI_JMEM, (void **)&sc->ti_cdata.ti_jumbo_buf,
579 1.1 drochner BUS_DMA_NOWAIT|BUS_DMA_COHERENT)) != 0) {
580 1.99 msaitoh aprint_error_dev(sc->sc_dev,
581 1.99 msaitoh "can't map jumbo buffer, error = %d\n", error);
582 1.1 drochner return (error);
583 1.1 drochner }
584 1.1 drochner
585 1.1 drochner if ((error = bus_dmamap_create(sc->sc_dmat,
586 1.1 drochner TI_JMEM, 1,
587 1.1 drochner TI_JMEM, 0, BUS_DMA_NOWAIT,
588 1.1 drochner &sc->jumbo_dmamap)) != 0) {
589 1.99 msaitoh aprint_error_dev(sc->sc_dev,
590 1.99 msaitoh "can't create jumbo buffer DMA map, error = %d\n", error);
591 1.1 drochner return (error);
592 1.1 drochner }
593 1.1 drochner
594 1.1 drochner if ((error = bus_dmamap_load(sc->sc_dmat, sc->jumbo_dmamap,
595 1.1 drochner sc->ti_cdata.ti_jumbo_buf, TI_JMEM, NULL,
596 1.1 drochner BUS_DMA_NOWAIT)) != 0) {
597 1.99 msaitoh aprint_error_dev(sc->sc_dev,
598 1.99 msaitoh "can't load jumbo buffer DMA map, error = %d\n", error);
599 1.1 drochner return (error);
600 1.1 drochner }
601 1.1 drochner sc->jumbo_dmaaddr = sc->jumbo_dmamap->dm_segs[0].ds_addr;
602 1.1 drochner
603 1.1 drochner SIMPLEQ_INIT(&sc->ti_jfree_listhead);
604 1.1 drochner SIMPLEQ_INIT(&sc->ti_jinuse_listhead);
605 1.1 drochner
606 1.1 drochner /*
607 1.1 drochner * Now divide it up into 9K pieces and save the addresses
608 1.15 bouyer * in an array.
609 1.1 drochner */
610 1.1 drochner ptr = sc->ti_cdata.ti_jumbo_buf;
611 1.1 drochner for (i = 0; i < TI_JSLOTS; i++) {
612 1.15 bouyer sc->ti_cdata.ti_jslots[i] = ptr;
613 1.15 bouyer ptr += TI_JLEN;
614 1.66 perry entry = malloc(sizeof(struct ti_jpool_entry),
615 1.1 drochner M_DEVBUF, M_NOWAIT);
616 1.1 drochner if (entry == NULL) {
617 1.1 drochner free(sc->ti_cdata.ti_jumbo_buf, M_DEVBUF);
618 1.1 drochner sc->ti_cdata.ti_jumbo_buf = NULL;
619 1.1 drochner printf("%s: no memory for jumbo "
620 1.91 chs "buffer queue!\n", device_xname(sc->sc_dev));
621 1.77 tnn return (ENOBUFS);
622 1.1 drochner }
623 1.1 drochner entry->slot = i;
624 1.1 drochner SIMPLEQ_INSERT_HEAD(&sc->ti_jfree_listhead, entry,
625 1.1 drochner jpool_entries);
626 1.1 drochner }
627 1.1 drochner
628 1.77 tnn return (0);
629 1.1 drochner }
630 1.1 drochner
631 1.1 drochner /*
632 1.1 drochner * Allocate a jumbo buffer.
633 1.1 drochner */
634 1.77 tnn static void *
635 1.77 tnn ti_jalloc(struct ti_softc *sc)
636 1.1 drochner {
637 1.1 drochner struct ti_jpool_entry *entry;
638 1.66 perry
639 1.1 drochner entry = SIMPLEQ_FIRST(&sc->ti_jfree_listhead);
640 1.66 perry
641 1.1 drochner if (entry == NULL) {
642 1.91 chs printf("%s: no free jumbo buffers\n", device_xname(sc->sc_dev));
643 1.77 tnn return (NULL);
644 1.1 drochner }
645 1.1 drochner
646 1.48 lukem SIMPLEQ_REMOVE_HEAD(&sc->ti_jfree_listhead, jpool_entries);
647 1.1 drochner SIMPLEQ_INSERT_HEAD(&sc->ti_jinuse_listhead, entry, jpool_entries);
648 1.77 tnn
649 1.77 tnn return (sc->ti_cdata.ti_jslots[entry->slot]);
650 1.1 drochner }
651 1.1 drochner
652 1.1 drochner /*
653 1.1 drochner * Release a jumbo buffer.
654 1.1 drochner */
655 1.77 tnn static void
656 1.77 tnn ti_jfree(struct mbuf *m, void *tbuf, size_t size, void *arg)
657 1.1 drochner {
658 1.1 drochner struct ti_softc *sc;
659 1.47 thorpej int i, s;
660 1.1 drochner struct ti_jpool_entry *entry;
661 1.1 drochner
662 1.1 drochner /* Extract the softc struct pointer. */
663 1.15 bouyer sc = (struct ti_softc *)arg;
664 1.1 drochner
665 1.1 drochner if (sc == NULL)
666 1.15 bouyer panic("ti_jfree: didn't get softc pointer!");
667 1.1 drochner
668 1.1 drochner /* calculate the slot this buffer belongs to */
669 1.1 drochner
670 1.74 christos i = ((char *)tbuf
671 1.74 christos - (char *)sc->ti_cdata.ti_jumbo_buf) / TI_JLEN;
672 1.1 drochner
673 1.1 drochner if ((i < 0) || (i >= TI_JSLOTS))
674 1.1 drochner panic("ti_jfree: asked to free buffer that we don't manage!");
675 1.47 thorpej
676 1.47 thorpej s = splvm();
677 1.15 bouyer entry = SIMPLEQ_FIRST(&sc->ti_jinuse_listhead);
678 1.15 bouyer if (entry == NULL)
679 1.15 bouyer panic("ti_jfree: buffer not in use!");
680 1.15 bouyer entry->slot = i;
681 1.48 lukem SIMPLEQ_REMOVE_HEAD(&sc->ti_jinuse_listhead, jpool_entries);
682 1.48 lukem SIMPLEQ_INSERT_HEAD(&sc->ti_jfree_listhead, entry, jpool_entries);
683 1.1 drochner
684 1.47 thorpej if (__predict_true(m != NULL))
685 1.79 ad pool_cache_put(mb_cache, m);
686 1.47 thorpej splx(s);
687 1.1 drochner }
688 1.1 drochner
689 1.1 drochner
690 1.1 drochner /*
691 1.1 drochner * Intialize a standard receive ring descriptor.
692 1.1 drochner */
693 1.77 tnn static int
694 1.77 tnn ti_newbuf_std(struct ti_softc *sc, int i, struct mbuf *m, bus_dmamap_t dmamap)
695 1.1 drochner {
696 1.1 drochner struct mbuf *m_new = NULL;
697 1.1 drochner struct ti_rx_desc *r;
698 1.1 drochner int error;
699 1.1 drochner
700 1.1 drochner if (dmamap == NULL) {
701 1.1 drochner /* if (m) panic() */
702 1.1 drochner
703 1.1 drochner if ((error = bus_dmamap_create(sc->sc_dmat, MCLBYTES, 1,
704 1.1 drochner MCLBYTES, 0, BUS_DMA_NOWAIT,
705 1.1 drochner &dmamap)) != 0) {
706 1.99 msaitoh aprint_error_dev(sc->sc_dev,
707 1.99 msaitoh "can't create recv map, error = %d\n", error);
708 1.77 tnn return (ENOMEM);
709 1.1 drochner }
710 1.1 drochner }
711 1.1 drochner sc->std_dmamap[i] = dmamap;
712 1.1 drochner
713 1.1 drochner if (m == NULL) {
714 1.1 drochner MGETHDR(m_new, M_DONTWAIT, MT_DATA);
715 1.1 drochner if (m_new == NULL) {
716 1.99 msaitoh aprint_error_dev(sc->sc_dev,
717 1.99 msaitoh "mbuf allocation failed -- packet dropped!\n");
718 1.77 tnn return (ENOBUFS);
719 1.1 drochner }
720 1.1 drochner
721 1.1 drochner MCLGET(m_new, M_DONTWAIT);
722 1.1 drochner if (!(m_new->m_flags & M_EXT)) {
723 1.99 msaitoh aprint_error_dev(sc->sc_dev,
724 1.99 msaitoh "cluster allocation failed -- packet dropped!\n");
725 1.1 drochner m_freem(m_new);
726 1.77 tnn return (ENOBUFS);
727 1.1 drochner }
728 1.1 drochner m_new->m_len = m_new->m_pkthdr.len = MCLBYTES;
729 1.1 drochner m_adj(m_new, ETHER_ALIGN);
730 1.1 drochner
731 1.1 drochner if ((error = bus_dmamap_load(sc->sc_dmat, dmamap,
732 1.74 christos mtod(m_new, void *), m_new->m_len, NULL,
733 1.40 thorpej BUS_DMA_READ|BUS_DMA_NOWAIT)) != 0) {
734 1.99 msaitoh aprint_error_dev(sc->sc_dev,
735 1.99 msaitoh "can't load recv map, error = %d\n", error);
736 1.94 christos m_freem(m_new);
737 1.1 drochner return (ENOMEM);
738 1.1 drochner }
739 1.1 drochner } else {
740 1.1 drochner m_new = m;
741 1.1 drochner m_new->m_len = m_new->m_pkthdr.len = MCLBYTES;
742 1.1 drochner m_new->m_data = m_new->m_ext.ext_buf;
743 1.1 drochner m_adj(m_new, ETHER_ALIGN);
744 1.1 drochner
745 1.1 drochner /* reuse the dmamap */
746 1.1 drochner }
747 1.1 drochner
748 1.1 drochner sc->ti_cdata.ti_rx_std_chain[i] = m_new;
749 1.1 drochner r = &sc->ti_rdata->ti_rx_std_ring[i];
750 1.1 drochner TI_HOSTADDR(r->ti_addr) = dmamap->dm_segs[0].ds_addr;
751 1.1 drochner r->ti_type = TI_BDTYPE_RECV_BD;
752 1.1 drochner r->ti_flags = 0;
753 1.67 yamt if (sc->ethercom.ec_if.if_capenable & IFCAP_CSUM_IPv4_Rx)
754 1.21 thorpej r->ti_flags |= TI_BDFLAG_IP_CKSUM;
755 1.21 thorpej if (sc->ethercom.ec_if.if_capenable &
756 1.67 yamt (IFCAP_CSUM_TCPv4_Rx | IFCAP_CSUM_UDPv4_Rx))
757 1.21 thorpej r->ti_flags |= TI_BDFLAG_TCP_UDP_CKSUM;
758 1.1 drochner r->ti_len = m_new->m_len; /* == ds_len */
759 1.1 drochner r->ti_idx = i;
760 1.1 drochner
761 1.77 tnn return (0);
762 1.1 drochner }
763 1.1 drochner
764 1.1 drochner /*
765 1.1 drochner * Intialize a mini receive ring descriptor. This only applies to
766 1.1 drochner * the Tigon 2.
767 1.1 drochner */
768 1.77 tnn static int
769 1.77 tnn ti_newbuf_mini(struct ti_softc *sc, int i, struct mbuf *m, bus_dmamap_t dmamap)
770 1.1 drochner {
771 1.1 drochner struct mbuf *m_new = NULL;
772 1.1 drochner struct ti_rx_desc *r;
773 1.1 drochner int error;
774 1.1 drochner
775 1.1 drochner if (dmamap == NULL) {
776 1.1 drochner /* if (m) panic() */
777 1.1 drochner
778 1.1 drochner if ((error = bus_dmamap_create(sc->sc_dmat, MHLEN, 1,
779 1.1 drochner MHLEN, 0, BUS_DMA_NOWAIT,
780 1.1 drochner &dmamap)) != 0) {
781 1.99 msaitoh aprint_error_dev(sc->sc_dev,
782 1.99 msaitoh "can't create recv map, error = %d\n", error);
783 1.77 tnn return (ENOMEM);
784 1.1 drochner }
785 1.1 drochner }
786 1.1 drochner sc->mini_dmamap[i] = dmamap;
787 1.1 drochner
788 1.1 drochner if (m == NULL) {
789 1.1 drochner MGETHDR(m_new, M_DONTWAIT, MT_DATA);
790 1.1 drochner if (m_new == NULL) {
791 1.99 msaitoh aprint_error_dev(sc->sc_dev,
792 1.99 msaitoh "mbuf allocation failed -- packet dropped!\n");
793 1.77 tnn return (ENOBUFS);
794 1.1 drochner }
795 1.1 drochner m_new->m_len = m_new->m_pkthdr.len = MHLEN;
796 1.1 drochner m_adj(m_new, ETHER_ALIGN);
797 1.1 drochner
798 1.1 drochner if ((error = bus_dmamap_load(sc->sc_dmat, dmamap,
799 1.74 christos mtod(m_new, void *), m_new->m_len, NULL,
800 1.40 thorpej BUS_DMA_READ|BUS_DMA_NOWAIT)) != 0) {
801 1.99 msaitoh aprint_error_dev(sc->sc_dev,
802 1.99 msaitoh "can't load recv map, error = %d\n", error);
803 1.95 maxv m_freem(m_new);
804 1.1 drochner return (ENOMEM);
805 1.1 drochner }
806 1.1 drochner } else {
807 1.1 drochner m_new = m;
808 1.1 drochner m_new->m_data = m_new->m_pktdat;
809 1.1 drochner m_new->m_len = m_new->m_pkthdr.len = MHLEN;
810 1.1 drochner m_adj(m_new, ETHER_ALIGN);
811 1.1 drochner
812 1.1 drochner /* reuse the dmamap */
813 1.1 drochner }
814 1.1 drochner
815 1.1 drochner r = &sc->ti_rdata->ti_rx_mini_ring[i];
816 1.1 drochner sc->ti_cdata.ti_rx_mini_chain[i] = m_new;
817 1.1 drochner TI_HOSTADDR(r->ti_addr) = dmamap->dm_segs[0].ds_addr;
818 1.1 drochner r->ti_type = TI_BDTYPE_RECV_BD;
819 1.1 drochner r->ti_flags = TI_BDFLAG_MINI_RING;
820 1.67 yamt if (sc->ethercom.ec_if.if_capenable & IFCAP_CSUM_IPv4_Rx)
821 1.21 thorpej r->ti_flags |= TI_BDFLAG_IP_CKSUM;
822 1.21 thorpej if (sc->ethercom.ec_if.if_capenable &
823 1.67 yamt (IFCAP_CSUM_TCPv4_Rx | IFCAP_CSUM_UDPv4_Rx))
824 1.21 thorpej r->ti_flags |= TI_BDFLAG_TCP_UDP_CKSUM;
825 1.1 drochner r->ti_len = m_new->m_len; /* == ds_len */
826 1.1 drochner r->ti_idx = i;
827 1.1 drochner
828 1.77 tnn return (0);
829 1.1 drochner }
830 1.1 drochner
831 1.1 drochner /*
832 1.1 drochner * Initialize a jumbo receive ring descriptor. This allocates
833 1.1 drochner * a jumbo buffer from the pool managed internally by the driver.
834 1.1 drochner */
835 1.77 tnn static int
836 1.77 tnn ti_newbuf_jumbo(struct ti_softc *sc, int i, struct mbuf *m)
837 1.1 drochner {
838 1.1 drochner struct mbuf *m_new = NULL;
839 1.1 drochner struct ti_rx_desc *r;
840 1.1 drochner
841 1.1 drochner if (m == NULL) {
842 1.74 christos void * tbuf = NULL;
843 1.1 drochner
844 1.1 drochner /* Allocate the mbuf. */
845 1.1 drochner MGETHDR(m_new, M_DONTWAIT, MT_DATA);
846 1.1 drochner if (m_new == NULL) {
847 1.99 msaitoh aprint_error_dev(sc->sc_dev,
848 1.99 msaitoh "mbuf allocation failed -- packet dropped!\n");
849 1.77 tnn return (ENOBUFS);
850 1.1 drochner }
851 1.1 drochner
852 1.1 drochner /* Allocate the jumbo buffer */
853 1.68 christos tbuf = ti_jalloc(sc);
854 1.68 christos if (tbuf == NULL) {
855 1.1 drochner m_freem(m_new);
856 1.99 msaitoh aprint_error_dev(sc->sc_dev,
857 1.99 msaitoh "jumbo allocation failed -- packet dropped!\n");
858 1.77 tnn return (ENOBUFS);
859 1.1 drochner }
860 1.1 drochner
861 1.1 drochner /* Attach the buffer to the mbuf. */
862 1.68 christos MEXTADD(m_new, tbuf, ETHER_MAX_LEN_JUMBO,
863 1.46 thorpej M_DEVBUF, ti_jfree, sc);
864 1.62 yamt m_new->m_flags |= M_EXT_RW;
865 1.46 thorpej m_new->m_len = m_new->m_pkthdr.len = ETHER_MAX_LEN_JUMBO;
866 1.1 drochner } else {
867 1.1 drochner m_new = m;
868 1.1 drochner m_new->m_data = m_new->m_ext.ext_buf;
869 1.22 thorpej m_new->m_ext.ext_size = ETHER_MAX_LEN_JUMBO;
870 1.1 drochner }
871 1.1 drochner
872 1.1 drochner m_adj(m_new, ETHER_ALIGN);
873 1.1 drochner /* Set up the descriptor. */
874 1.1 drochner r = &sc->ti_rdata->ti_rx_jumbo_ring[i];
875 1.1 drochner sc->ti_cdata.ti_rx_jumbo_chain[i] = m_new;
876 1.1 drochner TI_HOSTADDR(r->ti_addr) = sc->jumbo_dmaaddr +
877 1.74 christos (mtod(m_new, char *) - (char *)sc->ti_cdata.ti_jumbo_buf);
878 1.1 drochner r->ti_type = TI_BDTYPE_RECV_JUMBO_BD;
879 1.1 drochner r->ti_flags = TI_BDFLAG_JUMBO_RING;
880 1.67 yamt if (sc->ethercom.ec_if.if_capenable & IFCAP_CSUM_IPv4_Rx)
881 1.21 thorpej r->ti_flags |= TI_BDFLAG_IP_CKSUM;
882 1.21 thorpej if (sc->ethercom.ec_if.if_capenable &
883 1.67 yamt (IFCAP_CSUM_TCPv4_Rx | IFCAP_CSUM_UDPv4_Rx))
884 1.21 thorpej r->ti_flags |= TI_BDFLAG_TCP_UDP_CKSUM;
885 1.1 drochner r->ti_len = m_new->m_len;
886 1.1 drochner r->ti_idx = i;
887 1.1 drochner
888 1.77 tnn return (0);
889 1.1 drochner }
890 1.1 drochner
891 1.1 drochner /*
892 1.1 drochner * The standard receive ring has 512 entries in it. At 2K per mbuf cluster,
893 1.1 drochner * that's 1MB or memory, which is a lot. For now, we fill only the first
894 1.1 drochner * 256 ring entries and hope that our CPU is fast enough to keep up with
895 1.1 drochner * the NIC.
