tulip.c revision 1.93 1 /* $NetBSD: tulip.c,v 1.93 2001/06/12 22:32:50 thorpej Exp $ */
2
3 /*-
4 * Copyright (c) 1998, 1999, 2000 The NetBSD Foundation, Inc.
5 * All rights reserved.
6 *
7 * This code is derived from software contributed to The NetBSD Foundation
8 * by Jason R. Thorpe of the Numerical Aerospace Simulation Facility,
9 * NASA Ames Research Center.
10 *
11 * Redistribution and use in source and binary forms, with or without
12 * modification, are permitted provided that the following conditions
13 * are met:
14 * 1. Redistributions of source code must retain the above copyright
15 * notice, this list of conditions and the following disclaimer.
16 * 2. Redistributions in binary form must reproduce the above copyright
17 * notice, this list of conditions and the following disclaimer in the
18 * documentation and/or other materials provided with the distribution.
19 * 3. All advertising materials mentioning features or use of this software
20 * must display the following acknowledgement:
21 * This product includes software developed by the NetBSD
22 * Foundation, Inc. and its contributors.
23 * 4. Neither the name of The NetBSD Foundation nor the names of its
24 * contributors may be used to endorse or promote products derived
25 * from this software without specific prior written permission.
26 *
27 * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
28 * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
29 * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
30 * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
31 * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
32 * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
33 * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
34 * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
35 * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
36 * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
37 * POSSIBILITY OF SUCH DAMAGE.
38 */
39
40 /*
41 * Device driver for the Digital Semiconductor ``Tulip'' (21x4x)
42 * Ethernet controller family, and a variety of clone chips.
43 */
44
45 #include "bpfilter.h"
46
47 #include <sys/param.h>
48 #include <sys/systm.h>
49 #include <sys/callout.h>
50 #include <sys/mbuf.h>
51 #include <sys/malloc.h>
52 #include <sys/kernel.h>
53 #include <sys/socket.h>
54 #include <sys/ioctl.h>
55 #include <sys/errno.h>
56 #include <sys/device.h>
57
58 #include <machine/endian.h>
59
60 #include <uvm/uvm_extern.h>
61
62 #include <net/if.h>
63 #include <net/if_dl.h>
64 #include <net/if_media.h>
65 #include <net/if_ether.h>
66
67 #if NBPFILTER > 0
68 #include <net/bpf.h>
69 #endif
70
71 #include <machine/bus.h>
72 #include <machine/intr.h>
73
74 #include <dev/mii/mii.h>
75 #include <dev/mii/miivar.h>
76 #include <dev/mii/mii_bitbang.h>
77
78 #include <dev/ic/tulipreg.h>
79 #include <dev/ic/tulipvar.h>
80
81 const char * const tlp_chip_names[] = TULIP_CHIP_NAMES;
82
83 const struct tulip_txthresh_tab tlp_10_txthresh_tab[] =
84 TLP_TXTHRESH_TAB_10;
85
86 const struct tulip_txthresh_tab tlp_10_100_txthresh_tab[] =
87 TLP_TXTHRESH_TAB_10_100;
88
89 const struct tulip_txthresh_tab tlp_winb_txthresh_tab[] =
90 TLP_TXTHRESH_TAB_WINB;
91
92 const struct tulip_txthresh_tab tlp_dm9102_txthresh_tab[] =
93 TLP_TXTHRESH_TAB_DM9102;
94
95 void tlp_start __P((struct ifnet *));
96 void tlp_watchdog __P((struct ifnet *));
97 int tlp_ioctl __P((struct ifnet *, u_long, caddr_t));
98 int tlp_init __P((struct ifnet *));
99 void tlp_stop __P((struct ifnet *, int));
100
101 void tlp_shutdown __P((void *));
102
103 void tlp_reset __P((struct tulip_softc *));
104 void tlp_rxdrain __P((struct tulip_softc *));
105 int tlp_add_rxbuf __P((struct tulip_softc *, int));
106 void tlp_idle __P((struct tulip_softc *, u_int32_t));
107 void tlp_srom_idle __P((struct tulip_softc *));
108 int tlp_srom_size __P((struct tulip_softc *));
109
110 int tlp_enable __P((struct tulip_softc *));
111 void tlp_disable __P((struct tulip_softc *));
112 void tlp_power __P((int, void *));
113
114 void tlp_filter_setup __P((struct tulip_softc *));
115 void tlp_winb_filter_setup __P((struct tulip_softc *));
116 void tlp_al981_filter_setup __P((struct tulip_softc *));
117
118 void tlp_rxintr __P((struct tulip_softc *));
119 void tlp_txintr __P((struct tulip_softc *));
120
121 void tlp_mii_tick __P((void *));
122 void tlp_mii_statchg __P((struct device *));
123 void tlp_winb_mii_statchg __P((struct device *));
124 void tlp_dm9102_mii_statchg __P((struct device *));
125
126 void tlp_mii_getmedia __P((struct tulip_softc *, struct ifmediareq *));
127 int tlp_mii_setmedia __P((struct tulip_softc *));
128
129 int tlp_bitbang_mii_readreg __P((struct device *, int, int));
130 void tlp_bitbang_mii_writereg __P((struct device *, int, int, int));
131
132 int tlp_pnic_mii_readreg __P((struct device *, int, int));
133 void tlp_pnic_mii_writereg __P((struct device *, int, int, int));
134
135 int tlp_al981_mii_readreg __P((struct device *, int, int));
136 void tlp_al981_mii_writereg __P((struct device *, int, int, int));
137
138 void tlp_2114x_preinit __P((struct tulip_softc *));
139 void tlp_2114x_mii_preinit __P((struct tulip_softc *));
140 void tlp_pnic_preinit __P((struct tulip_softc *));
141 void tlp_dm9102_preinit __P((struct tulip_softc *));
142
143 void tlp_21140_reset __P((struct tulip_softc *));
144 void tlp_21142_reset __P((struct tulip_softc *));
145 void tlp_pmac_reset __P((struct tulip_softc *));
146 void tlp_dm9102_reset __P((struct tulip_softc *));
147
148 #define tlp_mchash(addr, sz) \
149 (ether_crc32_le((addr), ETHER_ADDR_LEN) & ((sz) - 1))
150
151 /*
152 * MII bit-bang glue.
153 */
154 u_int32_t tlp_sio_mii_bitbang_read __P((struct device *));
155 void tlp_sio_mii_bitbang_write __P((struct device *, u_int32_t));
156
157 const struct mii_bitbang_ops tlp_sio_mii_bitbang_ops = {
158 tlp_sio_mii_bitbang_read,
159 tlp_sio_mii_bitbang_write,
160 {
161 MIIROM_MDO, /* MII_BIT_MDO */
162 MIIROM_MDI, /* MII_BIT_MDI */
163 MIIROM_MDC, /* MII_BIT_MDC */
164 0, /* MII_BIT_DIR_HOST_PHY */
165 MIIROM_MIIDIR, /* MII_BIT_DIR_PHY_HOST */
166 }
167 };
168
169 #ifdef TLP_DEBUG
170 #define DPRINTF(sc, x) if ((sc)->sc_ethercom.ec_if.if_flags & IFF_DEBUG) \
171 printf x
172 #else
173 #define DPRINTF(sc, x) /* nothing */
174 #endif
175
176 #ifdef TLP_STATS
177 void tlp_print_stats __P((struct tulip_softc *));
178 #endif
179
180 /*
181 * Can be used to debug the SROM-related things, including contents.
182 * Initialized so that it's patchable.
183 */
184 int tlp_srom_debug = 0;
185
186 /*
187 * tlp_attach:
188 *
189 * Attach a Tulip interface to the system.
190 */
191 void
192 tlp_attach(sc, enaddr)
193 struct tulip_softc *sc;
194 const u_int8_t *enaddr;
195 {
196 struct ifnet *ifp = &sc->sc_ethercom.ec_if;
197 int i, error;
198
199 callout_init(&sc->sc_nway_callout);
200 callout_init(&sc->sc_tick_callout);
201
202 /*
203 * NOTE: WE EXPECT THE FRONT-END TO INITIALIZE sc_regshift!
204 */
205
206 /*
207 * Setup the transmit threshold table.
208 */
209 switch (sc->sc_chip) {
210 case TULIP_CHIP_DE425:
211 case TULIP_CHIP_21040:
212 case TULIP_CHIP_21041:
213 sc->sc_txth = tlp_10_txthresh_tab;
214 break;
215
216 case TULIP_CHIP_DM9102:
217 case TULIP_CHIP_DM9102A:
218 sc->sc_txth = tlp_dm9102_txthresh_tab;
219 break;
220
221 default:
222 sc->sc_txth = tlp_10_100_txthresh_tab;
223 break;
224 }
225
226 /*
227 * Setup the filter setup function.
228 */
229 switch (sc->sc_chip) {
230 case TULIP_CHIP_WB89C840F:
231 sc->sc_filter_setup = tlp_winb_filter_setup;
232 break;
233
234 case TULIP_CHIP_AL981:
235 case TULIP_CHIP_AN983:
236 case TULIP_CHIP_AN985:
237 sc->sc_filter_setup = tlp_al981_filter_setup;
238 break;
239
240 default:
241 sc->sc_filter_setup = tlp_filter_setup;
242 break;
243 }
244
245 /*
246 * Set up the media status change function.
247 */
248 switch (sc->sc_chip) {
249 case TULIP_CHIP_WB89C840F:
250 sc->sc_statchg = tlp_winb_mii_statchg;
251 break;
252
253 case TULIP_CHIP_DM9102:
254 case TULIP_CHIP_DM9102A:
255 sc->sc_statchg = tlp_dm9102_mii_statchg;
256 break;
257
258 default:
259 /*
260 * We may override this if we have special media
261 * handling requirements (e.g. flipping GPIO pins).
262 *
263 * The pure-MII statchg function covers the basics.
264 */
265 sc->sc_statchg = tlp_mii_statchg;
266 break;
267 }
268
269 /*
270 * Default to no FS|LS in setup packet descriptors. They're
271 * supposed to be zero according to the 21040 and 21143
272 * manuals, and some chips fall over badly if they're
273 * included. Yet, other chips seem to require them. Sigh.
274 */
275 switch (sc->sc_chip) {
276 case TULIP_CHIP_X3201_3:
277 sc->sc_setup_fsls = TDCTL_Tx_FS|TDCTL_Tx_LS;
278 break;
279
280 default:
281 sc->sc_setup_fsls = 0;
282 }
283
284 /*
285 * Set up various chip-specific quirks.
286 *
287 * Note that wherever we can, we use the "ring" option for
288 * transmit and receive descriptors. This is because some
289 * clone chips apparently have problems when using chaining,
290 * although some *only* support chaining.
291 *
292 * What we do is always program the "next" pointer, and then
293 * conditionally set the TDCTL_CH and TDCTL_ER bits in the
294 * appropriate places.
295 */
296 switch (sc->sc_chip) {
297 case TULIP_CHIP_21140:
298 case TULIP_CHIP_21140A:
299 case TULIP_CHIP_21142:
300 case TULIP_CHIP_21143:
301 case TULIP_CHIP_82C115: /* 21143-like */
302 case TULIP_CHIP_MX98713: /* 21140-like */
303 case TULIP_CHIP_MX98713A: /* 21143-like */
304 case TULIP_CHIP_MX98715: /* 21143-like */
305 case TULIP_CHIP_MX98715A: /* 21143-like */
306 case TULIP_CHIP_MX98715AEC_X: /* 21143-like */
307 case TULIP_CHIP_MX98725: /* 21143-like */
308 /*
309 * Run these chips in ring mode.
310 */
311 sc->sc_tdctl_ch = 0;
312 sc->sc_tdctl_er = TDCTL_ER;
313 sc->sc_preinit = tlp_2114x_preinit;
314 break;
315
316 case TULIP_CHIP_82C168:
317 case TULIP_CHIP_82C169:
318 /*
319 * Run these chips in ring mode.
320 */
321 sc->sc_tdctl_ch = 0;
322 sc->sc_tdctl_er = TDCTL_ER;
323 sc->sc_preinit = tlp_pnic_preinit;
324
325 /*
326 * These chips seem to have busted DMA engines; just put them
327 * in Store-and-Forward mode from the get-go.
328 */
329 sc->sc_txthresh = TXTH_SF;
330 break;
331
332 case TULIP_CHIP_WB89C840F:
333 /*
334 * Run this chip in chained mode.
335 */
336 sc->sc_tdctl_ch = TDCTL_CH;
337 sc->sc_tdctl_er = 0;
338 sc->sc_flags |= TULIPF_IC_FS;
339 break;
340
341 case TULIP_CHIP_DM9102:
342 case TULIP_CHIP_DM9102A:
343 /*
344 * Run these chips in chained mode.
345 */
346 sc->sc_tdctl_ch = TDCTL_CH;
347 sc->sc_tdctl_er = 0;
348 sc->sc_preinit = tlp_dm9102_preinit;
349
350 /*
351 * These chips have a broken bus interface, so we
352 * can't use any optimized bus commands. For this
353 * reason, we tend to underrun pretty quickly, so
354 * just to Store-and-Forward mode from the get-go.
355 */
356 sc->sc_txthresh = TXTH_DM9102_SF;
357 break;
358
359 default:
360 /*
361 * Default to running in ring mode.
362 */
363 sc->sc_tdctl_ch = 0;
364 sc->sc_tdctl_er = TDCTL_ER;
365 }
366
367 /*
368 * Set up the MII bit-bang operations.
369 */
370 switch (sc->sc_chip) {
371 case TULIP_CHIP_WB89C840F: /* XXX direction bit different? */
372 sc->sc_bitbang_ops = &tlp_sio_mii_bitbang_ops;
373 break;
374
375 default:
376 sc->sc_bitbang_ops = &tlp_sio_mii_bitbang_ops;
377 }
378
379 SIMPLEQ_INIT(&sc->sc_txfreeq);
380 SIMPLEQ_INIT(&sc->sc_txdirtyq);
381
382 /*
383 * Allocate the control data structures, and create and load the
384 * DMA map for it.
385 */
386 if ((error = bus_dmamem_alloc(sc->sc_dmat,
387 sizeof(struct tulip_control_data), PAGE_SIZE, 0, &sc->sc_cdseg,
388 1, &sc->sc_cdnseg, 0)) != 0) {
389 printf("%s: unable to allocate control data, error = %d\n",
390 sc->sc_dev.dv_xname, error);
391 goto fail_0;
392 }
393
394 if ((error = bus_dmamem_map(sc->sc_dmat, &sc->sc_cdseg, sc->sc_cdnseg,
395 sizeof(struct tulip_control_data), (caddr_t *)&sc->sc_control_data,
396 BUS_DMA_COHERENT)) != 0) {
397 printf("%s: unable to map control data, error = %d\n",
398 sc->sc_dev.dv_xname, error);
399 goto fail_1;
400 }
401
402 if ((error = bus_dmamap_create(sc->sc_dmat,
403 sizeof(struct tulip_control_data), 1,
404 sizeof(struct tulip_control_data), 0, 0, &sc->sc_cddmamap)) != 0) {
405 printf("%s: unable to create control data DMA map, "
406 "error = %d\n", sc->sc_dev.dv_xname, error);
407 goto fail_2;
408 }
409
410 if ((error = bus_dmamap_load(sc->sc_dmat, sc->sc_cddmamap,
411 sc->sc_control_data, sizeof(struct tulip_control_data), NULL,
412 0)) != 0) {
413 printf("%s: unable to load control data DMA map, error = %d\n",
414 sc->sc_dev.dv_xname, error);
415 goto fail_3;
416 }
417
418 /*
419 * Create the transmit buffer DMA maps.
420 *
421 * Note that on the Xircom clone, transmit buffers must be
422 * 4-byte aligned. We're almost guaranteed to have to copy
423 * the packet in that case, so we just limit ourselves to
424 * one segment.
425 *
426 * On the DM9102, the transmit logic can only handle one
427 * DMA segment.
428 */
429 switch (sc->sc_chip) {
430 case TULIP_CHIP_X3201_3:
431 case TULIP_CHIP_DM9102:
432 case TULIP_CHIP_DM9102A:
433 sc->sc_ntxsegs = 1;
434 break;
435
436 default:
437 sc->sc_ntxsegs = TULIP_NTXSEGS;
438 }
439 for (i = 0; i < TULIP_TXQUEUELEN; i++) {
440 if ((error = bus_dmamap_create(sc->sc_dmat, MCLBYTES,
441 sc->sc_ntxsegs, MCLBYTES, 0, 0,
442 &sc->sc_txsoft[i].txs_dmamap)) != 0) {
443 printf("%s: unable to create tx DMA map %d, "
444 "error = %d\n", sc->sc_dev.dv_xname, i, error);
445 goto fail_4;
446 }
447 }
448
449 /*
450 * Create the receive buffer DMA maps.
451 */
452 for (i = 0; i < TULIP_NRXDESC; i++) {
453 if ((error = bus_dmamap_create(sc->sc_dmat, MCLBYTES, 1,
454 MCLBYTES, 0, 0, &sc->sc_rxsoft[i].rxs_dmamap)) != 0) {
455 printf("%s: unable to create rx DMA map %d, "
456 "error = %d\n", sc->sc_dev.dv_xname, i, error);
457 goto fail_5;
458 }
459 sc->sc_rxsoft[i].rxs_mbuf = NULL;
460 }
461
462 /*
463 * From this point forward, the attachment cannot fail. A failure
464 * before this point releases all resources that may have been
465 * allocated.
466 */
467 sc->sc_flags |= TULIPF_ATTACHED;
468
469 /*
470 * Reset the chip to a known state.
471 */
472 tlp_reset(sc);
473
474 /* Announce ourselves. */
475 printf("%s: %s%sEthernet address %s\n", sc->sc_dev.dv_xname,
476 sc->sc_name[0] != '\0' ? sc->sc_name : "",
477 sc->sc_name[0] != '\0' ? ", " : "",
478 ether_sprintf(enaddr));
479
480 /*
481 * Initialize our media structures. This may probe the MII, if
482 * present.
483 */
484 (*sc->sc_mediasw->tmsw_init)(sc);
485
486 strcpy(ifp->if_xname, sc->sc_dev.dv_xname);
487 ifp->if_softc = sc;
488 ifp->if_flags = IFF_BROADCAST | IFF_SIMPLEX | IFF_MULTICAST;
489 ifp->if_ioctl = tlp_ioctl;
490 ifp->if_start = tlp_start;
491 ifp->if_watchdog = tlp_watchdog;
492 ifp->if_init = tlp_init;
493 ifp->if_stop = tlp_stop;
494 IFQ_SET_READY(&ifp->if_snd);
495
496 /*
497 * We can support 802.1Q VLAN-sized frames.
498 */
499 sc->sc_ethercom.ec_capabilities |= ETHERCAP_VLAN_MTU;
500
501 /*
502 * Attach the interface.
503 */
504 if_attach(ifp);
505 ether_ifattach(ifp, enaddr);
506 #if NRND > 0
507 rnd_attach_source(&sc->sc_rnd_source, sc->sc_dev.dv_xname,
508 RND_TYPE_NET, 0);
509 #endif
510
511 /*
512 * Make sure the interface is shutdown during reboot.
513 */
514 sc->sc_sdhook = shutdownhook_establish(tlp_shutdown, sc);
515 if (sc->sc_sdhook == NULL)
516 printf("%s: WARNING: unable to establish shutdown hook\n",
517 sc->sc_dev.dv_xname);
518
519 /*
520 * Add a suspend hook to make sure we come back up after a
521 * resume.
522 */
523 sc->sc_powerhook = powerhook_establish(tlp_power, sc);
524 if (sc->sc_powerhook == NULL)
525 printf("%s: WARNING: unable to establish power hook\n",
526 sc->sc_dev.dv_xname);
527 return;
528
529 /*
530 * Free any resources we've allocated during the failed attach
531 * attempt. Do this in reverse order and fall through.
532 */
533 fail_5:
534 for (i = 0; i < TULIP_NRXDESC; i++) {
535 if (sc->sc_rxsoft[i].rxs_dmamap != NULL)
536 bus_dmamap_destroy(sc->sc_dmat,
537 sc->sc_rxsoft[i].rxs_dmamap);
538 }
539 fail_4:
540 for (i = 0; i < TULIP_TXQUEUELEN; i++) {
541 if (sc->sc_txsoft[i].txs_dmamap != NULL)
542 bus_dmamap_destroy(sc->sc_dmat,
543 sc->sc_txsoft[i].txs_dmamap);
544 }
545 bus_dmamap_unload(sc->sc_dmat, sc->sc_cddmamap);
546 fail_3:
547 bus_dmamap_destroy(sc->sc_dmat, sc->sc_cddmamap);
548 fail_2:
549 bus_dmamem_unmap(sc->sc_dmat, (caddr_t)sc->sc_control_data,
550 sizeof(struct tulip_control_data));
551 fail_1:
552 bus_dmamem_free(sc->sc_dmat, &sc->sc_cdseg, sc->sc_cdnseg);
553 fail_0:
554 return;
555 }
556
557 /*
558 * tlp_activate:
559 *
560 * Handle device activation/deactivation requests.
561 */
562 int
563 tlp_activate(self, act)
564 struct device *self;
565 enum devact act;
566 {
567 struct tulip_softc *sc = (void *) self;
568 int s, error = 0;
569
570 s = splnet();
571 switch (act) {
572 case DVACT_ACTIVATE:
573 error = EOPNOTSUPP;
574 break;
575
576 case DVACT_DEACTIVATE:
577 if (sc->sc_flags & TULIPF_HAS_MII)
578 mii_activate(&sc->sc_mii, act, MII_PHY_ANY,
579 MII_OFFSET_ANY);
580 if_deactivate(&sc->sc_ethercom.ec_if);
581 break;
582 }
583 splx(s);
584
585 return (error);
586 }
587
588 /*
589 * tlp_detach:
590 *
591 * Detach a Tulip interface.
592 */
593 int
594 tlp_detach(sc)
595 struct tulip_softc *sc;
596 {
597 struct ifnet *ifp = &sc->sc_ethercom.ec_if;
598 struct tulip_rxsoft *rxs;
599 struct tulip_txsoft *txs;
600 int i;
601
602 /*
603 * Suceed now if there isn't any work to do.
604 */
605 if ((sc->sc_flags & TULIPF_ATTACHED) == 0)
606 return (0);
607
608 /* Unhook our tick handler. */
609 if (sc->sc_tick)
610 callout_stop(&sc->sc_tick_callout);
611
612 if (sc->sc_flags & TULIPF_HAS_MII) {
613 /* Detach all PHYs */
614 mii_detach(&sc->sc_mii, MII_PHY_ANY, MII_OFFSET_ANY);
615 }
616
617 /* Delete all remaining media. */
618 ifmedia_delete_instance(&sc->sc_mii.mii_media, IFM_INST_ANY);
619
620 #if NRND > 0
621 rnd_detach_source(&sc->sc_rnd_source);
622 #endif
623 ether_ifdetach(ifp);
624 if_detach(ifp);
625
626 for (i = 0; i < TULIP_NRXDESC; i++) {
627 rxs = &sc->sc_rxsoft[i];
628 if (rxs->rxs_mbuf != NULL) {
629 bus_dmamap_unload(sc->sc_dmat, rxs->rxs_dmamap);
630 m_freem(rxs->rxs_mbuf);
631 rxs->rxs_mbuf = NULL;
632 }
633 bus_dmamap_destroy(sc->sc_dmat, rxs->rxs_dmamap);
634 }
635 for (i = 0; i < TULIP_TXQUEUELEN; i++) {
636 txs = &sc->sc_txsoft[i];
637 if (txs->txs_mbuf != NULL) {
638 bus_dmamap_unload(sc->sc_dmat, txs->txs_dmamap);
639 m_freem(txs->txs_mbuf);
640 txs->txs_mbuf = NULL;
641 }
642 bus_dmamap_destroy(sc->sc_dmat, txs->txs_dmamap);
643 }
644 bus_dmamap_unload(sc->sc_dmat, sc->sc_cddmamap);
645 bus_dmamap_destroy(sc->sc_dmat, sc->sc_cddmamap);
646 bus_dmamem_unmap(sc->sc_dmat, (caddr_t)sc->sc_control_data,
647 sizeof(struct tulip_control_data));
648 bus_dmamem_free(sc->sc_dmat, &sc->sc_cdseg, sc->sc_cdnseg);
649
650 shutdownhook_disestablish(sc->sc_sdhook);
651 powerhook_disestablish(sc->sc_powerhook);
652
653 if (sc->sc_srom)
654 free(sc->sc_srom, M_DEVBUF);
655
656 return (0);
657 }
658
659 /*
660 * tlp_shutdown:
661 *
662 * Make sure the interface is stopped at reboot time.
663 */
664 void
665 tlp_shutdown(arg)
666 void *arg;
667 {
668 struct tulip_softc *sc = arg;
669
670 tlp_stop(&sc->sc_ethercom.ec_if, 1);
671 }
672
673 /*
674 * tlp_start: [ifnet interface function]
675 *
676 * Start packet transmission on the interface.
677 */
678 void
679 tlp_start(ifp)
680 struct ifnet *ifp;
681 {
682 struct tulip_softc *sc = ifp->if_softc;
683 struct mbuf *m0, *m;
684 struct tulip_txsoft *txs, *last_txs;
685 bus_dmamap_t dmamap;
686 int error, firsttx, nexttx, lasttx, ofree, seg;
687
688 DPRINTF(sc, ("%s: tlp_start: sc_flags 0x%08x, if_flags 0x%08x\n",
689 sc->sc_dev.dv_xname, sc->sc_flags, ifp->if_flags));
690
691 /*
692 * If we want a filter setup, it means no more descriptors were
693 * available for the setup routine. Let it get a chance to wedge
694 * itself into the ring.
695 */
696 if (sc->sc_flags & TULIPF_WANT_SETUP)
697 ifp->if_flags |= IFF_OACTIVE;
698
699 if ((ifp->if_flags & (IFF_RUNNING|IFF_OACTIVE)) != IFF_RUNNING)
700 return;
701
702 /*
703 * Remember the previous number of free descriptors and
704 * the first descriptor we'll use.
705 */
706 ofree = sc->sc_txfree;
707 firsttx = sc->sc_txnext;
708
709 DPRINTF(sc, ("%s: tlp_start: txfree %d, txnext %d\n",
710 sc->sc_dev.dv_xname, ofree, firsttx));
711
712 /*
713 * Loop through the send queue, setting up transmit descriptors
714 * until we drain the queue, or use up all available transmit
715 * descriptors.
716 */
717 while ((txs = SIMPLEQ_FIRST(&sc->sc_txfreeq)) != NULL &&
718 sc->sc_txfree != 0) {
719 /*
720 * Grab a packet off the queue.
721 */
722 IFQ_POLL(&ifp->if_snd, m0);
723 if (m0 == NULL)
724 break;
725 m = NULL;
726
727 dmamap = txs->txs_dmamap;
728
729 /*
730 * Load the DMA map. If this fails, the packet either
731 * didn't fit in the alloted number of segments, or we were
732 * short on resources. In this case, we'll copy and try
733 * again.
734 *
735 * Note that if we're only allowed 1 Tx segment, we
736 * have an alignment restriction. Do this test before
737 * attempting to load the DMA map, because it's more
738 * likely we'll trip the alignment test than the
739 * more-than-one-segment test.
