mb86960.c revision 1.73 1 1.73 cegger /* $NetBSD: mb86960.c,v 1.73 2009/05/12 14:25:17 cegger Exp $ */
2 1.19 perry
3 1.1 mycroft /*
4 1.1 mycroft * All Rights Reserved, Copyright (C) Fujitsu Limited 1995
5 1.1 mycroft *
6 1.1 mycroft * This software may be used, modified, copied, distributed, and sold, in
7 1.1 mycroft * both source and binary form provided that the above copyright, these
8 1.1 mycroft * terms and the following disclaimer are retained. The name of the author
9 1.1 mycroft * and/or the contributor may not be used to endorse or promote products
10 1.1 mycroft * derived from this software without specific prior written permission.
11 1.1 mycroft *
12 1.1 mycroft * THIS SOFTWARE IS PROVIDED BY THE AUTHOR AND THE CONTRIBUTOR ``AS IS'' AND
13 1.1 mycroft * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
14 1.1 mycroft * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
15 1.1 mycroft * ARE DISCLAIMED. IN NO EVENT SHALL THE AUTHOR OR THE CONTRIBUTOR BE LIABLE
16 1.1 mycroft * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
17 1.1 mycroft * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
18 1.1 mycroft * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION.
19 1.1 mycroft * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
20 1.1 mycroft * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
21 1.1 mycroft * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
22 1.1 mycroft * SUCH DAMAGE.
23 1.1 mycroft */
24 1.1 mycroft
25 1.1 mycroft /*
26 1.1 mycroft * Portions copyright (C) 1993, David Greenman. This software may be used,
27 1.1 mycroft * modified, copied, distributed, and sold, in both source and binary form
28 1.1 mycroft * provided that the above copyright and these terms are retained. Under no
29 1.1 mycroft * circumstances is the author responsible for the proper functioning of this
30 1.1 mycroft * software, nor does the author assume any responsibility for damages
31 1.1 mycroft * incurred with its use.
32 1.1 mycroft */
33 1.50 lukem
34 1.50 lukem #include <sys/cdefs.h>
35 1.73 cegger __KERNEL_RCSID(0, "$NetBSD: mb86960.c,v 1.73 2009/05/12 14:25:17 cegger Exp $");
36 1.1 mycroft
37 1.1 mycroft /*
38 1.1 mycroft * Device driver for Fujitsu MB86960A/MB86965A based Ethernet cards.
39 1.1 mycroft * Contributed by M.S. <seki (at) sysrap.cs.fujitsu.co.jp>
40 1.1 mycroft *
41 1.1 mycroft * This version is intended to be a generic template for various
42 1.1 mycroft * MB86960A/MB86965A based Ethernet cards. It currently supports
43 1.1 mycroft * Fujitsu FMV-180 series (i.e., FMV-181 and FMV-182) and Allied-
44 1.1 mycroft * Telesis AT1700 series and RE2000 series. There are some
45 1.1 mycroft * unnecessary hooks embedded, which are primarily intended to support
46 1.1 mycroft * other types of Ethernet cards, but the author is not sure whether
47 1.1 mycroft * they are useful.