896 1.1 drochner */
897 1.77 tnn static int
898 1.77 tnn ti_init_rx_ring_std(struct ti_softc *sc)
899 1.1 drochner {
900 1.8 augustss int i;
901 1.1 drochner struct ti_cmd_desc cmd;
902 1.1 drochner
903 1.1 drochner for (i = 0; i < TI_SSLOTS; i++) {
904 1.1 drochner if (ti_newbuf_std(sc, i, NULL, 0) == ENOBUFS)
905 1.77 tnn return (ENOBUFS);
906 1.1 drochner };
907 1.1 drochner
908 1.1 drochner TI_UPDATE_STDPROD(sc, i - 1);
909 1.1 drochner sc->ti_std = i - 1;
910 1.1 drochner
911 1.77 tnn return (0);
912 1.1 drochner }
913 1.1 drochner
914 1.77 tnn static void
915 1.77 tnn ti_free_rx_ring_std(struct ti_softc *sc)
916 1.1 drochner {
917 1.8 augustss int i;
918 1.1 drochner
919 1.1 drochner for (i = 0; i < TI_STD_RX_RING_CNT; i++) {
920 1.1 drochner if (sc->ti_cdata.ti_rx_std_chain[i] != NULL) {
921 1.1 drochner m_freem(sc->ti_cdata.ti_rx_std_chain[i]);
922 1.1 drochner sc->ti_cdata.ti_rx_std_chain[i] = NULL;
923 1.1 drochner
924 1.1 drochner /* if (sc->std_dmamap[i] == 0) panic() */
925 1.1 drochner bus_dmamap_destroy(sc->sc_dmat, sc->std_dmamap[i]);
926 1.1 drochner sc->std_dmamap[i] = 0;
927 1.1 drochner }
928 1.39 thorpej memset((char *)&sc->ti_rdata->ti_rx_std_ring[i], 0,
929 1.1 drochner sizeof(struct ti_rx_desc));
930 1.1 drochner }
931 1.1 drochner
932 1.1 drochner return;
933 1.1 drochner }
934 1.1 drochner
935 1.77 tnn static int
936 1.77 tnn ti_init_rx_ring_jumbo(struct ti_softc *sc)
937 1.1 drochner {
938 1.8 augustss int i;
939 1.1 drochner struct ti_cmd_desc cmd;
940 1.1 drochner
941 1.61 he for (i = 0; i < TI_JUMBO_RX_RING_CNT; i++) {
942 1.1 drochner if (ti_newbuf_jumbo(sc, i, NULL) == ENOBUFS)
943 1.77 tnn return (ENOBUFS);
944 1.1 drochner };
945 1.1 drochner
946 1.1 drochner TI_UPDATE_JUMBOPROD(sc, i - 1);
947 1.1 drochner sc->ti_jumbo = i - 1;
948 1.1 drochner
949 1.77 tnn return (0);
950 1.1 drochner }
951 1.1 drochner
952 1.77 tnn static void
953 1.77 tnn ti_free_rx_ring_jumbo(struct ti_softc *sc)
954 1.1 drochner {
955 1.8 augustss int i;
956 1.1 drochner
957 1.1 drochner for (i = 0; i < TI_JUMBO_RX_RING_CNT; i++) {
958 1.1 drochner if (sc->ti_cdata.ti_rx_jumbo_chain[i] != NULL) {
959 1.1 drochner m_freem(sc->ti_cdata.ti_rx_jumbo_chain[i]);
960 1.1 drochner sc->ti_cdata.ti_rx_jumbo_chain[i] = NULL;
961 1.1 drochner }
962 1.39 thorpej memset((char *)&sc->ti_rdata->ti_rx_jumbo_ring[i], 0,
963 1.1 drochner sizeof(struct ti_rx_desc));
964 1.1 drochner }
965 1.1 drochner
966 1.1 drochner return;
967 1.1 drochner }
968 1.1 drochner
969 1.77 tnn static int
970 1.77 tnn ti_init_rx_ring_mini(struct ti_softc *sc)
971 1.1 drochner {
972 1.8 augustss int i;
973 1.1 drochner
974 1.1 drochner for (i = 0; i < TI_MSLOTS; i++) {
975 1.1 drochner if (ti_newbuf_mini(sc, i, NULL, 0) == ENOBUFS)
976 1.77 tnn return (ENOBUFS);
977 1.1 drochner };
978 1.1 drochner
979 1.1 drochner TI_UPDATE_MINIPROD(sc, i - 1);
980 1.1 drochner sc->ti_mini = i - 1;
981 1.1 drochner
982 1.77 tnn return (0);
983 1.1 drochner }
984 1.1 drochner
985 1.77 tnn static void
986 1.77 tnn ti_free_rx_ring_mini(struct ti_softc *sc)
987 1.1 drochner {
988 1.8 augustss int i;
989 1.1 drochner
990 1.1 drochner for (i = 0; i < TI_MINI_RX_RING_CNT; i++) {
991 1.1 drochner if (sc->ti_cdata.ti_rx_mini_chain[i] != NULL) {
992 1.1 drochner m_freem(sc->ti_cdata.ti_rx_mini_chain[i]);
993 1.1 drochner sc->ti_cdata.ti_rx_mini_chain[i] = NULL;
994 1.1 drochner
995 1.1 drochner /* if (sc->mini_dmamap[i] == 0) panic() */
996 1.1 drochner bus_dmamap_destroy(sc->sc_dmat, sc->mini_dmamap[i]);
997 1.1 drochner sc->mini_dmamap[i] = 0;
998 1.1 drochner }
999 1.39 thorpej memset((char *)&sc->ti_rdata->ti_rx_mini_ring[i], 0,
1000 1.1 drochner sizeof(struct ti_rx_desc));
1001 1.1 drochner }
1002 1.1 drochner
1003 1.1 drochner return;
1004 1.1 drochner }
1005 1.1 drochner
1006 1.77 tnn static void
1007 1.77 tnn ti_free_tx_ring(struct ti_softc *sc)
1008 1.1 drochner {
1009 1.8 augustss int i;
1010 1.1 drochner struct txdmamap_pool_entry *dma;
1011 1.1 drochner
1012 1.1 drochner for (i = 0; i < TI_TX_RING_CNT; i++) {
1013 1.1 drochner if (sc->ti_cdata.ti_tx_chain[i] != NULL) {
1014 1.1 drochner m_freem(sc->ti_cdata.ti_tx_chain[i]);
1015 1.1 drochner sc->ti_cdata.ti_tx_chain[i] = NULL;
1016 1.1 drochner
1017 1.1 drochner /* if (sc->txdma[i] == 0) panic() */
1018 1.1 drochner SIMPLEQ_INSERT_HEAD(&sc->txdma_list, sc->txdma[i],
1019 1.1 drochner link);
1020 1.1 drochner sc->txdma[i] = 0;
1021 1.1 drochner }
1022 1.39 thorpej memset((char *)&sc->ti_rdata->ti_tx_ring[i], 0,
1023 1.1 drochner sizeof(struct ti_tx_desc));
1024 1.1 drochner }
1025 1.1 drochner
1026 1.1 drochner while ((dma = SIMPLEQ_FIRST(&sc->txdma_list))) {
1027 1.48 lukem SIMPLEQ_REMOVE_HEAD(&sc->txdma_list, link);
1028 1.1 drochner bus_dmamap_destroy(sc->sc_dmat, dma->dmamap);
1029 1.1 drochner free(dma, M_DEVBUF);
1030 1.1 drochner }
1031 1.1 drochner
1032 1.1 drochner return;
1033 1.1 drochner }
1034 1.1 drochner
1035 1.77 tnn static int
1036 1.77 tnn ti_init_tx_ring(struct ti_softc *sc)
1037 1.1 drochner {
1038 1.1 drochner int i, error;
1039 1.1 drochner bus_dmamap_t dmamap;
1040 1.1 drochner struct txdmamap_pool_entry *dma;
1041 1.1 drochner
1042 1.1 drochner sc->ti_txcnt = 0;
1043 1.1 drochner sc->ti_tx_saved_considx = 0;
1044 1.1 drochner CSR_WRITE_4(sc, TI_MB_SENDPROD_IDX, 0);
1045 1.1 drochner
1046 1.1 drochner SIMPLEQ_INIT(&sc->txdma_list);
1047 1.1 drochner for (i = 0; i < TI_RSLOTS; i++) {
1048 1.1 drochner /* I've seen mbufs with 30 fragments. */
1049 1.99 msaitoh if ((error = bus_dmamap_create(sc->sc_dmat,
1050 1.99 msaitoh ETHER_MAX_LEN_JUMBO, 40, ETHER_MAX_LEN_JUMBO, 0,
1051 1.99 msaitoh BUS_DMA_NOWAIT, &dmamap)) != 0) {
1052 1.99 msaitoh aprint_error_dev(sc->sc_dev,
1053 1.99 msaitoh "can't create tx map, error = %d\n", error);
1054 1.77 tnn return (ENOMEM);
1055 1.1 drochner }
1056 1.1 drochner dma = malloc(sizeof(*dma), M_DEVBUF, M_NOWAIT);
1057 1.1 drochner if (!dma) {
1058 1.99 msaitoh aprint_error_dev(sc->sc_dev,
1059 1.99 msaitoh "can't alloc txdmamap_pool_entry\n");
1060 1.1 drochner bus_dmamap_destroy(sc->sc_dmat, dmamap);
1061 1.1 drochner return (ENOMEM);
1062 1.1 drochner }
1063 1.1 drochner dma->dmamap = dmamap;
1064 1.1 drochner SIMPLEQ_INSERT_HEAD(&sc->txdma_list, dma, link);
1065 1.1 drochner }
1066 1.1 drochner
1067 1.77 tnn return (0);
1068 1.1 drochner }
1069 1.1 drochner
1070 1.1 drochner /*
1071 1.1 drochner * The Tigon 2 firmware has a new way to add/delete multicast addresses,
1072 1.1 drochner * but we have to support the old way too so that Tigon 1 cards will
1073 1.1 drochner * work.
1074 1.1 drochner */
1075 1.77 tnn static void
1076 1.77 tnn ti_add_mcast(struct ti_softc *sc, struct ether_addr *addr)
1077 1.1 drochner {
1078 1.1 drochner struct ti_cmd_desc cmd;
1079 1.1 drochner u_int16_t *m;
1080 1.1 drochner u_int32_t ext[2] = {0, 0};
1081 1.1 drochner
1082 1.1 drochner m = (u_int16_t *)&addr->ether_addr_octet[0]; /* XXX */
1083 1.1 drochner
1084 1.77 tnn switch (sc->ti_hwrev) {
1085 1.1 drochner case TI_HWREV_TIGON:
1086 1.1 drochner CSR_WRITE_4(sc, TI_GCR_MAR0, htons(m[0]));
1087 1.1 drochner CSR_WRITE_4(sc, TI_GCR_MAR1, (htons(m[1]) << 16) | htons(m[2]));
1088 1.1 drochner TI_DO_CMD(TI_CMD_ADD_MCAST_ADDR, 0, 0);
1089 1.1 drochner break;
1090 1.1 drochner case TI_HWREV_TIGON_II:
1091 1.1 drochner ext[0] = htons(m[0]);
1092 1.1 drochner ext[1] = (htons(m[1]) << 16) | htons(m[2]);
1093 1.74 christos TI_DO_CMD_EXT(TI_CMD_EXT_ADD_MCAST, 0, 0, (void *)&ext, 2);
1094 1.1 drochner break;
1095 1.1 drochner default:
1096 1.91 chs printf("%s: unknown hwrev\n", device_xname(sc->sc_dev));
1097 1.1 drochner break;
1098 1.1 drochner }
1099 1.1 drochner
1100 1.1 drochner return;
1101 1.1 drochner }
1102 1.1 drochner
1103 1.77 tnn static void
1104 1.77 tnn ti_del_mcast(struct ti_softc *sc, struct ether_addr *addr)
1105 1.1 drochner {
1106 1.1 drochner struct ti_cmd_desc cmd;
1107 1.1 drochner u_int16_t *m;
1108 1.1 drochner u_int32_t ext[2] = {0, 0};
1109 1.1 drochner
1110 1.1 drochner m = (u_int16_t *)&addr->ether_addr_octet[0]; /* XXX */
1111 1.1 drochner
1112 1.77 tnn switch (sc->ti_hwrev) {
1113 1.1 drochner case TI_HWREV_TIGON:
1114 1.1 drochner CSR_WRITE_4(sc, TI_GCR_MAR0, htons(m[0]));
1115 1.1 drochner CSR_WRITE_4(sc, TI_GCR_MAR1, (htons(m[1]) << 16) | htons(m[2]));
1116 1.1 drochner TI_DO_CMD(TI_CMD_DEL_MCAST_ADDR, 0, 0);
1117 1.1 drochner break;
1118 1.1 drochner case TI_HWREV_TIGON_II:
1119 1.1 drochner ext[0] = htons(m[0]);
1120 1.1 drochner ext[1] = (htons(m[1]) << 16) | htons(m[2]);
1121 1.74 christos TI_DO_CMD_EXT(TI_CMD_EXT_DEL_MCAST, 0, 0, (void *)&ext, 2);
1122 1.1 drochner break;
1123 1.1 drochner default:
1124 1.91 chs printf("%s: unknown hwrev\n", device_xname(sc->sc_dev));
1125 1.1 drochner break;
1126 1.1 drochner }
1127 1.1 drochner
1128 1.1 drochner return;
1129 1.1 drochner }
1130 1.1 drochner
1131 1.1 drochner /*
1132 1.1 drochner * Configure the Tigon's multicast address filter.
1133 1.1 drochner *
1134 1.1 drochner * The actual multicast table management is a bit of a pain, thanks to
1135 1.1 drochner * slight brain damage on the part of both Alteon and us. With our
1136 1.1 drochner * multicast code, we are only alerted when the multicast address table
1137 1.1 drochner * changes and at that point we only have the current list of addresses:
1138 1.1 drochner * we only know the current state, not the previous state, so we don't
1139 1.1 drochner * actually know what addresses were removed or added. The firmware has
1140 1.1 drochner * state, but we can't get our grubby mits on it, and there is no 'delete
1141 1.1 drochner * all multicast addresses' command. Hence, we have to maintain our own
1142 1.1 drochner * state so we know what addresses have been programmed into the NIC at
1143 1.1 drochner * any given time.
1144 1.1 drochner */
1145 1.77 tnn static void
1146 1.77 tnn ti_setmulti(struct ti_softc *sc)
1147 1.1 drochner {
1148 1.1 drochner struct ifnet *ifp;
1149 1.1 drochner struct ti_cmd_desc cmd;
1150 1.1 drochner struct ti_mc_entry *mc;
1151 1.1 drochner u_int32_t intrs;
1152 1.1 drochner struct ether_multi *enm;
1153 1.1 drochner struct ether_multistep step;
1154 1.1 drochner
1155 1.1 drochner ifp = &sc->ethercom.ec_if;
1156 1.1 drochner
1157 1.1 drochner /* Disable interrupts. */
1158 1.1 drochner intrs = CSR_READ_4(sc, TI_MB_HOSTINTR);
1159 1.1 drochner CSR_WRITE_4(sc, TI_MB_HOSTINTR, 1);
1160 1.1 drochner
1161 1.1 drochner /* First, zot all the existing filters. */
1162 1.20 enami while ((mc = SIMPLEQ_FIRST(&sc->ti_mc_listhead)) != NULL) {
1163 1.1 drochner ti_del_mcast(sc, &mc->mc_addr);
1164 1.48 lukem SIMPLEQ_REMOVE_HEAD(&sc->ti_mc_listhead, mc_entries);
1165 1.1 drochner free(mc, M_DEVBUF);
1166 1.1 drochner }
1167 1.1 drochner
1168 1.20 enami /*
1169 1.20 enami * Remember all multicast addresses so that we can delete them
1170 1.20 enami * later. Punt if there is a range of addresses or memory shortage.