740 */
741 if ((sc->sc_ntxsegs == 1 && (mtod(m0, bus_addr_t) & 3) != 0) ||
742 bus_dmamap_load_mbuf(sc->sc_dmat, dmamap, m0,
743 BUS_DMA_NOWAIT) != 0) {
744 MGETHDR(m, M_DONTWAIT, MT_DATA);
745 if (m == NULL) {
746 printf("%s: unable to allocate Tx mbuf\n",
747 sc->sc_dev.dv_xname);
748 break;
749 }
750 if (m0->m_pkthdr.len > MHLEN) {
751 MCLGET(m, M_DONTWAIT);
752 if ((m->m_flags & M_EXT) == 0) {
753 printf("%s: unable to allocate Tx "
754 "cluster\n", sc->sc_dev.dv_xname);
755 m_freem(m);
756 break;
757 }
758 }
759 m_copydata(m0, 0, m0->m_pkthdr.len, mtod(m, caddr_t));
760 m->m_pkthdr.len = m->m_len = m0->m_pkthdr.len;
761 error = bus_dmamap_load_mbuf(sc->sc_dmat, dmamap,
762 m, BUS_DMA_NOWAIT);
763 if (error) {
764 printf("%s: unable to load Tx buffer, "
765 "error = %d\n", sc->sc_dev.dv_xname, error);
766 break;
767 }
768 }
769
770 /*
771 * Ensure we have enough descriptors free to describe
772 * the packet.
773 */
774 if (dmamap->dm_nsegs > sc->sc_txfree) {
775 /*
776 * Not enough free descriptors to transmit this
777 * packet. We haven't committed to anything yet,
778 * so just unload the DMA map, put the packet
779 * back on the queue, and punt. Notify the upper
780 * layer that there are no more slots left.
781 *
782 * XXX We could allocate an mbuf and copy, but
783 * XXX it is worth it?
784 */
785 ifp->if_flags |= IFF_OACTIVE;
786 bus_dmamap_unload(sc->sc_dmat, dmamap);
787 if (m != NULL)
788 m_freem(m);
789 break;
790 }
791
792 IFQ_DEQUEUE(&ifp->if_snd, m0);
793 if (m != NULL) {
794 m_freem(m0);
795 m0 = m;
796 }
797
798 /*
799 * WE ARE NOW COMMITTED TO TRANSMITTING THE PACKET.
800 */
801
802 /* Sync the DMA map. */
803 bus_dmamap_sync(sc->sc_dmat, dmamap, 0, dmamap->dm_mapsize,
804 BUS_DMASYNC_PREWRITE);
805
806 /*
807 * Initialize the transmit descriptors.
808 */
809 for (nexttx = sc->sc_txnext, seg = 0;
810 seg < dmamap->dm_nsegs;
811 seg++, nexttx = TULIP_NEXTTX(nexttx)) {
812 /*
813 * If this is the first descriptor we're
814 * enqueueing, don't set the OWN bit just
815 * yet. That could cause a race condition.
816 * We'll do it below.
817 */
818 sc->sc_txdescs[nexttx].td_status =
819 (nexttx == firsttx) ? 0 : htole32(TDSTAT_OWN);
820 sc->sc_txdescs[nexttx].td_bufaddr1 =
821 htole32(dmamap->dm_segs[seg].ds_addr);
822 sc->sc_txdescs[nexttx].td_ctl =
823 htole32((dmamap->dm_segs[seg].ds_len <<
824 TDCTL_SIZE1_SHIFT) | sc->sc_tdctl_ch |
825 (nexttx == (TULIP_NTXDESC - 1) ?
826 sc->sc_tdctl_er : 0));
827 lasttx = nexttx;
828 }
829
830 /* Set `first segment' and `last segment' appropriately. */
831 sc->sc_txdescs[sc->sc_txnext].td_ctl |= htole32(TDCTL_Tx_FS);
832 sc->sc_txdescs[lasttx].td_ctl |= htole32(TDCTL_Tx_LS);
833
834 #ifdef TLP_DEBUG
835 if (ifp->if_flags & IFF_DEBUG) {
836 printf(" txsoft %p transmit chain:\n", txs);
837 for (seg = sc->sc_txnext;; seg = TULIP_NEXTTX(seg)) {
838 printf(" descriptor %d:\n", seg);
839 printf(" td_status: 0x%08x\n",
840 le32toh(sc->sc_txdescs[seg].td_status));
841 printf(" td_ctl: 0x%08x\n",
842 le32toh(sc->sc_txdescs[seg].td_ctl));
843 printf(" td_bufaddr1: 0x%08x\n",
844 le32toh(sc->sc_txdescs[seg].td_bufaddr1));
845 printf(" td_bufaddr2: 0x%08x\n",
846 le32toh(sc->sc_txdescs[seg].td_bufaddr2));
847 if (seg == lasttx)
848 break;
849 }
850 }
851 #endif
852
853 /* Sync the descriptors we're using. */
854 TULIP_CDTXSYNC(sc, sc->sc_txnext, dmamap->dm_nsegs,
855 BUS_DMASYNC_PREREAD|BUS_DMASYNC_PREWRITE);
856
857 /*
858 * Store a pointer to the packet so we can free it later,
859 * and remember what txdirty will be once the packet is
860 * done.
861 */
862 txs->txs_mbuf = m0;
863 txs->txs_firstdesc = sc->sc_txnext;
864 txs->txs_lastdesc = lasttx;
865 txs->txs_ndescs = dmamap->dm_nsegs;
866
867 /* Advance the tx pointer. */
868 sc->sc_txfree -= dmamap->dm_nsegs;
869 sc->sc_txnext = nexttx;
870
871 SIMPLEQ_REMOVE_HEAD(&sc->sc_txfreeq, txs, txs_q);
872 SIMPLEQ_INSERT_TAIL(&sc->sc_txdirtyq, txs, txs_q);
873
874 last_txs = txs;
875
876 #if NBPFILTER > 0
877 /*
878 * Pass the packet to any BPF listeners.
879 */
880 if (ifp->if_bpf)
881 bpf_mtap(ifp->if_bpf, m0);
882 #endif /* NBPFILTER > 0 */
883 }
884
885 if (txs == NULL || sc->sc_txfree == 0) {
886 /* No more slots left; notify upper layer. */
887 ifp->if_flags |= IFF_OACTIVE;
888 }
889
890 if (sc->sc_txfree != ofree) {
891 DPRINTF(sc, ("%s: packets enqueued, IC on %d, OWN on %d\n",
892 sc->sc_dev.dv_xname, lasttx, firsttx));
893 /*
894 * Cause a transmit interrupt to happen on the
895 * last packet we enqueued.
896 */
897 sc->sc_txdescs[lasttx].td_ctl |= htole32(TDCTL_Tx_IC);
898 TULIP_CDTXSYNC(sc, lasttx, 1,
899 BUS_DMASYNC_PREREAD|BUS_DMASYNC_PREWRITE);
900
901 /*
902 * Some clone chips want IC on the *first* segment in
903 * the packet. Appease them.
904 */
905 if ((sc->sc_flags & TULIPF_IC_FS) != 0 &&
906 last_txs->txs_firstdesc != lasttx) {
907 sc->sc_txdescs[last_txs->txs_firstdesc].td_ctl |=
908 htole32(TDCTL_Tx_IC);
909 TULIP_CDTXSYNC(sc, last_txs->txs_firstdesc, 1,
910 BUS_DMASYNC_PREREAD|BUS_DMASYNC_PREWRITE);
911 }
912
913 /*
914 * The entire packet chain is set up. Give the
915 * first descriptor to the chip now.
916 */
917 sc->sc_txdescs[firsttx].td_status |= htole32(TDSTAT_OWN);
918 TULIP_CDTXSYNC(sc, firsttx, 1,
919 BUS_DMASYNC_PREREAD|BUS_DMASYNC_PREWRITE);
920
921 /* Wake up the transmitter. */
922 /* XXX USE AUTOPOLLING? */
923 TULIP_WRITE(sc, CSR_TXPOLL, TXPOLL_TPD);
924
925 /* Set a watchdog timer in case the chip flakes out. */
926 ifp->if_timer = 5;
927 }
928 }
929
930 /*
931 * tlp_watchdog: [ifnet interface function]
932 *
933 * Watchdog timer handler.
934 */
935 void
936 tlp_watchdog(ifp)
937 struct ifnet *ifp;
938 {
939 struct tulip_softc *sc = ifp->if_softc;
940 int doing_setup, doing_transmit;
941
942 doing_setup = (sc->sc_flags & TULIPF_DOING_SETUP);
943 doing_transmit = (SIMPLEQ_FIRST(&sc->sc_txdirtyq) != NULL);
944
945 if (doing_setup && doing_transmit) {
946 printf("%s: filter setup and transmit timeout\n",
947 sc->sc_dev.dv_xname);
948 ifp->if_oerrors++;
949 } else if (doing_transmit) {
950 printf("%s: transmit timeout\n", sc->sc_dev.dv_xname);
951 ifp->if_oerrors++;
952 } else if (doing_setup)
953 printf("%s: filter setup timeout\n", sc->sc_dev.dv_xname);
954 else
955 printf("%s: spurious watchdog timeout\n", sc->sc_dev.dv_xname);
956
957 (void) tlp_init(ifp);
958
959 /* Try to get more packets going. */
960 tlp_start(ifp);
961 }
962
963 /*
964 * tlp_ioctl: [ifnet interface function]
965 *
966 * Handle control requests from the operator.
967 */
968 int
969 tlp_ioctl(ifp, cmd, data)
970 struct ifnet *ifp;
971 u_long cmd;
972 caddr_t data;
973 {
974 struct tulip_softc *sc = ifp->if_softc;
975 struct ifreq *ifr = (struct ifreq *)data;
976 int s, error;
977
978 s = splnet();
979
980 switch (cmd) {
981 case SIOCSIFMEDIA:
982 case SIOCGIFMEDIA:
983 error = ifmedia_ioctl(ifp, ifr, &sc->sc_mii.mii_media, cmd);
984 break;
985
986 default:
987 error = ether_ioctl(ifp, cmd, data);
988 if (error == ENETRESET) {
989 if (TULIP_IS_ENABLED(sc)) {
990 /*
991 * Multicast list has changed. Set the
992 * hardware filter accordingly.
993 */
994 (*sc->sc_filter_setup)(sc);
995 }
996 error = 0;
997 }
998 break;
999 }
1000
1001 /* Try to get more packets going. */
1002 if (TULIP_IS_ENABLED(sc))
1003 tlp_start(ifp);
1004
1005 splx(s);
1006 return (error);
1007 }
1008
1009 /*
1010 * tlp_intr:
1011 *
1012 * Interrupt service routine.
1013 */
1014 int
1015 tlp_intr(arg)
1016 void *arg;
1017 {
1018 struct tulip_softc *sc = arg;
1019 struct ifnet *ifp = &sc->sc_ethercom.ec_if;
1020 u_int32_t status, rxstatus, txstatus;
1021 int handled = 0, txthresh;
1022
1023 DPRINTF(sc, ("%s: tlp_intr\n", sc->sc_dev.dv_xname));
1024
1025 #ifdef DEBUG
1026 if (TULIP_IS_ENABLED(sc) == 0)
1027 panic("%s: tlp_intr: not enabled\n", sc->sc_dev.dv_xname);
1028 #endif
1029
1030 /*
1031 * If the interface isn't running, the interrupt couldn't
1032 * possibly have come from us.
1033 */
1034 if ((ifp->if_flags & IFF_RUNNING) == 0 ||
1035 (sc->sc_dev.dv_flags & DVF_ACTIVE) == 0)
1036 return (0);
1037
1038 /* Disable interrupts on the DM9102 (interrupt edge bug). */
1039 switch (sc->sc_chip) {
1040 case TULIP_CHIP_DM9102:
1041 case TULIP_CHIP_DM9102A:
1042 TULIP_WRITE(sc, CSR_INTEN, 0);
1043 break;
1044
1045 default:
1046 /* Nothing. */
1047 break;
1048 }
1049
1050 for (;;) {
1051 status = TULIP_READ(sc, CSR_STATUS);
1052 if (status)
1053 TULIP_WRITE(sc, CSR_STATUS, status);
1054
1055 if ((status & sc->sc_inten) == 0)
1056 break;
1057
1058 handled = 1;
1059
1060 rxstatus = status & sc->sc_rxint_mask;
1061 txstatus = status & sc->sc_txint_mask;
1062
1063 if (rxstatus) {
1064 /* Grab new any new packets. */
1065 tlp_rxintr(sc);
1066
1067 if (rxstatus & STATUS_RWT)
1068 printf("%s: receive watchdog timeout\n",
1069 sc->sc_dev.dv_xname);
1070
1071 if (rxstatus & STATUS_RU) {
1072 printf("%s: receive ring overrun\n",
1073 sc->sc_dev.dv_xname);
1074 /* Get the receive process going again. */
1075 if (sc->sc_tdctl_er != TDCTL_ER) {
1076 tlp_idle(sc, OPMODE_SR);
1077 TULIP_WRITE(sc, CSR_RXLIST,
1078 TULIP_CDRXADDR(sc, sc->sc_rxptr));
1079 TULIP_WRITE(sc, CSR_OPMODE,
1080 sc->sc_opmode);
1081 }
1082 TULIP_WRITE(sc, CSR_RXPOLL, RXPOLL_RPD);
1083 break;
1084 }
1085 }
1086
1087 if (txstatus) {
1088 /* Sweep up transmit descriptors. */
1089 tlp_txintr(sc);
1090
1091 if (txstatus & STATUS_TJT)
1092 printf("%s: transmit jabber timeout\n",
1093 sc->sc_dev.dv_xname);
1094
1095 if (txstatus & STATUS_UNF) {
1096 /*
1097 * Increase our transmit threshold if
1098 * another is available.
1099 */
1100 txthresh = sc->sc_txthresh + 1;
1101 if (sc->sc_txth[txthresh].txth_name != NULL) {
1102 /* Idle the transmit process. */
1103 tlp_idle(sc, OPMODE_ST);
1104
1105 sc->sc_txthresh = txthresh;
1106 sc->sc_opmode &= ~(OPMODE_TR|OPMODE_SF);
1107 sc->sc_opmode |=
1108 sc->sc_txth[txthresh].txth_opmode;
1109 printf("%s: transmit underrun; new "
1110 "threshold: %s\n",
1111 sc->sc_dev.dv_xname,
1112 sc->sc_txth[txthresh].txth_name);
1113
1114 /*
1115 * Set the new threshold and restart
1116 * the transmit process.
1117 */
1118 TULIP_WRITE(sc, CSR_OPMODE,
1119 sc->sc_opmode);
1120 }
1121 /*
1122 * XXX Log every Nth underrun from
1123 * XXX now on?
1124 */
1125 }
1126 }
1127
1128 if (status & (STATUS_TPS|STATUS_RPS)) {
1129 if (status & STATUS_TPS)
1130 printf("%s: transmit process stopped\n",
1131 sc->sc_dev.dv_xname);
1132 if (status & STATUS_RPS)
1133 printf("%s: receive process stopped\n",
1134 sc->sc_dev.dv_xname);
1135 (void) tlp_init(ifp);
1136 break;
1137 }
1138
1139 if (status & STATUS_SE) {
1140 const char *str;
1141 switch (status & STATUS_EB) {
1142 case STATUS_EB_PARITY:
1143 str = "parity error";
1144 break;
1145
1146 case STATUS_EB_MABT:
1147 str = "master abort";
1148 break;
1149
1150 case STATUS_EB_TABT:
1151 str = "target abort";
1152 break;
1153
1154 default:
1155 str = "unknown error";
1156 break;
1157 }
1158 printf("%s: fatal system error: %s\n",
1159 sc->sc_dev.dv_xname, str);
1160 (void) tlp_init(ifp);
1161 break;
1162 }
1163
1164 /*
1165 * Not handled:
1166 *
1167 * Transmit buffer unavailable -- normal
1168 * condition, nothing to do, really.
1169 *
1170 * General purpose timer experied -- we don't
1171 * use the general purpose timer.
1172 *
1173 * Early receive interrupt -- not available on
1174 * all chips, we just use RI. We also only
1175 * use single-segment receive DMA, so this
1176 * is mostly useless.
1177 */
1178 }
1179
1180 /* Bring interrupts back up on the DM9102. */
1181 switch (sc->sc_chip) {
1182 case TULIP_CHIP_DM9102:
1183 case TULIP_CHIP_DM9102A:
1184 TULIP_WRITE(sc, CSR_INTEN, sc->sc_inten);
1185 break;
1186
1187 default:
1188 /* Nothing. */
1189 break;
1190 }
1191
1192 /* Try to get more packets going. */
1193 tlp_start(ifp);
1194
1195 #if NRND > 0
1196 if (handled)
1197 rnd_add_uint32(&sc->sc_rnd_source, status);
1198 #endif
1199 return (handled);
1200 }
1201
1202 /*
1203 * tlp_rxintr:
1204 *
1205 * Helper; handle receive interrupts.
1206 */
1207 void
1208 tlp_rxintr(sc)
1209 struct tulip_softc *sc;
1210 {
1211 struct ifnet *ifp = &sc->sc_ethercom.ec_if;
1212 struct ether_header *eh;
1213 struct tulip_rxsoft *rxs;
1214 struct mbuf *m;
1215 u_int32_t rxstat;
1216 int i, len;
1217
1218 for (i = sc->sc_rxptr;; i = TULIP_NEXTRX(i)) {
1219 rxs = &sc->sc_rxsoft[i];
1220
1221 TULIP_CDRXSYNC(sc, i,
1222 BUS_DMASYNC_POSTREAD|BUS_DMASYNC_POSTWRITE);
1223
1224 rxstat = le32toh(sc->sc_rxdescs[i].td_status);
1225
1226 if (rxstat & TDSTAT_OWN) {
1227 /*
1228 * We have processed all of the receive buffers.
1229 */
1230 break;
1231 }
1232
1233 /*
1234 * Make sure the packet fit in one buffer. This should
1235 * always be the case. But the Lite-On PNIC, rev 33
1236 * has an awful receive engine bug, which may require
1237 * a very icky work-around.
1238 */
1239 if ((rxstat & (TDSTAT_Rx_FS|TDSTAT_Rx_LS)) !=
1240 (TDSTAT_Rx_FS|TDSTAT_Rx_LS)) {
1241 printf("%s: incoming packet spilled, resetting\n",
1242 sc->sc_dev.dv_xname);
1243 (void) tlp_init(ifp);
1244 return;
1245 }
1246
1247 /*
1248 * If any collisions were seen on the wire, count one.
1249 */
1250 if (rxstat & TDSTAT_Rx_CS)
1251 ifp->if_collisions++;
1252
1253 /*
1254 * If an error occured, update stats, clear the status
1255 * word, and leave the packet buffer in place. It will
1256 * simply be reused the next time the ring comes around.
1257 * If 802.1Q VLAN MTU is enabled, ignore the Frame Too Long
1258 * error.
1259 */
1260 if (rxstat & TDSTAT_ES &&
1261 ((sc->sc_ethercom.ec_capenable & ETHERCAP_VLAN_MTU) == 0 ||
1262 (rxstat & (TDSTAT_Rx_DE | TDSTAT_Rx_RF |
1263 TDSTAT_Rx_DB | TDSTAT_Rx_CE)) != 0)) {
1264 #define PRINTERR(bit, str) \
1265 if (rxstat & (bit)) \
1266 printf("%s: receive error: %s\n", \
1267 sc->sc_dev.dv_xname, str)
1268 ifp->if_ierrors++;
1269 PRINTERR(TDSTAT_Rx_DE, "descriptor error");
1270 PRINTERR(TDSTAT_Rx_RF, "runt frame");
1271 PRINTERR(TDSTAT_Rx_TL, "frame too long");
1272 PRINTERR(TDSTAT_Rx_RE, "MII error");
1273 PRINTERR(TDSTAT_Rx_DB, "dribbling bit");
1274 PRINTERR(TDSTAT_Rx_CE, "CRC error");
1275 #undef PRINTERR
1276 TULIP_INIT_RXDESC(sc, i);
1277 continue;
1278 }
1279
1280 bus_dmamap_sync(sc->sc_dmat, rxs->rxs_dmamap, 0,
1281 rxs->rxs_dmamap->dm_mapsize, BUS_DMASYNC_POSTREAD);
1282
1283 /*
1284 * No errors; receive the packet. Note the Tulip
1285 * includes the CRC with every packet.
1286 */
1287 len = TDSTAT_Rx_LENGTH(rxstat);
1288
1289 #ifdef __NO_STRICT_ALIGNMENT
1290 /*
1291 * Allocate a new mbuf cluster. If that fails, we are
1292 * out of memory, and must drop the packet and recycle
1293 * the buffer that's already attached to this descriptor.
1294 */
1295 m = rxs->rxs_mbuf;
1296 if (tlp_add_rxbuf(sc, i) != 0) {
1297 ifp->if_ierrors++;
1298 TULIP_INIT_RXDESC(sc, i);
1299 bus_dmamap_sync(sc->sc_dmat, rxs->rxs_dmamap, 0,
1300 rxs->rxs_dmamap->dm_mapsize, BUS_DMASYNC_PREREAD);
1301 continue;
1302 }
1303 #else
1304 /*
1305 * The Tulip's receive buffers must be 4-byte aligned.
1306 * But this means that the data after the Ethernet header
1307 * is misaligned. We must allocate a new buffer and
1308 * copy the data, shifted forward 2 bytes.
1309 */
1310 MGETHDR(m, M_DONTWAIT, MT_DATA);
1311 if (m == NULL) {
1312 dropit:
1313 ifp->if_ierrors++;
1314 TULIP_INIT_RXDESC(sc, i);
1315 bus_dmamap_sync(sc->sc_dmat, rxs->rxs_dmamap, 0,
1316 rxs->rxs_dmamap->dm_mapsize, BUS_DMASYNC_PREREAD);
1317 continue;
1318 }
1319 if (len > (MHLEN - 2)) {
1320 MCLGET(m, M_DONTWAIT);
1321 if ((m->m_flags & M_EXT) == 0) {
1322 m_freem(m);
1323 goto dropit;
1324 }
1325 }
1326 m->m_data += 2;
1327
1328 /*
1329 * Note that we use clusters for incoming frames, so the
1330 * buffer is virtually contiguous.
1331 */
1332 memcpy(mtod(m, caddr_t), mtod(rxs->rxs_mbuf, caddr_t), len);
1333
1334 /* Allow the receive descriptor to continue using its mbuf. */
1335 TULIP_INIT_RXDESC(sc, i);
1336 bus_dmamap_sync(sc->sc_dmat, rxs->rxs_dmamap, 0,
1337 rxs->rxs_dmamap->dm_mapsize, BUS_DMASYNC_PREREAD);
1338 #endif /* __NO_STRICT_ALIGNMENT */
1339
1340 ifp->if_ipackets++;
1341 eh = mtod(m, struct ether_header *);
1342 m->m_flags |= M_HASFCS;
1343 m->m_pkthdr.rcvif = ifp;
1344 m->m_pkthdr.len = m->m_len = len;
1345
1346 #if NBPFILTER > 0
1347 /*
1348 * Pass this up to any BPF listeners, but only
1349 * pass it up the stack if its for us.
1350 */
1351 if (ifp->if_bpf)
1352 bpf_mtap(ifp->if_bpf, m);
1353 #endif /* NPBFILTER > 0 */
1354
1355 /*
1356 * We sometimes have to run the 21140 in Hash-Only
1357 * mode. If we're in that mode, and not in promiscuous
1358 * mode, and we have a unicast packet that isn't for
1359 * us, then drop it.
1360 */
1361 if (sc->sc_filtmode == TDCTL_Tx_FT_HASHONLY &&
1362 (ifp->if_flags & IFF_PROMISC) == 0 &&
1363 ETHER_IS_MULTICAST(eh->ether_dhost) == 0 &&
1364 memcmp(LLADDR(ifp->if_sadl), eh->ether_dhost,
1365 ETHER_ADDR_LEN) != 0) {
1366 m_freem(m);
1367 continue;
1368 }
1369
1370 /* Pass it on. */
1371 (*ifp->if_input)(ifp, m);
1372 }
1373
1374 /* Update the receive pointer. */
1375 sc->sc_rxptr = i;
1376 }
1377
1378 /*
1379 * tlp_txintr:
1380 *
1381 * Helper; handle transmit interrupts.
1382 */
1383 void
1384 tlp_txintr(sc)
1385 struct tulip_softc *sc;
1386 {
1387 struct ifnet *ifp = &sc->sc_ethercom.ec_if;
1388 struct tulip_txsoft *txs;
1389 u_int32_t txstat;
1390
1391 DPRINTF(sc, ("%s: tlp_txintr: sc_flags 0x%08x\n",
1392 sc->sc_dev.dv_xname, sc->sc_flags));
1393
1394 ifp->if_flags &= ~IFF_OACTIVE;
1395
1396 /*
1397 * Go through our Tx list and free mbufs for those
1398 * frames that have been transmitted.
1399 */
1400 while ((txs = SIMPLEQ_FIRST(&sc->sc_txdirtyq)) != NULL) {
1401 TULIP_CDTXSYNC(sc, txs->txs_lastdesc,
1402 txs->txs_ndescs,
1403 BUS_DMASYNC_POSTREAD|BUS_DMASYNC_POSTWRITE);
1404
1405 #ifdef TLP_DEBUG
1406 if (ifp->if_flags & IFF_DEBUG) {
1407 int i;
1408 printf(" txsoft %p transmit chain:\n", txs);
1409 for (i = txs->txs_firstdesc;; i = TULIP_NEXTTX(i)) {
1410 printf(" descriptor %d:\n", i);
1411 printf(" td_status: 0x%08x\n",
1412 le32toh(sc->sc_txdescs[i].td_status));
1413 printf(" td_ctl: 0x%08x\n",
1414 le32toh(sc->sc_txdescs[i].td_ctl));
1415 printf(" td_bufaddr1: 0x%08x\n",
1416 le32toh(sc->sc_txdescs[i].td_bufaddr1));
1417 printf(" td_bufaddr2: 0x%08x\n",
1418 le32toh(sc->sc_txdescs[i].td_bufaddr2));
1419 if (i == txs->txs_lastdesc)
1420 break;
1421 }
1422 }
1423 #endif
1424
1425 txstat = le32toh(sc->sc_txdescs[txs->txs_lastdesc].td_status);
1426 if (txstat & TDSTAT_OWN)
1427 break;
1428
1429 SIMPLEQ_REMOVE_HEAD(&sc->sc_txdirtyq, txs, txs_q);
1430
1431 sc->sc_txfree += txs->txs_ndescs;
1432
1433 if (txs->txs_mbuf == NULL) {
1434 /*
1435 * If we didn't have an mbuf, it was the setup
1436 * packet.
1437 */
1438 #ifdef DIAGNOSTIC
1439 if ((sc->sc_flags & TULIPF_DOING_SETUP) == 0)
1440 panic("tlp_txintr: null mbuf, not doing setup");
1441 #endif
1442 TULIP_CDSPSYNC(sc, BUS_DMASYNC_POSTWRITE);
1443 sc->sc_flags &= ~TULIPF_DOING_SETUP;
1444 SIMPLEQ_INSERT_TAIL(&sc->sc_txfreeq, txs, txs_q);
1445 continue;
1446 }
1447
1448 bus_dmamap_sync(sc->sc_dmat, txs->txs_dmamap,
1449 0, txs->txs_dmamap->dm_mapsize,
1450 BUS_DMASYNC_POSTWRITE);
1451 bus_dmamap_unload(sc->sc_dmat, txs->txs_dmamap);
1452 m_freem(txs->txs_mbuf);
1453 txs->txs_mbuf = NULL;
1454
1455 SIMPLEQ_INSERT_TAIL(&sc->sc_txfreeq, txs, txs_q);
1456
1457 /*
1458 * Check for errors and collisions.