48 1.1 mycroft */
49 1.1 mycroft
50 1.25 jonathan #include "opt_inet.h"
51 1.1 mycroft #include "bpfilter.h"
52 1.18 explorer #include "rnd.h"
53 1.1 mycroft
54 1.1 mycroft #include <sys/param.h>
55 1.1 mycroft #include <sys/systm.h>
56 1.1 mycroft #include <sys/errno.h>
57 1.1 mycroft #include <sys/ioctl.h>
58 1.1 mycroft #include <sys/mbuf.h>
59 1.1 mycroft #include <sys/socket.h>
60 1.1 mycroft #include <sys/syslog.h>
61 1.1 mycroft #include <sys/device.h>
62 1.18 explorer #if NRND > 0
63 1.18 explorer #include <sys/rnd.h>
64 1.18 explorer #endif
65 1.1 mycroft
66 1.1 mycroft #include <net/if.h>
67 1.1 mycroft #include <net/if_dl.h>
68 1.1 mycroft #include <net/if_types.h>
69 1.21 enami #include <net/if_media.h>
70 1.17 is #include <net/if_ether.h>
71 1.1 mycroft
72 1.1 mycroft #ifdef INET
73 1.1 mycroft #include <netinet/in.h>
74 1.1 mycroft #include <netinet/in_systm.h>
75 1.1 mycroft #include <netinet/in_var.h>
76 1.1 mycroft #include <netinet/ip.h>
77 1.17 is #include <netinet/if_inarp.h>
78 1.1 mycroft #endif
79 1.1 mycroft
80 1.1 mycroft
81 1.1 mycroft #if NBPFILTER > 0
82 1.1 mycroft #include <net/bpf.h>
83 1.1 mycroft #include <net/bpfdesc.h>
84 1.1 mycroft #endif
85 1.1 mycroft
86 1.68 ad #include <sys/bus.h>
87 1.1 mycroft
88 1.3 cgd #include <dev/ic/mb86960reg.h>
89 1.21 enami #include <dev/ic/mb86960var.h>
90 1.1 mycroft
91 1.35 itojun #ifndef __BUS_SPACE_HAS_STREAM_METHODS
92 1.54 tsutsui #define bus_space_write_stream_2 bus_space_write_2
93 1.35 itojun #define bus_space_write_multi_stream_2 bus_space_write_multi_2
94 1.35 itojun #define bus_space_read_multi_stream_2 bus_space_read_multi_2
95 1.35 itojun #endif /* __BUS_SPACE_HAS_STREAM_METHODS */
96 1.35 itojun
97 1.1 mycroft /* Standard driver entry points. These can be static. */
98 1.59 tsutsui void mb86960_init(struct mb86960_softc *);
99 1.66 christos int mb86960_ioctl(struct ifnet *, u_long, void *);
100 1.59 tsutsui void mb86960_start(struct ifnet *);
101 1.59 tsutsui void mb86960_reset(struct mb86960_softc *);
102 1.59 tsutsui void mb86960_watchdog(struct ifnet *);
103 1.1 mycroft
104 1.1 mycroft /* Local functions. Order of declaration is confused. FIXME. */
105 1.59 tsutsui int mb86960_get_packet(struct mb86960_softc *, u_int);
106 1.59 tsutsui void mb86960_stop(struct mb86960_softc *);
107 1.59 tsutsui void mb86960_tint(struct mb86960_softc *, uint8_t);
108 1.59 tsutsui void mb86960_rint(struct mb86960_softc *, uint8_t);
109 1.62 perry static inline
110 1.59 tsutsui void mb86960_xmit(struct mb86960_softc *);
111 1.59 tsutsui void mb86960_write_mbufs(struct mb86960_softc *, struct mbuf *);
112 1.62 perry static inline
113 1.59 tsutsui void mb86960_droppacket(struct mb86960_softc *);
114 1.59 tsutsui void mb86960_getmcaf(struct ethercom *, uint8_t *);
115 1.59 tsutsui void mb86960_setmode(struct mb86960_softc *);