1171 1.20 enami */
1172 1.1 drochner ETHER_FIRST_MULTI(step, &sc->ethercom, enm);
1173 1.1 drochner while (enm != NULL) {
1174 1.20 enami if (memcmp(enm->enm_addrlo, enm->enm_addrhi,
1175 1.20 enami ETHER_ADDR_LEN) != 0)
1176 1.20 enami goto allmulti;
1177 1.20 enami if ((mc = malloc(sizeof(struct ti_mc_entry), M_DEVBUF,
1178 1.20 enami M_NOWAIT)) == NULL)
1179 1.20 enami goto allmulti;
1180 1.20 enami memcpy(&mc->mc_addr, enm->enm_addrlo, ETHER_ADDR_LEN);
1181 1.1 drochner SIMPLEQ_INSERT_HEAD(&sc->ti_mc_listhead, mc, mc_entries);
1182 1.1 drochner ETHER_NEXT_MULTI(step, enm);
1183 1.1 drochner }
1184 1.1 drochner
1185 1.20 enami /* Accept only programmed multicast addresses */
1186 1.20 enami ifp->if_flags &= ~IFF_ALLMULTI;
1187 1.20 enami TI_DO_CMD(TI_CMD_SET_ALLMULTI, TI_CMD_CODE_ALLMULTI_DIS, 0);
1188 1.20 enami
1189 1.20 enami /* Now program new ones. */
1190 1.48 lukem SIMPLEQ_FOREACH(mc, &sc->ti_mc_listhead, mc_entries)
1191 1.20 enami ti_add_mcast(sc, &mc->mc_addr);
1192 1.20 enami
1193 1.1 drochner /* Re-enable interrupts. */
1194 1.1 drochner CSR_WRITE_4(sc, TI_MB_HOSTINTR, intrs);
1195 1.1 drochner
1196 1.1 drochner return;
1197 1.20 enami
1198 1.20 enami allmulti:
1199 1.20 enami /* No need to keep individual multicast addresses */
1200 1.20 enami while ((mc = SIMPLEQ_FIRST(&sc->ti_mc_listhead)) != NULL) {
1201 1.48 lukem SIMPLEQ_REMOVE_HEAD(&sc->ti_mc_listhead, mc_entries);
1202 1.20 enami free(mc, M_DEVBUF);
1203 1.20 enami }
1204 1.20 enami
1205 1.20 enami /* Accept all multicast addresses */
1206 1.20 enami ifp->if_flags |= IFF_ALLMULTI;
1207 1.20 enami TI_DO_CMD(TI_CMD_SET_ALLMULTI, TI_CMD_CODE_ALLMULTI_ENB, 0);
1208 1.20 enami
1209 1.20 enami /* Re-enable interrupts. */
1210 1.20 enami CSR_WRITE_4(sc, TI_MB_HOSTINTR, intrs);
1211 1.1 drochner }
1212 1.1 drochner
1213 1.1 drochner /*
1214 1.1 drochner * Check to see if the BIOS has configured us for a 64 bit slot when
1215 1.1 drochner * we aren't actually in one. If we detect this condition, we can work
1216 1.1 drochner * around it on the Tigon 2 by setting a bit in the PCI state register,
1217 1.1 drochner * but for the Tigon 1 we must give up and abort the interface attach.
1218 1.1 drochner */
1219 1.77 tnn static int
1220 1.77 tnn ti_64bitslot_war(struct ti_softc *sc)
1221 1.1 drochner {
1222 1.1 drochner if (!(CSR_READ_4(sc, TI_PCI_STATE) & TI_PCISTATE_32BIT_BUS)) {
1223 1.1 drochner CSR_WRITE_4(sc, 0x600, 0);
1224 1.1 drochner CSR_WRITE_4(sc, 0x604, 0);
1225 1.1 drochner CSR_WRITE_4(sc, 0x600, 0x5555AAAA);
1226 1.1 drochner if (CSR_READ_4(sc, 0x604) == 0x5555AAAA) {
1227 1.1 drochner if (sc->ti_hwrev == TI_HWREV_TIGON)
1228 1.77 tnn return (EINVAL);
1229 1.1 drochner else {
1230 1.1 drochner TI_SETBIT(sc, TI_PCI_STATE,
1231 1.1 drochner TI_PCISTATE_32BIT_BUS);
1232 1.77 tnn return (0);
1233 1.1 drochner }
1234 1.1 drochner }
1235 1.1 drochner }
1236 1.1 drochner
1237 1.77 tnn return (0);
1238 1.1 drochner }
1239 1.1 drochner
1240 1.1 drochner /*
1241 1.1 drochner * Do endian, PCI and DMA initialization. Also check the on-board ROM
1242 1.1 drochner * self-test results.
1243 1.1 drochner */
1244 1.77 tnn static int
1245 1.77 tnn ti_chipinit(struct ti_softc *sc)
1246 1.1 drochner {
1247 1.1 drochner u_int32_t cacheline;
1248 1.1 drochner u_int32_t pci_writemax = 0;
1249 1.59 bouyer u_int32_t rev;
1250 1.1 drochner
1251 1.1 drochner /* Initialize link to down state. */
1252 1.1 drochner sc->ti_linkstat = TI_EV_CODE_LINK_DOWN;
1253 1.1 drochner
1254 1.1 drochner /* Set endianness before we access any non-PCI registers. */
1255 1.1 drochner #if BYTE_ORDER == BIG_ENDIAN
1256 1.1 drochner CSR_WRITE_4(sc, TI_MISC_HOST_CTL,
1257 1.1 drochner TI_MHC_BIGENDIAN_INIT | (TI_MHC_BIGENDIAN_INIT << 24));
1258 1.1 drochner #else
1259 1.1 drochner CSR_WRITE_4(sc, TI_MISC_HOST_CTL,
1260 1.1 drochner TI_MHC_LITTLEENDIAN_INIT | (TI_MHC_LITTLEENDIAN_INIT << 24));
1261 1.1 drochner #endif
1262 1.1 drochner
1263 1.1 drochner /* Check the ROM failed bit to see if self-tests passed. */
1264 1.1 drochner if (CSR_READ_4(sc, TI_CPU_STATE) & TI_CPUSTATE_ROMFAIL) {
1265 1.1 drochner printf("%s: board self-diagnostics failed!\n",
1266 1.91 chs device_xname(sc->sc_dev));
1267 1.77 tnn return (ENODEV);
1268 1.1 drochner }
1269 1.1 drochner
1270 1.1 drochner /* Halt the CPU. */
1271 1.1 drochner TI_SETBIT(sc, TI_CPU_STATE, TI_CPUSTATE_HALT);
1272 1.1 drochner
1273 1.1 drochner /* Figure out the hardware revision. */
1274 1.59 bouyer rev = CSR_READ_4(sc, TI_MISC_HOST_CTL) & TI_MHC_CHIP_REV_MASK;
1275 1.77 tnn switch (rev) {
1276 1.1 drochner case TI_REV_TIGON_I:
1277 1.1 drochner sc->ti_hwrev = TI_HWREV_TIGON;
1278 1.1 drochner break;
1279 1.1 drochner case TI_REV_TIGON_II:
1280 1.1 drochner sc->ti_hwrev = TI_HWREV_TIGON_II;
1281 1.1 drochner break;
1282 1.1 drochner default:
1283 1.59 bouyer printf("%s: unsupported chip revision 0x%x\n",
1284 1.91 chs device_xname(sc->sc_dev), rev);
1285 1.77 tnn return (ENODEV);
1286 1.1 drochner }
1287 1.1 drochner
1288 1.1 drochner /* Do special setup for Tigon 2. */
1289 1.1 drochner if (sc->ti_hwrev == TI_HWREV_TIGON_II) {
1290 1.1 drochner TI_SETBIT(sc, TI_CPU_CTL_B, TI_CPUSTATE_HALT);
1291 1.1 drochner TI_SETBIT(sc, TI_MISC_LOCAL_CTL, TI_MLC_SRAM_BANK_256K);
1292 1.1 drochner TI_SETBIT(sc, TI_MISC_CONF, TI_MCR_SRAM_SYNCHRONOUS);
1293 1.1 drochner }
1294 1.1 drochner
1295 1.1 drochner /* Set up the PCI state register. */
1296 1.1 drochner CSR_WRITE_4(sc, TI_PCI_STATE, TI_PCI_READ_CMD|TI_PCI_WRITE_CMD);
1297 1.1 drochner if (sc->ti_hwrev == TI_HWREV_TIGON_II) {
1298 1.1 drochner TI_SETBIT(sc, TI_PCI_STATE, TI_PCISTATE_USE_MEM_RD_MULT);
1299 1.1 drochner }
1300 1.1 drochner
1301 1.1 drochner /* Clear the read/write max DMA parameters. */
1302 1.1 drochner TI_CLRBIT(sc, TI_PCI_STATE, (TI_PCISTATE_WRITE_MAXDMA|
1303 1.1 drochner TI_PCISTATE_READ_MAXDMA));
1304 1.1 drochner
1305 1.1 drochner /* Get cache line size. */
1306 1.1 drochner cacheline = PCI_CACHELINE(CSR_READ_4(sc, PCI_BHLC_REG));
1307 1.1 drochner
1308 1.1 drochner /*
1309 1.1 drochner * If the system has set enabled the PCI memory write
1310 1.1 drochner * and invalidate command in the command register, set
1311 1.1 drochner * the write max parameter accordingly. This is necessary
1312 1.1 drochner * to use MWI with the Tigon 2.
1313 1.1 drochner */
1314 1.1 drochner if (CSR_READ_4(sc, PCI_COMMAND_STATUS_REG)
1315 1.1 drochner & PCI_COMMAND_INVALIDATE_ENABLE) {
1316 1.77 tnn switch (cacheline) {
1317 1.1 drochner case 1:
1318 1.1 drochner case 4:
1319 1.1 drochner case 8:
1320 1.1 drochner case 16:
1321 1.1 drochner case 32:
1322 1.1 drochner case 64:
1323 1.1 drochner break;
1324 1.1 drochner default:
1325 1.1 drochner /* Disable PCI memory write and invalidate. */
1326 1.1 drochner if (bootverbose)
1327 1.1 drochner printf("%s: cache line size %d not "
1328 1.1 drochner "supported; disabling PCI MWI\n",
1329 1.91 chs device_xname(sc->sc_dev), cacheline);
1330 1.1 drochner CSR_WRITE_4(sc, PCI_COMMAND_STATUS_REG,
1331 1.1 drochner CSR_READ_4(sc, PCI_COMMAND_STATUS_REG)
1332 1.1 drochner & ~PCI_COMMAND_INVALIDATE_ENABLE);
1333 1.1 drochner break;
1334 1.1 drochner }
1335 1.1 drochner }
1336 1.1 drochner
1337 1.1 drochner #ifdef __brokenalpha__
1338 1.1 drochner /*
1339 1.1 drochner * From the Alteon sample driver:
1340 1.1 drochner * Must insure that we do not cross an 8K (bytes) boundary
1341 1.66 perry * for DMA reads. Our highest limit is 1K bytes. This is a
1342 1.66 perry * restriction on some ALPHA platforms with early revision
1343 1.66 perry * 21174 PCI chipsets, such as the AlphaPC 164lx
1344 1.1 drochner */
1345 1.1 drochner TI_SETBIT(sc, TI_PCI_STATE, pci_writemax|TI_PCI_READMAX_1024);
1346 1.1 drochner #else
1347 1.1 drochner TI_SETBIT(sc, TI_PCI_STATE, pci_writemax);
1348 1.1 drochner #endif
1349 1.1 drochner
1350 1.1 drochner /* This sets the min dma param all the way up (0xff). */
1351 1.1 drochner TI_SETBIT(sc, TI_PCI_STATE, TI_PCISTATE_MINDMA);
1352 1.1 drochner
1353 1.1 drochner /* Configure DMA variables. */
1354 1.1 drochner #if BYTE_ORDER == BIG_ENDIAN
1355 1.1 drochner CSR_WRITE_4(sc, TI_GCR_OPMODE, TI_OPMODE_BYTESWAP_BD |
1356 1.1 drochner TI_OPMODE_BYTESWAP_DATA | TI_OPMODE_WORDSWAP_BD |
1357 1.1 drochner TI_OPMODE_WARN_ENB | TI_OPMODE_FATAL_ENB |
1358 1.1 drochner TI_OPMODE_DONT_FRAG_JUMBO);
1359 1.1 drochner #else
1360 1.1 drochner CSR_WRITE_4(sc, TI_GCR_OPMODE, TI_OPMODE_BYTESWAP_DATA|
1361 1.1 drochner TI_OPMODE_WORDSWAP_BD|TI_OPMODE_DONT_FRAG_JUMBO|
1362 1.1 drochner TI_OPMODE_WARN_ENB|TI_OPMODE_FATAL_ENB);
1363 1.1 drochner #endif
1364 1.1 drochner
1365 1.1 drochner /*
1366 1.1 drochner * Only allow 1 DMA channel to be active at a time.
1367 1.1 drochner * I don't think this is a good idea, but without it
1368 1.1 drochner * the firmware racks up lots of nicDmaReadRingFull
1369 1.1 drochner * errors.
1370 1.24 bouyer * Incompatible with hardware assisted checksums.
1371 1.1 drochner */
1372 1.24 bouyer if ((sc->ethercom.ec_if.if_capenable &
1373 1.67 yamt (IFCAP_CSUM_TCPv4_Tx | IFCAP_CSUM_TCPv4_Rx |
1374 1.67 yamt IFCAP_CSUM_UDPv4_Tx | IFCAP_CSUM_UDPv4_Rx |
1375 1.67 yamt IFCAP_CSUM_IPv4_Tx | IFCAP_CSUM_IPv4_Rx)) == 0)
1376 1.24 bouyer TI_SETBIT(sc, TI_GCR_OPMODE, TI_OPMODE_1_DMA_ACTIVE);
1377 1.1 drochner
1378 1.1 drochner /* Recommended settings from Tigon manual. */
1379 1.1 drochner CSR_WRITE_4(sc, TI_GCR_DMA_WRITECFG, TI_DMA_STATE_THRESH_8W);
1380 1.1 drochner CSR_WRITE_4(sc, TI_GCR_DMA_READCFG, TI_DMA_STATE_THRESH_8W);
1381 1.1 drochner
1382 1.1 drochner if (ti_64bitslot_war(sc)) {
1383 1.1 drochner printf("%s: bios thinks we're in a 64 bit slot, "
1384 1.91 chs "but we aren't", device_xname(sc->sc_dev));
1385 1.77 tnn return (EINVAL);
1386 1.1 drochner }
1387 1.1 drochner
1388 1.77 tnn return (0);
1389 1.1 drochner }
1390 1.1 drochner
1391 1.1 drochner /*
1392 1.1 drochner * Initialize the general information block and firmware, and
1393 1.1 drochner * start the CPU(s) running.
1394 1.1 drochner */
1395 1.77 tnn static int
1396 1.77 tnn ti_gibinit(struct ti_softc *sc)
1397 1.1 drochner {
1398 1.1 drochner struct ti_rcb *rcb;
1399 1.1 drochner int i;
1400 1.1 drochner struct ifnet *ifp;
1401 1.1 drochner
1402 1.1 drochner ifp = &sc->ethercom.ec_if;
1403 1.1 drochner
1404 1.1 drochner /* Disable interrupts for now. */
1405 1.1 drochner CSR_WRITE_4(sc, TI_MB_HOSTINTR, 1);
1406 1.1 drochner
1407 1.1 drochner /* Tell the chip where to find the general information block. */
1408 1.1 drochner CSR_WRITE_4(sc, TI_GCR_GENINFO_HI, 0);
1409 1.33 thorpej CSR_WRITE_4(sc, TI_GCR_GENINFO_LO, TI_CDGIBADDR(sc));
1410 1.1 drochner
1411 1.1 drochner /* Load the firmware into SRAM. */
1412 1.1 drochner ti_loadfw(sc);
1413 1.1 drochner
1414 1.1 drochner /* Set up the contents of the general info and ring control blocks. */
1415 1.1 drochner
1416 1.1 drochner /* Set up the event ring and producer pointer. */
1417 1.1 drochner rcb = &sc->ti_rdata->ti_info.ti_ev_rcb;
1418 1.1 drochner
1419 1.33 thorpej TI_HOSTADDR(rcb->ti_hostaddr) = TI_CDEVENTADDR(sc, 0);
1420 1.1 drochner rcb->ti_flags = 0;
1421 1.1 drochner TI_HOSTADDR(sc->ti_rdata->ti_info.ti_ev_prodidx_ptr) =
1422 1.33 thorpej TI_CDEVPRODADDR(sc);
1423 1.33 thorpej
1424 1.1 drochner sc->ti_ev_prodidx.ti_idx = 0;
1425 1.1 drochner CSR_WRITE_4(sc, TI_GCR_EVENTCONS_IDX, 0);
1426 1.1 drochner sc->ti_ev_saved_considx = 0;
1427 1.1 drochner
1428 1.1 drochner /* Set up the command ring and producer mailbox. */
1429 1.1 drochner rcb = &sc->ti_rdata->ti_info.ti_cmd_rcb;
1430 1.1 drochner
1431 1.1 drochner TI_HOSTADDR(rcb->ti_hostaddr) = TI_GCR_NIC_ADDR(TI_GCR_CMDRING);
1432 1.1 drochner rcb->ti_flags = 0;
1433 1.1 drochner rcb->ti_max_len = 0;
1434 1.1 drochner for (i = 0; i < TI_CMD_RING_CNT; i++) {
1435 1.1 drochner CSR_WRITE_4(sc, TI_GCR_CMDRING + (i * 4), 0);
1436 1.1 drochner }
1437 1.1 drochner CSR_WRITE_4(sc, TI_GCR_CMDCONS_IDX, 0);
1438 1.1 drochner CSR_WRITE_4(sc, TI_MB_CMDPROD_IDX, 0);
1439 1.1 drochner sc->ti_cmd_saved_prodidx = 0;
1440 1.1 drochner
1441 1.1 drochner /*
1442 1.1 drochner * Assign the address of the stats refresh buffer.
1443 1.1 drochner * We re-use the current stats buffer for this to
1444 1.1 drochner * conserve memory.