1459 */
1460 #ifdef TLP_STATS
1461 if (txstat & TDSTAT_Tx_UF)
1462 sc->sc_stats.ts_tx_uf++;
1463 if (txstat & TDSTAT_Tx_TO)
1464 sc->sc_stats.ts_tx_to++;
1465 if (txstat & TDSTAT_Tx_EC)
1466 sc->sc_stats.ts_tx_ec++;
1467 if (txstat & TDSTAT_Tx_LC)
1468 sc->sc_stats.ts_tx_lc++;
1469 #endif
1470
1471 if (txstat & (TDSTAT_Tx_UF|TDSTAT_Tx_TO))
1472 ifp->if_oerrors++;
1473
1474 if (txstat & TDSTAT_Tx_EC)
1475 ifp->if_collisions += 16;
1476 else
1477 ifp->if_collisions += TDSTAT_Tx_COLLISIONS(txstat);
1478 if (txstat & TDSTAT_Tx_LC)
1479 ifp->if_collisions++;
1480
1481 ifp->if_opackets++;
1482 }
1483
1484 /*
1485 * If there are no more pending transmissions, cancel the watchdog
1486 * timer.
1487 */
1488 if (txs == NULL && (sc->sc_flags & TULIPF_DOING_SETUP) == 0)
1489 ifp->if_timer = 0;
1490
1491 /*
1492 * If we have a receive filter setup pending, do it now.
1493 */
1494 if (sc->sc_flags & TULIPF_WANT_SETUP)
1495 (*sc->sc_filter_setup)(sc);
1496 }
1497
1498 #ifdef TLP_STATS
1499 void
1500 tlp_print_stats(sc)
1501 struct tulip_softc *sc;
1502 {
1503
1504 printf("%s: tx_uf %lu, tx_to %lu, tx_ec %lu, tx_lc %lu\n",
1505 sc->sc_dev.dv_xname,
1506 sc->sc_stats.ts_tx_uf, sc->sc_stats.ts_tx_to,
1507 sc->sc_stats.ts_tx_ec, sc->sc_stats.ts_tx_lc);
1508 }
1509 #endif
1510
1511 /*
1512 * tlp_reset:
1513 *
1514 * Perform a soft reset on the Tulip.
1515 */
1516 void
1517 tlp_reset(sc)
1518 struct tulip_softc *sc;
1519 {
1520 int i;
1521
1522 TULIP_WRITE(sc, CSR_BUSMODE, BUSMODE_SWR);
1523
1524 /*
1525 * Xircom clone doesn't bring itself out of reset automatically.
1526 * Instead, we have to wait at least 50 PCI cycles, and then
1527 * clear SWR.
1528 */
1529 if (sc->sc_chip == TULIP_CHIP_X3201_3) {
1530 delay(10);
1531 TULIP_WRITE(sc, CSR_BUSMODE, 0);
1532 }
1533
1534 for (i = 0; i < 1000; i++) {
1535 /*
1536 * Wait at least 50 PCI cycles for the reset to
1537 * complete before peeking at the Tulip again.
1538 * 10 uSec is a bit longer than 50 PCI cycles
1539 * (at 33MHz), but it doesn't hurt have the extra
1540 * wait.
1541 */
1542 delay(10);
1543 if (TULIP_ISSET(sc, CSR_BUSMODE, BUSMODE_SWR) == 0)
1544 break;
1545 }
1546
1547 if (TULIP_ISSET(sc, CSR_BUSMODE, BUSMODE_SWR))
1548 printf("%s: reset failed to complete\n", sc->sc_dev.dv_xname);
1549
1550 delay(1000);
1551
1552 /*
1553 * If the board has any GPIO reset sequences to issue, do them now.
1554 */
1555 if (sc->sc_reset != NULL)
1556 (*sc->sc_reset)(sc);
1557 }
1558
1559 /*
1560 * tlp_init: [ ifnet interface function ]
1561 *
1562 * Initialize the interface. Must be called at splnet().
1563 */
1564 int
1565 tlp_init(ifp)
1566 struct ifnet *ifp;
1567 {
1568 struct tulip_softc *sc = ifp->if_softc;
1569 struct tulip_txsoft *txs;
1570 struct tulip_rxsoft *rxs;
1571 int i, error = 0;
1572
1573 if ((error = tlp_enable(sc)) != 0)
1574 goto out;
1575
1576 /*
1577 * Cancel any pending I/O.
1578 */
1579 tlp_stop(ifp, 0);
1580
1581 /*
1582 * Initialize `opmode' to 0, and call the pre-init routine, if
1583 * any. This is required because the 2114x and some of the
1584 * clones require that the media-related bits in `opmode' be
1585 * set before performing a soft-reset in order to get internal
1586 * chip pathways are correct. Yay!
1587 */
1588 sc->sc_opmode = 0;
1589 if (sc->sc_preinit != NULL)
1590 (*sc->sc_preinit)(sc);
1591
1592 /*
1593 * Reset the Tulip to a known state.
1594 */
1595 tlp_reset(sc);
1596
1597 /*
1598 * Initialize the BUSMODE register.
1599 */
1600 sc->sc_busmode = BUSMODE_BAR;
1601 switch (sc->sc_chip) {
1602 case TULIP_CHIP_21140:
1603 case TULIP_CHIP_21140A:
1604 case TULIP_CHIP_21142:
1605 case TULIP_CHIP_21143:
1606 case TULIP_CHIP_82C115:
1607 case TULIP_CHIP_MX98725:
1608 /*
1609 * If we're allowed to do so, use Memory Read Line
1610 * and Memory Read Multiple.
1611 *
1612 * XXX Should we use Memory Write and Invalidate?
1613 */
1614 if (sc->sc_flags & TULIPF_MRL)
1615 sc->sc_busmode |= BUSMODE_RLE;
1616 if (sc->sc_flags & TULIPF_MRM)
1617 sc->sc_busmode |= BUSMODE_RME;
1618 #if 0
1619 if (sc->sc_flags & TULIPF_MWI)
1620 sc->sc_busmode |= BUSMODE_WLE;
1621 #endif
1622 break;
1623
1624 case TULIP_CHIP_82C168:
1625 case TULIP_CHIP_82C169:
1626 sc->sc_busmode |= BUSMODE_PNIC_MBO;
1627 if (sc->sc_maxburst == 0)
1628 sc->sc_maxburst = 16;
1629 break;
1630
1631 default:
1632 /* Nothing. */
1633 break;
1634 }
1635 switch (sc->sc_cacheline) {
1636 default:
1637 /*
1638 * Note: We must *always* set these bits; a cache
1639 * alignment of 0 is RESERVED.
1640 */
1641 case 8:
1642 sc->sc_busmode |= BUSMODE_CAL_8LW;
1643 break;
1644 case 16:
1645 sc->sc_busmode |= BUSMODE_CAL_16LW;
1646 break;
1647 case 32:
1648 sc->sc_busmode |= BUSMODE_CAL_32LW;
1649 break;
1650 }
1651 switch (sc->sc_maxburst) {
1652 case 1:
1653 sc->sc_busmode |= BUSMODE_PBL_1LW;
1654 break;
1655 case 2:
1656 sc->sc_busmode |= BUSMODE_PBL_2LW;
1657 break;
1658 case 4:
1659 sc->sc_busmode |= BUSMODE_PBL_4LW;
1660 break;
1661 case 8:
1662 sc->sc_busmode |= BUSMODE_PBL_8LW;
1663 break;
1664 case 16:
1665 sc->sc_busmode |= BUSMODE_PBL_16LW;
1666 break;
1667 case 32:
1668 sc->sc_busmode |= BUSMODE_PBL_32LW;
1669 break;
1670 default:
1671 sc->sc_busmode |= BUSMODE_PBL_DEFAULT;
1672 break;
1673 }
1674 #if BYTE_ORDER == BIG_ENDIAN
1675 /*
1676 * Can't use BUSMODE_BLE or BUSMODE_DBO; not all chips
1677 * support them, and even on ones that do, it doesn't
1678 * always work. So we always access descriptors with
1679 * little endian via htole32/le32toh.
1680 */
1681 #endif
1682 /*
1683 * Big-endian bus requires BUSMODE_BLE anyway.
1684 * Also, BUSMODE_DBO is needed because we assume
1685 * descriptors are little endian.
1686 */
1687 if (sc->sc_flags & TULIPF_BLE)
1688 sc->sc_busmode |= BUSMODE_BLE;
1689 if (sc->sc_flags & TULIPF_DBO)
1690 sc->sc_busmode |= BUSMODE_DBO;
1691
1692 /*
1693 * Some chips have a broken bus interface.
1694 */
1695 switch (sc->sc_chip) {
1696 case TULIP_CHIP_DM9102:
1697 case TULIP_CHIP_DM9102A:
1698 sc->sc_busmode = 0;
1699 break;
1700
1701 default:
1702 /* Nothing. */
1703 break;
1704 }
1705
1706 TULIP_WRITE(sc, CSR_BUSMODE, sc->sc_busmode);
1707
1708 /*
1709 * Initialize the OPMODE register. We don't write it until
1710 * we're ready to begin the transmit and receive processes.
1711 *
1712 * Media-related OPMODE bits are set in the media callbacks
1713 * for each specific chip/board.
1714 */
1715 sc->sc_opmode |= OPMODE_SR | OPMODE_ST |
1716 sc->sc_txth[sc->sc_txthresh].txth_opmode;
1717
1718 /*
1719 * Magical mystery initialization on the Macronix chips.
1720 * The MX98713 uses its own magic value, the rest share
1721 * a common one.
1722 */
1723 switch (sc->sc_chip) {
1724 case TULIP_CHIP_MX98713:
1725 TULIP_WRITE(sc, CSR_PMAC_TOR, PMAC_TOR_98713);
1726 break;
1727
1728 case TULIP_CHIP_MX98713A:
1729 case TULIP_CHIP_MX98715:
1730 case TULIP_CHIP_MX98715A:
1731 case TULIP_CHIP_MX98715AEC_X:
1732 case TULIP_CHIP_MX98725:
1733 TULIP_WRITE(sc, CSR_PMAC_TOR, PMAC_TOR_98715);
1734 break;
1735
1736 default:
1737 /* Nothing. */
1738 break;
1739 }
1740
1741 /*
1742 * Initialize the transmit descriptor ring.
1743 */
1744 memset(sc->sc_txdescs, 0, sizeof(sc->sc_txdescs));
1745 for (i = 0; i < TULIP_NTXDESC; i++) {
1746 sc->sc_txdescs[i].td_ctl = htole32(sc->sc_tdctl_ch);
1747 sc->sc_txdescs[i].td_bufaddr2 =
1748 htole32(TULIP_CDTXADDR(sc, TULIP_NEXTTX(i)));
1749 }
1750 sc->sc_txdescs[TULIP_NTXDESC - 1].td_ctl |= htole32(sc->sc_tdctl_er);
1751 TULIP_CDTXSYNC(sc, 0, TULIP_NTXDESC,
1752 BUS_DMASYNC_PREREAD|BUS_DMASYNC_PREWRITE);
1753 sc->sc_txfree = TULIP_NTXDESC;
1754 sc->sc_txnext = 0;
1755
1756 /*
1757 * Initialize the transmit job descriptors.
1758 */
1759 SIMPLEQ_INIT(&sc->sc_txfreeq);
1760 SIMPLEQ_INIT(&sc->sc_txdirtyq);
1761 for (i = 0; i < TULIP_TXQUEUELEN; i++) {
1762 txs = &sc->sc_txsoft[i];
1763 txs->txs_mbuf = NULL;
1764 SIMPLEQ_INSERT_TAIL(&sc->sc_txfreeq, txs, txs_q);
1765 }
1766
1767 /*
1768 * Initialize the receive descriptor and receive job
1769 * descriptor rings.
1770 */
1771 for (i = 0; i < TULIP_NRXDESC; i++) {
1772 rxs = &sc->sc_rxsoft[i];
1773 if (rxs->rxs_mbuf == NULL) {
1774 if ((error = tlp_add_rxbuf(sc, i)) != 0) {
1775 printf("%s: unable to allocate or map rx "
1776 "buffer %d, error = %d\n",
1777 sc->sc_dev.dv_xname, i, error);
1778 /*
1779 * XXX Should attempt to run with fewer receive
1780 * XXX buffers instead of just failing.
1781 */
1782 tlp_rxdrain(sc);
1783 goto out;
1784 }
1785 }
1786 }
1787 sc->sc_rxptr = 0;
1788
1789 /*
1790 * Initialize the interrupt mask and enable interrupts.
1791 */
1792 /* normal interrupts */
1793 sc->sc_inten = STATUS_TI | STATUS_TU | STATUS_RI | STATUS_NIS;
1794
1795 /* abnormal interrupts */
1796 sc->sc_inten |= STATUS_TPS | STATUS_TJT | STATUS_UNF |
1797 STATUS_RU | STATUS_RPS | STATUS_RWT | STATUS_SE | STATUS_AIS;
1798
1799 sc->sc_rxint_mask = STATUS_RI|STATUS_RU|STATUS_RWT;
1800 sc->sc_txint_mask = STATUS_TI|STATUS_UNF|STATUS_TJT;
1801
1802 switch (sc->sc_chip) {
1803 case TULIP_CHIP_WB89C840F:
1804 /*
1805 * Clear bits that we don't want that happen to
1806 * overlap or don't exist.
1807 */
1808 sc->sc_inten &= ~(STATUS_WINB_REI|STATUS_RWT);
1809 break;
1810
1811 default:
1812 /* Nothing. */
1813 break;
1814 }
1815
1816 sc->sc_rxint_mask &= sc->sc_inten;
1817 sc->sc_txint_mask &= sc->sc_inten;
1818
1819 TULIP_WRITE(sc, CSR_INTEN, sc->sc_inten);
1820 TULIP_WRITE(sc, CSR_STATUS, 0xffffffff);
1821
1822 /*
1823 * Give the transmit and receive rings to the Tulip.
1824 */
1825 TULIP_WRITE(sc, CSR_TXLIST, TULIP_CDTXADDR(sc, sc->sc_txnext));
1826 TULIP_WRITE(sc, CSR_RXLIST, TULIP_CDRXADDR(sc, sc->sc_rxptr));
1827
1828 /*
1829 * On chips that do this differently, set the station address.
1830 */
1831 switch (sc->sc_chip) {
1832 case TULIP_CHIP_WB89C840F:
1833 {
1834 /* XXX Do this with stream writes? */
1835 bus_addr_t cpa = TULIP_CSR_OFFSET(sc, CSR_WINB_CPA0);
1836
1837 for (i = 0; i < ETHER_ADDR_LEN; i++) {
1838 bus_space_write_1(sc->sc_st, sc->sc_sh,
1839 cpa + i, LLADDR(ifp->if_sadl)[i]);
1840 }
1841 break;
1842 }
1843
1844 case TULIP_CHIP_AL981:
1845 case TULIP_CHIP_AN983:
1846 case TULIP_CHIP_AN985:
1847 {
1848 u_int32_t reg;
1849 u_int8_t *enaddr = LLADDR(ifp->if_sadl);
1850
1851 reg = enaddr[0] |
1852 (enaddr[1] << 8) |
1853 (enaddr[2] << 16) |
1854 (enaddr[3] << 24);
1855 bus_space_write_4(sc->sc_st, sc->sc_sh, CSR_ADM_PAR0, reg);
1856
1857 reg = enaddr[4] |
1858 (enaddr[5] << 8);
1859 bus_space_write_4(sc->sc_st, sc->sc_sh, CSR_ADM_PAR1, reg);
1860 }
1861
1862 default:
1863 /* Nothing. */
1864 break;
1865 }
1866
1867 /*
1868 * Set the receive filter. This will start the transmit and
1869 * receive processes.
1870 */
1871 (*sc->sc_filter_setup)(sc);
1872
1873 /*
1874 * Set the current media.
1875 */
1876 (void) (*sc->sc_mediasw->tmsw_set)(sc);
1877
1878 /*
1879 * Start the receive process.
1880 */
1881 TULIP_WRITE(sc, CSR_RXPOLL, RXPOLL_RPD);
1882
1883 if (sc->sc_tick != NULL) {
1884 /* Start the one second clock. */
1885 callout_reset(&sc->sc_tick_callout, hz, sc->sc_tick, sc);
1886 }
1887
1888 /*
1889 * Note that the interface is now running.
1890 */
1891 ifp->if_flags |= IFF_RUNNING;
1892 ifp->if_flags &= ~IFF_OACTIVE;
1893
1894 out:
1895 if (error) {
1896 ifp->if_flags &= ~(IFF_RUNNING | IFF_OACTIVE);
1897 ifp->if_timer = 0;
1898 printf("%s: interface not running\n", sc->sc_dev.dv_xname);
1899 }
1900 return (error);
1901 }
1902
1903 /*
1904 * tlp_enable:
1905 *
1906 * Enable the Tulip chip.
1907 */
1908 int
1909 tlp_enable(sc)
1910 struct tulip_softc *sc;
1911 {
1912
1913 if (TULIP_IS_ENABLED(sc) == 0 && sc->sc_enable != NULL) {
1914 if ((*sc->sc_enable)(sc) != 0) {
1915 printf("%s: device enable failed\n",
1916 sc->sc_dev.dv_xname);
1917 return (EIO);
1918 }
1919 sc->sc_flags |= TULIPF_ENABLED;
1920 }
1921 return (0);
1922 }
1923
1924 /*
1925 * tlp_disable:
1926 *
1927 * Disable the Tulip chip.
1928 */
1929 void
1930 tlp_disable(sc)
1931 struct tulip_softc *sc;
1932 {
1933
1934 if (TULIP_IS_ENABLED(sc) && sc->sc_disable != NULL) {
1935 (*sc->sc_disable)(sc);
1936 sc->sc_flags &= ~TULIPF_ENABLED;
1937 }
1938 }
1939
1940 /*
1941 * tlp_power:
1942 *
1943 * Power management (suspend/resume) hook.
1944 */
1945 void
1946 tlp_power(why, arg)
1947 int why;
1948 void *arg;
1949 {
1950 struct tulip_softc *sc = arg;
1951 struct ifnet *ifp = &sc->sc_ethercom.ec_if;
1952 int s;
1953
1954 s = splnet();
1955 switch (why) {
1956 case PWR_SUSPEND:
1957 case PWR_STANDBY:
1958 tlp_stop(ifp, 0);
1959 if (sc->sc_power != NULL)
1960 (*sc->sc_power)(sc, why);
1961 break;
1962 case PWR_RESUME:
1963 if (ifp->if_flags & IFF_UP) {
1964 if (sc->sc_power != NULL)
1965 (*sc->sc_power)(sc, why);
1966 tlp_init(ifp);
1967 }
1968 break;
1969 case PWR_SOFTSUSPEND:
1970 case PWR_SOFTSTANDBY:
1971 case PWR_SOFTRESUME:
1972 break;
1973 }
1974 splx(s);
1975 }
1976
1977 /*
1978 * tlp_rxdrain:
1979 *
1980 * Drain the receive queue.
1981 */
1982 void
1983 tlp_rxdrain(sc)
1984 struct tulip_softc *sc;
1985 {
1986 struct tulip_rxsoft *rxs;
1987 int i;
1988
1989 for (i = 0; i < TULIP_NRXDESC; i++) {
1990 rxs = &sc->sc_rxsoft[i];
1991 if (rxs->rxs_mbuf != NULL) {
1992 bus_dmamap_unload(sc->sc_dmat, rxs->rxs_dmamap);
1993 m_freem(rxs->rxs_mbuf);
1994 rxs->rxs_mbuf = NULL;
1995 }
1996 }
1997 }
1998
1999 /*
2000 * tlp_stop: [ ifnet interface function ]
2001 *
2002 * Stop transmission on the interface.
2003 */
2004 void
2005 tlp_stop(ifp, disable)
2006 struct ifnet *ifp;
2007 int disable;
2008 {
2009 struct tulip_softc *sc = ifp->if_softc;
2010 struct tulip_txsoft *txs;
2011
2012 if (sc->sc_tick != NULL) {
2013 /* Stop the one second clock. */
2014 callout_stop(&sc->sc_tick_callout);
2015 }
2016
2017 if (sc->sc_flags & TULIPF_HAS_MII) {
2018 /* Down the MII. */
2019 mii_down(&sc->sc_mii);
2020 }
2021
2022 /* Disable interrupts. */
2023 TULIP_WRITE(sc, CSR_INTEN, 0);
2024
2025 /* Stop the transmit and receive processes. */
2026 sc->sc_opmode = 0;
2027 TULIP_WRITE(sc, CSR_OPMODE, 0);
2028 TULIP_WRITE(sc, CSR_RXLIST, 0);
2029 TULIP_WRITE(sc, CSR_TXLIST, 0);
2030
2031 /*
2032 * Release any queued transmit buffers.
2033 */
2034 while ((txs = SIMPLEQ_FIRST(&sc->sc_txdirtyq)) != NULL) {
2035 SIMPLEQ_REMOVE_HEAD(&sc->sc_txdirtyq, txs, txs_q);
2036 if (txs->txs_mbuf != NULL) {
2037 bus_dmamap_unload(sc->sc_dmat, txs->txs_dmamap);
2038 m_freem(txs->txs_mbuf);
2039 txs->txs_mbuf = NULL;
2040 }
2041 SIMPLEQ_INSERT_TAIL(&sc->sc_txfreeq, txs, txs_q);
2042 }
2043
2044 if (disable) {
2045 tlp_rxdrain(sc);
2046 tlp_disable(sc);
2047 }
2048
2049 sc->sc_flags &= ~(TULIPF_WANT_SETUP|TULIPF_DOING_SETUP);
2050
2051 /*
2052 * Mark the interface down and cancel the watchdog timer.
2053 */
2054 ifp->if_flags &= ~(IFF_RUNNING | IFF_OACTIVE);
2055 ifp->if_timer = 0;
2056 }
2057
2058 #define SROM_EMIT(sc, x) \
2059 do { \
2060 TULIP_WRITE((sc), CSR_MIIROM, (x)); \
2061 delay(2); \
2062 } while (0)
2063
2064 /*
2065 * tlp_srom_idle:
2066 *
2067 * Put the SROM in idle state.
2068 */
2069 void
2070 tlp_srom_idle(sc)
2071 struct tulip_softc *sc;
2072 {
2073 u_int32_t miirom;
2074 int i;
2075
2076 miirom = MIIROM_SR;
2077 SROM_EMIT(sc, miirom);
2078
2079 miirom |= MIIROM_RD;
2080 SROM_EMIT(sc, miirom);
2081
2082 miirom |= MIIROM_SROMCS;
2083 SROM_EMIT(sc, miirom);
2084
2085 SROM_EMIT(sc, miirom|MIIROM_SROMSK);
2086
2087 /* Strobe the clock 32 times. */
2088 for (i = 0; i < 32; i++) {
2089 SROM_EMIT(sc, miirom);
2090 SROM_EMIT(sc, miirom|MIIROM_SROMSK);
2091 }
2092
2093 SROM_EMIT(sc, miirom);
2094
2095 miirom &= ~MIIROM_SROMCS;
2096 SROM_EMIT(sc, miirom);
2097
2098 SROM_EMIT(sc, 0);
2099 }
2100
2101 /*
2102 * tlp_srom_size:
2103 *
2104 * Determine the number of address bits in the SROM.
2105 */
2106 int
2107 tlp_srom_size(sc)
2108 struct tulip_softc *sc;
2109 {
2110 u_int32_t miirom;
2111 int x;
2112
2113 /* Select the SROM. */
2114 miirom = MIIROM_SR;
2115 SROM_EMIT(sc, miirom);
2116
2117 miirom |= MIIROM_RD;
2118 SROM_EMIT(sc, miirom);
2119
2120 /* Send CHIP SELECT for one clock tick. */
2121 miirom |= MIIROM_SROMCS;
2122 SROM_EMIT(sc, miirom);
2123
2124 /* Shift in the READ opcode. */
2125 for (x = 3; x > 0; x--) {
2126 if (TULIP_SROM_OPC_READ & (1 << (x - 1)))
2127 miirom |= MIIROM_SROMDI;
2128 else
2129 miirom &= ~MIIROM_SROMDI;
2130 SROM_EMIT(sc, miirom);
2131 SROM_EMIT(sc, miirom|MIIROM_SROMSK);
2132 SROM_EMIT(sc, miirom);
2133 }
2134
2135 /* Shift in address and look for dummy 0 bit. */
2136 for (x = 1; x <= 12; x++) {
2137 miirom &= ~MIIROM_SROMDI;
2138 SROM_EMIT(sc, miirom);
2139 SROM_EMIT(sc, miirom|MIIROM_SROMSK);
2140 if (!TULIP_ISSET(sc, CSR_MIIROM, MIIROM_SROMDO))
2141 break;
2142 SROM_EMIT(sc, miirom);
2143 }
2144
2145 /* Clear CHIP SELECT. */
2146 miirom &= ~MIIROM_SROMCS;
2147 SROM_EMIT(sc, miirom);
2148
2149 /* Deselect the SROM. */
2150 SROM_EMIT(sc, 0);
2151
2152 if (x < 4 || x > 12) {
2153 printf("%s: broken MicroWire interface detected; "
2154 "setting SROM size to 1Kb\n", sc->sc_dev.dv_xname);
2155 return (6);
2156 } else {
2157 if (tlp_srom_debug)
2158 printf("%s: SROM size is 2^%d*16 bits (%d bytes)\n",
2159 sc->sc_dev.dv_xname, x, (1 << (x + 4)) >> 3);
2160 return (x);
2161 }
2162 }
2163
2164 /*
2165 * tlp_read_srom:
2166 *
2167 * Read the Tulip SROM.
2168 */
2169 int
2170 tlp_read_srom(sc)
2171 struct tulip_softc *sc;
2172 {
2173 int size;
2174 u_int32_t miirom;
2175 u_int16_t datain;
2176 int i, x;
2177
2178 tlp_srom_idle(sc);
2179
2180 sc->sc_srom_addrbits = tlp_srom_size(sc);
2181 if (sc->sc_srom_addrbits == 0)
2182 return (0);
2183 size = TULIP_ROM_SIZE(sc->sc_srom_addrbits);
2184 sc->sc_srom = malloc(size, M_DEVBUF, M_NOWAIT);
2185
2186 /* Select the SROM. */
2187 miirom = MIIROM_SR;
2188 SROM_EMIT(sc, miirom);
2189
2190 miirom |= MIIROM_RD;
2191 SROM_EMIT(sc, miirom);
2192
2193 for (i = 0; i < size; i += 2) {
2194 /* Send CHIP SELECT for one clock tick. */
2195 miirom |= MIIROM_SROMCS;
2196 SROM_EMIT(sc, miirom);
2197
2198 /* Shift in the READ opcode. */
2199 for (x = 3; x > 0; x--) {
2200 if (TULIP_SROM_OPC_READ & (1 << (x - 1)))
2201 miirom |= MIIROM_SROMDI;
2202 else
2203 miirom &= ~MIIROM_SROMDI;
2204 SROM_EMIT(sc, miirom);
2205 SROM_EMIT(sc, miirom|MIIROM_SROMSK);
2206 SROM_EMIT(sc, miirom);
2207 }
2208
2209 /* Shift in address. */
2210 for (x = sc->sc_srom_addrbits; x > 0; x--) {
2211 if (i & (1 << x))
2212 miirom |= MIIROM_SROMDI;
2213 else
2214 miirom &= ~MIIROM_SROMDI;
2215 SROM_EMIT(sc, miirom);
2216 SROM_EMIT(sc, miirom|MIIROM_SROMSK);
2217 SROM_EMIT(sc, miirom);
2218 }
2219
2220 /* Shift out data. */
2221 miirom &= ~MIIROM_SROMDI;
2222 datain = 0;
2223 for (x = 16; x > 0; x--) {
2224 SROM_EMIT(sc, miirom|MIIROM_SROMSK);
2225 if (TULIP_ISSET(sc, CSR_MIIROM, MIIROM_SROMDO))
2226 datain |= (1 << (x - 1));
2227 SROM_EMIT(sc, miirom);
2228 }
2229 sc->sc_srom[i] = datain & 0xff;
2230 sc->sc_srom[i + 1] = datain >> 8;
2231
2232 /* Clear CHIP SELECT. */
2233 miirom &= ~MIIROM_SROMCS;
2234 SROM_EMIT(sc, miirom);
2235 }
2236
2237 /* Deselect the SROM. */
2238 SROM_EMIT(sc, 0);
2239
2240 /* ...and idle it. */
2241 tlp_srom_idle(sc);
2242
2243 if (tlp_srom_debug) {
2244 printf("SROM CONTENTS:");
2245 for (i = 0; i < size; i++) {
2246 if ((i % 8) == 0)
2247 printf("\n\t");
2248 printf("0x%02x ", sc->sc_srom[i]);
2249 }
2250 printf("\n");
2251 }
2252
2253 return (1);
2254 }
2255
2256 #undef SROM_EMIT
2257
2258 /*
2259 * tlp_add_rxbuf:
2260 *
2261 * Add a receive buffer to the indicated descriptor.