116 1.59 tsutsui void mb86960_loadmar(struct mb86960_softc *);
117 1.1 mycroft
118 1.59 tsutsui int mb86960_mediachange(struct ifnet *);
119 1.59 tsutsui void mb86960_mediastatus(struct ifnet *, struct ifmediareq *);
120 1.1 mycroft
121 1.21 enami #if FE_DEBUG >= 1
122 1.59 tsutsui void mb86960_dump(int, struct mb86960_softc *);
123 1.1 mycroft #endif
124 1.1 mycroft
125 1.1 mycroft void
126 1.59 tsutsui mb86960_attach(struct mb86960_softc *sc, uint8_t *myea)
127 1.1 mycroft {
128 1.21 enami bus_space_tag_t bst = sc->sc_bst;
129 1.21 enami bus_space_handle_t bsh = sc->sc_bsh;
130 1.1 mycroft
131 1.21 enami /* Register values which depend on board design. */
132 1.21 enami sc->proto_dlcr4 = FE_D4_LBC_DISABLE | FE_D4_CNTRL;
133 1.21 enami sc->proto_dlcr5 = 0;
134 1.54 tsutsui sc->proto_dlcr7 = FE_D7_BYTSWP_LH;
135 1.54 tsutsui if ((sc->sc_flags & FE_FLAGS_MB86960) != 0)
136 1.54 tsutsui sc->proto_dlcr7 |= FE_D7_ED_TEST; /* XXX */
137 1.21 enami sc->proto_bmpr13 = FE_B13_TPTYPE_UTP | FE_B13_PORT_AUTO;
138 1.1 mycroft
139 1.1 mycroft /*
140 1.54 tsutsui * Program the 86960 as following defaults:
141 1.1 mycroft * SRAM: 32KB, 100ns, byte-wide access.
142 1.1 mycroft * Transmission buffer: 4KB x 2.
143 1.1 mycroft * System bus interface: 16 bits.
144 1.54 tsutsui * These values except TXBSIZE should be modified as per
145 1.54 tsutsui * sc_flags which is set in MD attachments, because they
146 1.54 tsutsui * are hard-wired on the board. Modifying TXBSIZE will affect
147 1.1 mycroft * the driver performance.
148 1.1 mycroft */
149 1.21 enami sc->proto_dlcr6 = FE_D6_BUFSIZ_32KB | FE_D6_TXBSIZ_2x4KB |
150 1.56 tsutsui FE_D6_BBW_BYTE | FE_D6_SRAM_100ns;
151 1.54 tsutsui if (sc->sc_flags & FE_FLAGS_SBW_BYTE)
152 1.55 tsutsui sc->proto_dlcr6 |= FE_D6_SBW_BYTE;
153 1.56 tsutsui if (sc->sc_flags & FE_FLAGS_SRAM_150ns)
154 1.56 tsutsui sc->proto_dlcr6 &= ~FE_D6_SRAM_100ns;
155 1.1 mycroft
156 1.1 mycroft /*
157 1.1 mycroft * Minimum initialization of the hardware.
158 1.1 mycroft * We write into registers; hope I/O ports have no
159 1.1 mycroft * overlap with other boards.
160 1.1 mycroft */
161 1.1 mycroft
162 1.1 mycroft /* Initialize 86960. */
163 1.21 enami bus_space_write_1(bst, bsh, FE_DLCR6,
164 1.21 enami sc->proto_dlcr6 | FE_D6_DLC_DISABLE);
165 1.1 mycroft delay(200);
166 1.1 mycroft
167 1.21 enami #ifdef DIAGNOSTIC
168 1.21 enami if (myea == NULL) {
169 1.70 tsutsui aprint_error_dev(sc->sc_dev,
170 1.70 tsutsui "ethernet address shouldn't be NULL\n");
171 1.21 enami panic("NULL ethernet address");
172 1.1 mycroft }
173 1.1 mycroft #endif
174 1.48 thorpej memcpy(sc->sc_enaddr, myea, sizeof(sc->sc_enaddr));
175 1.1 mycroft
176 1.1 mycroft /* Disable all interrupts. */
177 1.21 enami bus_space_write_1(bst, bsh, FE_DLCR2, 0);
178 1.21 enami bus_space_write_1(bst, bsh, FE_DLCR3, 0);
179 1.1 mycroft }