1445 1.1 drochner */
1446 1.1 drochner TI_HOSTADDR(sc->ti_rdata->ti_info.ti_refresh_stats_ptr) =
1447 1.33 thorpej TI_CDSTATSADDR(sc);
1448 1.1 drochner
1449 1.1 drochner /* Set up the standard receive ring. */
1450 1.1 drochner rcb = &sc->ti_rdata->ti_info.ti_std_rx_rcb;
1451 1.33 thorpej TI_HOSTADDR(rcb->ti_hostaddr) = TI_CDRXSTDADDR(sc, 0);
1452 1.22 thorpej rcb->ti_max_len = ETHER_MAX_LEN;
1453 1.1 drochner rcb->ti_flags = 0;
1454 1.67 yamt if (ifp->if_capenable & IFCAP_CSUM_IPv4_Rx)
1455 1.21 thorpej rcb->ti_flags |= TI_RCB_FLAG_IP_CKSUM;
1456 1.67 yamt if (ifp->if_capenable & (IFCAP_CSUM_TCPv4_Rx|IFCAP_CSUM_UDPv4_Rx))
1457 1.21 thorpej rcb->ti_flags |= TI_RCB_FLAG_TCP_UDP_CKSUM;
1458 1.65 jdolecek if (VLAN_ATTACHED(&sc->ethercom))
1459 1.21 thorpej rcb->ti_flags |= TI_RCB_FLAG_VLAN_ASSIST;
1460 1.1 drochner
1461 1.1 drochner /* Set up the jumbo receive ring. */
1462 1.1 drochner rcb = &sc->ti_rdata->ti_info.ti_jumbo_rx_rcb;
1463 1.33 thorpej TI_HOSTADDR(rcb->ti_hostaddr) = TI_CDRXJUMBOADDR(sc, 0);
1464 1.22 thorpej rcb->ti_max_len = ETHER_MAX_LEN_JUMBO;
1465 1.1 drochner rcb->ti_flags = 0;
1466 1.67 yamt if (ifp->if_capenable & IFCAP_CSUM_IPv4_Rx)
1467 1.21 thorpej rcb->ti_flags |= TI_RCB_FLAG_IP_CKSUM;
1468 1.67 yamt if (ifp->if_capenable & (IFCAP_CSUM_TCPv4_Rx|IFCAP_CSUM_UDPv4_Rx))
1469 1.21 thorpej rcb->ti_flags |= TI_RCB_FLAG_TCP_UDP_CKSUM;
1470 1.65 jdolecek if (VLAN_ATTACHED(&sc->ethercom))
1471 1.21 thorpej rcb->ti_flags |= TI_RCB_FLAG_VLAN_ASSIST;
1472 1.1 drochner
1473 1.1 drochner /*
1474 1.1 drochner * Set up the mini ring. Only activated on the
1475 1.1 drochner * Tigon 2 but the slot in the config block is
1476 1.1 drochner * still there on the Tigon 1.
1477 1.1 drochner */
1478 1.1 drochner rcb = &sc->ti_rdata->ti_info.ti_mini_rx_rcb;
1479 1.33 thorpej TI_HOSTADDR(rcb->ti_hostaddr) = TI_CDRXMINIADDR(sc, 0);
1480 1.2 drochner rcb->ti_max_len = MHLEN - ETHER_ALIGN;
1481 1.1 drochner if (sc->ti_hwrev == TI_HWREV_TIGON)
1482 1.1 drochner rcb->ti_flags = TI_RCB_FLAG_RING_DISABLED;
1483 1.1 drochner else
1484 1.1 drochner rcb->ti_flags = 0;
1485 1.67 yamt if (ifp->if_capenable & IFCAP_CSUM_IPv4_Rx)
1486 1.21 thorpej rcb->ti_flags |= TI_RCB_FLAG_IP_CKSUM;
1487 1.67 yamt if (ifp->if_capenable & (IFCAP_CSUM_TCPv4_Rx|IFCAP_CSUM_UDPv4_Rx))
1488 1.21 thorpej rcb->ti_flags |= TI_RCB_FLAG_TCP_UDP_CKSUM;
1489 1.65 jdolecek if (VLAN_ATTACHED(&sc->ethercom))
1490 1.21 thorpej rcb->ti_flags |= TI_RCB_FLAG_VLAN_ASSIST;
1491 1.1 drochner
1492 1.1 drochner /*
1493 1.1 drochner * Set up the receive return ring.
1494 1.1 drochner */
1495 1.1 drochner rcb = &sc->ti_rdata->ti_info.ti_return_rcb;
1496 1.33 thorpej TI_HOSTADDR(rcb->ti_hostaddr) = TI_CDRXRTNADDR(sc, 0);
1497 1.1 drochner rcb->ti_flags = 0;
1498 1.1 drochner rcb->ti_max_len = TI_RETURN_RING_CNT;
1499 1.1 drochner TI_HOSTADDR(sc->ti_rdata->ti_info.ti_return_prodidx_ptr) =
1500 1.33 thorpej TI_CDRTNPRODADDR(sc);
1501 1.1 drochner
1502 1.1 drochner /*
1503 1.1 drochner * Set up the tx ring. Note: for the Tigon 2, we have the option
1504 1.1 drochner * of putting the transmit ring in the host's address space and
1505 1.1 drochner * letting the chip DMA it instead of leaving the ring in the NIC's
1506 1.1 drochner * memory and accessing it through the shared memory region. We
1507 1.1 drochner * do this for the Tigon 2, but it doesn't work on the Tigon 1,
1508 1.1 drochner * so we have to revert to the shared memory scheme if we detect
1509 1.1 drochner * a Tigon 1 chip.
1510 1.1 drochner */
1511 1.1 drochner CSR_WRITE_4(sc, TI_WINBASE, TI_TX_RING_BASE);
1512 1.1 drochner if (sc->ti_hwrev == TI_HWREV_TIGON) {
1513 1.30 thorpej sc->ti_tx_ring_nic =
1514 1.1 drochner (struct ti_tx_desc *)(sc->ti_vhandle + TI_WINDOW);
1515 1.1 drochner }
1516 1.39 thorpej memset((char *)sc->ti_rdata->ti_tx_ring, 0,
1517 1.1 drochner TI_TX_RING_CNT * sizeof(struct ti_tx_desc));
1518 1.1 drochner rcb = &sc->ti_rdata->ti_info.ti_tx_rcb;
1519 1.1 drochner if (sc->ti_hwrev == TI_HWREV_TIGON)
1520 1.1 drochner rcb->ti_flags = 0;
1521 1.1 drochner else
1522 1.1 drochner rcb->ti_flags = TI_RCB_FLAG_HOST_RING;
1523 1.67 yamt if (ifp->if_capenable & IFCAP_CSUM_IPv4_Tx)
1524 1.21 thorpej rcb->ti_flags |= TI_RCB_FLAG_IP_CKSUM;
1525 1.21 thorpej /*
1526 1.21 thorpej * When we get the packet, there is a pseudo-header seed already
1527 1.21 thorpej * in the th_sum or uh_sum field. Make sure the firmware doesn't
1528 1.21 thorpej * compute the pseudo-header checksum again!
1529 1.21 thorpej */
1530 1.67 yamt if (ifp->if_capenable & (IFCAP_CSUM_TCPv4_Tx|IFCAP_CSUM_UDPv4_Tx))
1531 1.21 thorpej rcb->ti_flags |= TI_RCB_FLAG_TCP_UDP_CKSUM|
1532 1.21 thorpej TI_RCB_FLAG_NO_PHDR_CKSUM;
1533 1.65 jdolecek if (VLAN_ATTACHED(&sc->ethercom))
1534 1.21 thorpej rcb->ti_flags |= TI_RCB_FLAG_VLAN_ASSIST;
1535 1.1 drochner rcb->ti_max_len = TI_TX_RING_CNT;
1536 1.1 drochner if (sc->ti_hwrev == TI_HWREV_TIGON)
1537 1.1 drochner TI_HOSTADDR(rcb->ti_hostaddr) = TI_TX_RING_BASE;
1538 1.1 drochner else
1539 1.33 thorpej TI_HOSTADDR(rcb->ti_hostaddr) = TI_CDTXADDR(sc, 0);
1540 1.1 drochner TI_HOSTADDR(sc->ti_rdata->ti_info.ti_tx_considx_ptr) =
1541 1.33 thorpej TI_CDTXCONSADDR(sc);
1542 1.1 drochner
1543 1.34 thorpej /*
1544 1.34 thorpej * We're done frobbing the General Information Block. Sync
1545 1.34 thorpej * it. Note we take care of the first stats sync here, as
1546 1.34 thorpej * well.
1547 1.34 thorpej */
1548 1.34 thorpej TI_CDGIBSYNC(sc, BUS_DMASYNC_PREREAD|BUS_DMASYNC_PREWRITE);
1549 1.34 thorpej
1550 1.1 drochner /* Set up tuneables */
1551 1.12 bouyer if (ifp->if_mtu > (ETHERMTU + ETHER_HDR_LEN + ETHER_CRC_LEN) ||
1552 1.12 bouyer (sc->ethercom.ec_capenable & ETHERCAP_VLAN_MTU))
1553 1.1 drochner CSR_WRITE_4(sc, TI_GCR_RX_COAL_TICKS,
1554 1.1 drochner (sc->ti_rx_coal_ticks / 10));
1555 1.1 drochner else
1556 1.1 drochner CSR_WRITE_4(sc, TI_GCR_RX_COAL_TICKS, sc->ti_rx_coal_ticks);
1557 1.1 drochner CSR_WRITE_4(sc, TI_GCR_TX_COAL_TICKS, sc->ti_tx_coal_ticks);
1558 1.1 drochner CSR_WRITE_4(sc, TI_GCR_STAT_TICKS, sc->ti_stat_ticks);
1559 1.1 drochner CSR_WRITE_4(sc, TI_GCR_RX_MAX_COAL_BD, sc->ti_rx_max_coal_bds);
1560 1.1 drochner CSR_WRITE_4(sc, TI_GCR_TX_MAX_COAL_BD, sc->ti_tx_max_coal_bds);
1561 1.1 drochner CSR_WRITE_4(sc, TI_GCR_TX_BUFFER_RATIO, sc->ti_tx_buf_ratio);
1562 1.1 drochner
1563 1.1 drochner /* Turn interrupts on. */
1564 1.1 drochner CSR_WRITE_4(sc, TI_GCR_MASK_INTRS, 0);
1565 1.1 drochner CSR_WRITE_4(sc, TI_MB_HOSTINTR, 0);
1566 1.1 drochner
1567 1.1 drochner /* Start CPU. */
1568 1.1 drochner TI_CLRBIT(sc, TI_CPU_STATE, (TI_CPUSTATE_HALT|TI_CPUSTATE_STEP));
1569 1.1 drochner
1570 1.77 tnn return (0);
1571 1.1 drochner }
1572 1.1 drochner
1573 1.1 drochner /*
1574 1.6 bouyer * look for id in the device list, returning the first match
1575 1.6 bouyer */
1576 1.19 jdolecek static const struct ti_type *
1577 1.77 tnn ti_type_match(struct pci_attach_args *pa)
1578 1.6 bouyer {
1579 1.19 jdolecek const struct ti_type *t;
1580 1.6 bouyer
1581 1.6 bouyer t = ti_devs;
1582 1.77 tnn while (t->ti_name != NULL) {
1583 1.6 bouyer if ((PCI_VENDOR(pa->pa_id) == t->ti_vid) &&
1584 1.6 bouyer (PCI_PRODUCT(pa->pa_id) == t->ti_did)) {
1585 1.6 bouyer return (t);
1586 1.6 bouyer }
1587 1.6 bouyer t++;
1588 1.6 bouyer }
1589 1.6 bouyer
1590 1.77 tnn return (NULL);
1591 1.6 bouyer }
1592 1.6 bouyer
1593 1.6 bouyer /*
1594 1.1 drochner * Probe for a Tigon chip. Check the PCI vendor and device IDs
1595 1.1 drochner * against our list and return its name if we find a match.
1596 1.1 drochner */
1597 1.72 christos static int
1598 1.84 cegger ti_probe(device_t parent, cfdata_t match, void *aux)
1599 1.1 drochner {
1600 1.1 drochner struct pci_attach_args *pa = aux;
1601 1.19 jdolecek const struct ti_type *t;
1602 1.1 drochner
1603 1.6 bouyer t = ti_type_match(pa);
1604 1.1 drochner
1605 1.77 tnn return ((t == NULL) ? 0 : 1);
1606 1.1 drochner }
1607 1.1 drochner
1608 1.72 christos static void
1609 1.84 cegger ti_attach(device_t parent, device_t self, void *aux)
1610 1.1 drochner {
1611 1.1 drochner u_int32_t command;
1612 1.1 drochner struct ifnet *ifp;
1613 1.1 drochner struct ti_softc *sc;
1614 1.77 tnn u_int8_t eaddr[ETHER_ADDR_LEN];
1615 1.1 drochner struct pci_attach_args *pa = aux;
1616 1.1 drochner pci_chipset_tag_t pc = pa->pa_pc;
1617 1.1 drochner pci_intr_handle_t ih;
1618 1.1 drochner const char *intrstr = NULL;
1619 1.1 drochner bus_dma_segment_t dmaseg;
1620 1.6 bouyer int error, dmanseg, nolinear;
1621 1.19 jdolecek const struct ti_type *t;
1622 1.93 christos char intrbuf[PCI_INTRSTR_LEN];
1623 1.6 bouyer
1624 1.6 bouyer t = ti_type_match(pa);
1625 1.6 bouyer if (t == NULL) {
1626 1.99 msaitoh aprint_error("ti_attach: were did the card go ?\n");
1627 1.6 bouyer return;
1628 1.6 bouyer }
1629 1.1 drochner
1630 1.99 msaitoh aprint_normal(": %s (rev. 0x%02x)\n", t->ti_name,
1631 1.99 msaitoh PCI_REVISION(pa->pa_class));
1632 1.1 drochner
1633 1.85 cegger sc = device_private(self);
1634 1.91 chs sc->sc_dev = self;
1635 1.1 drochner
1636 1.1 drochner /*
1637 1.1 drochner * Map control/status registers.
1638 1.1 drochner */
1639 1.6 bouyer nolinear = 0;
1640 1.6 bouyer if (pci_mapreg_map(pa, 0x10,
1641 1.6 bouyer PCI_MAPREG_TYPE_MEM | PCI_MAPREG_MEM_TYPE_32BIT,
1642 1.6 bouyer BUS_SPACE_MAP_LINEAR , &sc->ti_btag, &sc->ti_bhandle,
1643 1.6 bouyer NULL, NULL)) {
1644 1.6 bouyer nolinear = 1;
1645 1.6 bouyer if (pci_mapreg_map(pa, 0x10,
1646 1.6 bouyer PCI_MAPREG_TYPE_MEM | PCI_MAPREG_MEM_TYPE_32BIT,
1647 1.6 bouyer 0 , &sc->ti_btag, &sc->ti_bhandle, NULL, NULL)) {
1648 1.99 msaitoh aprint_error_dev(self, "can't map memory space\n");
1649 1.6 bouyer return;
1650 1.6 bouyer }
1651 1.1 drochner }
1652 1.6 bouyer if (nolinear == 0)
1653 1.45 eeh sc->ti_vhandle = bus_space_vaddr(sc->ti_btag, sc->ti_bhandle);
1654 1.66 perry else
1655 1.6 bouyer sc->ti_vhandle = NULL;
1656 1.1 drochner
1657 1.1 drochner command = pci_conf_read(pc, pa->pa_tag, PCI_COMMAND_STATUS_REG);
1658 1.1 drochner command |= PCI_COMMAND_MASTER_ENABLE;
1659 1.1 drochner pci_conf_write(pc, pa->pa_tag, PCI_COMMAND_STATUS_REG, command);
1660 1.1 drochner
1661 1.1 drochner /* Allocate interrupt */
1662 1.17 sommerfe if (pci_intr_map(pa, &ih)) {
1663 1.91 chs aprint_error_dev(sc->sc_dev, "couldn't map interrupt\n");
1664 1.54 simonb return;
1665 1.1 drochner }
1666 1.93 christos intrstr = pci_intr_string(pc, ih, intrbuf, sizeof(intrbuf));
1667 1.1 drochner sc->sc_ih = pci_intr_establish(pc, ih, IPL_NET, ti_intr, sc);
1668 1.1 drochner if (sc->sc_ih == NULL) {
1669 1.91 chs aprint_error_dev(sc->sc_dev, "couldn't establish interrupt");
1670 1.1 drochner if (intrstr != NULL)
1671 1.87 njoly aprint_error(" at %s", intrstr);
1672 1.87 njoly aprint_error("\n");
1673 1.54 simonb return;
1674 1.1 drochner }
1675 1.91 chs aprint_normal_dev(sc->sc_dev, "interrupting at %s\n", intrstr);
1676 1.1 drochner
1677 1.1 drochner if (ti_chipinit(sc)) {
1678 1.81 cegger aprint_error_dev(self, "chip initialization failed\n");
1679 1.6 bouyer goto fail2;
1680 1.6 bouyer }
1681 1.31 thorpej
1682 1.31 thorpej /*
1683 1.31 thorpej * Deal with some chip diffrences.
1684 1.31 thorpej */
1685 1.31 thorpej switch (sc->ti_hwrev) {
1686 1.31 thorpej case TI_HWREV_TIGON:
1687 1.31 thorpej sc->sc_tx_encap = ti_encap_tigon1;
1688 1.32 thorpej sc->sc_tx_eof = ti_txeof_tigon1;
1689 1.31 thorpej if (nolinear == 1)
1690 1.98 msaitoh aprint_error_dev(self,
1691 1.98 msaitoh "memory space not mapped linear\n");
1692 1.31 thorpej break;
1693 1.31 thorpej
1694 1.31 thorpej case TI_HWREV_TIGON_II:
1695 1.31 thorpej sc->sc_tx_encap = ti_encap_tigon2;
1696 1.32 thorpej sc->sc_tx_eof = ti_txeof_tigon2;
1697 1.31 thorpej break;
1698 1.31 thorpej
1699 1.31 thorpej default:
1700 1.99 msaitoh aprint_error_dev(self, "Unknown chip version: %d\n",
1701 1.31 thorpej sc->ti_hwrev);
1702 1.31 thorpej goto fail2;
1703 1.1 drochner }
1704 1.1 drochner
1705 1.1 drochner /* Zero out the NIC's on-board SRAM. */
1706 1.1 drochner ti_mem(sc, 0x2000, 0x100000 - 0x2000, NULL);
1707 1.1 drochner
1708 1.1 drochner /* Init again -- zeroing memory may have clobbered some registers. */
1709 1.1 drochner if (ti_chipinit(sc)) {
1710 1.81 cegger aprint_error_dev(self, "chip initialization failed\n");
1711 1.6 bouyer goto fail2;
1712 1.1 drochner }
1713 1.1 drochner
1714 1.1 drochner /*
1715 1.1 drochner * Get station address from the EEPROM. Note: the manual states
1716 1.1 drochner * that the MAC address is at offset 0x8c, however the data is
1717 1.1 drochner * stored as two longwords (since that's how it's loaded into
1718 1.42 wiz * the NIC). This means the MAC address is actually preceded
1719 1.1 drochner * by two zero bytes. We need to skip over those.