2262 */
2263 int
2264 tlp_add_rxbuf(sc, idx)
2265 struct tulip_softc *sc;
2266 int idx;
2267 {
2268 struct tulip_rxsoft *rxs = &sc->sc_rxsoft[idx];
2269 struct mbuf *m;
2270 int error;
2271
2272 MGETHDR(m, M_DONTWAIT, MT_DATA);
2273 if (m == NULL)
2274 return (ENOBUFS);
2275
2276 MCLGET(m, M_DONTWAIT);
2277 if ((m->m_flags & M_EXT) == 0) {
2278 m_freem(m);
2279 return (ENOBUFS);
2280 }
2281
2282 if (rxs->rxs_mbuf != NULL)
2283 bus_dmamap_unload(sc->sc_dmat, rxs->rxs_dmamap);
2284
2285 rxs->rxs_mbuf = m;
2286
2287 error = bus_dmamap_load(sc->sc_dmat, rxs->rxs_dmamap,
2288 m->m_ext.ext_buf, m->m_ext.ext_size, NULL, BUS_DMA_NOWAIT);
2289 if (error) {
2290 printf("%s: can't load rx DMA map %d, error = %d\n",
2291 sc->sc_dev.dv_xname, idx, error);
2292 panic("tlp_add_rxbuf"); /* XXX */
2293 }
2294
2295 bus_dmamap_sync(sc->sc_dmat, rxs->rxs_dmamap, 0,
2296 rxs->rxs_dmamap->dm_mapsize, BUS_DMASYNC_PREREAD);
2297
2298 TULIP_INIT_RXDESC(sc, idx);
2299
2300 return (0);
2301 }
2302
2303 /*
2304 * tlp_srom_crcok:
2305 *
2306 * Check the CRC of the Tulip SROM.
2307 */
2308 int
2309 tlp_srom_crcok(romdata)
2310 const u_int8_t *romdata;
2311 {
2312 u_int32_t crc;
2313
2314 crc = ether_crc32_le(romdata, TULIP_ROM_CRC32_CHECKSUM);
2315 crc = (crc & 0xffff) ^ 0xffff;
2316 if (crc == TULIP_ROM_GETW(romdata, TULIP_ROM_CRC32_CHECKSUM))
2317 return (1);
2318
2319 /*
2320 * Try an alternate checksum.
2321 */
2322 crc = ether_crc32_le(romdata, TULIP_ROM_CRC32_CHECKSUM1);
2323 crc = (crc & 0xffff) ^ 0xffff;
2324 if (crc == TULIP_ROM_GETW(romdata, TULIP_ROM_CRC32_CHECKSUM1))
2325 return (1);
2326
2327 return (0);
2328 }
2329
2330 /*
2331 * tlp_isv_srom:
2332 *
2333 * Check to see if the SROM is in the new standardized format.
2334 */
2335 int
2336 tlp_isv_srom(romdata)
2337 const u_int8_t *romdata;
2338 {
2339 int i;
2340 u_int16_t cksum;
2341
2342 if (tlp_srom_crcok(romdata)) {
2343 /*
2344 * SROM CRC checks out; must be in the new format.
2345 */
2346 return (1);
2347 }
2348
2349 cksum = TULIP_ROM_GETW(romdata, TULIP_ROM_CRC32_CHECKSUM);
2350 if (cksum == 0xffff || cksum == 0) {
2351 /*
2352 * No checksum present. Check the SROM ID; 18 bytes of 0
2353 * followed by 1 (version) followed by the number of
2354 * adapters which use this SROM (should be non-zero).
2355 */
2356 for (i = 0; i < TULIP_ROM_SROM_FORMAT_VERION; i++) {
2357 if (romdata[i] != 0)
2358 return (0);
2359 }
2360 if (romdata[TULIP_ROM_SROM_FORMAT_VERION] != 1)
2361 return (0);
2362 if (romdata[TULIP_ROM_CHIP_COUNT] == 0)
2363 return (0);
2364 return (1);
2365 }
2366
2367 return (0);
2368 }
2369
2370 /*
2371 * tlp_isv_srom_enaddr:
2372 *
2373 * Get the Ethernet address from an ISV SROM.
2374 */
2375 int
2376 tlp_isv_srom_enaddr(sc, enaddr)
2377 struct tulip_softc *sc;
2378 u_int8_t *enaddr;
2379 {
2380 int i, devcnt;
2381
2382 if (tlp_isv_srom(sc->sc_srom) == 0)
2383 return (0);
2384
2385 devcnt = sc->sc_srom[TULIP_ROM_CHIP_COUNT];
2386 for (i = 0; i < devcnt; i++) {
2387 if (sc->sc_srom[TULIP_ROM_CHIP_COUNT] == 1)
2388 break;
2389 if (sc->sc_srom[TULIP_ROM_CHIPn_DEVICE_NUMBER(i)] ==
2390 sc->sc_devno)
2391 break;
2392 }
2393
2394 if (i == devcnt)
2395 return (0);
2396
2397 memcpy(enaddr, &sc->sc_srom[TULIP_ROM_IEEE_NETWORK_ADDRESS],
2398 ETHER_ADDR_LEN);
2399 enaddr[5] += i;
2400
2401 return (1);
2402 }
2403
2404 /*
2405 * tlp_parse_old_srom:
2406 *
2407 * Parse old-format SROMs.
2408 *
2409 * This routine is largely lifted from Matt Thomas's `de' driver.
2410 */
2411 int
2412 tlp_parse_old_srom(sc, enaddr)
2413 struct tulip_softc *sc;
2414 u_int8_t *enaddr;
2415 {
2416 static const u_int8_t testpat[] =
2417 { 0xff, 0, 0x55, 0xaa, 0xff, 0, 0x55, 0xaa };
2418 int i;
2419 u_int32_t cksum;
2420
2421 if (memcmp(&sc->sc_srom[0], &sc->sc_srom[16], 8) != 0) {
2422 /*
2423 * Some vendors (e.g. ZNYX) don't use the standard
2424 * DEC Address ROM format, but rather just have an
2425 * Ethernet address in the first 6 bytes, maybe a
2426 * 2 byte checksum, and then all 0xff's.
2427 *
2428 * On the other hand, Cobalt Networks interfaces
2429 * simply have the address in the first six bytes
2430 * with the rest zeroed out.
2431 */
2432 for (i = 8; i < 32; i++) {
2433 if (sc->sc_srom[i] != 0xff &&
2434 sc->sc_srom[i] != 0)
2435 return (0);
2436 }
2437
2438 /*
2439 * Sanity check the Ethernet address:
2440 *
2441 * - Make sure it's not multicast or locally
2442 * assigned
2443 * - Make sure it has a non-0 OUI
2444 */
2445 if (sc->sc_srom[0] & 3)
2446 return (0);
2447 if (sc->sc_srom[0] == 0 && sc->sc_srom[1] == 0 &&
2448 sc->sc_srom[2] == 0)
2449 return (0);
2450
2451 memcpy(enaddr, sc->sc_srom, ETHER_ADDR_LEN);
2452 return (1);
2453 }
2454
2455 /*
2456 * Standard DEC Address ROM test.
2457 */
2458
2459 if (memcmp(&sc->sc_srom[24], testpat, 8) != 0)
2460 return (0);
2461
2462 for (i = 0; i < 8; i++) {
2463 if (sc->sc_srom[i] != sc->sc_srom[15 - i])
2464 return (0);
2465 }
2466
2467 memcpy(enaddr, sc->sc_srom, ETHER_ADDR_LEN);
2468
2469 cksum = *(u_int16_t *) &enaddr[0];
2470
2471 cksum <<= 1;
2472 if (cksum > 0xffff)
2473 cksum -= 0xffff;
2474
2475 cksum += *(u_int16_t *) &enaddr[2];
2476 if (cksum > 0xffff)
2477 cksum -= 0xffff;
2478
2479 cksum <<= 1;
2480 if (cksum > 0xffff)
2481 cksum -= 0xffff;
2482
2483 cksum += *(u_int16_t *) &enaddr[4];
2484 if (cksum >= 0xffff)
2485 cksum -= 0xffff;
2486
2487 if (cksum != *(u_int16_t *) &sc->sc_srom[6])
2488 return (0);
2489
2490 return (1);
2491 }
2492
2493 /*
2494 * tlp_filter_setup:
2495 *
2496 * Set the Tulip's receive filter.
2497 */
2498 void
2499 tlp_filter_setup(sc)
2500 struct tulip_softc *sc;
2501 {
2502 struct ethercom *ec = &sc->sc_ethercom;
2503 struct ifnet *ifp = &sc->sc_ethercom.ec_if;
2504 struct ether_multi *enm;
2505 struct ether_multistep step;
2506 __volatile u_int32_t *sp;
2507 struct tulip_txsoft *txs;
2508 u_int8_t enaddr[ETHER_ADDR_LEN];
2509 u_int32_t hash, hashsize;
2510 int cnt;
2511
2512 DPRINTF(sc, ("%s: tlp_filter_setup: sc_flags 0x%08x\n",
2513 sc->sc_dev.dv_xname, sc->sc_flags));
2514
2515 memcpy(enaddr, LLADDR(ifp->if_sadl), ETHER_ADDR_LEN);
2516
2517 /*
2518 * If there are transmissions pending, wait until they have
2519 * completed.
2520 */
2521 if (SIMPLEQ_FIRST(&sc->sc_txdirtyq) != NULL ||
2522 (sc->sc_flags & TULIPF_DOING_SETUP) != 0) {
2523 sc->sc_flags |= TULIPF_WANT_SETUP;
2524 DPRINTF(sc, ("%s: tlp_filter_setup: deferring\n",
2525 sc->sc_dev.dv_xname));
2526 return;
2527 }
2528 sc->sc_flags &= ~TULIPF_WANT_SETUP;
2529
2530 switch (sc->sc_chip) {
2531 case TULIP_CHIP_82C115:
2532 hashsize = TULIP_PNICII_HASHSIZE;
2533 break;
2534
2535 default:
2536 hashsize = TULIP_MCHASHSIZE;
2537 }
2538
2539 /*
2540 * If we're running, idle the transmit and receive engines. If
2541 * we're NOT running, we're being called from tlp_init(), and our
2542 * writing OPMODE will start the transmit and receive processes
2543 * in motion.
2544 */
2545 if (ifp->if_flags & IFF_RUNNING)
2546 tlp_idle(sc, OPMODE_ST|OPMODE_SR);
2547
2548 sc->sc_opmode &= ~(OPMODE_PR|OPMODE_PM);
2549
2550 if (ifp->if_flags & IFF_PROMISC) {
2551 sc->sc_opmode |= OPMODE_PR;
2552 goto allmulti;
2553 }
2554
2555 /*
2556 * Try Perfect filtering first.
2557 */
2558
2559 sc->sc_filtmode = TDCTL_Tx_FT_PERFECT;
2560 sp = TULIP_CDSP(sc);
2561 memset(TULIP_CDSP(sc), 0, TULIP_SETUP_PACKET_LEN);
2562 cnt = 0;
2563 ETHER_FIRST_MULTI(step, ec, enm);
2564 while (enm != NULL) {
2565 if (bcmp(enm->enm_addrlo, enm->enm_addrhi, ETHER_ADDR_LEN)) {
2566 /*
2567 * We must listen to a range of multicast addresses.
2568 * For now, just accept all multicasts, rather than
2569 * trying to set only those filter bits needed to match
2570 * the range. (At this time, the only use of address
2571 * ranges is for IP multicast routing, for which the
2572 * range is big enough to require all bits set.)
2573 */
2574 goto allmulti;
2575 }
2576 if (cnt == (TULIP_MAXADDRS - 2)) {
2577 /*
2578 * We already have our multicast limit (still need
2579 * our station address and broadcast). Go to
2580 * Hash-Perfect mode.
2581 */
2582 goto hashperfect;
2583 }
2584 cnt++;
2585 *sp++ = TULIP_SP_FIELD(enm->enm_addrlo, 0);
2586 *sp++ = TULIP_SP_FIELD(enm->enm_addrlo, 1);
2587 *sp++ = TULIP_SP_FIELD(enm->enm_addrlo, 2);
2588 ETHER_NEXT_MULTI(step, enm);
2589 }
2590
2591 if (ifp->if_flags & IFF_BROADCAST) {
2592 /* ...and the broadcast address. */
2593 cnt++;
2594 *sp++ = TULIP_SP_FIELD_C(0xffff);
2595 *sp++ = TULIP_SP_FIELD_C(0xffff);
2596 *sp++ = TULIP_SP_FIELD_C(0xffff);
2597 }
2598
2599 /* Pad the rest with our station address. */
2600 for (; cnt < TULIP_MAXADDRS; cnt++) {
2601 *sp++ = TULIP_SP_FIELD(enaddr, 0);
2602 *sp++ = TULIP_SP_FIELD(enaddr, 1);
2603 *sp++ = TULIP_SP_FIELD(enaddr, 2);
2604 }
2605 ifp->if_flags &= ~IFF_ALLMULTI;
2606 goto setit;
2607
2608 hashperfect:
2609 /*
2610 * Try Hash-Perfect mode.
2611 */
2612
2613 /*
2614 * Some 21140 chips have broken Hash-Perfect modes. On these
2615 * chips, we simply use Hash-Only mode, and put our station
2616 * address into the filter.
2617 */
2618 if (sc->sc_chip == TULIP_CHIP_21140)
2619 sc->sc_filtmode = TDCTL_Tx_FT_HASHONLY;
2620 else
2621 sc->sc_filtmode = TDCTL_Tx_FT_HASH;
2622 sp = TULIP_CDSP(sc);
2623 memset(TULIP_CDSP(sc), 0, TULIP_SETUP_PACKET_LEN);
2624 ETHER_FIRST_MULTI(step, ec, enm);
2625 while (enm != NULL) {
2626 if (bcmp(enm->enm_addrlo, enm->enm_addrhi, ETHER_ADDR_LEN)) {
2627 /*
2628 * We must listen to a range of multicast addresses.
2629 * For now, just accept all multicasts, rather than
2630 * trying to set only those filter bits needed to match
2631 * the range. (At this time, the only use of address
2632 * ranges is for IP multicast routing, for which the
2633 * range is big enough to require all bits set.)
2634 */
2635 goto allmulti;
2636 }
2637 hash = tlp_mchash(enm->enm_addrlo, hashsize);
2638 sp[hash >> 4] |= htole32(1 << (hash & 0xf));
2639 ETHER_NEXT_MULTI(step, enm);
2640 }
2641
2642 if (ifp->if_flags & IFF_BROADCAST) {
2643 /* ...and the broadcast address. */
2644 hash = tlp_mchash(etherbroadcastaddr, hashsize);
2645 sp[hash >> 4] |= htole32(1 << (hash & 0xf));
2646 }
2647
2648 if (sc->sc_filtmode == TDCTL_Tx_FT_HASHONLY) {
2649 /* ...and our station address. */
2650 hash = tlp_mchash(enaddr, hashsize);
2651 sp[hash >> 4] |= htole32(1 << (hash & 0xf));
2652 } else {
2653 /*
2654 * Hash-Perfect mode; put our station address after
2655 * the hash table.
2656 */
2657 sp[39] = TULIP_SP_FIELD(enaddr, 0);
2658 sp[40] = TULIP_SP_FIELD(enaddr, 1);
2659 sp[41] = TULIP_SP_FIELD(enaddr, 2);
2660 }
2661 ifp->if_flags &= ~IFF_ALLMULTI;
2662 goto setit;
2663
2664 allmulti:
2665 /*
2666 * Use Perfect filter mode. First address is the broadcast address,
2667 * and pad the rest with our station address. We'll set Pass-all-
2668 * multicast in OPMODE below.
2669 */
2670 sc->sc_filtmode = TDCTL_Tx_FT_PERFECT;
2671 sp = TULIP_CDSP(sc);
2672 memset(TULIP_CDSP(sc), 0, TULIP_SETUP_PACKET_LEN);
2673 cnt = 0;
2674 if (ifp->if_flags & IFF_BROADCAST) {
2675 cnt++;
2676 *sp++ = TULIP_SP_FIELD_C(0xffff);
2677 *sp++ = TULIP_SP_FIELD_C(0xffff);
2678 *sp++ = TULIP_SP_FIELD_C(0xffff);
2679 }
2680 for (; cnt < TULIP_MAXADDRS; cnt++) {
2681 *sp++ = TULIP_SP_FIELD(enaddr, 0);
2682 *sp++ = TULIP_SP_FIELD(enaddr, 1);
2683 *sp++ = TULIP_SP_FIELD(enaddr, 2);
2684 }
2685 ifp->if_flags |= IFF_ALLMULTI;
2686
2687 setit:
2688 if (ifp->if_flags & IFF_ALLMULTI)
2689 sc->sc_opmode |= OPMODE_PM;
2690
2691 /* Sync the setup packet buffer. */
2692 TULIP_CDSPSYNC(sc, BUS_DMASYNC_PREWRITE);
2693
2694 /*
2695 * Fill in the setup packet descriptor.
2696 */
2697 txs = SIMPLEQ_FIRST(&sc->sc_txfreeq);
2698
2699 txs->txs_firstdesc = sc->sc_txnext;
2700 txs->txs_lastdesc = sc->sc_txnext;
2701 txs->txs_ndescs = 1;
2702 txs->txs_mbuf = NULL;
2703
2704 sc->sc_txdescs[sc->sc_txnext].td_bufaddr1 =
2705 htole32(TULIP_CDSPADDR(sc));
2706 sc->sc_txdescs[sc->sc_txnext].td_ctl =
2707 htole32((TULIP_SETUP_PACKET_LEN << TDCTL_SIZE1_SHIFT) |
2708 sc->sc_filtmode | TDCTL_Tx_SET | sc->sc_setup_fsls |
2709 TDCTL_Tx_IC | sc->sc_tdctl_ch |
2710 (sc->sc_txnext == (TULIP_NTXDESC - 1) ? sc->sc_tdctl_er : 0));
2711 sc->sc_txdescs[sc->sc_txnext].td_status = htole32(TDSTAT_OWN);
2712 TULIP_CDTXSYNC(sc, sc->sc_txnext, txs->txs_ndescs,
2713 BUS_DMASYNC_PREREAD|BUS_DMASYNC_PREWRITE);
2714
2715 /* Advance the tx pointer. */
2716 sc->sc_txfree -= 1;
2717 sc->sc_txnext = TULIP_NEXTTX(sc->sc_txnext);
2718
2719 SIMPLEQ_REMOVE_HEAD(&sc->sc_txfreeq, txs, txs_q);
2720 SIMPLEQ_INSERT_TAIL(&sc->sc_txdirtyq, txs, txs_q);
2721
2722 /*
2723 * Set the OPMODE register. This will also resume the
2724 * transmit transmit process we idled above.
2725 */
2726 TULIP_WRITE(sc, CSR_OPMODE, sc->sc_opmode);
2727
2728 sc->sc_flags |= TULIPF_DOING_SETUP;
2729
2730 /*
2731 * Kick the transmitter; this will cause the Tulip to
2732 * read the setup descriptor.
2733 */
2734 /* XXX USE AUTOPOLLING? */
2735 TULIP_WRITE(sc, CSR_TXPOLL, TXPOLL_TPD);
2736
2737 /* Set up a watchdog timer in case the chip flakes out. */
2738 ifp->if_timer = 5;
2739
2740 DPRINTF(sc, ("%s: tlp_filter_setup: returning\n", sc->sc_dev.dv_xname));
2741 }
2742
2743 /*
2744 * tlp_winb_filter_setup:
2745 *
2746 * Set the Winbond 89C840F's receive filter.
2747 */
2748 void
2749 tlp_winb_filter_setup(sc)
2750 struct tulip_softc *sc;
2751 {
2752 struct ethercom *ec = &sc->sc_ethercom;
2753 struct ifnet *ifp = &sc->sc_ethercom.ec_if;
2754 struct ether_multi *enm;
2755 struct ether_multistep step;
2756 u_int32_t hash, mchash[2];
2757
2758 DPRINTF(sc, ("%s: tlp_winb_filter_setup: sc_flags 0x%08x\n",
2759 sc->sc_dev.dv_xname, sc->sc_flags));
2760
2761 sc->sc_opmode &= ~(OPMODE_WINB_APP|OPMODE_WINB_AMP|OPMODE_WINB_ABP);
2762
2763 if (ifp->if_flags & IFF_MULTICAST)
2764 sc->sc_opmode |= OPMODE_WINB_AMP;
2765
2766 if (ifp->if_flags & IFF_BROADCAST)
2767 sc->sc_opmode |= OPMODE_WINB_ABP;
2768
2769 if (ifp->if_flags & IFF_PROMISC) {
2770 sc->sc_opmode |= OPMODE_WINB_APP;
2771 goto allmulti;
2772 }
2773
2774 mchash[0] = mchash[1] = 0;
2775
2776 ETHER_FIRST_MULTI(step, ec, enm);
2777 while (enm != NULL) {
2778 if (bcmp(enm->enm_addrlo, enm->enm_addrhi, ETHER_ADDR_LEN)) {
2779 /*
2780 * We must listen to a range of multicast addresses.
2781 * For now, just accept all multicasts, rather than
2782 * trying to set only those filter bits needed to match
2783 * the range. (At this time, the only use of address
2784 * ranges is for IP multicast routing, for which the
2785 * range is big enough to require all bits set.)
2786 */
2787 goto allmulti;
2788 }
2789
2790 /*
2791 * According to the FreeBSD `wb' driver, yes, you
2792 * really do invert the hash.
2793 */
2794 hash =
2795 (~(ether_crc32_le(enm->enm_addrlo, ETHER_ADDR_LEN) >> 26))
2796 & 0x3f;
2797 mchash[hash >> 5] |= 1 << (hash & 0x1f);
2798 ETHER_NEXT_MULTI(step, enm);
2799 }
2800 ifp->if_flags &= ~IFF_ALLMULTI;
2801 goto setit;
2802
2803 allmulti:
2804 ifp->if_flags |= IFF_ALLMULTI;
2805 mchash[0] = mchash[1] = 0xffffffff;
2806
2807 setit:
2808 TULIP_WRITE(sc, CSR_WINB_CMA0, mchash[0]);
2809 TULIP_WRITE(sc, CSR_WINB_CMA1, mchash[1]);
2810 TULIP_WRITE(sc, CSR_OPMODE, sc->sc_opmode);
2811 DPRINTF(sc, ("%s: tlp_winb_filter_setup: returning\n",
2812 sc->sc_dev.dv_xname));
2813 }
2814
2815 /*
2816 * tlp_al981_filter_setup:
2817 *
2818 * Set the ADMtek AL981's receive filter.
2819 */
2820 void
2821 tlp_al981_filter_setup(sc)
2822 struct tulip_softc *sc;
2823 {
2824 struct ethercom *ec = &sc->sc_ethercom;
2825 struct ifnet *ifp = &sc->sc_ethercom.ec_if;
2826 struct ether_multi *enm;
2827 struct ether_multistep step;
2828 u_int32_t hash, mchash[2];
2829
2830 /*
2831 * If the chip is running, we need to reset the interface,
2832 * and will revisit here (with IFF_RUNNING) clear. The
2833 * chip seems to really not like to have its multicast
2834 * filter programmed without a reset.
2835 */
2836 if (ifp->if_flags & IFF_RUNNING) {
2837 (void) tlp_init(ifp);
2838 return;
2839 }
2840
2841 DPRINTF(sc, ("%s: tlp_al981_filter_setup: sc_flags 0x%08x\n",
2842 sc->sc_dev.dv_xname, sc->sc_flags));
2843
2844 sc->sc_opmode &= ~(OPMODE_PR|OPMODE_PM);
2845
2846 if (ifp->if_flags & IFF_PROMISC) {
2847 sc->sc_opmode |= OPMODE_PR;
2848 goto allmulti;
2849 }
2850
2851 mchash[0] = mchash[1] = 0;
2852
2853 ETHER_FIRST_MULTI(step, ec, enm);
2854 while (enm != NULL) {
2855 if (bcmp(enm->enm_addrlo, enm->enm_addrhi, ETHER_ADDR_LEN)) {
2856 /*
2857 * We must listen to a range of multicast addresses.
2858 * For now, just accept all multicasts, rather than
2859 * trying to set only those filter bits needed to match
2860 * the range. (At this time, the only use of address
2861 * ranges is for IP multicast routing, for which the
2862 * range is big enough to require all bits set.)
2863 */
2864 goto allmulti;
2865 }
2866
2867 hash = ether_crc32_be(enm->enm_addrlo, ETHER_ADDR_LEN) >> 26;
2868 mchash[hash >> 5] |= 1 << (hash & 0x1f);
2869 ETHER_NEXT_MULTI(step, enm);
2870 }
2871 ifp->if_flags &= ~IFF_ALLMULTI;
2872 goto setit;
2873
2874 allmulti:
2875 ifp->if_flags |= IFF_ALLMULTI;
2876 mchash[0] = mchash[1] = 0xffffffff;
2877
2878 setit:
2879 bus_space_write_4(sc->sc_st, sc->sc_sh, CSR_ADM_MAR0, mchash[0]);
2880 bus_space_write_4(sc->sc_st, sc->sc_sh, CSR_ADM_MAR1, mchash[1]);
2881 TULIP_WRITE(sc, CSR_OPMODE, sc->sc_opmode);
2882 DPRINTF(sc, ("%s: tlp_al981_filter_setup: returning\n",
2883 sc->sc_dev.dv_xname));
2884 }
2885
2886 /*
2887 * tlp_idle:
2888 *
2889 * Cause the transmit and/or receive processes to go idle.