180 1.1 mycroft
181 1.1 mycroft /*
182 1.1 mycroft * Install interface into kernel networking data structures
183 1.1 mycroft */
184 1.1 mycroft void
185 1.59 tsutsui mb86960_config(struct mb86960_softc *sc, int *media, int nmedia, int defmedia)
186 1.1 mycroft {
187 1.70 tsutsui cfdata_t cf = device_cfdata(sc->sc_dev);
188 1.21 enami struct ifnet *ifp = &sc->sc_ec.ec_if;
189 1.21 enami int i;
190 1.1 mycroft
191 1.1 mycroft /* Stop the 86960. */
192 1.21 enami mb86960_stop(sc);
193 1.1 mycroft
194 1.1 mycroft /* Initialize ifnet structure. */
195 1.70 tsutsui strlcpy(ifp->if_xname, device_xname(sc->sc_dev), IFNAMSIZ);
196 1.12 thorpej ifp->if_softc = sc;
197 1.21 enami ifp->if_start = mb86960_start;
198 1.21 enami ifp->if_ioctl = mb86960_ioctl;
199 1.21 enami ifp->if_watchdog = mb86960_watchdog;
200 1.6 mycroft ifp->if_flags =
201 1.6 mycroft IFF_BROADCAST | IFF_SIMPLEX | IFF_NOTRAILERS | IFF_MULTICAST;
202 1.44 thorpej IFQ_SET_READY(&ifp->if_snd);
203 1.1 mycroft
204 1.1 mycroft #if FE_DEBUG >= 3
205 1.70 tsutsui log(LOG_INFO, "%s: mb86960_config()\n", device_xname(sc->sc_dev));
206 1.21 enami mb86960_dump(LOG_INFO, sc);
207 1.1 mycroft #endif
208 1.1 mycroft
209 1.1 mycroft #if FE_SINGLE_TRANSMISSION
210 1.1 mycroft /* Override txb config to allocate minimum. */
211 1.54 tsutsui sc->proto_dlcr6 &= ~FE_D6_TXBSIZ;
212 1.1 mycroft sc->proto_dlcr6 |= FE_D6_TXBSIZ_2x2KB;
213 1.1 mycroft #endif
214 1.1 mycroft
215 1.1 mycroft /* Modify hardware config if it is requested. */
216 1.1 mycroft if ((cf->cf_flags & FE_FLAGS_OVERRIDE_DLCR6) != 0)
217 1.1 mycroft sc->proto_dlcr6 = cf->cf_flags & FE_FLAGS_DLCR6_VALUE;
218 1.1 mycroft
219 1.1 mycroft /* Find TX buffer size, based on the hardware dependent proto. */
220 1.1 mycroft switch (sc->proto_dlcr6 & FE_D6_TXBSIZ) {
221 1.1 mycroft case FE_D6_TXBSIZ_2x2KB:
222 1.1 mycroft sc->txb_size = 2048;
223 1.1 mycroft break;
224 1.1 mycroft case FE_D6_TXBSIZ_2x4KB:
225 1.1 mycroft sc->txb_size = 4096;
226 1.1 mycroft break;
227 1.1 mycroft case FE_D6_TXBSIZ_2x8KB:
228 1.1 mycroft sc->txb_size = 8192;
229 1.1 mycroft break;
230 1.1 mycroft default:
231 1.1 mycroft /* Oops, we can't work with single buffer configuration. */
232 1.1 mycroft #if FE_DEBUG >= 2
233 1.1 mycroft log(LOG_WARNING, "%s: strange TXBSIZ config; fixing\n",
234 1.70 tsutsui device_xname(sc->sc_dev));
235 1.1 mycroft #endif
236 1.1 mycroft sc->proto_dlcr6 &= ~FE_D6_TXBSIZ;
237 1.1 mycroft sc->proto_dlcr6 |= FE_D6_TXBSIZ_2x2KB;
238 1.1 mycroft sc->txb_size = 2048;
239 1.1 mycroft break;
240 1.1 mycroft }
241 1.1 mycroft
242 1.21 enami /* Initialize media goo. */
243 1.21 enami ifmedia_init(&sc->sc_media, 0, mb86960_mediachange,
244 1.21 enami mb86960_mediastatus);
245 1.21 enami if (media != NULL) {
246 1.21 enami for (i = 0; i < nmedia; i++)
247 1.21 enami ifmedia_add(&sc->sc_media, media[i], 0, NULL);