1720 1.1 drochner */
1721 1.74 christos if (ti_read_eeprom(sc, (void *)&eaddr,
1722 1.1 drochner TI_EE_MAC_OFFSET + 2, ETHER_ADDR_LEN)) {
1723 1.81 cegger aprint_error_dev(self, "failed to read station address\n");
1724 1.6 bouyer goto fail2;
1725 1.1 drochner }
1726 1.1 drochner
1727 1.1 drochner /*
1728 1.1 drochner * A Tigon chip was detected. Inform the world.
1729 1.1 drochner */
1730 1.99 msaitoh aprint_normal_dev(self, "Ethernet address: %s\n",ether_sprintf(eaddr));
1731 1.1 drochner
1732 1.1 drochner sc->sc_dmat = pa->pa_dmat;
1733 1.1 drochner
1734 1.1 drochner /* Allocate the general information block and ring buffers. */
1735 1.1 drochner if ((error = bus_dmamem_alloc(sc->sc_dmat,
1736 1.13 thorpej sizeof(struct ti_ring_data), PAGE_SIZE, 0, &dmaseg, 1, &dmanseg,
1737 1.1 drochner BUS_DMA_NOWAIT)) != 0) {
1738 1.99 msaitoh aprint_error_dev(self,
1739 1.98 msaitoh "can't allocate ring buffer, error = %d\n", error);
1740 1.6 bouyer goto fail2;
1741 1.1 drochner }
1742 1.1 drochner
1743 1.1 drochner if ((error = bus_dmamem_map(sc->sc_dmat, &dmaseg, dmanseg,
1744 1.74 christos sizeof(struct ti_ring_data), (void **)&sc->ti_rdata,
1745 1.1 drochner BUS_DMA_NOWAIT|BUS_DMA_COHERENT)) != 0) {
1746 1.99 msaitoh aprint_error_dev(self,
1747 1.98 msaitoh "can't map ring buffer, error = %d\n", error);
1748 1.6 bouyer goto fail2;
1749 1.1 drochner }
1750 1.1 drochner
1751 1.1 drochner if ((error = bus_dmamap_create(sc->sc_dmat,
1752 1.1 drochner sizeof(struct ti_ring_data), 1,
1753 1.1 drochner sizeof(struct ti_ring_data), 0, BUS_DMA_NOWAIT,
1754 1.1 drochner &sc->info_dmamap)) != 0) {
1755 1.99 msaitoh aprint_error_dev(self,
1756 1.98 msaitoh "can't create ring buffer DMA map, error = %d\n", error);
1757 1.6 bouyer goto fail2;
1758 1.1 drochner }
1759 1.1 drochner
1760 1.1 drochner if ((error = bus_dmamap_load(sc->sc_dmat, sc->info_dmamap,
1761 1.1 drochner sc->ti_rdata, sizeof(struct ti_ring_data), NULL,
1762 1.1 drochner BUS_DMA_NOWAIT)) != 0) {
1763 1.99 msaitoh aprint_error_dev(self,
1764 1.98 msaitoh "can't load ring buffer DMA map, error = %d\n", error);
1765 1.6 bouyer goto fail2;
1766 1.1 drochner }
1767 1.1 drochner
1768 1.1 drochner sc->info_dmaaddr = sc->info_dmamap->dm_segs[0].ds_addr;
1769 1.1 drochner
1770 1.39 thorpej memset(sc->ti_rdata, 0, sizeof(struct ti_ring_data));
1771 1.1 drochner
1772 1.1 drochner /* Try to allocate memory for jumbo buffers. */
1773 1.1 drochner if (ti_alloc_jumbo_mem(sc)) {
1774 1.81 cegger aprint_error_dev(self, "jumbo buffer allocation failed\n");
1775 1.6 bouyer goto fail2;
1776 1.1 drochner }
1777 1.1 drochner
1778 1.20 enami SIMPLEQ_INIT(&sc->ti_mc_listhead);
1779 1.20 enami
1780 1.15 bouyer /*
1781 1.36 bjh21 * We really need a better way to tell a 1000baseT card
1782 1.15 bouyer * from a 1000baseSX one, since in theory there could be
1783 1.36 bjh21 * OEMed 1000baseT cards from lame vendors who aren't
1784 1.15 bouyer * clever enough to change the PCI ID. For the moment
1785 1.15 bouyer * though, the AceNIC is the only copper card available.
1786 1.15 bouyer */
1787 1.15 bouyer if ((PCI_VENDOR(pa->pa_id) == PCI_VENDOR_ALTEON &&
1788 1.15 bouyer PCI_PRODUCT(pa->pa_id) == PCI_PRODUCT_ALTEON_ACENIC_COPPER) ||
1789 1.15 bouyer (PCI_VENDOR(pa->pa_id) == PCI_VENDOR_NETGEAR &&
1790 1.15 bouyer PCI_PRODUCT(pa->pa_id) == PCI_PRODUCT_NETGEAR_GA620T))
1791 1.15 bouyer sc->ti_copper = 1;
1792 1.15 bouyer else
1793 1.15 bouyer sc->ti_copper = 0;
1794 1.15 bouyer
1795 1.1 drochner /* Set default tuneable values. */
1796 1.1 drochner sc->ti_stat_ticks = 2 * TI_TICKS_PER_SEC;
1797 1.1 drochner sc->ti_rx_coal_ticks = TI_TICKS_PER_SEC / 5000;
1798 1.1 drochner sc->ti_tx_coal_ticks = TI_TICKS_PER_SEC / 500;
1799 1.1 drochner sc->ti_rx_max_coal_bds = 64;
1800 1.1 drochner sc->ti_tx_max_coal_bds = 128;
1801 1.1 drochner sc->ti_tx_buf_ratio = 21;
1802 1.1 drochner
1803 1.1 drochner /* Set up ifnet structure */
1804 1.1 drochner ifp = &sc->ethercom.ec_if;
1805 1.1 drochner ifp->if_softc = sc;
1806 1.91 chs strlcpy(ifp->if_xname, device_xname(sc->sc_dev), IFNAMSIZ);
1807 1.1 drochner ifp->if_flags = IFF_BROADCAST | IFF_SIMPLEX | IFF_MULTICAST;
1808 1.1 drochner ifp->if_ioctl = ti_ioctl;
1809 1.1 drochner ifp->if_start = ti_start;
1810 1.1 drochner ifp->if_watchdog = ti_watchdog;
1811 1.16 thorpej IFQ_SET_READY(&ifp->if_snd);
1812 1.16 thorpej
1813 1.16 thorpej #if 0
1814 1.16 thorpej /*
1815 1.16 thorpej * XXX This is not really correct -- we don't necessarily
1816 1.16 thorpej * XXX want to queue up as many as we can transmit at the
1817 1.16 thorpej * XXX upper layer like that. Someone with a board should
1818 1.16 thorpej * XXX check to see how this affects performance.
1819 1.16 thorpej */
1820 1.1 drochner ifp->if_snd.ifq_maxlen = TI_TX_RING_CNT - 1;
1821 1.16 thorpej #endif
1822 1.1 drochner
1823 1.12 bouyer /*
1824 1.12 bouyer * We can support 802.1Q VLAN-sized frames.
1825 1.12 bouyer */
1826 1.15 bouyer sc->ethercom.ec_capabilities |=
1827 1.15 bouyer ETHERCAP_VLAN_MTU | ETHERCAP_VLAN_HWTAGGING;
1828 1.12 bouyer
1829 1.21 thorpej /*
1830 1.21 thorpej * We can do IPv4, TCPv4, and UDPv4 checksums in hardware.
1831 1.21 thorpej */
1832 1.67 yamt ifp->if_capabilities |=
1833 1.67 yamt IFCAP_CSUM_IPv4_Tx | IFCAP_CSUM_IPv4_Rx |
1834 1.67 yamt IFCAP_CSUM_TCPv4_Tx | IFCAP_CSUM_TCPv4_Rx |
1835 1.67 yamt IFCAP_CSUM_UDPv4_Tx | IFCAP_CSUM_UDPv4_Rx;
1836 1.21 thorpej
1837 1.1 drochner /* Set up ifmedia support. */
1838 1.1 drochner ifmedia_init(&sc->ifmedia, IFM_IMASK, ti_ifmedia_upd, ti_ifmedia_sts);
1839 1.15 bouyer if (sc->ti_copper) {
1840 1.15 bouyer /*
1841 1.15 bouyer * Copper cards allow manual 10/100 mode selection,
1842 1.36 bjh21 * but not manual 1000baseT mode selection. Why?
1843 1.58 wiz * Because currently there's no way to specify the
1844 1.15 bouyer * master/slave setting through the firmware interface,
1845 1.15 bouyer * so Alteon decided to just bag it and handle it
1846 1.15 bouyer * via autonegotiation.
1847 1.15 bouyer */
1848 1.15 bouyer ifmedia_add(&sc->ifmedia, IFM_ETHER|IFM_10_T, 0, NULL);
1849 1.15 bouyer ifmedia_add(&sc->ifmedia,
1850 1.15 bouyer IFM_ETHER|IFM_10_T|IFM_FDX, 0, NULL);
1851 1.15 bouyer ifmedia_add(&sc->ifmedia, IFM_ETHER|IFM_100_TX, 0, NULL);
1852 1.15 bouyer ifmedia_add(&sc->ifmedia,
1853 1.15 bouyer IFM_ETHER|IFM_100_TX|IFM_FDX, 0, NULL);
1854 1.36 bjh21 ifmedia_add(&sc->ifmedia, IFM_ETHER|IFM_1000_T, 0, NULL);
1855 1.15 bouyer ifmedia_add(&sc->ifmedia,
1856 1.36 bjh21 IFM_ETHER|IFM_1000_T|IFM_FDX, 0, NULL);
1857 1.15 bouyer } else {
1858 1.15 bouyer /* Fiber cards don't support 10/100 modes. */
1859 1.15 bouyer ifmedia_add(&sc->ifmedia, IFM_ETHER|IFM_1000_SX, 0, NULL);
1860 1.15 bouyer ifmedia_add(&sc->ifmedia, IFM_ETHER|IFM_1000_SX|IFM_FDX, 0, NULL);
1861 1.15 bouyer }
1862 1.1 drochner ifmedia_add(&sc->ifmedia, IFM_ETHER|IFM_AUTO, 0, NULL);
1863 1.1 drochner ifmedia_set(&sc->ifmedia, IFM_ETHER|IFM_AUTO);
1864 1.1 drochner
1865 1.1 drochner /*
1866 1.1 drochner * Call MI attach routines.
1867 1.1 drochner */
1868 1.1 drochner if_attach(ifp);
1869 1.1 drochner ether_ifattach(ifp, eaddr);
1870 1.1 drochner
1871 1.86 tsutsui /*
1872 1.86 tsutsui * Add shutdown hook so that DMA is disabled prior to reboot. Not
1873 1.86 tsutsui * doing do could allow DMA to corrupt kernel memory during the
1874 1.86 tsutsui * reboot before the driver initializes.
1875 1.86 tsutsui */
1876 1.86 tsutsui if (pmf_device_register1(self, NULL, NULL, ti_shutdown))
1877 1.86 tsutsui pmf_class_network_register(self, ifp);
1878 1.86 tsutsui else
1879 1.86 tsutsui aprint_error_dev(self, "couldn't establish power handler\n");
1880 1.86 tsutsui
1881 1.6 bouyer return;
1882 1.6 bouyer fail2:
1883 1.6 bouyer pci_intr_disestablish(pc, sc->sc_ih);
1884 1.6 bouyer return;
1885 1.1 drochner }
1886 1.1 drochner
1887 1.1 drochner /*
1888 1.1 drochner * Frame reception handling. This is called if there's a frame
1889 1.1 drochner * on the receive return list.
1890 1.1 drochner *
1891 1.1 drochner * Note: we have to be able to handle three possibilities here:
1892 1.1 drochner * 1) the frame is from the mini receive ring (can only happen)
1893 1.1 drochner * on Tigon 2 boards)
1894 1.25 wiz * 2) the frame is from the jumbo receive ring
1895 1.1 drochner * 3) the frame is from the standard receive ring
1896 1.1 drochner */
1897 1.1 drochner
1898 1.77 tnn static void
1899 1.77 tnn ti_rxeof(struct ti_softc *sc)
1900 1.1 drochner {
1901 1.1 drochner struct ifnet *ifp;
1902 1.1 drochner struct ti_cmd_desc cmd;
1903 1.1 drochner
1904 1.1 drochner ifp = &sc->ethercom.ec_if;
1905 1.1 drochner
1906 1.77 tnn while (sc->ti_rx_saved_considx != sc->ti_return_prodidx.ti_idx) {
1907 1.1 drochner struct ti_rx_desc *cur_rx;
1908 1.1 drochner u_int32_t rxidx;
1909 1.1 drochner struct mbuf *m = NULL;
1910 1.21 thorpej struct ether_header *eh;
1911 1.1 drochner bus_dmamap_t dmamap;
1912 1.1 drochner
1913 1.1 drochner cur_rx =
1914 1.1 drochner &sc->ti_rdata->ti_rx_return_ring[sc->ti_rx_saved_considx];
1915 1.1 drochner rxidx = cur_rx->ti_idx;
1916 1.1 drochner TI_INC(sc->ti_rx_saved_considx, TI_RETURN_RING_CNT);
1917 1.1 drochner
1918 1.1 drochner if (cur_rx->ti_flags & TI_BDFLAG_JUMBO_RING) {
1919 1.1 drochner TI_INC(sc->ti_jumbo, TI_JUMBO_RX_RING_CNT);
1920 1.1 drochner m = sc->ti_cdata.ti_rx_jumbo_chain[rxidx];
1921 1.1 drochner sc->ti_cdata.ti_rx_jumbo_chain[rxidx] = NULL;
1922 1.1 drochner if (cur_rx->ti_flags & TI_BDFLAG_ERROR) {
1923 1.1 drochner ifp->if_ierrors++;
1924 1.1 drochner ti_newbuf_jumbo(sc, sc->ti_jumbo, m);
1925 1.1 drochner continue;
1926 1.1 drochner }
1927 1.1 drochner if (ti_newbuf_jumbo(sc, sc->ti_jumbo, NULL)
1928 1.1 drochner == ENOBUFS) {
1929 1.1 drochner ifp->if_ierrors++;
1930 1.1 drochner ti_newbuf_jumbo(sc, sc->ti_jumbo, m);
1931 1.1 drochner continue;
1932 1.1 drochner }
1933 1.1 drochner } else if (cur_rx->ti_flags & TI_BDFLAG_MINI_RING) {
1934 1.1 drochner TI_INC(sc->ti_mini, TI_MINI_RX_RING_CNT);
1935 1.1 drochner m = sc->ti_cdata.ti_rx_mini_chain[rxidx];
1936 1.1 drochner sc->ti_cdata.ti_rx_mini_chain[rxidx] = NULL;
1937 1.1 drochner dmamap = sc->mini_dmamap[rxidx];
1938 1.1 drochner sc->mini_dmamap[rxidx] = 0;
1939 1.1 drochner if (cur_rx->ti_flags & TI_BDFLAG_ERROR) {
1940 1.1 drochner ifp->if_ierrors++;
1941 1.1 drochner ti_newbuf_mini(sc, sc->ti_mini, m, dmamap);
1942 1.1 drochner continue;
1943 1.1 drochner }
1944 1.1 drochner if (ti_newbuf_mini(sc, sc->ti_mini, NULL, dmamap)
1945 1.1 drochner == ENOBUFS) {
1946 1.1 drochner ifp->if_ierrors++;
1947 1.1 drochner ti_newbuf_mini(sc, sc->ti_mini, m, dmamap);
1948 1.1 drochner continue;
1949 1.1 drochner }
1950 1.1 drochner } else {
1951 1.1 drochner TI_INC(sc->ti_std, TI_STD_RX_RING_CNT);
1952 1.1 drochner m = sc->ti_cdata.ti_rx_std_chain[rxidx];
1953 1.1 drochner sc->ti_cdata.ti_rx_std_chain[rxidx] = NULL;
1954 1.1 drochner dmamap = sc->std_dmamap[rxidx];
1955 1.1 drochner sc->std_dmamap[rxidx] = 0;
1956 1.1 drochner if (cur_rx->ti_flags & TI_BDFLAG_ERROR) {
1957 1.1 drochner ifp->if_ierrors++;
1958 1.1 drochner ti_newbuf_std(sc, sc->ti_std, m, dmamap);
1959 1.1 drochner continue;
1960 1.1 drochner }
1961 1.1 drochner if (ti_newbuf_std(sc, sc->ti_std, NULL, dmamap)
1962 1.1 drochner == ENOBUFS) {
1963 1.1 drochner ifp->if_ierrors++;
1964 1.1 drochner ti_newbuf_std(sc, sc->ti_std, m, dmamap);
1965 1.1 drochner continue;
1966 1.1 drochner }
1967 1.1 drochner }
1968 1.1 drochner
1969 1.1 drochner m->m_pkthdr.len = m->m_len = cur_rx->ti_len;
1970 1.1 drochner ifp->if_ipackets++;
1971 1.97 ozaki m_set_rcvif(m, ifp);
1972 1.1 drochner
1973 1.1 drochner /*
1974 1.1 drochner * Handle BPF listeners. Let the BPF user see the packet, but
1975 1.1 drochner * don't pass it up to the ether_input() layer unless it's
1976 1.1 drochner * a broadcast packet, multicast packet, matches our ethernet
1977 1.1 drochner * address or the interface is in promiscuous mode.