2890 */
2891 void
2892 tlp_idle(sc, bits)
2893 struct tulip_softc *sc;
2894 u_int32_t bits;
2895 {
2896 static const char * const tlp_tx_state_names[] = {
2897 "STOPPED",
2898 "RUNNING - FETCH",
2899 "RUNNING - WAIT",
2900 "RUNNING - READING",
2901 "-- RESERVED --",
2902 "RUNNING - SETUP",
2903 "SUSPENDED",
2904 "RUNNING - CLOSE",
2905 };
2906 static const char * const tlp_rx_state_names[] = {
2907 "STOPPED",
2908 "RUNNING - FETCH",
2909 "RUNNING - CHECK",
2910 "RUNNING - WAIT",
2911 "SUSPENDED",
2912 "RUNNING - CLOSE",
2913 "RUNNING - FLUSH",
2914 "RUNNING - QUEUE",
2915 };
2916 static const char * const dm9102_tx_state_names[] = {
2917 "STOPPED",
2918 "RUNNING - FETCH",
2919 "RUNNING - SETUP",
2920 "RUNNING - READING",
2921 "RUNNING - CLOSE - CLEAR OWNER",
2922 "RUNNING - WAIT",
2923 "RUNNING - CLOSE - WRITE STATUS",
2924 "SUSPENDED",
2925 };
2926 static const char * const dm9102_rx_state_names[] = {
2927 "STOPPED",
2928 "RUNNING - FETCH",
2929 "RUNNING - WAIT",
2930 "RUNNING - QUEUE",
2931 "RUNNING - CLOSE - CLEAR OWNER",
2932 "RUNNING - CLOSE - WRITE STATUS",
2933 "SUSPENDED",
2934 "RUNNING - FLUSH",
2935 };
2936
2937 const char * const *tx_state_names, * const *rx_state_names;
2938 u_int32_t csr, ackmask = 0;
2939 int i;
2940
2941 switch (sc->sc_chip) {
2942 case TULIP_CHIP_DM9102:
2943 case TULIP_CHIP_DM9102A:
2944 tx_state_names = dm9102_tx_state_names;
2945 rx_state_names = dm9102_rx_state_names;
2946 break;
2947
2948 default:
2949 tx_state_names = tlp_tx_state_names;
2950 rx_state_names = tlp_rx_state_names;
2951 break;
2952 }
2953
2954 if (bits & OPMODE_ST)
2955 ackmask |= STATUS_TPS;
2956
2957 if (bits & OPMODE_SR)
2958 ackmask |= STATUS_RPS;
2959
2960 TULIP_WRITE(sc, CSR_OPMODE, sc->sc_opmode & ~bits);
2961
2962 for (i = 0; i < 1000; i++) {
2963 if (TULIP_ISSET(sc, CSR_STATUS, ackmask) == ackmask)
2964 break;
2965 delay(10);
2966 }
2967
2968 csr = TULIP_READ(sc, CSR_STATUS);
2969 if ((csr & ackmask) != ackmask) {
2970 if ((bits & OPMODE_ST) != 0 && (csr & STATUS_TPS) == 0 &&
2971 (csr & STATUS_TS) != STATUS_TS_STOPPED) {
2972 printf("%s: transmit process failed to idle: "
2973 "state %s\n", sc->sc_dev.dv_xname,
2974 tx_state_names[(csr & STATUS_TS) >> 20]);
2975 }
2976 if ((bits & OPMODE_SR) != 0 && (csr & STATUS_RPS) == 0 &&
2977 (csr & STATUS_RS) != STATUS_RS_STOPPED) {
2978 switch (sc->sc_chip) {
2979 case TULIP_CHIP_AN983:
2980 case TULIP_CHIP_AN985:
2981 /*
2982 * Filter the message out on noisy chips.
2983 */
2984 break;
2985 default:
2986 printf("%s: receive process failed to idle: "
2987 "state %s\n", sc->sc_dev.dv_xname,
2988 rx_state_names[(csr & STATUS_RS) >> 17]);
2989 }
2990 }
2991 }
2992 TULIP_WRITE(sc, CSR_STATUS, ackmask);
2993 }
2994
2995 /*****************************************************************************
2996 * Generic media support functions.
2997 *****************************************************************************/
2998
2999 /*
3000 * tlp_mediastatus: [ifmedia interface function]
3001 *
3002 * Query the current media.
3003 */
3004 void
3005 tlp_mediastatus(ifp, ifmr)
3006 struct ifnet *ifp;
3007 struct ifmediareq *ifmr;
3008 {
3009 struct tulip_softc *sc = ifp->if_softc;
3010
3011 if (TULIP_IS_ENABLED(sc) == 0) {
3012 ifmr->ifm_active = IFM_ETHER | IFM_NONE;
3013 ifmr->ifm_status = 0;
3014 return;
3015 }
3016
3017 (*sc->sc_mediasw->tmsw_get)(sc, ifmr);
3018 }
3019
3020 /*
3021 * tlp_mediachange: [ifmedia interface function]
3022 *
3023 * Update the current media.
3024 */
3025 int
3026 tlp_mediachange(ifp)
3027 struct ifnet *ifp;
3028 {
3029 struct tulip_softc *sc = ifp->if_softc;
3030
3031 if ((ifp->if_flags & IFF_UP) == 0)
3032 return (0);
3033 return ((*sc->sc_mediasw->tmsw_set)(sc));
3034 }
3035
3036 /*****************************************************************************
3037 * Support functions for MII-attached media.
3038 *****************************************************************************/
3039
3040 /*
3041 * tlp_mii_tick:
3042 *
3043 * One second timer, used to tick the MII.
3044 */
3045 void
3046 tlp_mii_tick(arg)
3047 void *arg;
3048 {
3049 struct tulip_softc *sc = arg;
3050 int s;
3051
3052 if ((sc->sc_dev.dv_flags & DVF_ACTIVE) == 0)
3053 return;
3054
3055 s = splnet();
3056 mii_tick(&sc->sc_mii);
3057 splx(s);
3058
3059 callout_reset(&sc->sc_tick_callout, hz, sc->sc_tick, sc);
3060 }
3061
3062 /*
3063 * tlp_mii_statchg: [mii interface function]
3064 *
3065 * Callback from PHY when media changes.
3066 */
3067 void
3068 tlp_mii_statchg(self)
3069 struct device *self;
3070 {
3071 struct tulip_softc *sc = (struct tulip_softc *)self;
3072
3073 /* Idle the transmit and receive processes. */
3074 tlp_idle(sc, OPMODE_ST|OPMODE_SR);
3075
3076 sc->sc_opmode &= ~(OPMODE_TTM|OPMODE_FD|OPMODE_HBD);
3077
3078 if (IFM_SUBTYPE(sc->sc_mii.mii_media_active) == IFM_10_T)
3079 sc->sc_opmode |= OPMODE_TTM;
3080 else
3081 sc->sc_opmode |= OPMODE_HBD;
3082
3083 if (sc->sc_mii.mii_media_active & IFM_FDX)
3084 sc->sc_opmode |= OPMODE_FD|OPMODE_HBD;
3085
3086 /*
3087 * Write new OPMODE bits. This also restarts the transmit
3088 * and receive processes.
3089 */
3090 TULIP_WRITE(sc, CSR_OPMODE, sc->sc_opmode);
3091 }
3092
3093 /*
3094 * tlp_winb_mii_statchg: [mii interface function]
3095 *
3096 * Callback from PHY when media changes. This version is
3097 * for the Winbond 89C840F, which has different OPMODE bits.
3098 */
3099 void
3100 tlp_winb_mii_statchg(self)
3101 struct device *self;
3102 {
3103 struct tulip_softc *sc = (struct tulip_softc *)self;
3104
3105 /* Idle the transmit and receive processes. */
3106 tlp_idle(sc, OPMODE_ST|OPMODE_SR);
3107
3108 sc->sc_opmode &= ~(OPMODE_WINB_FES|OPMODE_FD);
3109
3110 if (IFM_SUBTYPE(sc->sc_mii.mii_media_active) == IFM_100_TX)
3111 sc->sc_opmode |= OPMODE_WINB_FES;
3112
3113 if (sc->sc_mii.mii_media_active & IFM_FDX)
3114 sc->sc_opmode |= OPMODE_FD;
3115
3116 /*
3117 * Write new OPMODE bits. This also restarts the transmit
3118 * and receive processes.
3119 */
3120 TULIP_WRITE(sc, CSR_OPMODE, sc->sc_opmode);
3121 }
3122
3123 /*
3124 * tlp_dm9102_mii_statchg: [mii interface function]
3125 *
3126 * Callback from PHY when media changes. This version is
3127 * for the DM9102.
3128 */
3129 void
3130 tlp_dm9102_mii_statchg(self)
3131 struct device *self;
3132 {
3133 struct tulip_softc *sc = (struct tulip_softc *)self;
3134
3135 /*
3136 * Don't idle the transmit and receive processes, here. It
3137 * seems to fail, and just causes excess noise.
3138 */
3139 sc->sc_opmode &= ~(OPMODE_TTM|OPMODE_FD);
3140
3141 if (IFM_SUBTYPE(sc->sc_mii.mii_media_active) != IFM_100_TX)
3142 sc->sc_opmode |= OPMODE_TTM;
3143
3144 if (sc->sc_mii.mii_media_active & IFM_FDX)
3145 sc->sc_opmode |= OPMODE_FD;
3146
3147 /*
3148 * Write new OPMODE bits.
3149 */
3150 TULIP_WRITE(sc, CSR_OPMODE, sc->sc_opmode);
3151 }
3152
3153 /*
3154 * tlp_mii_getmedia:
3155 *
3156 * Callback from ifmedia to request current media status.
3157 */
3158 void
3159 tlp_mii_getmedia(sc, ifmr)
3160 struct tulip_softc *sc;
3161 struct ifmediareq *ifmr;
3162 {
3163
3164 mii_pollstat(&sc->sc_mii);
3165 ifmr->ifm_status = sc->sc_mii.mii_media_status;
3166 ifmr->ifm_active = sc->sc_mii.mii_media_active;
3167 }
3168
3169 /*
3170 * tlp_mii_setmedia:
3171 *
3172 * Callback from ifmedia to request new media setting.
3173 */
3174 int
3175 tlp_mii_setmedia(sc)
3176 struct tulip_softc *sc;
3177 {
3178 struct ifnet *ifp = &sc->sc_ethercom.ec_if;
3179
3180 if (ifp->if_flags & IFF_UP) {
3181 switch (sc->sc_chip) {
3182 case TULIP_CHIP_21142:
3183 case TULIP_CHIP_21143:
3184 /* Disable the internal Nway engine. */
3185 TULIP_WRITE(sc, CSR_SIATXRX, 0);
3186 break;
3187
3188 default:
3189 /* Nothing. */
3190 break;
3191 }
3192 mii_mediachg(&sc->sc_mii);
3193 }
3194 return (0);
3195 }
3196
3197 /*
3198 * tlp_bitbang_mii_readreg:
3199 *
3200 * Read a PHY register via bit-bang'ing the MII.
3201 */
3202 int
3203 tlp_bitbang_mii_readreg(self, phy, reg)
3204 struct device *self;
3205 int phy, reg;
3206 {
3207 struct tulip_softc *sc = (void *) self;
3208
3209 return (mii_bitbang_readreg(self, sc->sc_bitbang_ops, phy, reg));
3210 }
3211
3212 /*
3213 * tlp_bitbang_mii_writereg:
3214 *
3215 * Write a PHY register via bit-bang'ing the MII.
3216 */
3217 void
3218 tlp_bitbang_mii_writereg(self, phy, reg, val)
3219 struct device *self;
3220 int phy, reg, val;
3221 {
3222 struct tulip_softc *sc = (void *) self;
3223
3224 mii_bitbang_writereg(self, sc->sc_bitbang_ops, phy, reg, val);
3225 }
3226
3227 /*
3228 * tlp_sio_mii_bitbang_read:
3229 *
3230 * Read the MII serial port for the MII bit-bang module.
3231 */
3232 u_int32_t
3233 tlp_sio_mii_bitbang_read(self)
3234 struct device *self;
3235 {
3236 struct tulip_softc *sc = (void *) self;
3237
3238 return (TULIP_READ(sc, CSR_MIIROM));
3239 }
3240
3241 /*
3242 * tlp_sio_mii_bitbang_write:
3243 *
3244 * Write the MII serial port for the MII bit-bang module.
3245 */
3246 void
3247 tlp_sio_mii_bitbang_write(self, val)
3248 struct device *self;
3249 u_int32_t val;
3250 {
3251 struct tulip_softc *sc = (void *) self;
3252
3253 TULIP_WRITE(sc, CSR_MIIROM, val);
3254 }
3255
3256 /*
3257 * tlp_pnic_mii_readreg:
3258 *
3259 * Read a PHY register on the Lite-On PNIC.
3260 */
3261 int
3262 tlp_pnic_mii_readreg(self, phy, reg)
3263 struct device *self;
3264 int phy, reg;
3265 {
3266 struct tulip_softc *sc = (void *) self;
3267 u_int32_t val;
3268 int i;
3269
3270 TULIP_WRITE(sc, CSR_PNIC_MII,
3271 PNIC_MII_MBO | PNIC_MII_RESERVED |
3272 PNIC_MII_READ | (phy << PNIC_MII_PHYSHIFT) |
3273 (reg << PNIC_MII_REGSHIFT));
3274
3275 for (i = 0; i < 1000; i++) {
3276 delay(10);
3277 val = TULIP_READ(sc, CSR_PNIC_MII);
3278 if ((val & PNIC_MII_BUSY) == 0) {
3279 if ((val & PNIC_MII_DATA) == PNIC_MII_DATA)
3280 return (0);
3281 else
3282 return (val & PNIC_MII_DATA);
3283 }
3284 }
3285 printf("%s: MII read timed out\n", sc->sc_dev.dv_xname);
3286 return (0);
3287 }
3288
3289 /*
3290 * tlp_pnic_mii_writereg:
3291 *
3292 * Write a PHY register on the Lite-On PNIC.
3293 */
3294 void
3295 tlp_pnic_mii_writereg(self, phy, reg, val)
3296 struct device *self;
3297 int phy, reg, val;
3298 {
3299 struct tulip_softc *sc = (void *) self;
3300 int i;
3301
3302 TULIP_WRITE(sc, CSR_PNIC_MII,
3303 PNIC_MII_MBO | PNIC_MII_RESERVED |
3304 PNIC_MII_WRITE | (phy << PNIC_MII_PHYSHIFT) |
3305 (reg << PNIC_MII_REGSHIFT) | val);
3306
3307 for (i = 0; i < 1000; i++) {
3308 delay(10);
3309 if (TULIP_ISSET(sc, CSR_PNIC_MII, PNIC_MII_BUSY) == 0)
3310 return;
3311 }
3312 printf("%s: MII write timed out\n", sc->sc_dev.dv_xname);
3313 }
3314
3315 const bus_addr_t tlp_al981_phy_regmap[] = {
3316 CSR_ADM_BMCR,
3317 CSR_ADM_BMSR,
3318 CSR_ADM_PHYIDR1,
3319 CSR_ADM_PHYIDR2,
3320 CSR_ADM_ANAR,
3321 CSR_ADM_ANLPAR,
3322 CSR_ADM_ANER,
3323
3324 CSR_ADM_XMC,
3325 CSR_ADM_XCIIS,
3326 CSR_ADM_XIE,
3327 CSR_ADM_100CTR,
3328 };
3329 const int tlp_al981_phy_regmap_size = sizeof(tlp_al981_phy_regmap) /
3330 sizeof(tlp_al981_phy_regmap[0]);
3331
3332 /*
3333 * tlp_al981_mii_readreg:
3334 *
3335 * Read a PHY register on the ADMtek AL981.
3336 */
3337 int
3338 tlp_al981_mii_readreg(self, phy, reg)
3339 struct device *self;
3340 int phy, reg;
3341 {
3342 struct tulip_softc *sc = (struct tulip_softc *)self;
3343
3344 /* AL981 only has an internal PHY. */
3345 if (phy != 0)
3346 return (0);
3347
3348 if (reg >= tlp_al981_phy_regmap_size)
3349 return (0);
3350
3351 return (bus_space_read_4(sc->sc_st, sc->sc_sh,
3352 tlp_al981_phy_regmap[reg]) & 0xffff);
3353 }
3354
3355 /*
3356 * tlp_al981_mii_writereg:
3357 *
3358 * Write a PHY register on the ADMtek AL981.
3359 */
3360 void
3361 tlp_al981_mii_writereg(self, phy, reg, val)
3362 struct device *self;
3363 int phy, reg, val;
3364 {
3365 struct tulip_softc *sc = (struct tulip_softc *)self;
3366
3367 /* AL981 only has an internal PHY. */
3368 if (phy != 0)
3369 return;
3370
3371 if (reg >= tlp_al981_phy_regmap_size)
3372 return;
3373
3374 bus_space_write_4(sc->sc_st, sc->sc_sh,
3375 tlp_al981_phy_regmap[reg], val);
3376 }
3377
3378 /*****************************************************************************
3379 * Chip-specific pre-init and reset functions.
3380 *****************************************************************************/
3381
3382 /*
3383 * tlp_2114x_preinit:
3384 *
3385 * Pre-init function shared by DECchip 21140, 21140A, 21142, and 21143.
3386 */
3387 void
3388 tlp_2114x_preinit(sc)
3389 struct tulip_softc *sc;
3390 {
3391 struct ifmedia_entry *ife = sc->sc_mii.mii_media.ifm_cur;
3392 struct tulip_21x4x_media *tm = ife->ifm_aux;
3393
3394 /*
3395 * Whether or not we're in MII or SIA/SYM mode, the media info
3396 * contains the appropriate OPMODE bits.
3397 *
3398 * Note that if we have no media info, we are are doing
3399 * non-MII `auto'.
3400 *
3401 * Also, we always set the Must-Be-One bit.
3402 */
3403 if (tm == NULL) {
3404 #ifdef DIAGNOSTIC
3405 if (IFM_SUBTYPE(ife->ifm_media) != IFM_AUTO)
3406 panic("tlp_2114x_preinit: not IFM_AUTO");
3407 if (sc->sc_nway_active == NULL)
3408 panic("tlp_2114x_preinit: nway_active NULL");
3409 #endif
3410 tm = sc->sc_nway_active->ifm_aux;
3411 }
3412 sc->sc_opmode |= OPMODE_MBO | tm->tm_opmode;
3413
3414 TULIP_WRITE(sc, CSR_OPMODE, sc->sc_opmode);
3415 }
3416
3417 /*
3418 * tlp_2114x_mii_preinit:
3419 *
3420 * Pre-init function shared by DECchip 21140, 21140A, 21142, and 21143.
3421 * This version is used by boards which only have MII and don't have
3422 * an ISV SROM.
3423 */
3424 void
3425 tlp_2114x_mii_preinit(sc)
3426 struct tulip_softc *sc;
3427 {
3428
3429 /*
3430 * Always set the Must-Be-One bit, and Port Select (to select MII).
3431 * We'll never be called during a media change.
3432 */
3433 sc->sc_opmode |= OPMODE_MBO|OPMODE_PS;
3434 TULIP_WRITE(sc, CSR_OPMODE, sc->sc_opmode);
3435 }
3436
3437 /*
3438 * tlp_pnic_preinit:
3439 *
3440 * Pre-init function for the Lite-On 82c168 and 82c169.
3441 */
3442 void
3443 tlp_pnic_preinit(sc)
3444 struct tulip_softc *sc;
3445 {
3446
3447 if (sc->sc_flags & TULIPF_HAS_MII) {
3448 /*
3449 * MII case: just set the port-select bit; we will never
3450 * be called during a media change.
3451 */
3452 sc->sc_opmode |= OPMODE_PS;
3453 } else {
3454 /*
3455 * ENDEC/PCS/Nway mode; enable the Tx backoff counter.
3456 */
3457 sc->sc_opmode |= OPMODE_PNIC_TBEN;
3458 }
3459 }
3460
3461 /*
3462 * tlp_dm9102_preinit:
3463 *
3464 * Pre-init function for the Davicom DM9102.
3465 */
3466 void
3467 tlp_dm9102_preinit(sc)
3468 struct tulip_softc *sc;
3469 {
3470
3471 switch (sc->sc_chip) {
3472 case TULIP_CHIP_DM9102:
3473 sc->sc_opmode |= OPMODE_MBO|OPMODE_HBD|OPMODE_PS;
3474 break;
3475
3476 case TULIP_CHIP_DM9102A:
3477 /*
3478 * XXX Figure out how to actually deal with the HomePNA
3479 * XXX portion of the DM9102A.
3480 */
3481 sc->sc_opmode |= OPMODE_MBO|OPMODE_HBD;
3482 break;
3483
3484 default:
3485 /* Nothing. */
3486 break;
3487 }
3488
3489 TULIP_WRITE(sc, CSR_OPMODE, sc->sc_opmode);
3490 }
3491
3492 /*
3493 * tlp_21140_reset:
3494 *
3495 * Issue a reset sequence on the 21140 via the GPIO facility.
3496 */
3497 void
3498 tlp_21140_reset(sc)
3499 struct tulip_softc *sc;
3500 {
3501 struct ifmedia_entry *ife = sc->sc_mii.mii_media.ifm_cur;
3502 struct tulip_21x4x_media *tm = ife->ifm_aux;
3503 int i;
3504
3505 /* First, set the direction on the GPIO pins. */
3506 TULIP_WRITE(sc, CSR_GPP, GPP_GPC|sc->sc_gp_dir);
3507
3508 /* Now, issue the reset sequence. */
3509 for (i = 0; i < tm->tm_reset_length; i++) {
3510 delay(10);
3511 TULIP_WRITE(sc, CSR_GPP, sc->sc_srom[tm->tm_reset_offset + i]);
3512 }
3513
3514 /* Now, issue the selection sequence. */
3515 for (i = 0; i < tm->tm_gp_length; i++) {
3516 delay(10);
3517 TULIP_WRITE(sc, CSR_GPP, sc->sc_srom[tm->tm_gp_offset + i]);
3518 }
3519
3520 /* If there were no sequences, just lower the pins. */
3521 if (tm->tm_reset_length == 0 && tm->tm_gp_length == 0)
3522 TULIP_WRITE(sc, CSR_GPP, 0);
3523 }
3524
3525 /*
3526 * tlp_21142_reset:
3527 *
3528 * Issue a reset sequence on the 21142 via the GPIO facility.
3529 */
3530 void
3531 tlp_21142_reset(sc)
3532 struct tulip_softc *sc;
3533 {
3534 struct ifmedia_entry *ife = sc->sc_mii.mii_media.ifm_cur;
3535 struct tulip_21x4x_media *tm = ife->ifm_aux;
3536 const u_int8_t *ncp;
3537 int i;
3538
3539 ncp = &sc->sc_srom[tm->tm_reset_offset];
3540 for (i = 0; i < tm->tm_reset_length; i++, ncp += 2) {
3541 delay(10);
3542 TULIP_WRITE(sc, CSR_SIAGEN,
3543 TULIP_ROM_GETW(ncp, 0) << 16);
3544 }
3545
3546 ncp = &sc->sc_srom[tm->tm_gp_offset];
3547 for (i = 0; i < tm->tm_gp_length; i++, ncp += 2) {
3548 delay(10);
3549 TULIP_WRITE(sc, CSR_SIAGEN,
3550 TULIP_ROM_GETW(ncp, 0) << 16);
3551 }
3552
3553 /* If there were no sequences, just lower the pins. */
3554 if (tm->tm_reset_length == 0 && tm->tm_gp_length == 0) {
3555 delay(10);
3556 TULIP_WRITE(sc, CSR_SIAGEN, 0);
3557 }
3558 }
3559
3560 /*
3561 * tlp_pmac_reset:
3562 *
3563 * Reset routine for Macronix chips.
3564 */
3565 void
3566 tlp_pmac_reset(sc)
3567 struct tulip_softc *sc;
3568 {
3569
3570 switch (sc->sc_chip) {
3571 case TULIP_CHIP_82C115:
3572 case TULIP_CHIP_MX98715:
3573 case TULIP_CHIP_MX98715A:
3574 case TULIP_CHIP_MX98725:
3575 /*
3576 * Set the LED operating mode. This information is located
3577 * in the EEPROM at byte offset 0x77, per the MX98715A and
3578 * MX98725 application notes.
3579 */
3580 TULIP_WRITE(sc, CSR_MIIROM, sc->sc_srom[0x77] << 24);
3581 break;
3582 case TULIP_CHIP_MX98715AEC_X:
3583 /*
3584 * Set the LED operating mode. This information is located
3585 * in the EEPROM at byte offset 0x76, per the MX98715AEC
3586 * application note.
3587 */
3588 TULIP_WRITE(sc, CSR_MIIROM, ((0xf & sc->sc_srom[0x76]) << 28)
3589 | ((0xf0 & sc->sc_srom[0x76]) << 20));
3590 break;
3591
3592 default:
3593 /* Nothing. */
3594 break;
3595 }
3596 }
3597
3598 /*
3599 * tlp_dm9102_reset:
3600 *
3601 * Reset routine for the Davicom DM9102.
3602 */
3603 void
3604 tlp_dm9102_reset(sc)
3605 struct tulip_softc *sc;
3606 {
3607
3608 TULIP_WRITE(sc, CSR_DM_PHYSTAT, DM_PHYSTAT_GEPC|DM_PHYSTAT_GPED);
3609 delay(100);
3610 TULIP_WRITE(sc, CSR_DM_PHYSTAT, 0);
3611 }
3612
3613 /*****************************************************************************
3614 * Chip/board-specific media switches. The ones here are ones that
3615 * are potentially common to multiple front-ends.
3616 *****************************************************************************/
3617
3618 /*
3619 * This table is a common place for all sorts of media information,
3620 * keyed off of the SROM media code for that media.
3621 *
3622 * Note that we explicitly configure the 21142/21143 to always advertise
3623 * NWay capabilities when using the UTP port.
3624 * XXX Actually, we don't yet.