248 1.21 enami ifmedia_set(&sc->sc_media, defmedia);
249 1.21 enami } else {
250 1.21 enami ifmedia_add(&sc->sc_media, IFM_ETHER|IFM_MANUAL, 0, NULL);
251 1.21 enami ifmedia_set(&sc->sc_media, IFM_ETHER|IFM_MANUAL);
252 1.21 enami }
253 1.21 enami
254 1.1 mycroft /* Attach the interface. */
255 1.1 mycroft if_attach(ifp);
256 1.17 is ether_ifattach(ifp, sc->sc_enaddr);
257 1.1 mycroft
258 1.21 enami #if NRND > 0
259 1.70 tsutsui rnd_attach_source(&sc->rnd_source, device_xname(sc->sc_dev),
260 1.37 enami RND_TYPE_NET, 0);
261 1.21 enami #endif
262 1.1 mycroft /* Print additional info when attached. */
263 1.70 tsutsui aprint_normal_dev(sc->sc_dev, "Ethernet address %s\n",
264 1.21 enami ether_sprintf(sc->sc_enaddr));
265 1.21 enami
266 1.1 mycroft #if FE_DEBUG >= 3
267 1.1 mycroft {
268 1.1 mycroft int buf, txb, bbw, sbw, ram;
269 1.1 mycroft
270 1.1 mycroft buf = txb = bbw = sbw = ram = -1;
271 1.1 mycroft switch (sc->proto_dlcr6 & FE_D6_BUFSIZ) {
272 1.1 mycroft case FE_D6_BUFSIZ_8KB:
273 1.1 mycroft buf = 8;
274 1.1 mycroft break;
275 1.1 mycroft case FE_D6_BUFSIZ_16KB:
276 1.1 mycroft buf = 16;
277 1.1 mycroft break;
278 1.1 mycroft case FE_D6_BUFSIZ_32KB:
279 1.1 mycroft buf = 32;
280 1.1 mycroft break;
281 1.1 mycroft case FE_D6_BUFSIZ_64KB:
282 1.1 mycroft buf = 64;
283 1.1 mycroft break;
284 1.1 mycroft }
285 1.1 mycroft switch (sc->proto_dlcr6 & FE_D6_TXBSIZ) {
286 1.1 mycroft case FE_D6_TXBSIZ_2x2KB:
287 1.1 mycroft txb = 2;
288 1.1 mycroft break;
289 1.1 mycroft case FE_D6_TXBSIZ_2x4KB:
290 1.1 mycroft txb = 4;
291 1.1 mycroft break;
292 1.1 mycroft case FE_D6_TXBSIZ_2x8KB:
293 1.1 mycroft txb = 8;
294 1.1 mycroft break;
295 1.1 mycroft }
296 1.1 mycroft switch (sc->proto_dlcr6 & FE_D6_BBW) {
297 1.1 mycroft case FE_D6_BBW_BYTE:
298 1.1 mycroft bbw = 8;
299 1.1 mycroft break;
300 1.1 mycroft case FE_D6_BBW_WORD:
301 1.1 mycroft bbw = 16;
302 1.1 mycroft break;
303 1.1 mycroft }
304 1.1 mycroft switch (sc->proto_dlcr6 & FE_D6_SBW) {
305 1.1 mycroft case FE_D6_SBW_BYTE:
306 1.1 mycroft sbw = 8;
307 1.1 mycroft break;
308 1.1 mycroft case FE_D6_SBW_WORD:
309 1.1 mycroft sbw = 16;
310 1.1 mycroft break;
311 1.1 mycroft }
312 1.1 mycroft switch (sc->proto_dlcr6 & FE_D6_SRAM) {
313 1.1 mycroft case FE_D6_SRAM_100ns:
314 1.1 mycroft ram = 100;
315 1.1 mycroft break;
316 1.1 mycroft case FE_D6_SRAM_150ns:
317 1.1 mycroft ram = 150;
318 1.1 mycroft break;
319 1.1 mycroft }
320 1.70 tsutsui aprint_debug_dev(sc->sc_dev,
321 1.70 tsutsui "SRAM %dKB %dbit %dns, TXB %dKBx2, %dbit I/O\n",
322 1.70 tsutsui buf, bbw, ram, txb, sbw);
323 1.1 mycroft }
324 1.1 mycroft #endif
325 1.40 jhawk
326 1.40 jhawk /* The attach is successful. */
327 1.54 tsutsui sc->sc_stat |= FE_STAT_ATTACHED;
328 1.21 enami }
329 1.21 enami
330 1.21 enami /*
331 1.21 enami * Media change callback.