1978 1.1 drochner */
1979 1.89 joerg bpf_mtap(ifp, m);
1980 1.1 drochner
1981 1.21 thorpej eh = mtod(m, struct ether_header *);
1982 1.21 thorpej switch (ntohs(eh->ether_type)) {
1983 1.44 itojun #ifdef INET
1984 1.21 thorpej case ETHERTYPE_IP:
1985 1.21 thorpej {
1986 1.21 thorpej struct ip *ip = (struct ip *) (eh + 1);
1987 1.21 thorpej
1988 1.21 thorpej /*
1989 1.21 thorpej * Note the Tigon firmware does not invert
1990 1.21 thorpej * the checksum for us, hence the XOR.
1991 1.21 thorpej */
1992 1.21 thorpej m->m_pkthdr.csum_flags |= M_CSUM_IPv4;
1993 1.21 thorpej if ((cur_rx->ti_ip_cksum ^ 0xffff) != 0)
1994 1.21 thorpej m->m_pkthdr.csum_flags |= M_CSUM_IPv4_BAD;
1995 1.21 thorpej /*
1996 1.21 thorpej * ntohs() the constant so the compiler can
1997 1.21 thorpej * optimize...
1998 1.21 thorpej *
1999 1.21 thorpej * XXX Figure out a sane way to deal with
2000 1.21 thorpej * fragmented packets.
2001 1.21 thorpej */
2002 1.21 thorpej if ((ip->ip_off & htons(IP_MF|IP_OFFMASK)) == 0) {
2003 1.21 thorpej switch (ip->ip_p) {
2004 1.21 thorpej case IPPROTO_TCP:
2005 1.21 thorpej m->m_pkthdr.csum_data =
2006 1.21 thorpej cur_rx->ti_tcp_udp_cksum;
2007 1.21 thorpej m->m_pkthdr.csum_flags |=
2008 1.21 thorpej M_CSUM_TCPv4|M_CSUM_DATA;
2009 1.21 thorpej break;
2010 1.21 thorpej case IPPROTO_UDP:
2011 1.21 thorpej m->m_pkthdr.csum_data =
2012 1.21 thorpej cur_rx->ti_tcp_udp_cksum;
2013 1.21 thorpej m->m_pkthdr.csum_flags |=
2014 1.21 thorpej M_CSUM_UDPv4|M_CSUM_DATA;
2015 1.21 thorpej break;
2016 1.21 thorpej default:
2017 1.21 thorpej /* Nothing */;
2018 1.21 thorpej }
2019 1.21 thorpej }
2020 1.21 thorpej break;
2021 1.21 thorpej }
2022 1.44 itojun #endif
2023 1.21 thorpej default:
2024 1.21 thorpej /* Nothing. */
2025 1.21 thorpej break;
2026 1.21 thorpej }
2027 1.1 drochner
2028 1.65 jdolecek if (cur_rx->ti_flags & TI_BDFLAG_VLAN_TAG) {
2029 1.65 jdolecek VLAN_INPUT_TAG(ifp, m,
2030 1.65 jdolecek /* ti_vlan_tag also has the priority, trim it */
2031 1.65 jdolecek cur_rx->ti_vlan_tag & 4095,
2032 1.65 jdolecek continue);
2033 1.65 jdolecek }
2034 1.53 itojun
2035 1.96 ozaki if_percpuq_enqueue(ifp->if_percpuq, m);
2036 1.1 drochner }
2037 1.1 drochner
2038 1.1 drochner /* Only necessary on the Tigon 1. */
2039 1.1 drochner if (sc->ti_hwrev == TI_HWREV_TIGON)
2040 1.1 drochner CSR_WRITE_4(sc, TI_GCR_RXRETURNCONS_IDX,
2041 1.1 drochner sc->ti_rx_saved_considx);
2042 1.1 drochner
2043 1.1 drochner TI_UPDATE_STDPROD(sc, sc->ti_std);
2044 1.1 drochner TI_UPDATE_MINIPROD(sc, sc->ti_mini);
2045 1.1 drochner TI_UPDATE_JUMBOPROD(sc, sc->ti_jumbo);
2046 1.1 drochner }
2047 1.1 drochner
2048 1.77 tnn static void
2049 1.77 tnn ti_txeof_tigon1(struct ti_softc *sc)
2050 1.1 drochner {
2051 1.1 drochner struct ti_tx_desc *cur_tx = NULL;
2052 1.1 drochner struct ifnet *ifp;
2053 1.29 thorpej struct txdmamap_pool_entry *dma;
2054 1.1 drochner
2055 1.1 drochner ifp = &sc->ethercom.ec_if;
2056 1.1 drochner
2057 1.1 drochner /*
2058 1.1 drochner * Go through our tx ring and free mbufs for those
2059 1.1 drochner * frames that have been sent.
2060 1.1 drochner */
2061 1.1 drochner while (sc->ti_tx_saved_considx != sc->ti_tx_considx.ti_idx) {
2062 1.1 drochner u_int32_t idx = 0;
2063 1.1 drochner
2064 1.1 drochner idx = sc->ti_tx_saved_considx;
2065 1.32 thorpej if (idx > 383)
2066 1.32 thorpej CSR_WRITE_4(sc, TI_WINBASE,
2067 1.32 thorpej TI_TX_RING_BASE + 6144);
2068 1.32 thorpej else if (idx > 255)
2069 1.32 thorpej CSR_WRITE_4(sc, TI_WINBASE,
2070 1.32 thorpej TI_TX_RING_BASE + 4096);
2071 1.32 thorpej else if (idx > 127)
2072 1.32 thorpej CSR_WRITE_4(sc, TI_WINBASE,
2073 1.32 thorpej TI_TX_RING_BASE + 2048);
2074 1.32 thorpej else
2075 1.32 thorpej CSR_WRITE_4(sc, TI_WINBASE,
2076 1.32 thorpej TI_TX_RING_BASE);
2077 1.32 thorpej cur_tx = &sc->ti_tx_ring_nic[idx % 128];
2078 1.32 thorpej if (cur_tx->ti_flags & TI_BDFLAG_END)
2079 1.32 thorpej ifp->if_opackets++;
2080 1.32 thorpej if (sc->ti_cdata.ti_tx_chain[idx] != NULL) {
2081 1.32 thorpej m_freem(sc->ti_cdata.ti_tx_chain[idx]);
2082 1.32 thorpej sc->ti_cdata.ti_tx_chain[idx] = NULL;
2083 1.32 thorpej
2084 1.32 thorpej dma = sc->txdma[idx];
2085 1.32 thorpej KDASSERT(dma != NULL);
2086 1.32 thorpej bus_dmamap_sync(sc->sc_dmat, dma->dmamap, 0,
2087 1.32 thorpej dma->dmamap->dm_mapsize, BUS_DMASYNC_POSTWRITE);
2088 1.32 thorpej bus_dmamap_unload(sc->sc_dmat, dma->dmamap);
2089 1.32 thorpej
2090 1.32 thorpej SIMPLEQ_INSERT_HEAD(&sc->txdma_list, dma, link);
2091 1.32 thorpej sc->txdma[idx] = NULL;
2092 1.32 thorpej }
2093 1.32 thorpej sc->ti_txcnt--;
2094 1.32 thorpej TI_INC(sc->ti_tx_saved_considx, TI_TX_RING_CNT);
2095 1.32 thorpej ifp->if_timer = 0;
2096 1.32 thorpej }
2097 1.32 thorpej
2098 1.32 thorpej if (cur_tx != NULL)
2099 1.32 thorpej ifp->if_flags &= ~IFF_OACTIVE;
2100 1.32 thorpej }
2101 1.32 thorpej
2102 1.77 tnn static void
2103 1.77 tnn ti_txeof_tigon2(struct ti_softc *sc)
2104 1.32 thorpej {
2105 1.32 thorpej struct ti_tx_desc *cur_tx = NULL;
2106 1.32 thorpej struct ifnet *ifp;
2107 1.32 thorpej struct txdmamap_pool_entry *dma;
2108 1.35 thorpej int firstidx, cnt;
2109 1.32 thorpej
2110 1.32 thorpej ifp = &sc->ethercom.ec_if;
2111 1.32 thorpej
2112 1.32 thorpej /*
2113 1.32 thorpej * Go through our tx ring and free mbufs for those
2114 1.32 thorpej * frames that have been sent.
2115 1.32 thorpej */
2116 1.35 thorpej firstidx = sc->ti_tx_saved_considx;
2117 1.35 thorpej cnt = 0;
2118 1.32 thorpej while (sc->ti_tx_saved_considx != sc->ti_tx_considx.ti_idx) {
2119 1.32 thorpej u_int32_t idx = 0;
2120 1.32 thorpej
2121 1.32 thorpej idx = sc->ti_tx_saved_considx;
2122 1.32 thorpej cur_tx = &sc->ti_rdata->ti_tx_ring[idx];
2123 1.1 drochner if (cur_tx->ti_flags & TI_BDFLAG_END)
2124 1.1 drochner ifp->if_opackets++;
2125 1.1 drochner if (sc->ti_cdata.ti_tx_chain[idx] != NULL) {
2126 1.1 drochner m_freem(sc->ti_cdata.ti_tx_chain[idx]);
2127 1.1 drochner sc->ti_cdata.ti_tx_chain[idx] = NULL;
2128 1.1 drochner
2129 1.29 thorpej dma = sc->txdma[idx];
2130 1.29 thorpej KDASSERT(dma != NULL);
2131 1.29 thorpej bus_dmamap_sync(sc->sc_dmat, dma->dmamap, 0,
2132 1.29 thorpej dma->dmamap->dm_mapsize, BUS_DMASYNC_POSTWRITE);
2133 1.29 thorpej bus_dmamap_unload(sc->sc_dmat, dma->dmamap);
2134 1.29 thorpej
2135 1.29 thorpej SIMPLEQ_INSERT_HEAD(&sc->txdma_list, dma, link);
2136 1.29 thorpej sc->txdma[idx] = NULL;
2137 1.1 drochner }
2138 1.35 thorpej cnt++;
2139 1.1 drochner sc->ti_txcnt--;
2140 1.1 drochner TI_INC(sc->ti_tx_saved_considx, TI_TX_RING_CNT);
2141 1.1 drochner ifp->if_timer = 0;
2142 1.1 drochner }
2143 1.1 drochner
2144 1.35 thorpej if (cnt != 0)
2145 1.35 thorpej TI_CDTXSYNC(sc, firstidx, cnt, BUS_DMASYNC_POSTWRITE);
2146 1.35 thorpej
2147 1.1 drochner if (cur_tx != NULL)
2148 1.1 drochner ifp->if_flags &= ~IFF_OACTIVE;
2149 1.1 drochner }
2150 1.1 drochner
2151 1.77 tnn static int
2152 1.77 tnn ti_intr(void *xsc)
2153 1.1 drochner {
2154 1.1 drochner struct ti_softc *sc;
2155 1.1 drochner struct ifnet *ifp;
2156 1.1 drochner
2157 1.1 drochner sc = xsc;
2158 1.1 drochner ifp = &sc->ethercom.ec_if;
2159 1.1 drochner
2160 1.1 drochner #ifdef notdef
2161 1.1 drochner /* Avoid this for now -- checking this register is expensive. */
2162 1.1 drochner /* Make sure this is really our interrupt. */
2163 1.1 drochner if (!(CSR_READ_4(sc, TI_MISC_HOST_CTL) & TI_MHC_INTSTATE))
2164 1.1 drochner return (0);
2165 1.1 drochner #endif
2166 1.1 drochner
2167 1.1 drochner /* Ack interrupt and stop others from occuring. */
2168 1.1 drochner CSR_WRITE_4(sc, TI_MB_HOSTINTR, 1);
2169 1.1 drochner
2170 1.1 drochner if (ifp->if_flags & IFF_RUNNING) {
2171 1.1 drochner /* Check RX return ring producer/consumer */
2172 1.1 drochner ti_rxeof(sc);
2173 1.1 drochner
2174 1.1 drochner /* Check TX ring producer/consumer */
2175 1.32 thorpej (*sc->sc_tx_eof)(sc);
2176 1.1 drochner }
2177 1.1 drochner
2178 1.1 drochner ti_handle_events(sc);
2179 1.1 drochner
2180 1.1 drochner /* Re-enable interrupts. */
2181 1.1 drochner CSR_WRITE_4(sc, TI_MB_HOSTINTR, 0);
2182 1.1 drochner
2183 1.16 thorpej if ((ifp->if_flags & IFF_RUNNING) != 0 &&
2184 1.16 thorpej IFQ_IS_EMPTY(&ifp->if_snd) == 0)
2185 1.1 drochner ti_start(ifp);
2186 1.1 drochner
2187 1.1 drochner return (1);
2188 1.1 drochner }
2189 1.1 drochner
2190 1.77 tnn static void
2191 1.77 tnn ti_stats_update(struct ti_softc *sc)
2192 1.1 drochner {
2193 1.1 drochner struct ifnet *ifp;
2194 1.1 drochner
2195 1.1 drochner ifp = &sc->ethercom.ec_if;
2196 1.1 drochner
2197 1.34 thorpej TI_CDSTATSSYNC(sc, BUS_DMASYNC_POSTREAD);
2198 1.34 thorpej
2199 1.1 drochner ifp->if_collisions +=
2200 1.1 drochner (sc->ti_rdata->ti_info.ti_stats.dot3StatsSingleCollisionFrames +
2201 1.1 drochner sc->ti_rdata->ti_info.ti_stats.dot3StatsMultipleCollisionFrames +
2202 1.1 drochner sc->ti_rdata->ti_info.ti_stats.dot3StatsExcessiveCollisions +
2203 1.1 drochner sc->ti_rdata->ti_info.ti_stats.dot3StatsLateCollisions) -
2204 1.1 drochner ifp->if_collisions;
2205 1.1 drochner
2206 1.34 thorpej TI_CDSTATSSYNC(sc, BUS_DMASYNC_PREREAD);
2207 1.1 drochner }
2208 1.1 drochner
2209 1.1 drochner /*
2210 1.1 drochner * Encapsulate an mbuf chain in the tx ring by coupling the mbuf data
2211 1.1 drochner * pointers to descriptors.
2212 1.1 drochner */
2213 1.77 tnn static int
2214 1.77 tnn ti_encap_tigon1(struct ti_softc *sc, struct mbuf *m_head, u_int32_t *txidx)
2215 1.1 drochner {
2216 1.1 drochner struct ti_tx_desc *f = NULL;
2217 1.1 drochner u_int32_t frag, cur, cnt = 0;
2218 1.1 drochner struct txdmamap_pool_entry *dma;
2219 1.1 drochner bus_dmamap_t dmamap;
2220 1.1 drochner int error, i;
2221 1.53 itojun struct m_tag *mtag;
2222 1.21 thorpej u_int16_t csum_flags = 0;
2223 1.1 drochner
2224 1.1 drochner dma = SIMPLEQ_FIRST(&sc->txdma_list);
2225 1.6 bouyer if (dma == NULL) {
2226 1.6 bouyer return ENOMEM;
2227 1.6 bouyer }
2228 1.1 drochner dmamap = dma->dmamap;
2229 1.1 drochner
2230 1.40 thorpej error = bus_dmamap_load_mbuf(sc->sc_dmat, dmamap, m_head,
2231 1.49 bouyer BUS_DMA_WRITE | BUS_DMA_NOWAIT);
2232 1.1 drochner if (error) {
2233 1.1 drochner struct mbuf *m;
2234 1.68 christos int j = 0;
2235 1.1 drochner for (m = m_head; m; m = m->m_next)
2236 1.68 christos j++;
2237 1.1 drochner printf("ti_encap: bus_dmamap_load_mbuf (len %d, %d frags) "
2238 1.68 christos "error %d\n", m_head->m_pkthdr.len, j, error);
2239 1.1 drochner return (ENOMEM);
2240 1.1 drochner }
2241 1.1 drochner
2242 1.1 drochner cur = frag = *txidx;
2243 1.1 drochner
2244 1.21 thorpej if (m_head->m_pkthdr.csum_flags & M_CSUM_IPv4) {
2245 1.21 thorpej /* IP header checksum field must be 0! */
2246 1.21 thorpej csum_flags |= TI_BDFLAG_IP_CKSUM;
2247 1.21 thorpej }
2248 1.21 thorpej if (m_head->m_pkthdr.csum_flags & (M_CSUM_TCPv4|M_CSUM_UDPv4))
2249 1.21 thorpej csum_flags |= TI_BDFLAG_TCP_UDP_CKSUM;
2250 1.21 thorpej
2251 1.21 thorpej /* XXX fragmented packet checksum capability? */
2252 1.21 thorpej
2253 1.1 drochner /*
2254 1.1 drochner * Start packing the mbufs in this chain into
2255 1.1 drochner * the fragment pointers. Stop when we run out
2256 1.1 drochner * of fragments or hit the end of the mbuf chain.