3625 */
3626 const struct tulip_srom_to_ifmedia tulip_srom_to_ifmedia_table[] = {
3627 { TULIP_ROM_MB_MEDIA_TP, IFM_10_T, 0,
3628 "10baseT",
3629 0,
3630 { SIACONN_21040_10BASET,
3631 SIATXRX_21040_10BASET,
3632 SIAGEN_21040_10BASET },
3633
3634 { SIACONN_21041_10BASET,
3635 SIATXRX_21041_10BASET,
3636 SIAGEN_21041_10BASET },
3637
3638 { SIACONN_21142_10BASET,
3639 SIATXRX_21142_10BASET,
3640 SIAGEN_21142_10BASET } },
3641
3642 { TULIP_ROM_MB_MEDIA_BNC, IFM_10_2, 0,
3643 "10base2",
3644 0,
3645 { 0,
3646 0,
3647 0 },
3648
3649 { SIACONN_21041_BNC,
3650 SIATXRX_21041_BNC,
3651 SIAGEN_21041_BNC },
3652
3653 { SIACONN_21142_BNC,
3654 SIATXRX_21142_BNC,
3655 SIAGEN_21142_BNC } },
3656
3657 { TULIP_ROM_MB_MEDIA_AUI, IFM_10_5, 0,
3658 "10base5",
3659 0,
3660 { SIACONN_21040_AUI,
3661 SIATXRX_21040_AUI,
3662 SIAGEN_21040_AUI },
3663
3664 { SIACONN_21041_AUI,
3665 SIATXRX_21041_AUI,
3666 SIAGEN_21041_AUI },
3667
3668 { SIACONN_21142_AUI,
3669 SIATXRX_21142_AUI,
3670 SIAGEN_21142_AUI } },
3671
3672 { TULIP_ROM_MB_MEDIA_100TX, IFM_100_TX, 0,
3673 "100baseTX",
3674 OPMODE_PS|OPMODE_PCS|OPMODE_SCR|OPMODE_HBD,
3675 { 0,
3676 0,
3677 0 },
3678
3679 { 0,
3680 0,
3681 0 },
3682
3683 { 0,
3684 0,
3685 SIAGEN_ABM } },
3686
3687 { TULIP_ROM_MB_MEDIA_TP_FDX, IFM_10_T, IFM_FDX,
3688 "10baseT-FDX",
3689 OPMODE_FD|OPMODE_HBD,
3690 { SIACONN_21040_10BASET_FDX,
3691 SIATXRX_21040_10BASET_FDX,
3692 SIAGEN_21040_10BASET_FDX },
3693
3694 { SIACONN_21041_10BASET_FDX,
3695 SIATXRX_21041_10BASET_FDX,
3696 SIAGEN_21041_10BASET_FDX },
3697
3698 { SIACONN_21142_10BASET_FDX,
3699 SIATXRX_21142_10BASET_FDX,
3700 SIAGEN_21142_10BASET_FDX } },
3701
3702 { TULIP_ROM_MB_MEDIA_100TX_FDX, IFM_100_TX, IFM_FDX,
3703 "100baseTX-FDX",
3704 OPMODE_PS|OPMODE_PCS|OPMODE_SCR|OPMODE_FD|OPMODE_HBD,
3705 { 0,
3706 0,
3707 0 },
3708
3709 { 0,
3710 0,
3711 0 },
3712
3713 { 0,
3714 0,
3715 SIAGEN_ABM } },
3716
3717 { TULIP_ROM_MB_MEDIA_100T4, IFM_100_T4, 0,
3718 "100baseT4",
3719 OPMODE_PS|OPMODE_PCS|OPMODE_SCR|OPMODE_HBD,
3720 { 0,
3721 0,
3722 0 },
3723
3724 { 0,
3725 0,
3726 0 },
3727
3728 { 0,
3729 0,
3730 SIAGEN_ABM } },
3731
3732 { TULIP_ROM_MB_MEDIA_100FX, IFM_100_FX, 0,
3733 "100baseFX",
3734 OPMODE_PS|OPMODE_PCS|OPMODE_HBD,
3735 { 0,
3736 0,
3737 0 },
3738
3739 { 0,
3740 0,
3741 0 },
3742
3743 { 0,
3744 0,
3745 SIAGEN_ABM } },
3746
3747 { TULIP_ROM_MB_MEDIA_100FX_FDX, IFM_100_FX, IFM_FDX,
3748 "100baseFX-FDX",
3749 OPMODE_PS|OPMODE_PCS|OPMODE_FD|OPMODE_HBD,
3750 { 0,
3751 0,
3752 0 },
3753
3754 { 0,
3755 0,
3756 0 },
3757
3758 { 0,
3759 0,
3760 SIAGEN_ABM } },
3761
3762 { 0, 0, 0,
3763 NULL,
3764 0,
3765 { 0,
3766 0,
3767 0 },
3768
3769 { 0,
3770 0,
3771 0 },
3772
3773 { 0,
3774 0,
3775 0 } },
3776 };
3777
3778 const struct tulip_srom_to_ifmedia *tlp_srom_to_ifmedia __P((u_int8_t));
3779 void tlp_srom_media_info __P((struct tulip_softc *,
3780 const struct tulip_srom_to_ifmedia *, struct tulip_21x4x_media *));
3781 void tlp_add_srom_media __P((struct tulip_softc *, int,
3782 void (*)(struct tulip_softc *, struct ifmediareq *),
3783 int (*)(struct tulip_softc *), const u_int8_t *, int));
3784 void tlp_print_media __P((struct tulip_softc *));
3785 void tlp_nway_activate __P((struct tulip_softc *, int));
3786 void tlp_get_minst __P((struct tulip_softc *));
3787
3788 const struct tulip_srom_to_ifmedia *
3789 tlp_srom_to_ifmedia(sm)
3790 u_int8_t sm;
3791 {
3792 const struct tulip_srom_to_ifmedia *tsti;
3793
3794 for (tsti = tulip_srom_to_ifmedia_table;
3795 tsti->tsti_name != NULL; tsti++) {
3796 if (tsti->tsti_srom == sm)
3797 return (tsti);
3798 }
3799
3800 return (NULL);
3801 }
3802
3803 void
3804 tlp_srom_media_info(sc, tsti, tm)
3805 struct tulip_softc *sc;
3806 const struct tulip_srom_to_ifmedia *tsti;
3807 struct tulip_21x4x_media *tm;
3808 {
3809
3810 tm->tm_name = tsti->tsti_name;
3811 tm->tm_opmode = tsti->tsti_opmode;
3812
3813 switch (sc->sc_chip) {
3814 case TULIP_CHIP_DE425:
3815 case TULIP_CHIP_21040:
3816 tm->tm_sia = tsti->tsti_21040; /* struct assignment */
3817 break;
3818
3819 case TULIP_CHIP_21041:
3820 tm->tm_sia = tsti->tsti_21041; /* struct assignment */
3821 break;
3822
3823 case TULIP_CHIP_21142:
3824 case TULIP_CHIP_21143:
3825 case TULIP_CHIP_82C115:
3826 case TULIP_CHIP_MX98715:
3827 case TULIP_CHIP_MX98715A:
3828 case TULIP_CHIP_MX98715AEC_X:
3829 case TULIP_CHIP_MX98725:
3830 tm->tm_sia = tsti->tsti_21142; /* struct assignment */
3831 break;
3832
3833 default:
3834 /* Nothing. */
3835 break;
3836 }
3837 }
3838
3839 void
3840 tlp_add_srom_media(sc, type, get, set, list, cnt)
3841 struct tulip_softc *sc;
3842 int type;
3843 void (*get) __P((struct tulip_softc *, struct ifmediareq *));
3844 int (*set) __P((struct tulip_softc *));
3845 const u_int8_t *list;
3846 int cnt;
3847 {
3848 struct tulip_21x4x_media *tm;
3849 const struct tulip_srom_to_ifmedia *tsti;
3850 int i;
3851
3852 for (i = 0; i < cnt; i++) {
3853 tsti = tlp_srom_to_ifmedia(list[i]);
3854 tm = malloc(sizeof(*tm), M_DEVBUF, M_WAITOK);
3855 memset(tm, 0, sizeof(*tm));
3856 tlp_srom_media_info(sc, tsti, tm);
3857 tm->tm_type = type;
3858 tm->tm_get = get;
3859 tm->tm_set = set;
3860
3861 ifmedia_add(&sc->sc_mii.mii_media,
3862 IFM_MAKEWORD(IFM_ETHER, tsti->tsti_subtype,
3863 tsti->tsti_options, sc->sc_tlp_minst), 0, tm);
3864 }
3865 }
3866
3867 void
3868 tlp_print_media(sc)
3869 struct tulip_softc *sc;
3870 {
3871 struct ifmedia_entry *ife;
3872 struct tulip_21x4x_media *tm;
3873 const char *sep = "";
3874
3875 #define PRINT(s) printf("%s%s", sep, s); sep = ", "
3876
3877 printf("%s: ", sc->sc_dev.dv_xname);
3878 for (ife = TAILQ_FIRST(&sc->sc_mii.mii_media.ifm_list);
3879 ife != NULL; ife = TAILQ_NEXT(ife, ifm_list)) {
3880 tm = ife->ifm_aux;
3881 if (tm == NULL) {
3882 #ifdef DIAGNOSTIC
3883 if (IFM_SUBTYPE(ife->ifm_media) != IFM_AUTO)
3884 panic("tlp_print_media");
3885 #endif
3886 PRINT("auto");
3887 } else if (tm->tm_type != TULIP_ROM_MB_21140_MII &&
3888 tm->tm_type != TULIP_ROM_MB_21142_MII) {
3889 PRINT(tm->tm_name);
3890 }
3891 }
3892 printf("\n");
3893
3894 #undef PRINT
3895 }
3896
3897 void
3898 tlp_nway_activate(sc, media)
3899 struct tulip_softc *sc;
3900 int media;
3901 {
3902 struct ifmedia_entry *ife;
3903
3904 ife = ifmedia_match(&sc->sc_mii.mii_media, media, 0);
3905 #ifdef DIAGNOSTIC
3906 if (ife == NULL)
3907 panic("tlp_nway_activate");
3908 #endif
3909 sc->sc_nway_active = ife;
3910 }
3911
3912 void
3913 tlp_get_minst(sc)
3914 struct tulip_softc *sc;
3915 {
3916
3917 if ((sc->sc_media_seen &
3918 ~((1 << TULIP_ROM_MB_21140_MII) |
3919 (1 << TULIP_ROM_MB_21142_MII))) == 0) {
3920 /*
3921 * We have not yet seen any SIA/SYM media (but are
3922 * about to; that's why we're called!), so assign
3923 * the current media instance to be the `internal media'
3924 * instance, and advance it so any MII media gets a
3925 * fresh one (used to selecting/isolating a PHY).
3926 */
3927 sc->sc_tlp_minst = sc->sc_mii.mii_instance++;
3928 }
3929 }
3930
3931 /*
3932 * SIA Utility functions.
3933 */
3934 void tlp_sia_update_link __P((struct tulip_softc *));
3935 void tlp_sia_get __P((struct tulip_softc *, struct ifmediareq *));
3936 int tlp_sia_set __P((struct tulip_softc *));
3937 void tlp_sia_fixup __P((struct tulip_softc *));
3938
3939 void
3940 tlp_sia_update_link(sc)
3941 struct tulip_softc *sc;
3942 {
3943 struct ifmedia_entry *ife;
3944 struct tulip_21x4x_media *tm;
3945 u_int32_t siastat;
3946
3947 ife = TULIP_CURRENT_MEDIA(sc);
3948 tm = ife->ifm_aux;
3949
3950 sc->sc_flags &= ~(TULIPF_LINK_UP|TULIPF_LINK_VALID);
3951
3952 siastat = TULIP_READ(sc, CSR_SIASTAT);
3953
3954 /*
3955 * Note that when we do SIA link tests, we are assuming that
3956 * the chip is really in the mode that the current media setting
3957 * reflects. If we're not, then the link tests will not be
3958 * accurate!
3959 */
3960 switch (IFM_SUBTYPE(ife->ifm_media)) {
3961 case IFM_10_T:
3962 sc->sc_flags |= TULIPF_LINK_VALID;
3963 if ((siastat & SIASTAT_LS10) == 0)
3964 sc->sc_flags |= TULIPF_LINK_UP;
3965 break;
3966
3967 case IFM_100_TX:
3968 case IFM_100_T4:
3969 sc->sc_flags |= TULIPF_LINK_VALID;
3970 if ((siastat & SIASTAT_LS100) == 0)
3971 sc->sc_flags |= TULIPF_LINK_UP;
3972 break;
3973 }
3974
3975 switch (sc->sc_chip) {
3976 case TULIP_CHIP_21142:
3977 case TULIP_CHIP_21143:
3978 /*
3979 * On these chips, we can tell more information about
3980 * AUI/BNC. Note that the AUI/BNC selection is made
3981 * in a different register; for our purpose, it's all
3982 * AUI.
3983 */
3984 switch (IFM_SUBTYPE(ife->ifm_media)) {
3985 case IFM_10_2:
3986 case IFM_10_5:
3987 sc->sc_flags |= TULIPF_LINK_VALID;
3988 if (siastat & SIASTAT_ARA) {
3989 TULIP_WRITE(sc, CSR_SIASTAT, SIASTAT_ARA);
3990 sc->sc_flags |= TULIPF_LINK_UP;
3991 }
3992 break;
3993
3994 default:
3995 /*
3996 * If we're SYM media and can detect the link
3997 * via the GPIO facility, prefer that status
3998 * over LS100.
3999 */
4000 if (tm->tm_type == TULIP_ROM_MB_21143_SYM &&
4001 tm->tm_actmask != 0) {
4002 sc->sc_flags = (sc->sc_flags &
4003 ~TULIPF_LINK_UP) | TULIPF_LINK_VALID;
4004 if (TULIP_ISSET(sc, CSR_SIAGEN,
4005 tm->tm_actmask) == tm->tm_actdata)
4006 sc->sc_flags |= TULIPF_LINK_UP;
4007 }
4008 }
4009 break;
4010
4011 default:
4012 /* Nothing. */
4013 break;
4014 }
4015 }
4016
4017 void
4018 tlp_sia_get(sc, ifmr)
4019 struct tulip_softc *sc;
4020 struct ifmediareq *ifmr;
4021 {
4022 struct ifmedia_entry *ife;
4023
4024 ifmr->ifm_status = 0;
4025
4026 tlp_sia_update_link(sc);
4027
4028 ife = TULIP_CURRENT_MEDIA(sc);
4029
4030 if (sc->sc_flags & TULIPF_LINK_VALID)
4031 ifmr->ifm_status |= IFM_AVALID;
4032 if (sc->sc_flags & TULIPF_LINK_UP)
4033 ifmr->ifm_status |= IFM_ACTIVE;
4034 ifmr->ifm_active = ife->ifm_media;
4035 }
4036
4037 void
4038 tlp_sia_fixup(sc)
4039 struct tulip_softc *sc;
4040 {
4041 struct ifmedia_entry *ife;
4042 struct tulip_21x4x_media *tm;
4043 u_int32_t siaconn, siatxrx, siagen;
4044
4045 switch (sc->sc_chip) {
4046 case TULIP_CHIP_82C115:
4047 case TULIP_CHIP_MX98713A:
4048 case TULIP_CHIP_MX98715:
4049 case TULIP_CHIP_MX98715A:
4050 case TULIP_CHIP_MX98715AEC_X:
4051 case TULIP_CHIP_MX98725:
4052 siaconn = PMAC_SIACONN_MASK;
4053 siatxrx = PMAC_SIATXRX_MASK;
4054 siagen = PMAC_SIAGEN_MASK;
4055 break;
4056
4057 default:
4058 /* No fixups required on any other chips. */
4059 return;
4060 }
4061
4062 for (ife = TAILQ_FIRST(&sc->sc_mii.mii_media.ifm_list);
4063 ife != NULL; ife = TAILQ_NEXT(ife, ifm_list)) {
4064 tm = ife->ifm_aux;
4065 if (tm == NULL)
4066 continue;
4067
4068 tm->tm_siaconn &= siaconn;
4069 tm->tm_siatxrx &= siatxrx;
4070 tm->tm_siagen &= siagen;
4071 }
4072 }
4073
4074 int
4075 tlp_sia_set(sc)
4076 struct tulip_softc *sc;
4077 {
4078 struct ifmedia_entry *ife;
4079 struct tulip_21x4x_media *tm;
4080
4081 ife = TULIP_CURRENT_MEDIA(sc);
4082 tm = ife->ifm_aux;
4083
4084 /*
4085 * XXX This appears to be necessary on a bunch of the clone chips.
4086 */
4087 delay(20000);
4088
4089 /*
4090 * Idle the chip.
4091 */
4092 tlp_idle(sc, OPMODE_ST|OPMODE_SR);
4093
4094 /*
4095 * Program the SIA. It's important to write in this order,
4096 * resetting the SIA first.
4097 */
4098 TULIP_WRITE(sc, CSR_SIACONN, 0); /* SRL bit clear */
4099 delay(1000);
4100
4101 TULIP_WRITE(sc, CSR_SIATXRX, tm->tm_siatxrx);
4102
4103 switch (sc->sc_chip) {
4104 case TULIP_CHIP_21142:
4105 case TULIP_CHIP_21143:
4106 TULIP_WRITE(sc, CSR_SIAGEN, tm->tm_siagen | tm->tm_gpctl);
4107 TULIP_WRITE(sc, CSR_SIAGEN, tm->tm_siagen | tm->tm_gpdata);
4108 break;
4109 default:
4110 TULIP_WRITE(sc, CSR_SIAGEN, tm->tm_siagen);
4111 }
4112
4113 TULIP_WRITE(sc, CSR_SIACONN, tm->tm_siaconn);
4114
4115 /*
4116 * Set the OPMODE bits for this media and write OPMODE.
4117 * This will resume the transmit and receive processes.
4118 */
4119 sc->sc_opmode = (sc->sc_opmode & ~OPMODE_MEDIA_BITS) | tm->tm_opmode;
4120 TULIP_WRITE(sc, CSR_OPMODE, sc->sc_opmode);
4121
4122 return (0);
4123 }
4124
4125 /*
4126 * 21140 GPIO utility functions.
4127 */
4128 void tlp_21140_gpio_update_link __P((struct tulip_softc *));
4129 void tlp_21140_gpio_get __P((struct tulip_softc *sc,
4130 struct ifmediareq *ifmr));
4131 int tlp_21140_gpio_set __P((struct tulip_softc *sc));
4132
4133 void
4134 tlp_21140_gpio_update_link(sc)
4135 struct tulip_softc *sc;
4136 {
4137 struct ifmedia_entry *ife;
4138 struct tulip_21x4x_media *tm;
4139
4140 ife = TULIP_CURRENT_MEDIA(sc);
4141 tm = ife->ifm_aux;
4142
4143 sc->sc_flags &= ~(TULIPF_LINK_UP|TULIPF_LINK_VALID);
4144
4145 if (tm->tm_actmask != 0) {
4146 sc->sc_flags |= TULIPF_LINK_VALID;
4147 if (TULIP_ISSET(sc, CSR_GPP, tm->tm_actmask) ==
4148 tm->tm_actdata)
4149 sc->sc_flags |= TULIPF_LINK_UP;
4150 }
4151 }
4152
4153 void
4154 tlp_21140_gpio_get(sc, ifmr)
4155 struct tulip_softc *sc;
4156 struct ifmediareq *ifmr;
4157 {
4158 struct ifmedia_entry *ife;
4159
4160 ifmr->ifm_status = 0;
4161
4162 tlp_21140_gpio_update_link(sc);
4163
4164 ife = TULIP_CURRENT_MEDIA(sc);
4165
4166 if (sc->sc_flags & TULIPF_LINK_VALID)
4167 ifmr->ifm_status |= IFM_AVALID;
4168 if (sc->sc_flags & TULIPF_LINK_UP)
4169 ifmr->ifm_status |= IFM_ACTIVE;
4170 ifmr->ifm_active = ife->ifm_media;
4171 }
4172
4173 int
4174 tlp_21140_gpio_set(sc)
4175 struct tulip_softc *sc;
4176 {
4177 struct ifmedia_entry *ife;
4178 struct tulip_21x4x_media *tm;
4179
4180 ife = TULIP_CURRENT_MEDIA(sc);
4181 tm = ife->ifm_aux;
4182
4183 /*
4184 * Idle the chip.
4185 */
4186 tlp_idle(sc, OPMODE_ST|OPMODE_SR);
4187
4188 /*
4189 * Set the GPIO pins for this media, to flip any
4190 * relays, etc.
4191 */
4192 TULIP_WRITE(sc, CSR_GPP, GPP_GPC|sc->sc_gp_dir);
4193 delay(10);
4194 TULIP_WRITE(sc, CSR_GPP, tm->tm_gpdata);
4195
4196 /*
4197 * Set the OPMODE bits for this media and write OPMODE.
4198 * This will resume the transmit and receive processes.
4199 */
4200 sc->sc_opmode = (sc->sc_opmode & ~OPMODE_MEDIA_BITS) | tm->tm_opmode;
4201 TULIP_WRITE(sc, CSR_OPMODE, sc->sc_opmode);
4202
4203 return (0);
4204 }
4205
4206 /*
4207 * 21040 and 21041 media switches.
4208 */
4209 void tlp_21040_tmsw_init __P((struct tulip_softc *));
4210 void tlp_21040_tp_tmsw_init __P((struct tulip_softc *));
4211 void tlp_21040_auibnc_tmsw_init __P((struct tulip_softc *));
4212 void tlp_21041_tmsw_init __P((struct tulip_softc *));
4213
4214 const struct tulip_mediasw tlp_21040_mediasw = {
4215 tlp_21040_tmsw_init, tlp_sia_get, tlp_sia_set
4216 };
4217
4218 const struct tulip_mediasw tlp_21040_tp_mediasw = {
4219 tlp_21040_tp_tmsw_init, tlp_sia_get, tlp_sia_set
4220 };
4221
4222 const struct tulip_mediasw tlp_21040_auibnc_mediasw = {
4223 tlp_21040_auibnc_tmsw_init, tlp_sia_get, tlp_sia_set
4224 };
4225
4226 const struct tulip_mediasw tlp_21041_mediasw = {
4227 tlp_21041_tmsw_init, tlp_sia_get, tlp_sia_set
4228 };
4229
4230
4231 void
4232 tlp_21040_tmsw_init(sc)
4233 struct tulip_softc *sc;
4234 {
4235 static const u_int8_t media[] = {
4236 TULIP_ROM_MB_MEDIA_TP,
4237 TULIP_ROM_MB_MEDIA_TP_FDX,
4238 TULIP_ROM_MB_MEDIA_AUI,
4239 };
4240 struct tulip_21x4x_media *tm;
4241
4242 ifmedia_init(&sc->sc_mii.mii_media, 0, tlp_mediachange,
4243 tlp_mediastatus);
4244
4245 tlp_add_srom_media(sc, 0, NULL, NULL, media, 3);
4246
4247 /*
4248 * No SROM type for External SIA.
4249 */
4250 tm = malloc(sizeof(*tm), M_DEVBUF, M_WAITOK);
4251 memset(tm, 0, sizeof(*tm));
4252 tm->tm_name = "manual";
4253 tm->tm_opmode = 0;
4254 tm->tm_siaconn = SIACONN_21040_EXTSIA;
4255 tm->tm_siatxrx = SIATXRX_21040_EXTSIA;
4256 tm->tm_siagen = SIAGEN_21040_EXTSIA;
4257 ifmedia_add(&sc->sc_mii.mii_media,
4258 IFM_MAKEWORD(IFM_ETHER, IFM_MANUAL, 0, sc->sc_tlp_minst), 0, tm);
4259
4260 /*
4261 * XXX Autosense not yet supported.
4262 */
4263
4264 /* XXX This should be auto-sense. */
4265 ifmedia_set(&sc->sc_mii.mii_media, IFM_ETHER|IFM_10_T);
4266
4267 tlp_print_media(sc);
4268 }
4269
4270 void
4271 tlp_21040_tp_tmsw_init(sc)
4272 struct tulip_softc *sc;
4273 {
4274 static const u_int8_t media[] = {
4275 TULIP_ROM_MB_MEDIA_TP,
4276 TULIP_ROM_MB_MEDIA_TP_FDX,
4277 };
4278
4279 ifmedia_init(&sc->sc_mii.mii_media, 0, tlp_mediachange,
4280 tlp_mediastatus);
4281
4282 tlp_add_srom_media(sc, 0, NULL, NULL, media, 2);
4283
4284 ifmedia_set(&sc->sc_mii.mii_media, IFM_ETHER|IFM_10_T);
4285
4286 tlp_print_media(sc);
4287 }
4288
4289 void
4290 tlp_21040_auibnc_tmsw_init(sc)
4291 struct tulip_softc *sc;
4292 {
4293 static const u_int8_t media[] = {
4294 TULIP_ROM_MB_MEDIA_AUI,
4295 };
4296
4297 ifmedia_init(&sc->sc_mii.mii_media, 0, tlp_mediachange,
4298 tlp_mediastatus);
4299
4300 tlp_add_srom_media(sc, 0, NULL, NULL, media, 1);
4301
4302 ifmedia_set(&sc->sc_mii.mii_media, IFM_ETHER|IFM_10_5);
4303
4304 tlp_print_media(sc);
4305 }
4306
4307 void
4308 tlp_21041_tmsw_init(sc)
4309 struct tulip_softc *sc;
4310 {
4311 static const u_int8_t media[] = {
4312 TULIP_ROM_MB_MEDIA_TP,
4313 TULIP_ROM_MB_MEDIA_TP_FDX,
4314 TULIP_ROM_MB_MEDIA_BNC,
4315 TULIP_ROM_MB_MEDIA_AUI,
4316 };
4317 int i, defmedia, devcnt, leaf_offset, mb_offset, m_cnt;
4318 const struct tulip_srom_to_ifmedia *tsti;
4319 struct tulip_21x4x_media *tm;
4320 u_int16_t romdef;
4321 u_int8_t mb;
4322
4323 ifmedia_init(&sc->sc_mii.mii_media, 0, tlp_mediachange,
4324 tlp_mediastatus);
4325
4326 if (tlp_isv_srom(sc->sc_srom) == 0) {
4327 not_isv_srom:
4328 /*
4329 * If we have a board without the standard 21041 SROM format,
4330 * we just assume all media are present and try and pick a
4331 * reasonable default.
4332 */
4333 tlp_add_srom_media(sc, 0, NULL, NULL, media, 4);
4334
4335 /*
4336 * XXX Autosense not yet supported.
4337 */
4338
4339 /* XXX This should be auto-sense. */
4340 ifmedia_set(&sc->sc_mii.mii_media, IFM_ETHER|IFM_10_T);
4341
4342 tlp_print_media(sc);
4343 return;
4344 }
4345
4346 devcnt = sc->sc_srom[TULIP_ROM_CHIP_COUNT];
4347 for (i = 0; i < devcnt; i++) {
4348 if (sc->sc_srom[TULIP_ROM_CHIP_COUNT] == 1)
4349 break;
4350 if (sc->sc_srom[TULIP_ROM_CHIPn_DEVICE_NUMBER(i)] ==
4351 sc->sc_devno)
4352 break;
4353 }
4354
4355 if (i == devcnt)
4356 goto not_isv_srom;
4357
4358 leaf_offset = TULIP_ROM_GETW(sc->sc_srom,
4359 TULIP_ROM_CHIPn_INFO_LEAF_OFFSET(i));
4360 mb_offset = leaf_offset + TULIP_ROM_IL_MEDIAn_BLOCK_BASE;
4361 m_cnt = sc->sc_srom[leaf_offset + TULIP_ROM_IL_MEDIA_COUNT];
4362
4363 for (; m_cnt != 0;
4364 m_cnt--, mb_offset += TULIP_ROM_MB_SIZE(mb)) {
4365 mb = sc->sc_srom[mb_offset];
4366 tm = malloc(sizeof(*tm), M_DEVBUF, M_WAITOK);
4367 memset(tm, 0, sizeof(*tm));
4368 switch (mb & TULIP_ROM_MB_MEDIA_CODE) {
4369 case TULIP_ROM_MB_MEDIA_TP_FDX:
4370 case TULIP_ROM_MB_MEDIA_TP:
4371 case TULIP_ROM_MB_MEDIA_BNC:
4372 case TULIP_ROM_MB_MEDIA_AUI:
4373 tsti = tlp_srom_to_ifmedia(mb &
4374 TULIP_ROM_MB_MEDIA_CODE);
4375
4376 tlp_srom_media_info(sc, tsti, tm);
4377
4378 /*
4379 * Override our default SIA settings if the
4380 * SROM contains its own.
4381 */
4382 if (mb & TULIP_ROM_MB_EXT) {
4383 tm->tm_siaconn = TULIP_ROM_GETW(sc->sc_srom,
4384 mb_offset + TULIP_ROM_MB_CSR13);
4385 tm->tm_siatxrx = TULIP_ROM_GETW(sc->sc_srom,
4386 mb_offset + TULIP_ROM_MB_CSR14);
4387 tm->tm_siagen = TULIP_ROM_GETW(sc->sc_srom,
4388 mb_offset + TULIP_ROM_MB_CSR15);
4389 }
4390
4391 ifmedia_add(&sc->sc_mii.mii_media,
4392 IFM_MAKEWORD(IFM_ETHER, tsti->tsti_subtype,
4393 tsti->tsti_options, sc->sc_tlp_minst), 0, tm);
4394 break;
4395
4396 default:
4397 printf("%s: unknown media code 0x%02x\n",
4398 sc->sc_dev.dv_xname,
4399 mb & TULIP_ROM_MB_MEDIA_CODE);
4400 free(tm, M_DEVBUF);
4401 }
4402 }
4403
4404 /*
4405 * XXX Autosense not yet supported.