332 1.21 enami */
333 1.21 enami int
334 1.59 tsutsui mb86960_mediachange(struct ifnet *ifp)
335 1.21 enami {
336 1.21 enami struct mb86960_softc *sc = ifp->if_softc;
337 1.1 mycroft
338 1.21 enami if (sc->sc_mediachange)
339 1.70 tsutsui return (*sc->sc_mediachange)(sc);
340 1.70 tsutsui return 0;
341 1.21 enami }
342 1.1 mycroft
343 1.21 enami /*
344 1.21 enami * Media status callback.
345 1.21 enami */
346 1.21 enami void
347 1.59 tsutsui mb86960_mediastatus(struct ifnet *ifp, struct ifmediareq *ifmr)
348 1.21 enami {
349 1.21 enami struct mb86960_softc *sc = ifp->if_softc;
350 1.18 explorer
351 1.54 tsutsui if ((sc->sc_stat & FE_STAT_ENABLED) == 0) {
352 1.21 enami ifmr->ifm_active = IFM_ETHER | IFM_NONE;
353 1.21 enami ifmr->ifm_status = 0;
354 1.21 enami return;
355 1.21 enami }
356 1.21 enami
357 1.21 enami if (sc->sc_mediastatus)
358 1.21 enami (*sc->sc_mediastatus)(sc, ifmr);
359 1.1 mycroft }
360 1.1 mycroft
361 1.1 mycroft /*
362 1.1 mycroft * Reset interface.
363 1.1 mycroft */
364 1.1 mycroft void
365 1.59 tsutsui mb86960_reset(struct mb86960_softc *sc)
366 1.1 mycroft {
367 1.1 mycroft int s;
368 1.1 mycroft
369 1.8 mycroft s = splnet();
370 1.21 enami mb86960_stop(sc);
371 1.21 enami mb86960_init(sc);
372 1.1 mycroft splx(s);
373 1.1 mycroft }
374 1.1 mycroft
375 1.1 mycroft /*
376 1.1 mycroft * Stop everything on the interface.
377 1.1 mycroft *
378 1.1 mycroft * All buffered packets, both transmitting and receiving,
379 1.1 mycroft * if any, will be lost by stopping the interface.