2257 1.1 drochner */
2258 1.1 drochner for (i = 0; i < dmamap->dm_nsegs; i++) {
2259 1.31 thorpej if (frag > 383)
2260 1.31 thorpej CSR_WRITE_4(sc, TI_WINBASE,
2261 1.31 thorpej TI_TX_RING_BASE + 6144);
2262 1.31 thorpej else if (frag > 255)
2263 1.31 thorpej CSR_WRITE_4(sc, TI_WINBASE,
2264 1.31 thorpej TI_TX_RING_BASE + 4096);
2265 1.31 thorpej else if (frag > 127)
2266 1.31 thorpej CSR_WRITE_4(sc, TI_WINBASE,
2267 1.31 thorpej TI_TX_RING_BASE + 2048);
2268 1.31 thorpej else
2269 1.31 thorpej CSR_WRITE_4(sc, TI_WINBASE,
2270 1.31 thorpej TI_TX_RING_BASE);
2271 1.31 thorpej f = &sc->ti_tx_ring_nic[frag % 128];
2272 1.31 thorpej if (sc->ti_cdata.ti_tx_chain[frag] != NULL)
2273 1.31 thorpej break;
2274 1.31 thorpej TI_HOSTADDR(f->ti_addr) = dmamap->dm_segs[i].ds_addr;
2275 1.31 thorpej f->ti_len = dmamap->dm_segs[i].ds_len;
2276 1.31 thorpej f->ti_flags = csum_flags;
2277 1.65 jdolecek if ((mtag = VLAN_OUTPUT_TAG(&sc->ethercom, m_head))) {
2278 1.31 thorpej f->ti_flags |= TI_BDFLAG_VLAN_TAG;
2279 1.65 jdolecek f->ti_vlan_tag = VLAN_TAG_VALUE(mtag);
2280 1.31 thorpej } else {
2281 1.31 thorpej f->ti_vlan_tag = 0;
2282 1.31 thorpej }
2283 1.31 thorpej /*
2284 1.31 thorpej * Sanity check: avoid coming within 16 descriptors
2285 1.31 thorpej * of the end of the ring.
2286 1.31 thorpej */
2287 1.31 thorpej if ((TI_TX_RING_CNT - (sc->ti_txcnt + cnt)) < 16)
2288 1.77 tnn return (ENOBUFS);
2289 1.31 thorpej cur = frag;
2290 1.31 thorpej TI_INC(frag, TI_TX_RING_CNT);
2291 1.31 thorpej cnt++;
2292 1.31 thorpej }
2293 1.31 thorpej
2294 1.31 thorpej if (i < dmamap->dm_nsegs)
2295 1.77 tnn return (ENOBUFS);
2296 1.31 thorpej
2297 1.31 thorpej if (frag == sc->ti_tx_saved_considx)
2298 1.77 tnn return (ENOBUFS);
2299 1.31 thorpej
2300 1.31 thorpej sc->ti_tx_ring_nic[cur % 128].ti_flags |=
2301 1.31 thorpej TI_BDFLAG_END;
2302 1.31 thorpej
2303 1.31 thorpej /* Sync the packet's DMA map. */
2304 1.31 thorpej bus_dmamap_sync(sc->sc_dmat, dmamap, 0, dmamap->dm_mapsize,
2305 1.31 thorpej BUS_DMASYNC_PREWRITE);
2306 1.31 thorpej
2307 1.31 thorpej sc->ti_cdata.ti_tx_chain[cur] = m_head;
2308 1.48 lukem SIMPLEQ_REMOVE_HEAD(&sc->txdma_list, link);
2309 1.31 thorpej sc->txdma[cur] = dma;
2310 1.31 thorpej sc->ti_txcnt += cnt;
2311 1.31 thorpej
2312 1.31 thorpej *txidx = frag;
2313 1.31 thorpej
2314 1.77 tnn return (0);
2315 1.31 thorpej }
2316 1.31 thorpej
2317 1.77 tnn static int
2318 1.77 tnn ti_encap_tigon2(struct ti_softc *sc, struct mbuf *m_head, u_int32_t *txidx)
2319 1.31 thorpej {
2320 1.31 thorpej struct ti_tx_desc *f = NULL;
2321 1.35 thorpej u_int32_t frag, firstfrag, cur, cnt = 0;
2322 1.31 thorpej struct txdmamap_pool_entry *dma;
2323 1.31 thorpej bus_dmamap_t dmamap;
2324 1.31 thorpej int error, i;
2325 1.53 itojun struct m_tag *mtag;
2326 1.31 thorpej u_int16_t csum_flags = 0;
2327 1.31 thorpej
2328 1.31 thorpej dma = SIMPLEQ_FIRST(&sc->txdma_list);
2329 1.31 thorpej if (dma == NULL) {
2330 1.31 thorpej return ENOMEM;
2331 1.31 thorpej }
2332 1.31 thorpej dmamap = dma->dmamap;
2333 1.31 thorpej
2334 1.40 thorpej error = bus_dmamap_load_mbuf(sc->sc_dmat, dmamap, m_head,
2335 1.49 bouyer BUS_DMA_WRITE | BUS_DMA_NOWAIT);
2336 1.31 thorpej if (error) {
2337 1.31 thorpej struct mbuf *m;
2338 1.68 christos int j = 0;
2339 1.31 thorpej for (m = m_head; m; m = m->m_next)
2340 1.68 christos j++;
2341 1.31 thorpej printf("ti_encap: bus_dmamap_load_mbuf (len %d, %d frags) "
2342 1.68 christos "error %d\n", m_head->m_pkthdr.len, j, error);
2343 1.31 thorpej return (ENOMEM);
2344 1.31 thorpej }
2345 1.31 thorpej
2346 1.35 thorpej cur = firstfrag = frag = *txidx;
2347 1.31 thorpej
2348 1.31 thorpej if (m_head->m_pkthdr.csum_flags & M_CSUM_IPv4) {
2349 1.31 thorpej /* IP header checksum field must be 0! */
2350 1.31 thorpej csum_flags |= TI_BDFLAG_IP_CKSUM;
2351 1.31 thorpej }
2352 1.31 thorpej if (m_head->m_pkthdr.csum_flags & (M_CSUM_TCPv4|M_CSUM_UDPv4))
2353 1.31 thorpej csum_flags |= TI_BDFLAG_TCP_UDP_CKSUM;
2354 1.31 thorpej
2355 1.31 thorpej /* XXX fragmented packet checksum capability? */
2356 1.31 thorpej
2357 1.31 thorpej /*
2358 1.31 thorpej * Start packing the mbufs in this chain into
2359 1.31 thorpej * the fragment pointers. Stop when we run out
2360 1.31 thorpej * of fragments or hit the end of the mbuf chain.
2361 1.31 thorpej */
2362 1.31 thorpej for (i = 0; i < dmamap->dm_nsegs; i++) {
2363 1.31 thorpej f = &sc->ti_rdata->ti_tx_ring[frag];
2364 1.31 thorpej if (sc->ti_cdata.ti_tx_chain[frag] != NULL)
2365 1.31 thorpej break;
2366 1.31 thorpej TI_HOSTADDR(f->ti_addr) = dmamap->dm_segs[i].ds_addr;
2367 1.31 thorpej f->ti_len = dmamap->dm_segs[i].ds_len;
2368 1.31 thorpej f->ti_flags = csum_flags;
2369 1.65 jdolecek if ((mtag = VLAN_OUTPUT_TAG(&sc->ethercom, m_head))) {
2370 1.31 thorpej f->ti_flags |= TI_BDFLAG_VLAN_TAG;
2371 1.65 jdolecek f->ti_vlan_tag = VLAN_TAG_VALUE(mtag);
2372 1.31 thorpej } else {
2373 1.31 thorpej f->ti_vlan_tag = 0;
2374 1.31 thorpej }
2375 1.31 thorpej /*
2376 1.31 thorpej * Sanity check: avoid coming within 16 descriptors
2377 1.31 thorpej * of the end of the ring.
2378 1.31 thorpej */
2379 1.31 thorpej if ((TI_TX_RING_CNT - (sc->ti_txcnt + cnt)) < 16)
2380 1.77 tnn return (ENOBUFS);
2381 1.31 thorpej cur = frag;
2382 1.31 thorpej TI_INC(frag, TI_TX_RING_CNT);
2383 1.31 thorpej cnt++;
2384 1.1 drochner }
2385 1.1 drochner
2386 1.1 drochner if (i < dmamap->dm_nsegs)
2387 1.77 tnn return (ENOBUFS);
2388 1.1 drochner
2389 1.1 drochner if (frag == sc->ti_tx_saved_considx)
2390 1.77 tnn return (ENOBUFS);
2391 1.1 drochner
2392 1.31 thorpej sc->ti_rdata->ti_tx_ring[cur].ti_flags |= TI_BDFLAG_END;
2393 1.29 thorpej
2394 1.29 thorpej /* Sync the packet's DMA map. */
2395 1.29 thorpej bus_dmamap_sync(sc->sc_dmat, dmamap, 0, dmamap->dm_mapsize,
2396 1.29 thorpej BUS_DMASYNC_PREWRITE);
2397 1.35 thorpej
2398 1.35 thorpej /* Sync the descriptors we are using. */
2399 1.35 thorpej TI_CDTXSYNC(sc, firstfrag, cnt, BUS_DMASYNC_PREWRITE);
2400 1.29 thorpej
2401 1.1 drochner sc->ti_cdata.ti_tx_chain[cur] = m_head;
2402 1.48 lukem SIMPLEQ_REMOVE_HEAD(&sc->txdma_list, link);
2403 1.1 drochner sc->txdma[cur] = dma;
2404 1.1 drochner sc->ti_txcnt += cnt;
2405 1.1 drochner
2406 1.1 drochner *txidx = frag;
2407 1.1 drochner
2408 1.77 tnn return (0);
2409 1.1 drochner }
2410 1.1 drochner
2411 1.1 drochner /*
2412 1.1 drochner * Main transmit routine. To avoid having to do mbuf copies, we put pointers
2413 1.1 drochner * to the mbuf data regions directly in the transmit descriptors.
2414 1.1 drochner */
2415 1.77 tnn static void
2416 1.77 tnn ti_start(struct ifnet *ifp)
2417 1.1 drochner {
2418 1.1 drochner struct ti_softc *sc;
2419 1.1 drochner struct mbuf *m_head = NULL;
2420 1.1 drochner u_int32_t prodidx = 0;
2421 1.1 drochner
2422 1.1 drochner sc = ifp->if_softc;
2423 1.1 drochner
2424 1.1 drochner prodidx = CSR_READ_4(sc, TI_MB_SENDPROD_IDX);
2425 1.1 drochner
2426 1.16 thorpej while (sc->ti_cdata.ti_tx_chain[prodidx] == NULL) {
2427 1.16 thorpej IFQ_POLL(&ifp->if_snd, m_head);
2428 1.1 drochner if (m_head == NULL)
2429 1.1 drochner break;
2430 1.1 drochner
2431 1.1 drochner /*
2432 1.1 drochner * Pack the data into the transmit ring. If we
2433 1.1 drochner * don't have room, set the OACTIVE flag and wait
2434 1.1 drochner * for the NIC to drain the ring.
2435 1.1 drochner */
2436 1.31 thorpej if ((*sc->sc_tx_encap)(sc, m_head, &prodidx)) {
2437 1.1 drochner ifp->if_flags |= IFF_OACTIVE;
2438 1.1 drochner break;
2439 1.1 drochner }
2440 1.16 thorpej
2441 1.16 thorpej IFQ_DEQUEUE(&ifp->if_snd, m_head);
2442 1.1 drochner
2443 1.1 drochner /*
2444 1.1 drochner * If there's a BPF listener, bounce a copy of this frame
2445 1.1 drochner * to him.
2446 1.1 drochner */
2447 1.89 joerg bpf_mtap(ifp, m_head);
2448 1.1 drochner }
2449 1.1 drochner
2450 1.1 drochner /* Transmit */
2451 1.1 drochner CSR_WRITE_4(sc, TI_MB_SENDPROD_IDX, prodidx);
2452 1.1 drochner
2453 1.1 drochner /*
2454 1.1 drochner * Set a timeout in case the chip goes out to lunch.
2455 1.1 drochner */
2456 1.1 drochner ifp->if_timer = 5;
2457 1.1 drochner }
2458 1.1 drochner
2459 1.77 tnn static void
2460 1.77 tnn ti_init(void *xsc)
2461 1.1 drochner {
2462 1.1 drochner struct ti_softc *sc = xsc;
2463 1.1 drochner int s;
2464 1.1 drochner
2465 1.18 thorpej s = splnet();
2466 1.1 drochner
2467 1.1 drochner /* Cancel pending I/O and flush buffers. */
2468 1.1 drochner ti_stop(sc);
2469 1.1 drochner
2470 1.1 drochner /* Init the gen info block, ring control blocks and firmware. */
2471 1.1 drochner if (ti_gibinit(sc)) {
2472 1.91 chs aprint_error_dev(sc->sc_dev, "initialization failure\n");
2473 1.1 drochner splx(s);
2474 1.1 drochner return;
2475 1.1 drochner }
2476 1.1 drochner
2477 1.1 drochner splx(s);
2478 1.1 drochner }
2479 1.1 drochner
2480 1.77 tnn static void
2481 1.77 tnn ti_init2(struct ti_softc *sc)
2482 1.1 drochner {
2483 1.1 drochner struct ti_cmd_desc cmd;
2484 1.1 drochner struct ifnet *ifp;
2485 1.75 dyoung const u_int8_t *m;
2486 1.1 drochner struct ifmedia *ifm;
2487 1.1 drochner int tmp;
2488 1.1 drochner
2489 1.1 drochner ifp = &sc->ethercom.ec_if;
2490 1.1 drochner
2491 1.1 drochner /* Specify MTU and interface index. */
2492 1.91 chs CSR_WRITE_4(sc, TI_GCR_IFINDEX, device_unit(sc->sc_dev)); /* ??? */
2493 1.23 thorpej
2494 1.23 thorpej tmp = ifp->if_mtu + ETHER_HDR_LEN + ETHER_CRC_LEN;
2495 1.23 thorpej if (sc->ethercom.ec_capenable & ETHERCAP_VLAN_MTU)
2496 1.23 thorpej tmp += ETHER_VLAN_ENCAP_LEN;
2497 1.23 thorpej CSR_WRITE_4(sc, TI_GCR_IFMTU, tmp);
2498 1.23 thorpej
2499 1.1 drochner TI_DO_CMD(TI_CMD_UPDATE_GENCOM, 0, 0);
2500 1.1 drochner
2501 1.1 drochner /* Load our MAC address. */
2502 1.75 dyoung m = (const u_int8_t *)CLLADDR(ifp->if_sadl);
2503 1.1 drochner CSR_WRITE_4(sc, TI_GCR_PAR0, (m[0] << 8) | m[1]);
2504 1.1 drochner CSR_WRITE_4(sc, TI_GCR_PAR1, (m[2] << 24) | (m[3] << 16)
2505 1.1 drochner | (m[4] << 8) | m[5]);
2506 1.1 drochner TI_DO_CMD(TI_CMD_SET_MAC_ADDR, 0, 0);
2507 1.1 drochner
2508 1.1 drochner /* Enable or disable promiscuous mode as needed. */
2509 1.1 drochner if (ifp->if_flags & IFF_PROMISC) {
2510 1.1 drochner TI_DO_CMD(TI_CMD_SET_PROMISC_MODE, TI_CMD_CODE_PROMISC_ENB, 0);
2511 1.1 drochner } else {
2512 1.1 drochner TI_DO_CMD(TI_CMD_SET_PROMISC_MODE, TI_CMD_CODE_PROMISC_DIS, 0);
2513 1.1 drochner }
2514 1.1 drochner
2515 1.1 drochner /* Program multicast filter. */
2516 1.1 drochner ti_setmulti(sc);
2517 1.1 drochner
2518 1.1 drochner /*
2519 1.1 drochner * If this is a Tigon 1, we should tell the
2520 1.1 drochner * firmware to use software packet filtering.
2521 1.1 drochner */
2522 1.1 drochner if (sc->ti_hwrev == TI_HWREV_TIGON) {
2523 1.1 drochner TI_DO_CMD(TI_CMD_FDR_FILTERING, TI_CMD_CODE_FILT_ENB, 0);
2524 1.1 drochner }
2525 1.1 drochner
2526 1.1 drochner /* Init RX ring. */
2527 1.1 drochner ti_init_rx_ring_std(sc);
2528 1.1 drochner
2529 1.1 drochner /* Init jumbo RX ring. */
2530 1.12 bouyer if (ifp->if_mtu > (MCLBYTES - ETHER_HDR_LEN - ETHER_CRC_LEN))
2531 1.1 drochner ti_init_rx_ring_jumbo(sc);
2532 1.1 drochner
2533 1.1 drochner /*
2534 1.1 drochner * If this is a Tigon 2, we can also configure the
2535 1.1 drochner * mini ring.
2536 1.1 drochner */
2537 1.1 drochner if (sc->ti_hwrev == TI_HWREV_TIGON_II)
2538 1.1 drochner ti_init_rx_ring_mini(sc);
2539 1.1 drochner
2540 1.1 drochner CSR_WRITE_4(sc, TI_GCR_RXRETURNCONS_IDX, 0);
2541 1.1 drochner sc->ti_rx_saved_considx = 0;
2542 1.1 drochner
2543 1.1 drochner /* Init TX ring. */
2544 1.1 drochner ti_init_tx_ring(sc);
2545 1.1 drochner
2546 1.1 drochner /* Tell firmware we're alive. */
2547 1.1 drochner TI_DO_CMD(TI_CMD_HOST_STATE, TI_CMD_CODE_STACK_UP, 0);
2548 1.1 drochner
2549 1.1 drochner /* Enable host interrupts. */
2550 1.1 drochner CSR_WRITE_4(sc, TI_MB_HOSTINTR, 0);
2551 1.1 drochner
2552 1.1 drochner ifp->if_flags |= IFF_RUNNING;
2553 1.1 drochner ifp->if_flags &= ~IFF_OACTIVE;
2554 1.1 drochner
2555 1.1 drochner /*
2556 1.1 drochner * Make sure to set media properly. We have to do this
2557 1.1 drochner * here since we have to issue commands in order to set
2558 1.1 drochner * the link negotiation and we can't issue commands until
2559 1.1 drochner * the firmware is running.
2560 1.1 drochner */
2561 1.1 drochner ifm = &sc->ifmedia;
2562 1.1 drochner tmp = ifm->ifm_media;
2563 1.1 drochner ifm->ifm_media = ifm->ifm_cur->ifm_media;
2564 1.1 drochner ti_ifmedia_upd(ifp);
2565 1.1 drochner ifm->ifm_media = tmp;
2566 1.1 drochner }
2567 1.1 drochner
2568 1.1 drochner /*
2569 1.1 drochner * Set media options.