4406 */
4407
4408 romdef = TULIP_ROM_GETW(sc->sc_srom, leaf_offset +
4409 TULIP_ROM_IL_SELECT_CONN_TYPE);
4410 switch (romdef) {
4411 case SELECT_CONN_TYPE_TP:
4412 case SELECT_CONN_TYPE_TP_AUTONEG:
4413 case SELECT_CONN_TYPE_TP_NOLINKPASS:
4414 defmedia = IFM_ETHER|IFM_10_T;
4415 break;
4416
4417 case SELECT_CONN_TYPE_TP_FDX:
4418 defmedia = IFM_ETHER|IFM_10_T|IFM_FDX;
4419 break;
4420
4421 case SELECT_CONN_TYPE_BNC:
4422 defmedia = IFM_ETHER|IFM_10_2;
4423 break;
4424
4425 case SELECT_CONN_TYPE_AUI:
4426 defmedia = IFM_ETHER|IFM_10_5;
4427 break;
4428 #if 0 /* XXX */
4429 case SELECT_CONN_TYPE_ASENSE:
4430 case SELECT_CONN_TYPE_ASENSE_AUTONEG:
4431 defmedia = IFM_ETHER|IFM_AUTO;
4432 break;
4433 #endif
4434 default:
4435 defmedia = 0;
4436 }
4437
4438 if (defmedia == 0) {
4439 /*
4440 * XXX We should default to auto-sense.
4441 */
4442 defmedia = IFM_ETHER|IFM_10_T;
4443 }
4444
4445 ifmedia_set(&sc->sc_mii.mii_media, defmedia);
4446
4447 tlp_print_media(sc);
4448 }
4449
4450 /*
4451 * DECchip 2114x ISV media switch.
4452 */
4453 void tlp_2114x_isv_tmsw_init __P((struct tulip_softc *));
4454 void tlp_2114x_isv_tmsw_get __P((struct tulip_softc *, struct ifmediareq *));
4455 int tlp_2114x_isv_tmsw_set __P((struct tulip_softc *));
4456
4457 const struct tulip_mediasw tlp_2114x_isv_mediasw = {
4458 tlp_2114x_isv_tmsw_init, tlp_2114x_isv_tmsw_get, tlp_2114x_isv_tmsw_set
4459 };
4460
4461 void
4462 tlp_2114x_isv_tmsw_init(sc)
4463 struct tulip_softc *sc;
4464 {
4465 struct ifnet *ifp = &sc->sc_ethercom.ec_if;
4466 struct ifmedia_entry *ife;
4467 struct mii_softc *phy;
4468 struct tulip_21x4x_media *tm;
4469 const struct tulip_srom_to_ifmedia *tsti;
4470 int i, devcnt, leaf_offset, m_cnt, type, length;
4471 int defmedia, miidef;
4472 u_int16_t word;
4473 u_int8_t *cp, *ncp;
4474
4475 defmedia = miidef = 0;
4476
4477 sc->sc_mii.mii_ifp = ifp;
4478 sc->sc_mii.mii_readreg = tlp_bitbang_mii_readreg;
4479 sc->sc_mii.mii_writereg = tlp_bitbang_mii_writereg;
4480 sc->sc_mii.mii_statchg = sc->sc_statchg;
4481
4482 /*
4483 * Ignore `instance'; we may get a mixture of SIA and MII
4484 * media, and `instance' is used to isolate or select the
4485 * PHY on the MII as appropriate. Note that duplicate media
4486 * are disallowed, so ignoring `instance' is safe.
4487 */
4488 ifmedia_init(&sc->sc_mii.mii_media, IFM_IMASK, tlp_mediachange,
4489 tlp_mediastatus);
4490
4491 devcnt = sc->sc_srom[TULIP_ROM_CHIP_COUNT];
4492 for (i = 0; i < devcnt; i++) {
4493 if (sc->sc_srom[TULIP_ROM_CHIP_COUNT] == 1)
4494 break;
4495 if (sc->sc_srom[TULIP_ROM_CHIPn_DEVICE_NUMBER(i)] ==
4496 sc->sc_devno)
4497 break;
4498 }
4499
4500 if (i == devcnt) {
4501 printf("%s: unable to locate info leaf in SROM\n",
4502 sc->sc_dev.dv_xname);
4503 return;
4504 }
4505
4506 leaf_offset = TULIP_ROM_GETW(sc->sc_srom,
4507 TULIP_ROM_CHIPn_INFO_LEAF_OFFSET(i));
4508
4509 /* XXX SELECT CONN TYPE */
4510
4511 cp = &sc->sc_srom[leaf_offset + TULIP_ROM_IL_MEDIA_COUNT];
4512
4513 /*
4514 * On some chips, the first thing in the Info Leaf is the
4515 * GPIO pin direction data.
4516 */
4517 switch (sc->sc_chip) {
4518 case TULIP_CHIP_21140:
4519 case TULIP_CHIP_21140A:
4520 case TULIP_CHIP_MX98713:
4521 case TULIP_CHIP_AX88140:
4522 case TULIP_CHIP_AX88141:
4523 sc->sc_gp_dir = *cp++;
4524 break;
4525
4526 default:
4527 /* Nothing. */
4528 break;
4529 }
4530
4531 /* Get the media count. */
4532 m_cnt = *cp++;
4533
4534 for (; m_cnt != 0; cp = ncp, m_cnt--) {
4535 /*
4536 * Determine the type and length of this media block.
4537 */
4538 if ((*cp & 0x80) == 0) {
4539 length = 4;
4540 type = TULIP_ROM_MB_21140_GPR;
4541 } else {
4542 length = (*cp++ & 0x7f) - 1;
4543 type = *cp++ & 0x3f;
4544 }
4545
4546 /* Compute the start of the next block. */
4547 ncp = cp + length;
4548
4549 /* Now, parse the block. */
4550 switch (type) {
4551 case TULIP_ROM_MB_21140_GPR:
4552 tlp_get_minst(sc);
4553 sc->sc_media_seen |= 1 << TULIP_ROM_MB_21140_GPR;
4554
4555 tm = malloc(sizeof(*tm), M_DEVBUF, M_WAITOK);
4556 memset(tm, 0, sizeof(*tm));
4557
4558 tm->tm_type = TULIP_ROM_MB_21140_GPR;
4559 tm->tm_get = tlp_21140_gpio_get;
4560 tm->tm_set = tlp_21140_gpio_set;
4561
4562 /* First is the media type code. */
4563 tsti = tlp_srom_to_ifmedia(cp[0] &
4564 TULIP_ROM_MB_MEDIA_CODE);
4565 if (tsti == NULL) {
4566 /* Invalid media code. */
4567 free(tm, M_DEVBUF);
4568 break;
4569 }
4570
4571 /* Get defaults. */
4572 tlp_srom_media_info(sc, tsti, tm);
4573
4574 /* Next is any GPIO info for this media. */
4575 tm->tm_gpdata = cp[1];
4576
4577 /*
4578 * Next is a word containing OPMODE information
4579 * and info on how to detect if this media is
4580 * active.
4581 */
4582 word = TULIP_ROM_GETW(cp, 2);
4583 tm->tm_opmode = TULIP_ROM_MB_OPMODE(word);
4584 if ((word & TULIP_ROM_MB_NOINDICATOR) == 0) {
4585 tm->tm_actmask =
4586 TULIP_ROM_MB_BITPOS(word);
4587 tm->tm_actdata =
4588 (word & TULIP_ROM_MB_POLARITY) ?
4589 0 : tm->tm_actmask;
4590 }
4591
4592 ifmedia_add(&sc->sc_mii.mii_media,
4593 IFM_MAKEWORD(IFM_ETHER, tsti->tsti_subtype,
4594 tsti->tsti_options, sc->sc_tlp_minst), 0, tm);
4595 break;
4596
4597 case TULIP_ROM_MB_21140_MII:
4598 sc->sc_media_seen |= 1 << TULIP_ROM_MB_21140_MII;
4599
4600 tm = malloc(sizeof(*tm), M_DEVBUF, M_WAITOK);
4601 memset(tm, 0, sizeof(*tm));
4602
4603 tm->tm_type = TULIP_ROM_MB_21140_MII;
4604 tm->tm_get = tlp_mii_getmedia;
4605 tm->tm_set = tlp_mii_setmedia;
4606 tm->tm_opmode = OPMODE_PS;
4607
4608 if (sc->sc_reset == NULL)
4609 sc->sc_reset = tlp_21140_reset;
4610
4611 /* First is the PHY number. */
4612 tm->tm_phyno = *cp++;
4613
4614 /* Next is the MII select sequence length and offset. */
4615 tm->tm_gp_length = *cp++;
4616 tm->tm_gp_offset = cp - &sc->sc_srom[0];
4617 cp += tm->tm_gp_length;
4618
4619 /* Next is the MII reset sequence length and offset. */
4620 tm->tm_reset_length = *cp++;
4621 tm->tm_reset_offset = cp - &sc->sc_srom[0];
4622 cp += tm->tm_reset_length;
4623
4624 /*
4625 * The following items are left in the media block
4626 * that we don't particularly care about:
4627 *
4628 * capabilities W
4629 * advertisement W
4630 * full duplex W
4631 * tx threshold W
4632 *
4633 * These appear to be bits in the PHY registers,
4634 * which our MII code handles on its own.
4635 */
4636
4637 /*
4638 * Before we probe the MII bus, we need to reset
4639 * it and issue the selection sequence.
4640 */
4641
4642 /* Set the direction of the pins... */
4643 TULIP_WRITE(sc, CSR_GPP, GPP_GPC|sc->sc_gp_dir);
4644
4645 for (i = 0; i < tm->tm_reset_length; i++) {
4646 delay(10);
4647 TULIP_WRITE(sc, CSR_GPP,
4648 sc->sc_srom[tm->tm_reset_offset + i]);
4649 }
4650
4651 for (i = 0; i < tm->tm_gp_length; i++) {
4652 delay(10);
4653 TULIP_WRITE(sc, CSR_GPP,
4654 sc->sc_srom[tm->tm_gp_offset + i]);
4655 }
4656
4657 /* If there were no sequences, just lower the pins. */
4658 if (tm->tm_reset_length == 0 && tm->tm_gp_length == 0) {
4659 delay(10);
4660 TULIP_WRITE(sc, CSR_GPP, 0);
4661 }
4662
4663 /*
4664 * Now, probe the MII for the PHY. Note, we know
4665 * the location of the PHY on the bus, but we don't
4666 * particularly care; the MII code just likes to
4667 * search the whole thing anyhow.
4668 */
4669 mii_attach(&sc->sc_dev, &sc->sc_mii, 0xffffffff,
4670 MII_PHY_ANY, tm->tm_phyno, 0);
4671
4672 /*
4673 * Now, search for the PHY we hopefully just
4674 * configured. If it's not configured into the
4675 * kernel, we lose. The PHY's default media always
4676 * takes priority.
4677 */
4678 for (phy = LIST_FIRST(&sc->sc_mii.mii_phys);
4679 phy != NULL;
4680 phy = LIST_NEXT(phy, mii_list))
4681 if (phy->mii_offset == tm->tm_phyno)
4682 break;
4683 if (phy == NULL) {
4684 printf("%s: unable to configure MII\n",
4685 sc->sc_dev.dv_xname);
4686 break;
4687 }
4688
4689 sc->sc_flags |= TULIPF_HAS_MII;
4690 sc->sc_tick = tlp_mii_tick;
4691 miidef = IFM_MAKEWORD(IFM_ETHER, IFM_AUTO, 0,
4692 phy->mii_inst);
4693
4694 /*
4695 * Okay, now that we've found the PHY and the MII
4696 * layer has added all of the media associated
4697 * with that PHY, we need to traverse the media
4698 * list, and add our `tm' to each entry's `aux'
4699 * pointer.
4700 *
4701 * We do this by looking for media with our
4702 * PHY's `instance'.
4703 */
4704 for (ife = TAILQ_FIRST(&sc->sc_mii.mii_media.ifm_list);
4705 ife != NULL;
4706 ife = TAILQ_NEXT(ife, ifm_list)) {
4707 if (IFM_INST(ife->ifm_media) != phy->mii_inst)
4708 continue;
4709 ife->ifm_aux = tm;
4710 }
4711 break;
4712
4713 case TULIP_ROM_MB_21142_SIA:
4714 tlp_get_minst(sc);
4715 sc->sc_media_seen |= 1 << TULIP_ROM_MB_21142_SIA;
4716
4717 tm = malloc(sizeof(*tm), M_DEVBUF, M_WAITOK);
4718 memset(tm, 0, sizeof(*tm));
4719
4720 tm->tm_type = TULIP_ROM_MB_21142_SIA;
4721 tm->tm_get = tlp_sia_get;
4722 tm->tm_set = tlp_sia_set;
4723
4724 /* First is the media type code. */
4725 tsti = tlp_srom_to_ifmedia(cp[0] &
4726 TULIP_ROM_MB_MEDIA_CODE);
4727 if (tsti == NULL) {
4728 /* Invalid media code. */
4729 free(tm, M_DEVBUF);
4730 break;
4731 }
4732
4733 /* Get defaults. */
4734 tlp_srom_media_info(sc, tsti, tm);
4735
4736 /*
4737 * Override our default SIA settings if the
4738 * SROM contains its own.
4739 */
4740 if (cp[0] & 0x40) {
4741 tm->tm_siaconn = TULIP_ROM_GETW(cp, 1);
4742 tm->tm_siatxrx = TULIP_ROM_GETW(cp, 3);
4743 tm->tm_siagen = TULIP_ROM_GETW(cp, 5);
4744 cp += 7;
4745 } else
4746 cp++;
4747
4748 /* Next is GPIO control/data. */
4749 tm->tm_gpctl = TULIP_ROM_GETW(cp, 0);
4750 tm->tm_gpdata = TULIP_ROM_GETW(cp, 2);
4751
4752 ifmedia_add(&sc->sc_mii.mii_media,
4753 IFM_MAKEWORD(IFM_ETHER, tsti->tsti_subtype,
4754 tsti->tsti_options, sc->sc_tlp_minst), 0, tm);
4755 break;
4756
4757 case TULIP_ROM_MB_21142_MII:
4758 sc->sc_media_seen |= 1 << TULIP_ROM_MB_21142_MII;
4759
4760 tm = malloc(sizeof(*tm), M_DEVBUF, M_WAITOK);
4761 memset(tm, 0, sizeof(*tm));
4762
4763 tm->tm_type = TULIP_ROM_MB_21142_MII;
4764 tm->tm_get = tlp_mii_getmedia;
4765 tm->tm_set = tlp_mii_setmedia;
4766 tm->tm_opmode = OPMODE_PS;
4767
4768 if (sc->sc_reset == NULL)
4769 sc->sc_reset = tlp_21142_reset;
4770
4771 /* First is the PHY number. */
4772 tm->tm_phyno = *cp++;
4773
4774 /* Next is the MII select sequence length and offset. */
4775 tm->tm_gp_length = *cp++;
4776 tm->tm_gp_offset = cp - &sc->sc_srom[0];
4777 cp += tm->tm_gp_length * 2;
4778
4779 /* Next is the MII reset sequence length and offset. */
4780 tm->tm_reset_length = *cp++;
4781 tm->tm_reset_offset = cp - &sc->sc_srom[0];
4782 cp += tm->tm_reset_length * 2;
4783
4784 /*
4785 * The following items are left in the media block
4786 * that we don't particularly care about:
4787 *
4788 * capabilities W
4789 * advertisement W
4790 * full duplex W
4791 * tx threshold W
4792 * MII interrupt W
4793 *
4794 * These appear to be bits in the PHY registers,
4795 * which our MII code handles on its own.
4796 */
4797
4798 /*
4799 * Before we probe the MII bus, we need to reset
4800 * it and issue the selection sequence.
4801 */
4802
4803 ncp = &sc->sc_srom[tm->tm_reset_offset];
4804 for (i = 0; i < tm->tm_reset_length; i++, ncp += 2) {
4805 delay(10);
4806 TULIP_WRITE(sc, CSR_SIAGEN,
4807 TULIP_ROM_GETW(ncp, 0) << 16);
4808 }
4809
4810 ncp = &sc->sc_srom[tm->tm_gp_offset];
4811 for (i = 0; i < tm->tm_gp_length; i++, ncp += 2) {
4812 delay(10);
4813 TULIP_WRITE(sc, CSR_SIAGEN,
4814 TULIP_ROM_GETW(ncp, 0) << 16);
4815 }
4816
4817 /* If there were no sequences, just lower the pins. */
4818 if (tm->tm_reset_length == 0 && tm->tm_gp_length == 0) {
4819 delay(10);
4820 TULIP_WRITE(sc, CSR_SIAGEN, 0);
4821 }
4822
4823 /*
4824 * Now, probe the MII for the PHY. Note, we know
4825 * the location of the PHY on the bus, but we don't
4826 * particularly care; the MII code just likes to
4827 * search the whole thing anyhow.
4828 */
4829 mii_attach(&sc->sc_dev, &sc->sc_mii, 0xffffffff,
4830 MII_PHY_ANY, tm->tm_phyno, 0);
4831
4832 /*
4833 * Now, search for the PHY we hopefully just
4834 * configured. If it's not configured into the
4835 * kernel, we lose. The PHY's default media always
4836 * takes priority.
4837 */
4838 for (phy = LIST_FIRST(&sc->sc_mii.mii_phys);
4839 phy != NULL;
4840 phy = LIST_NEXT(phy, mii_list))
4841 if (phy->mii_offset == tm->tm_phyno)
4842 break;
4843 if (phy == NULL) {
4844 printf("%s: unable to configure MII\n",
4845 sc->sc_dev.dv_xname);
4846 break;
4847 }
4848
4849 sc->sc_flags |= TULIPF_HAS_MII;
4850 sc->sc_tick = tlp_mii_tick;
4851 miidef = IFM_MAKEWORD(IFM_ETHER, IFM_AUTO, 0,
4852 phy->mii_inst);
4853
4854 /*
4855 * Okay, now that we've found the PHY and the MII
4856 * layer has added all of the media associated
4857 * with that PHY, we need to traverse the media
4858 * list, and add our `tm' to each entry's `aux'
4859 * pointer.
4860 *
4861 * We do this by looking for media with our
4862 * PHY's `instance'.
4863 */
4864 for (ife = TAILQ_FIRST(&sc->sc_mii.mii_media.ifm_list);
4865 ife != NULL;
4866 ife = TAILQ_NEXT(ife, ifm_list)) {
4867 if (IFM_INST(ife->ifm_media) != phy->mii_inst)
4868 continue;
4869 ife->ifm_aux = tm;
4870 }
4871 break;
4872
4873 case TULIP_ROM_MB_21143_SYM:
4874 tlp_get_minst(sc);
4875 sc->sc_media_seen |= 1 << TULIP_ROM_MB_21143_SYM;
4876
4877 tm = malloc(sizeof(*tm), M_DEVBUF, M_WAITOK);
4878 memset(tm, 0, sizeof(*tm));
4879
4880 tm->tm_type = TULIP_ROM_MB_21143_SYM;
4881 tm->tm_get = tlp_sia_get;
4882 tm->tm_set = tlp_sia_set;
4883
4884 /* First is the media type code. */
4885 tsti = tlp_srom_to_ifmedia(cp[0] &
4886 TULIP_ROM_MB_MEDIA_CODE);
4887 if (tsti == NULL) {
4888 /* Invalid media code. */
4889 free(tm, M_DEVBUF);
4890 break;
4891 }
4892
4893 /* Get defaults. */
4894 tlp_srom_media_info(sc, tsti, tm);
4895
4896 /* Next is GPIO control/data. */
4897 tm->tm_gpctl = TULIP_ROM_GETW(cp, 1);
4898 tm->tm_gpdata = TULIP_ROM_GETW(cp, 3);
4899
4900 /*
4901 * Next is a word containing OPMODE information
4902 * and info on how to detect if this media is
4903 * active.
4904 */
4905 word = TULIP_ROM_GETW(cp, 5);
4906 tm->tm_opmode = TULIP_ROM_MB_OPMODE(word);
4907 if ((word & TULIP_ROM_MB_NOINDICATOR) == 0) {
4908 tm->tm_actmask =
4909 TULIP_ROM_MB_BITPOS(word);
4910 tm->tm_actdata =
4911 (word & TULIP_ROM_MB_POLARITY) ?
4912 0 : tm->tm_actmask;
4913 }
4914
4915 ifmedia_add(&sc->sc_mii.mii_media,
4916 IFM_MAKEWORD(IFM_ETHER, tsti->tsti_subtype,
4917 tsti->tsti_options, sc->sc_tlp_minst), 0, tm);
4918 break;
4919
4920 case TULIP_ROM_MB_21143_RESET:
4921 printf("%s: 21143 reset block\n", sc->sc_dev.dv_xname);
4922 break;
4923
4924 default:
4925 printf("%s: unknown ISV media block type 0x%02x\n",
4926 sc->sc_dev.dv_xname, type);
4927 }
4928 }
4929
4930 /*
4931 * Deal with the case where no media is configured.
4932 */
4933 if (TAILQ_FIRST(&sc->sc_mii.mii_media.ifm_list) == NULL) {
4934 printf("%s: no media found!\n", sc->sc_dev.dv_xname);
4935 ifmedia_add(&sc->sc_mii.mii_media, IFM_ETHER|IFM_NONE, 0, NULL);
4936 ifmedia_set(&sc->sc_mii.mii_media, IFM_ETHER|IFM_NONE);
4937 return;
4938 }
4939
4940 /*
4941 * Pick the default media.
4942 */
4943 if (miidef != 0)
4944 defmedia = miidef;
4945 else {
4946 /*
4947 * XXX Pick a better default. Should come from SROM
4948 * XXX on 21140[A], and should be "auto" on 21142,
4949 * XXX 21143, and Macronix chips.
4950 */
4951 defmedia = IFM_MAKEWORD(IFM_ETHER, IFM_10_T, 0, 0);
4952 }
4953
4954 ifmedia_set(&sc->sc_mii.mii_media, defmedia);
4955
4956 /*
4957 * Display any non-MII media we've located.
4958 */
4959 if (sc->sc_media_seen &
4960 ~((1 << TULIP_ROM_MB_21140_MII) | (1 << TULIP_ROM_MB_21142_MII)))
4961 tlp_print_media(sc);
4962
4963 tlp_sia_fixup(sc);
4964 }
4965
4966 void
4967 tlp_2114x_isv_tmsw_get(sc, ifmr)
4968 struct tulip_softc *sc;
4969 struct ifmediareq *ifmr;
4970 {
4971 struct ifmedia_entry *ife = sc->sc_mii.mii_media.ifm_cur;
4972 struct tulip_21x4x_media *tm = ife->ifm_aux;
4973
4974 /*
4975 * We might be polling a non-MII autosense; check for that.
4976 */
4977 if (tm == NULL) {
4978 #ifdef DIAGNOSTIC
4979 if (IFM_SUBTYPE(ife->ifm_media) != IFM_AUTO)
4980 panic("tlp_2114x_isv_tmsw_get");
4981 #endif
4982 tm = sc->sc_nway_active->ifm_aux;
4983 }
4984
4985 (*tm->tm_get)(sc, ifmr);
4986 }
4987
4988 int
4989 tlp_2114x_isv_tmsw_set(sc)
4990 struct tulip_softc *sc;
4991 {
4992 struct ifmedia_entry *ife = sc->sc_mii.mii_media.ifm_cur;
4993 struct tulip_21x4x_media *tm = ife->ifm_aux;
4994
4995 /*
4996 * We might be setting a non-MII autosense; check for that.
4997 */
4998 if (tm == NULL) {
4999 #ifdef DIAGNOSTIC
5000 if (IFM_SUBTYPE(ife->ifm_media) != IFM_AUTO)
5001 panic("tlp_2114x_isv_tmsw_set");
5002 #endif
5003 /* XXX XXX XXX */
5004 }
5005
5006 /*
5007 * Check to see if we need to reset the chip, and do it. The
5008 * reset path will get the OPMODE register right the next
5009 * time through.
5010 */
5011 if (TULIP_MEDIA_NEEDSRESET(sc, tm->tm_opmode))
5012 return (tlp_init(&sc->sc_ethercom.ec_if));
5013
5014 return ((*tm->tm_set)(sc));
5015 }
5016
5017 /*
5018 * MII-on-SIO media switch. Handles only MII attached to the SIO.
5019 */
5020 void tlp_sio_mii_tmsw_init __P((struct tulip_softc *));
5021
5022 const struct tulip_mediasw tlp_sio_mii_mediasw = {
5023 tlp_sio_mii_tmsw_init, tlp_mii_getmedia, tlp_mii_setmedia
5024 };
5025
5026 void
5027 tlp_sio_mii_tmsw_init(sc)
5028 struct tulip_softc *sc;
5029 {
5030 struct ifnet *ifp = &sc->sc_ethercom.ec_if;
5031
5032 /*
5033 * We don't attach any media info structures to the ifmedia
5034 * entries, so if we're using a pre-init function that needs
5035 * that info, override it to one that doesn't.
5036 */
5037 if (sc->sc_preinit == tlp_2114x_preinit)
5038 sc->sc_preinit = tlp_2114x_mii_preinit;
5039
5040 sc->sc_mii.mii_ifp = ifp;
5041 sc->sc_mii.mii_readreg = tlp_bitbang_mii_readreg;
5042 sc->sc_mii.mii_writereg = tlp_bitbang_mii_writereg;
5043 sc->sc_mii.mii_statchg = sc->sc_statchg;
5044 ifmedia_init(&sc->sc_mii.mii_media, 0, tlp_mediachange,
5045 tlp_mediastatus);
5046 mii_attach(&sc->sc_dev, &sc->sc_mii, 0xffffffff, MII_PHY_ANY,
5047 MII_OFFSET_ANY, 0);
5048 if (LIST_FIRST(&sc->sc_mii.mii_phys) == NULL) {
5049 ifmedia_add(&sc->sc_mii.mii_media, IFM_ETHER|IFM_NONE, 0, NULL);
5050 ifmedia_set(&sc->sc_mii.mii_media, IFM_ETHER|IFM_NONE);
5051 } else {
5052 sc->sc_flags |= TULIPF_HAS_MII;
5053 sc->sc_tick = tlp_mii_tick;
5054 ifmedia_set(&sc->sc_mii.mii_media, IFM_ETHER|IFM_AUTO);
5055 }
5056 }
5057
5058 /*
5059 * Lite-On PNIC media switch. Must handle MII or internal NWAY.