2570 1.1 drochner */
2571 1.77 tnn static int
2572 1.77 tnn ti_ifmedia_upd(struct ifnet *ifp)
2573 1.1 drochner {
2574 1.1 drochner struct ti_softc *sc;
2575 1.1 drochner struct ifmedia *ifm;
2576 1.1 drochner struct ti_cmd_desc cmd;
2577 1.1 drochner
2578 1.1 drochner sc = ifp->if_softc;
2579 1.1 drochner ifm = &sc->ifmedia;
2580 1.1 drochner
2581 1.1 drochner if (IFM_TYPE(ifm->ifm_media) != IFM_ETHER)
2582 1.77 tnn return (EINVAL);
2583 1.1 drochner
2584 1.77 tnn switch (IFM_SUBTYPE(ifm->ifm_media)) {
2585 1.1 drochner case IFM_AUTO:
2586 1.1 drochner CSR_WRITE_4(sc, TI_GCR_GLINK, TI_GLNK_PREF|TI_GLNK_1000MB|
2587 1.1 drochner TI_GLNK_FULL_DUPLEX|TI_GLNK_RX_FLOWCTL_Y|
2588 1.1 drochner TI_GLNK_AUTONEGENB|TI_GLNK_ENB);
2589 1.1 drochner CSR_WRITE_4(sc, TI_GCR_LINK, TI_LNK_100MB|TI_LNK_10MB|
2590 1.1 drochner TI_LNK_FULL_DUPLEX|TI_LNK_HALF_DUPLEX|
2591 1.1 drochner TI_LNK_AUTONEGENB|TI_LNK_ENB);
2592 1.1 drochner TI_DO_CMD(TI_CMD_LINK_NEGOTIATION,
2593 1.1 drochner TI_CMD_CODE_NEGOTIATE_BOTH, 0);
2594 1.1 drochner break;
2595 1.3 thorpej case IFM_1000_SX:
2596 1.36 bjh21 case IFM_1000_T:
2597 1.15 bouyer if ((ifm->ifm_media & IFM_GMASK) == IFM_FDX) {
2598 1.15 bouyer CSR_WRITE_4(sc, TI_GCR_GLINK,
2599 1.15 bouyer TI_GLNK_PREF|TI_GLNK_1000MB|TI_GLNK_FULL_DUPLEX|
2600 1.15 bouyer TI_GLNK_RX_FLOWCTL_Y|TI_GLNK_ENB);
2601 1.15 bouyer } else {
2602 1.15 bouyer CSR_WRITE_4(sc, TI_GCR_GLINK,
2603 1.15 bouyer TI_GLNK_PREF|TI_GLNK_1000MB|
2604 1.15 bouyer TI_GLNK_RX_FLOWCTL_Y|TI_GLNK_ENB);
2605 1.15 bouyer }
2606 1.1 drochner CSR_WRITE_4(sc, TI_GCR_LINK, 0);
2607 1.1 drochner TI_DO_CMD(TI_CMD_LINK_NEGOTIATION,
2608 1.1 drochner TI_CMD_CODE_NEGOTIATE_GIGABIT, 0);
2609 1.1 drochner break;
2610 1.1 drochner case IFM_100_FX:
2611 1.1 drochner case IFM_10_FL:
2612 1.15 bouyer case IFM_100_TX:
2613 1.15 bouyer case IFM_10_T:
2614 1.1 drochner CSR_WRITE_4(sc, TI_GCR_GLINK, 0);
2615 1.1 drochner CSR_WRITE_4(sc, TI_GCR_LINK, TI_LNK_ENB|TI_LNK_PREF);
2616 1.15 bouyer if (IFM_SUBTYPE(ifm->ifm_media) == IFM_100_FX ||
2617 1.15 bouyer IFM_SUBTYPE(ifm->ifm_media) == IFM_100_TX) {
2618 1.1 drochner TI_SETBIT(sc, TI_GCR_LINK, TI_LNK_100MB);
2619 1.1 drochner } else {
2620 1.1 drochner TI_SETBIT(sc, TI_GCR_LINK, TI_LNK_10MB);
2621 1.1 drochner }
2622 1.1 drochner if ((ifm->ifm_media & IFM_GMASK) == IFM_FDX) {
2623 1.1 drochner TI_SETBIT(sc, TI_GCR_LINK, TI_LNK_FULL_DUPLEX);
2624 1.1 drochner } else {
2625 1.1 drochner TI_SETBIT(sc, TI_GCR_LINK, TI_LNK_HALF_DUPLEX);
2626 1.1 drochner }
2627 1.1 drochner TI_DO_CMD(TI_CMD_LINK_NEGOTIATION,
2628 1.1 drochner TI_CMD_CODE_NEGOTIATE_10_100, 0);
2629 1.1 drochner break;
2630 1.1 drochner }
2631 1.1 drochner
2632 1.5 thorpej sc->ethercom.ec_if.if_baudrate =
2633 1.5 thorpej ifmedia_baudrate(ifm->ifm_media);
2634 1.5 thorpej
2635 1.77 tnn return (0);
2636 1.1 drochner }
2637 1.1 drochner
2638 1.1 drochner /*
2639 1.1 drochner * Report current media status.
2640 1.1 drochner */
2641 1.77 tnn static void
2642 1.77 tnn ti_ifmedia_sts(struct ifnet *ifp, struct ifmediareq *ifmr)
2643 1.1 drochner {
2644 1.1 drochner struct ti_softc *sc;
2645 1.15 bouyer u_int32_t media = 0;
2646 1.1 drochner
2647 1.1 drochner sc = ifp->if_softc;
2648 1.1 drochner
2649 1.1 drochner ifmr->ifm_status = IFM_AVALID;
2650 1.1 drochner ifmr->ifm_active = IFM_ETHER;
2651 1.1 drochner
2652 1.1 drochner if (sc->ti_linkstat == TI_EV_CODE_LINK_DOWN)
2653 1.1 drochner return;
2654 1.1 drochner
2655 1.1 drochner ifmr->ifm_status |= IFM_ACTIVE;
2656 1.1 drochner
2657 1.15 bouyer if (sc->ti_linkstat == TI_EV_CODE_GIG_LINK_UP) {
2658 1.15 bouyer media = CSR_READ_4(sc, TI_GCR_GLINK_STAT);
2659 1.15 bouyer if (sc->ti_copper)
2660 1.36 bjh21 ifmr->ifm_active |= IFM_1000_T;
2661 1.15 bouyer else
2662 1.15 bouyer ifmr->ifm_active |= IFM_1000_SX;
2663 1.15 bouyer if (media & TI_GLNK_FULL_DUPLEX)
2664 1.15 bouyer ifmr->ifm_active |= IFM_FDX;
2665 1.15 bouyer else
2666 1.15 bouyer ifmr->ifm_active |= IFM_HDX;
2667 1.15 bouyer } else if (sc->ti_linkstat == TI_EV_CODE_LINK_UP) {
2668 1.1 drochner media = CSR_READ_4(sc, TI_GCR_LINK_STAT);
2669 1.15 bouyer if (sc->ti_copper) {
2670 1.15 bouyer if (media & TI_LNK_100MB)
2671 1.15 bouyer ifmr->ifm_active |= IFM_100_TX;
2672 1.15 bouyer if (media & TI_LNK_10MB)
2673 1.15 bouyer ifmr->ifm_active |= IFM_10_T;
2674 1.15 bouyer } else {
2675 1.15 bouyer if (media & TI_LNK_100MB)
2676 1.15 bouyer ifmr->ifm_active |= IFM_100_FX;
2677 1.15 bouyer if (media & TI_LNK_10MB)
2678 1.15 bouyer ifmr->ifm_active |= IFM_10_FL;
2679 1.15 bouyer }
2680 1.1 drochner if (media & TI_LNK_FULL_DUPLEX)
2681 1.1 drochner ifmr->ifm_active |= IFM_FDX;
2682 1.1 drochner if (media & TI_LNK_HALF_DUPLEX)
2683 1.1 drochner ifmr->ifm_active |= IFM_HDX;
2684 1.1 drochner }
2685 1.5 thorpej
2686 1.5 thorpej sc->ethercom.ec_if.if_baudrate =
2687 1.5 thorpej ifmedia_baudrate(sc->ifmedia.ifm_media);
2688 1.1 drochner }
2689 1.1 drochner
2690 1.1 drochner static int
2691 1.77 tnn ti_ether_ioctl(struct ifnet *ifp, u_long cmd, void *data)
2692 1.1 drochner {
2693 1.1 drochner struct ifaddr *ifa = (struct ifaddr *) data;
2694 1.1 drochner struct ti_softc *sc = ifp->if_softc;
2695 1.1 drochner
2696 1.26 bouyer if ((ifp->if_flags & IFF_UP) == 0) {
2697 1.26 bouyer ifp->if_flags |= IFF_UP;
2698 1.26 bouyer ti_init(sc);
2699 1.26 bouyer }
2700 1.66 perry
2701 1.1 drochner switch (cmd) {
2702 1.82 dyoung case SIOCINITIFADDR:
2703 1.1 drochner
2704 1.1 drochner switch (ifa->ifa_addr->sa_family) {
2705 1.1 drochner #ifdef INET
2706 1.1 drochner case AF_INET:
2707 1.1 drochner arp_ifinit(ifp, ifa);
2708 1.1 drochner break;
2709 1.1 drochner #endif
2710 1.1 drochner default:
2711 1.1 drochner break;
2712 1.1 drochner }
2713 1.1 drochner break;
2714 1.1 drochner
2715 1.1 drochner default:
2716 1.1 drochner return (EINVAL);
2717 1.1 drochner }
2718 1.1 drochner
2719 1.1 drochner return (0);
2720 1.1 drochner }
2721 1.1 drochner
2722 1.77 tnn static int
2723 1.77 tnn ti_ioctl(struct ifnet *ifp, u_long command, void *data)
2724 1.1 drochner {
2725 1.1 drochner struct ti_softc *sc = ifp->if_softc;
2726 1.1 drochner struct ifreq *ifr = (struct ifreq *) data;
2727 1.1 drochner int s, error = 0;
2728 1.1 drochner struct ti_cmd_desc cmd;
2729 1.1 drochner
2730 1.18 thorpej s = splnet();
2731 1.1 drochner
2732 1.77 tnn switch (command) {
2733 1.82 dyoung case SIOCINITIFADDR:
2734 1.1 drochner error = ti_ether_ioctl(ifp, command, data);
2735 1.1 drochner break;
2736 1.1 drochner case SIOCSIFMTU:
2737 1.80 dyoung if (ifr->ifr_mtu < ETHERMIN || ifr->ifr_mtu > ETHERMTU_JUMBO)
2738 1.1 drochner error = EINVAL;
2739 1.80 dyoung else if ((error = ifioctl_common(ifp, command, data)) == ENETRESET){
2740 1.1 drochner ti_init(sc);
2741 1.80 dyoung error = 0;
2742 1.1 drochner }
2743 1.1 drochner break;
2744 1.1 drochner case SIOCSIFFLAGS:
2745 1.82 dyoung if ((error = ifioctl_common(ifp, command, data)) != 0)
2746 1.82 dyoung break;
2747 1.1 drochner if (ifp->if_flags & IFF_UP) {
2748 1.1 drochner /*
2749 1.1 drochner * If only the state of the PROMISC flag changed,
2750 1.1 drochner * then just use the 'set promisc mode' command
2751 1.1 drochner * instead of reinitializing the entire NIC. Doing
2752 1.1 drochner * a full re-init means reloading the firmware and
2753 1.1 drochner * waiting for it to start up, which may take a
2754 1.1 drochner * second or two.
2755 1.1 drochner */
2756 1.1 drochner if (ifp->if_flags & IFF_RUNNING &&
2757 1.1 drochner ifp->if_flags & IFF_PROMISC &&
2758 1.1 drochner !(sc->ti_if_flags & IFF_PROMISC)) {
2759 1.1 drochner TI_DO_CMD(TI_CMD_SET_PROMISC_MODE,
2760 1.1 drochner TI_CMD_CODE_PROMISC_ENB, 0);
2761 1.1 drochner } else if (ifp->if_flags & IFF_RUNNING &&
2762 1.1 drochner !(ifp->if_flags & IFF_PROMISC) &&
2763 1.1 drochner sc->ti_if_flags & IFF_PROMISC) {
2764 1.1 drochner TI_DO_CMD(TI_CMD_SET_PROMISC_MODE,
2765 1.1 drochner TI_CMD_CODE_PROMISC_DIS, 0);
2766 1.1 drochner } else
2767 1.1 drochner ti_init(sc);
2768 1.1 drochner } else {
2769 1.1 drochner if (ifp->if_flags & IFF_RUNNING) {
2770 1.1 drochner ti_stop(sc);
2771 1.1 drochner }
2772 1.1 drochner }
2773 1.1 drochner sc->ti_if_flags = ifp->if_flags;
2774 1.1 drochner error = 0;
2775 1.1 drochner break;
2776 1.1 drochner case SIOCSIFMEDIA:
2777 1.1 drochner case SIOCGIFMEDIA:
2778 1.1 drochner error = ifmedia_ioctl(ifp, ifr, &sc->ifmedia, command);
2779 1.1 drochner break;
2780 1.1 drochner default:
2781 1.80 dyoung if ((error = ether_ioctl(ifp, command, data)) != ENETRESET)
2782 1.80 dyoung break;
2783 1.80 dyoung
2784 1.80 dyoung error = 0;
2785 1.80 dyoung
2786 1.80 dyoung if (command == SIOCSIFCAP)
2787 1.80 dyoung ti_init(sc);
2788 1.80 dyoung else if (command != SIOCADDMULTI && command != SIOCDELMULTI)
2789 1.80 dyoung ;
2790 1.80 dyoung else if (ifp->if_flags & IFF_RUNNING)
2791 1.80 dyoung ti_setmulti(sc);
2792 1.1 drochner break;
2793 1.1 drochner }
2794 1.1 drochner
2795 1.1 drochner (void)splx(s);
2796 1.1 drochner
2797 1.77 tnn return (error);
2798 1.1 drochner }
2799 1.1 drochner
2800 1.77 tnn static void
2801 1.77 tnn ti_watchdog(struct ifnet *ifp)
2802 1.1 drochner {
2803 1.1 drochner struct ti_softc *sc;
2804 1.1 drochner
2805 1.1 drochner sc = ifp->if_softc;
2806 1.1 drochner
2807 1.91 chs aprint_error_dev(sc->sc_dev, "watchdog timeout -- resetting\n");
2808 1.1 drochner ti_stop(sc);
2809 1.1 drochner ti_init(sc);
2810 1.1 drochner
2811 1.1 drochner ifp->if_oerrors++;
2812 1.1 drochner }
2813 1.1 drochner
2814 1.1 drochner /*
2815 1.1 drochner * Stop the adapter and free any mbufs allocated to the
2816 1.1 drochner * RX and TX lists.
2817 1.1 drochner */
2818 1.77 tnn static void
2819 1.77 tnn ti_stop(struct ti_softc *sc)
2820 1.1 drochner {
2821 1.1 drochner struct ifnet *ifp;
2822 1.1 drochner struct ti_cmd_desc cmd;
2823 1.1 drochner
2824 1.1 drochner ifp = &sc->ethercom.ec_if;
2825 1.1 drochner
2826 1.1 drochner /* Disable host interrupts. */
2827 1.1 drochner CSR_WRITE_4(sc, TI_MB_HOSTINTR, 1);
2828 1.1 drochner /*
2829 1.1 drochner * Tell firmware we're shutting down.
2830 1.1 drochner */
2831 1.1 drochner TI_DO_CMD(TI_CMD_HOST_STATE, TI_CMD_CODE_STACK_DOWN, 0);
2832 1.1 drochner
2833 1.1 drochner /* Halt and reinitialize. */
2834 1.1 drochner ti_chipinit(sc);
2835 1.1 drochner ti_mem(sc, 0x2000, 0x100000 - 0x2000, NULL);
2836 1.1 drochner ti_chipinit(sc);
2837 1.1 drochner
2838 1.1 drochner /* Free the RX lists. */
2839 1.1 drochner ti_free_rx_ring_std(sc);
2840 1.1 drochner
2841 1.1 drochner /* Free jumbo RX list. */
2842 1.1 drochner ti_free_rx_ring_jumbo(sc);
2843 1.1 drochner
2844 1.1 drochner /* Free mini RX list. */
2845 1.1 drochner ti_free_rx_ring_mini(sc);
2846 1.1 drochner
2847 1.1 drochner /* Free TX buffers. */
2848 1.1 drochner ti_free_tx_ring(sc);
2849 1.1 drochner
2850 1.1 drochner sc->ti_ev_prodidx.ti_idx = 0;
2851 1.1 drochner sc->ti_return_prodidx.ti_idx = 0;
2852 1.1 drochner sc->ti_tx_considx.ti_idx = 0;
2853 1.1 drochner sc->ti_tx_saved_considx = TI_TXCONS_UNSET;
2854 1.1 drochner
2855 1.1 drochner ifp->if_flags &= ~(IFF_RUNNING | IFF_OACTIVE);
2856 1.1 drochner }
2857 1.1 drochner
2858 1.1 drochner /*
2859 1.1 drochner * Stop all chip I/O so that the kernel's probe routines don't
2860 1.1 drochner * get confused by errant DMAs when rebooting.
2861 1.1 drochner */
2862 1.86 tsutsui static bool
2863 1.86 tsutsui ti_shutdown(device_t self, int howto)
2864 1.1 drochner {
2865 1.86 tsutsui struct ti_softc *sc;
2866 1.1 drochner
2867 1.86 tsutsui sc = device_private(self);
2868 1.1 drochner ti_chipinit(sc);
2869 1.86 tsutsui
2870 1.86 tsutsui return true;
2871 1.1 drochner }
2872