5060 */
5061 void tlp_pnic_tmsw_init __P((struct tulip_softc *));
5062 void tlp_pnic_tmsw_get __P((struct tulip_softc *, struct ifmediareq *));
5063 int tlp_pnic_tmsw_set __P((struct tulip_softc *));
5064
5065 const struct tulip_mediasw tlp_pnic_mediasw = {
5066 tlp_pnic_tmsw_init, tlp_pnic_tmsw_get, tlp_pnic_tmsw_set
5067 };
5068
5069 void tlp_pnic_nway_statchg __P((struct device *));
5070 void tlp_pnic_nway_tick __P((void *));
5071 int tlp_pnic_nway_service __P((struct tulip_softc *, int));
5072 void tlp_pnic_nway_reset __P((struct tulip_softc *));
5073 int tlp_pnic_nway_auto __P((struct tulip_softc *, int));
5074 void tlp_pnic_nway_auto_timeout __P((void *));
5075 void tlp_pnic_nway_status __P((struct tulip_softc *));
5076 void tlp_pnic_nway_acomp __P((struct tulip_softc *));
5077
5078 void
5079 tlp_pnic_tmsw_init(sc)
5080 struct tulip_softc *sc;
5081 {
5082 struct ifnet *ifp = &sc->sc_ethercom.ec_if;
5083 const char *sep = "";
5084
5085 #define ADD(m, c) ifmedia_add(&sc->sc_mii.mii_media, (m), (c), NULL)
5086 #define PRINT(s) printf("%s%s", sep, s); sep = ", "
5087
5088 sc->sc_mii.mii_ifp = ifp;
5089 sc->sc_mii.mii_readreg = tlp_pnic_mii_readreg;
5090 sc->sc_mii.mii_writereg = tlp_pnic_mii_writereg;
5091 sc->sc_mii.mii_statchg = sc->sc_statchg;
5092 ifmedia_init(&sc->sc_mii.mii_media, 0, tlp_mediachange,
5093 tlp_mediastatus);
5094 mii_attach(&sc->sc_dev, &sc->sc_mii, 0xffffffff, MII_PHY_ANY,
5095 MII_OFFSET_ANY, 0);
5096 if (LIST_FIRST(&sc->sc_mii.mii_phys) == NULL) {
5097 /* XXX What about AUI/BNC support? */
5098 printf("%s: ", sc->sc_dev.dv_xname);
5099
5100 tlp_pnic_nway_reset(sc);
5101
5102 ADD(IFM_MAKEWORD(IFM_ETHER, IFM_10_T, 0, 0),
5103 PNIC_NWAY_TW|PNIC_NWAY_CAP10T);
5104 PRINT("10baseT");
5105
5106 ADD(IFM_MAKEWORD(IFM_ETHER, IFM_10_T, IFM_FDX, 0),
5107 PNIC_NWAY_TW|PNIC_NWAY_FD|PNIC_NWAY_CAP10TFDX);
5108 PRINT("10baseT-FDX");
5109
5110 ADD(IFM_MAKEWORD(IFM_ETHER, IFM_100_TX, 0, 0),
5111 PNIC_NWAY_TW|PNIC_NWAY_100|PNIC_NWAY_CAP100TX);
5112 PRINT("100baseTX");
5113
5114 ADD(IFM_MAKEWORD(IFM_ETHER, IFM_100_TX, IFM_FDX, 0),
5115 PNIC_NWAY_TW|PNIC_NWAY_100|PNIC_NWAY_FD|
5116 PNIC_NWAY_CAP100TXFDX);
5117 PRINT("100baseTX-FDX");
5118
5119 ADD(IFM_MAKEWORD(IFM_ETHER, IFM_AUTO, 0, 0),
5120 PNIC_NWAY_TW|PNIC_NWAY_RN|PNIC_NWAY_NW|
5121 PNIC_NWAY_CAP10T|PNIC_NWAY_CAP10TFDX|
5122 PNIC_NWAY_CAP100TXFDX|PNIC_NWAY_CAP100TX);
5123 PRINT("auto");
5124
5125 printf("\n");
5126
5127 sc->sc_statchg = tlp_pnic_nway_statchg;
5128 sc->sc_tick = tlp_pnic_nway_tick;
5129 ifmedia_set(&sc->sc_mii.mii_media, IFM_ETHER|IFM_AUTO);
5130 } else {
5131 sc->sc_flags |= TULIPF_HAS_MII;
5132 sc->sc_tick = tlp_mii_tick;
5133 ifmedia_set(&sc->sc_mii.mii_media, IFM_ETHER|IFM_AUTO);
5134 }
5135
5136 #undef ADD
5137 #undef PRINT
5138 }
5139
5140 void
5141 tlp_pnic_tmsw_get(sc, ifmr)
5142 struct tulip_softc *sc;
5143 struct ifmediareq *ifmr;
5144 {
5145 struct mii_data *mii = &sc->sc_mii;
5146
5147 if (sc->sc_flags & TULIPF_HAS_MII)
5148 tlp_mii_getmedia(sc, ifmr);
5149 else {
5150 mii->mii_media_status = 0;
5151 mii->mii_media_active = IFM_NONE;
5152 tlp_pnic_nway_service(sc, MII_POLLSTAT);
5153 ifmr->ifm_status = sc->sc_mii.mii_media_status;
5154 ifmr->ifm_active = sc->sc_mii.mii_media_active;
5155 }
5156 }
5157
5158 int
5159 tlp_pnic_tmsw_set(sc)
5160 struct tulip_softc *sc;
5161 {
5162 struct ifnet *ifp = &sc->sc_ethercom.ec_if;
5163 struct mii_data *mii = &sc->sc_mii;
5164
5165 if (sc->sc_flags & TULIPF_HAS_MII) {
5166 /*
5167 * Make sure the built-in Tx jabber timer is disabled.
5168 */
5169 TULIP_WRITE(sc, CSR_PNIC_ENDEC, PNIC_ENDEC_JDIS);
5170
5171 return (tlp_mii_setmedia(sc));
5172 }
5173
5174 if (ifp->if_flags & IFF_UP) {
5175 mii->mii_media_status = 0;
5176 mii->mii_media_active = IFM_NONE;
5177 return (tlp_pnic_nway_service(sc, MII_MEDIACHG));
5178 }
5179
5180 return (0);
5181 }
5182
5183 void
5184 tlp_pnic_nway_statchg(self)
5185 struct device *self;
5186 {
5187 struct tulip_softc *sc = (struct tulip_softc *)self;
5188
5189 /* Idle the transmit and receive processes. */
5190 tlp_idle(sc, OPMODE_ST|OPMODE_SR);
5191
5192 sc->sc_opmode &= ~(OPMODE_TTM|OPMODE_FD|OPMODE_PS|OPMODE_PCS|
5193 OPMODE_SCR|OPMODE_HBD);
5194
5195 if (IFM_SUBTYPE(sc->sc_mii.mii_media_active) == IFM_10_T) {
5196 sc->sc_opmode |= OPMODE_TTM;
5197 TULIP_WRITE(sc, CSR_GPP,
5198 GPP_PNIC_OUT(GPP_PNIC_PIN_SPEED_RLY, 0) |
5199 GPP_PNIC_OUT(GPP_PNIC_PIN_100M_LPKB, 1));
5200 } else {
5201 sc->sc_opmode |= OPMODE_PS|OPMODE_PCS|OPMODE_SCR|OPMODE_HBD;
5202 TULIP_WRITE(sc, CSR_GPP,
5203 GPP_PNIC_OUT(GPP_PNIC_PIN_SPEED_RLY, 1) |
5204 GPP_PNIC_OUT(GPP_PNIC_PIN_100M_LPKB, 1));
5205 }
5206
5207 if (sc->sc_mii.mii_media_active & IFM_FDX)
5208 sc->sc_opmode |= OPMODE_FD|OPMODE_HBD;
5209
5210 /*
5211 * Write new OPMODE bits. This also restarts the transmit
5212 * and receive processes.
5213 */
5214 TULIP_WRITE(sc, CSR_OPMODE, sc->sc_opmode);
5215 }
5216
5217 void
5218 tlp_pnic_nway_tick(arg)
5219 void *arg;
5220 {
5221 struct tulip_softc *sc = arg;
5222 int s;
5223
5224 if ((sc->sc_dev.dv_flags & DVF_ACTIVE) == 0)
5225 return;
5226
5227 s = splnet();
5228 tlp_pnic_nway_service(sc, MII_TICK);
5229 splx(s);
5230
5231 callout_reset(&sc->sc_tick_callout, hz, tlp_pnic_nway_tick, sc);
5232 }
5233
5234 /*
5235 * Support for the Lite-On PNIC internal NWay block. This is constructed
5236 * somewhat like a PHY driver for simplicity.
5237 */
5238
5239 int
5240 tlp_pnic_nway_service(sc, cmd)
5241 struct tulip_softc *sc;
5242 int cmd;
5243 {
5244 struct mii_data *mii = &sc->sc_mii;
5245 struct ifmedia_entry *ife = mii->mii_media.ifm_cur;
5246
5247 if ((mii->mii_ifp->if_flags & IFF_UP) == 0)
5248 return (0);
5249
5250 switch (cmd) {
5251 case MII_POLLSTAT:
5252 /* Nothing special to do here. */
5253 break;
5254
5255 case MII_MEDIACHG:
5256 switch (IFM_SUBTYPE(ife->ifm_media)) {
5257 case IFM_AUTO:
5258 (void) tlp_pnic_nway_auto(sc, 1);
5259 break;
5260 case IFM_100_T4:
5261 /*
5262 * XXX Not supported as a manual setting right now.
5263 */
5264 return (EINVAL);
5265 default:
5266 /*
5267 * NWAY register data is stored in the ifmedia entry.
5268 */
5269 TULIP_WRITE(sc, CSR_PNIC_NWAY, ife->ifm_data);
5270 }
5271 break;
5272
5273 case MII_TICK:
5274 /*
5275 * Only used for autonegotiation.
5276 */
5277 if (IFM_SUBTYPE(ife->ifm_media) != IFM_AUTO)
5278 return (0);
5279
5280 /*
5281 * Check to see if we have link. If we do, we don't
5282 * need to restart the autonegotiation process.
5283 */
5284 if (sc->sc_flags & TULIPF_LINK_UP)
5285 return (0);
5286
5287 /*
5288 * Only retry autonegotiation every 5 seconds.
5289 */
5290 if (++sc->sc_nway_ticks != 5)
5291 return (0);
5292
5293 sc->sc_nway_ticks = 0;
5294 tlp_pnic_nway_reset(sc);
5295 if (tlp_pnic_nway_auto(sc, 0) == EJUSTRETURN)
5296 return (0);
5297 break;
5298 }
5299
5300 /* Update the media status. */
5301 tlp_pnic_nway_status(sc);
5302
5303 /* Callback if something changed. */
5304 if ((sc->sc_nway_active == NULL ||
5305 sc->sc_nway_active->ifm_media != mii->mii_media_active) ||
5306 cmd == MII_MEDIACHG) {
5307 (*sc->sc_statchg)(&sc->sc_dev);
5308 tlp_nway_activate(sc, mii->mii_media_active);
5309 }
5310 return (0);
5311 }
5312
5313 void
5314 tlp_pnic_nway_reset(sc)
5315 struct tulip_softc *sc;
5316 {
5317
5318 TULIP_WRITE(sc, CSR_PNIC_NWAY, PNIC_NWAY_RS);
5319 delay(100);
5320 TULIP_WRITE(sc, CSR_PNIC_NWAY, 0);
5321 }
5322
5323 int
5324 tlp_pnic_nway_auto(sc, waitfor)
5325 struct tulip_softc *sc;
5326 int waitfor;
5327 {
5328 struct mii_data *mii = &sc->sc_mii;
5329 struct ifmedia_entry *ife = mii->mii_media.ifm_cur;
5330 u_int32_t reg;
5331 int i;
5332
5333 if ((sc->sc_flags & TULIPF_DOINGAUTO) == 0)
5334 TULIP_WRITE(sc, CSR_PNIC_NWAY, ife->ifm_data);
5335
5336 if (waitfor) {
5337 /* Wait 500ms for it to complete. */
5338 for (i = 0; i < 500; i++) {
5339 reg = TULIP_READ(sc, CSR_PNIC_NWAY);
5340 if (reg & PNIC_NWAY_LPAR_MASK) {
5341 tlp_pnic_nway_acomp(sc);
5342 return (0);
5343 }
5344 delay(1000);
5345 }
5346 #if 0
5347 if ((reg & PNIC_NWAY_LPAR_MASK) == 0)
5348 printf("%s: autonegotiation failed to complete\n",
5349 sc->sc_dev.dv_xname);
5350 #endif
5351
5352 /*
5353 * Don't need to worry about clearing DOINGAUTO.
5354 * If that's set, a timeout is pending, and it will
5355 * clear the flag.
5356 */
5357 return (EIO);
5358 }
5359
5360 /*
5361 * Just let it finish asynchronously. This is for the benefit of
5362 * the tick handler driving autonegotiation. Don't want 500ms
5363 * delays all the time while the system is running!
5364 */
5365 if ((sc->sc_flags & TULIPF_DOINGAUTO) == 0) {
5366 sc->sc_flags |= TULIPF_DOINGAUTO;
5367 callout_reset(&sc->sc_nway_callout, hz >> 1,
5368 tlp_pnic_nway_auto_timeout, sc);
5369 }
5370 return (EJUSTRETURN);
5371 }
5372
5373 void
5374 tlp_pnic_nway_auto_timeout(arg)
5375 void *arg;
5376 {
5377 struct tulip_softc *sc = arg;
5378 u_int32_t reg;
5379 int s;
5380
5381 s = splnet();
5382 sc->sc_flags &= ~TULIPF_DOINGAUTO;
5383 reg = TULIP_READ(sc, CSR_PNIC_NWAY);
5384 #if 0
5385 if ((reg & PNIC_NWAY_LPAR_MASK) == 0)
5386 printf("%s: autonegotiation failed to complete\n",
5387 sc->sc_dev.dv_xname);
5388 #endif
5389
5390 tlp_pnic_nway_acomp(sc);
5391
5392 /* Update the media status. */
5393 (void) tlp_pnic_nway_service(sc, MII_POLLSTAT);
5394 splx(s);
5395 }
5396
5397 void
5398 tlp_pnic_nway_status(sc)
5399 struct tulip_softc *sc;
5400 {
5401 struct mii_data *mii = &sc->sc_mii;
5402 u_int32_t reg;
5403
5404 mii->mii_media_status = IFM_AVALID;
5405 mii->mii_media_active = IFM_ETHER;
5406
5407 reg = TULIP_READ(sc, CSR_PNIC_NWAY);
5408
5409 if (sc->sc_flags & TULIPF_LINK_UP)
5410 mii->mii_media_status |= IFM_ACTIVE;
5411
5412 if (reg & PNIC_NWAY_NW) {
5413 if ((reg & PNIC_NWAY_LPAR_MASK) == 0) {
5414 /* Erg, still trying, I guess... */
5415 mii->mii_media_active |= IFM_NONE;
5416 return;
5417 }
5418
5419 #if 0
5420 if (reg & PNIC_NWAY_LPAR100T4)
5421 mii->mii_media_active |= IFM_100_T4;
5422 else
5423 #endif
5424 if (reg & PNIC_NWAY_LPAR100TXFDX)
5425 mii->mii_media_active |= IFM_100_TX|IFM_FDX;
5426 else if (reg & PNIC_NWAY_LPAR100TX)
5427 mii->mii_media_active |= IFM_100_TX;
5428 else if (reg & PNIC_NWAY_LPAR10TFDX)
5429 mii->mii_media_active |= IFM_10_T|IFM_FDX;
5430 else if (reg & PNIC_NWAY_LPAR10T)
5431 mii->mii_media_active |= IFM_10_T;
5432 else
5433 mii->mii_media_active |= IFM_NONE;
5434 } else {
5435 if (reg & PNIC_NWAY_100)
5436 mii->mii_media_active |= IFM_100_TX;
5437 else
5438 mii->mii_media_active |= IFM_10_T;
5439 if (reg & PNIC_NWAY_FD)
5440 mii->mii_media_active |= IFM_FDX;
5441 }
5442 }
5443
5444 void
5445 tlp_pnic_nway_acomp(sc)
5446 struct tulip_softc *sc;
5447 {
5448 u_int32_t reg;
5449
5450 reg = TULIP_READ(sc, CSR_PNIC_NWAY);
5451 reg &= ~(PNIC_NWAY_FD|PNIC_NWAY_100|PNIC_NWAY_RN);
5452
5453 if (reg & (PNIC_NWAY_LPAR100TXFDX|PNIC_NWAY_LPAR100TX))
5454 reg |= PNIC_NWAY_100;
5455 if (reg & (PNIC_NWAY_LPAR10TFDX|PNIC_NWAY_LPAR100TXFDX))
5456 reg |= PNIC_NWAY_FD;
5457
5458 TULIP_WRITE(sc, CSR_PNIC_NWAY, reg);
5459 }
5460
5461 /*
5462 * Macronix PMAC and Lite-On PNIC-II media switch:
5463 *
5464 * MX98713 and MX98713A 21140-like MII or GPIO media.
5465 *
5466 * MX98713A 21143-like MII or SIA/SYM media.
5467 *
5468 * MX98715, MX98715A, MX98725, 21143-like SIA/SYM media.
5469 * 82C115, MX98715AEC-C, -E
5470 *
5471 * So, what we do here is fake MII-on-SIO or ISV media info, and
5472 * use the ISV media switch get/set functions to handle the rest.
5473 */
5474
5475 void tlp_pmac_tmsw_init __P((struct tulip_softc *));
5476
5477 const struct tulip_mediasw tlp_pmac_mediasw = {
5478 tlp_pmac_tmsw_init, tlp_2114x_isv_tmsw_get, tlp_2114x_isv_tmsw_set
5479 };
5480
5481 const struct tulip_mediasw tlp_pmac_mii_mediasw = {
5482 tlp_pmac_tmsw_init, tlp_mii_getmedia, tlp_mii_setmedia
5483 };
5484
5485 void
5486 tlp_pmac_tmsw_init(sc)
5487 struct tulip_softc *sc;
5488 {
5489 static const u_int8_t media[] = {
5490 TULIP_ROM_MB_MEDIA_TP,
5491 TULIP_ROM_MB_MEDIA_TP_FDX,
5492 TULIP_ROM_MB_MEDIA_100TX,
5493 TULIP_ROM_MB_MEDIA_100TX_FDX,
5494 };
5495 struct ifnet *ifp = &sc->sc_ethercom.ec_if;
5496
5497 sc->sc_mii.mii_ifp = ifp;
5498 sc->sc_mii.mii_readreg = tlp_bitbang_mii_readreg;
5499 sc->sc_mii.mii_writereg = tlp_bitbang_mii_writereg;
5500 sc->sc_mii.mii_statchg = sc->sc_statchg;
5501 ifmedia_init(&sc->sc_mii.mii_media, 0, tlp_mediachange,
5502 tlp_mediastatus);
5503 if (sc->sc_chip == TULIP_CHIP_MX98713 ||
5504 sc->sc_chip == TULIP_CHIP_MX98713A) {
5505 mii_attach(&sc->sc_dev, &sc->sc_mii, 0xffffffff,
5506 MII_PHY_ANY, MII_OFFSET_ANY, 0);
5507 if (LIST_FIRST(&sc->sc_mii.mii_phys) != NULL) {
5508 sc->sc_flags |= TULIPF_HAS_MII;
5509 sc->sc_tick = tlp_mii_tick;
5510 sc->sc_preinit = tlp_2114x_mii_preinit;
5511 sc->sc_mediasw = &tlp_pmac_mii_mediasw;
5512 ifmedia_set(&sc->sc_mii.mii_media,
5513 IFM_ETHER|IFM_AUTO);
5514 return;
5515 }
5516 }
5517
5518 switch (sc->sc_chip) {
5519 case TULIP_CHIP_MX98713:
5520 tlp_add_srom_media(sc, TULIP_ROM_MB_21140_GPR,
5521 tlp_21140_gpio_get, tlp_21140_gpio_set, media, 4);
5522
5523 /*
5524 * XXX Should implement auto-sense for this someday,
5525 * XXX when we do the same for the 21140.
5526 */
5527 ifmedia_set(&sc->sc_mii.mii_media, IFM_ETHER|IFM_10_T);
5528 break;
5529
5530 default:
5531 tlp_add_srom_media(sc, TULIP_ROM_MB_21142_SIA,
5532 tlp_sia_get, tlp_sia_set, media, 2);
5533 tlp_add_srom_media(sc, TULIP_ROM_MB_21143_SYM,
5534 tlp_sia_get, tlp_sia_set, media + 2, 2);
5535
5536 /*
5537 * XXX Autonegotiation not yet supported.
5538 */
5539 ifmedia_set(&sc->sc_mii.mii_media, IFM_ETHER|IFM_10_T);
5540 break;
5541 }
5542
5543 tlp_print_media(sc);
5544 tlp_sia_fixup(sc);
5545
5546 /* Set the LED modes. */
5547 tlp_pmac_reset(sc);
5548
5549 sc->sc_reset = tlp_pmac_reset;
5550 }
5551
5552 /*
5553 * ADMtek AL981 media switch. Only has internal PHY.
5554 */
5555 void tlp_al981_tmsw_init __P((struct tulip_softc *));
5556
5557 const struct tulip_mediasw tlp_al981_mediasw = {
5558 tlp_al981_tmsw_init, tlp_mii_getmedia, tlp_mii_setmedia
5559 };
5560
5561 void
5562 tlp_al981_tmsw_init(sc)
5563 struct tulip_softc *sc;
5564 {
5565 struct ifnet *ifp = &sc->sc_ethercom.ec_if;
5566
5567 sc->sc_mii.mii_ifp = ifp;
5568 sc->sc_mii.mii_readreg = tlp_al981_mii_readreg;
5569 sc->sc_mii.mii_writereg = tlp_al981_mii_writereg;
5570 sc->sc_mii.mii_statchg = sc->sc_statchg;
5571 ifmedia_init(&sc->sc_mii.mii_media, 0, tlp_mediachange,
5572 tlp_mediastatus);
5573 mii_attach(&sc->sc_dev, &sc->sc_mii, 0xffffffff, MII_PHY_ANY,
5574 MII_OFFSET_ANY, 0);
5575 if (LIST_FIRST(&sc->sc_mii.mii_phys) == NULL) {
5576 ifmedia_add(&sc->sc_mii.mii_media, IFM_ETHER|IFM_NONE, 0, NULL);
5577 ifmedia_set(&sc->sc_mii.mii_media, IFM_ETHER|IFM_NONE);
5578 } else {
5579 sc->sc_flags |= TULIPF_HAS_MII;
5580 sc->sc_tick = tlp_mii_tick;
5581 ifmedia_set(&sc->sc_mii.mii_media, IFM_ETHER|IFM_AUTO);
5582 }
5583 }
5584
5585 /*
5586 * ADMtek AN983/985 media switch. Only has internal PHY, but
5587 * on an SIO-like interface. Unfortunately, we can't use the
5588 * standard SIO media switch, because the AN985 "ghosts" the
5589 * singly PHY at every address.
5590 */
5591 void tlp_an985_tmsw_init __P((struct tulip_softc *));
5592
5593 const struct tulip_mediasw tlp_an985_mediasw = {
5594 tlp_an985_tmsw_init, tlp_mii_getmedia, tlp_mii_setmedia
5595 };
5596
5597 void
5598 tlp_an985_tmsw_init(sc)
5599 struct tulip_softc *sc;
5600 {
5601 struct ifnet *ifp = &sc->sc_ethercom.ec_if;
5602
5603 sc->sc_mii.mii_ifp = ifp;
5604 sc->sc_mii.mii_readreg = tlp_bitbang_mii_readreg;
5605 sc->sc_mii.mii_writereg = tlp_bitbang_mii_writereg;
5606 sc->sc_mii.mii_statchg = sc->sc_statchg;
5607 ifmedia_init(&sc->sc_mii.mii_media, 0, tlp_mediachange,
5608 tlp_mediastatus);
5609 mii_attach(&sc->sc_dev, &sc->sc_mii, 0xffffffff, 1,
5610 MII_OFFSET_ANY, 0);
5611 if (LIST_FIRST(&sc->sc_mii.mii_phys) == NULL) {
5612 ifmedia_add(&sc->sc_mii.mii_media, IFM_ETHER|IFM_NONE, 0, NULL);
5613 ifmedia_set(&sc->sc_mii.mii_media, IFM_ETHER|IFM_NONE);
5614 } else {
5615 sc->sc_flags |= TULIPF_HAS_MII;
5616 sc->sc_tick = tlp_mii_tick;
5617 ifmedia_set(&sc->sc_mii.mii_media, IFM_ETHER|IFM_AUTO);
5618 }
5619 }
5620
5621 /*
5622 * Davicom DM9102 media switch. Internal PHY and possibly HomePNA.
5623 */
5624 void tlp_dm9102_tmsw_init __P((struct tulip_softc *));
5625 void tlp_dm9102_tmsw_getmedia __P((struct tulip_softc *,
5626 struct ifmediareq *));
5627 int tlp_dm9102_tmsw_setmedia __P((struct tulip_softc *));
5628
5629 const struct tulip_mediasw tlp_dm9102_mediasw = {
5630 tlp_dm9102_tmsw_init, tlp_dm9102_tmsw_getmedia,
5631 tlp_dm9102_tmsw_setmedia
5632 };
5633
5634 void
5635 tlp_dm9102_tmsw_init(sc)
5636 struct tulip_softc *sc;
5637 {
5638 struct ifnet *ifp = &sc->sc_ethercom.ec_if;
5639 u_int32_t opmode;
5640
5641 sc->sc_mii.mii_ifp = ifp;
5642 sc->sc_mii.mii_readreg = tlp_bitbang_mii_readreg;
5643 sc->sc_mii.mii_writereg = tlp_bitbang_mii_writereg;
5644 sc->sc_mii.mii_statchg = sc->sc_statchg;
5645 ifmedia_init(&sc->sc_mii.mii_media, 0, tlp_mediachange,
5646 tlp_mediastatus);
5647
5648 /* PHY block already reset via tlp_reset(). */
5649
5650 /*
5651 * Configure OPMODE properly for the internal MII interface.
5652 */
5653 switch (sc->sc_chip) {
5654 case TULIP_CHIP_DM9102:
5655 opmode = OPMODE_MBO|OPMODE_HBD|OPMODE_PS;
5656 break;
5657
5658 case TULIP_CHIP_DM9102A:
5659 opmode = OPMODE_MBO|OPMODE_HBD;
5660 break;
5661
5662 default:
5663 /* Nothing. */
5664 break;
5665 }
5666
5667 TULIP_WRITE(sc, CSR_OPMODE, opmode);
5668
5669 /* Now, probe the internal MII for the internal PHY. */
5670 mii_attach(&sc->sc_dev, &sc->sc_mii, 0xffffffff, MII_PHY_ANY,
5671 MII_OFFSET_ANY, 0);
5672
5673 /*
5674 * XXX Figure out what to do about the HomePNA portion
5675 * XXX of the DM9102A.
5676 */
5677
5678 if (LIST_FIRST(&sc->sc_mii.mii_phys) == NULL) {
5679 ifmedia_add(&sc->sc_mii.mii_media, IFM_ETHER|IFM_NONE, 0, NULL);
5680 ifmedia_set(&sc->sc_mii.mii_media, IFM_ETHER|IFM_NONE);
5681 } else {
5682 sc->sc_flags |= TULIPF_HAS_MII;
5683 sc->sc_tick = tlp_mii_tick;
5684 ifmedia_set(&sc->sc_mii.mii_media, IFM_ETHER|IFM_AUTO);
5685 }
5686 }
5687
5688 void
5689 tlp_dm9102_tmsw_getmedia(sc, ifmr)
5690 struct tulip_softc *sc;
5691 struct ifmediareq *ifmr;
5692 {
5693
5694 /* XXX HomePNA on DM9102A. */
5695 tlp_mii_getmedia(sc, ifmr);
5696 }
5697
5698 int
5699 tlp_dm9102_tmsw_setmedia(sc)
5700 struct tulip_softc *sc;
5701 {
5702
5703 /* XXX HomePNA on DM9102A. */
5704 return (tlp_mii_setmedia(sc));
5705 }
5706