380 1.1 mycroft */
381 1.1 mycroft void
382 1.59 tsutsui mb86960_stop(struct mb86960_softc *sc)
383 1.1 mycroft {
384 1.21 enami bus_space_tag_t bst = sc->sc_bst;
385 1.21 enami bus_space_handle_t bsh = sc->sc_bsh;
386 1.1 mycroft
387 1.1 mycroft #if FE_DEBUG >= 3
388 1.70 tsutsui log(LOG_INFO, "%s: top of mb86960_stop()\n", device_xname(sc->sc_dev));
389 1.21 enami mb86960_dump(LOG_INFO, sc);
390 1.1 mycroft #endif
391 1.1 mycroft
392 1.1 mycroft /* Disable interrupts. */
393 1.21 enami bus_space_write_1(bst, bsh, FE_DLCR2, 0x00);
394 1.21 enami bus_space_write_1(bst, bsh, FE_DLCR3, 0x00);
395 1.1 mycroft
396 1.1 mycroft /* Stop interface hardware. */
397 1.1 mycroft delay(200);
398 1.21 enami bus_space_write_1(bst, bsh, FE_DLCR6,
399 1.21 enami sc->proto_dlcr6 | FE_D6_DLC_DISABLE);
400 1.1 mycroft delay(200);
401 1.1 mycroft
402 1.1 mycroft /* Clear all interrupt status. */
403 1.21 enami bus_space_write_1(bst, bsh, FE_DLCR0, 0xFF);
404 1.21 enami bus_space_write_1(bst, bsh, FE_DLCR1, 0xFF);
405 1.1 mycroft
406 1.1 mycroft /* Put the chip in stand-by mode. */
407 1.1 mycroft delay(200);
408 1.21 enami bus_space_write_1(bst, bsh, FE_DLCR7,
409 1.21 enami sc->proto_dlcr7 | FE_D7_POWER_DOWN);
410 1.1 mycroft delay(200);
411 1.1 mycroft
412 1.1 mycroft /* MAR loading can be delayed. */
413 1.1 mycroft sc->filter_change = 0;
414 1.1 mycroft
415 1.1 mycroft /* Call a hook. */
416 1.21 enami if (sc->stop_card)
417 1.21 enami (*sc->stop_card)(sc);
418 1.1 mycroft
419 1.45 lukem #if FE_DEBUG >= 3
420 1.69 cegger log(LOG_INFO, "%s: end of mb86960_stop()\n", sc->sc_dev));
421 1.21 enami mb86960_dump(LOG_INFO, sc);
422 1.1 mycroft #endif
423 1.1 mycroft }
424 1.1 mycroft
425 1.1 mycroft /*
426 1.1 mycroft * Device timeout/watchdog routine. Entered if the device neglects to
427 1.1 mycroft * generate an interrupt after a transmit has been started on it.
428 1.1 mycroft */
429 1.1 mycroft void
430 1.59 tsutsui mb86960_watchdog(struct ifnet *ifp)
431 1.1 mycroft {
432 1.21 enami struct mb86960_softc *sc = ifp->if_softc;
433 1.1 mycroft
434 1.70 tsutsui log(LOG_ERR, "%s: device timeout\n", device_xname(sc->sc_dev));
435 1.1 mycroft #if FE_DEBUG >= 3
436 1.21 enami mb86960_dump(LOG_INFO, sc);
437 1.1 mycroft #endif
438 1.1 mycroft
439 1.1 mycroft /* Record how many packets are lost by this accident. */
440 1.21 enami sc->sc_ec.ec_if.if_oerrors += sc->txb_sched + sc->txb_count;
441 1.1 mycroft
442 1.21 enami mb86960_reset(sc);
443 1.1 mycroft }
444 1.1 mycroft
445 1.1 mycroft /*
446 1.6 mycroft * Drop (skip) a packet from receive buffer in 86960 memory.
447 1.6 mycroft */
448 1.62 perry static inline void
449 1.59 tsutsui mb86960_droppacket(struct mb86960_softc *sc)
450 1.6 mycroft {
451 1.21 enami bus_space_tag_t bst = sc->sc_bst;
452 1.21 enami bus_space_handle_t bsh = sc->sc_bsh;
453 1.6 mycroft
454 1.21 enami bus_space_write_1(bst, bsh, FE_BMPR14, FE_B14_FILTER | FE_B14_SKIP);
455 1.6 mycroft }
456 1.6 mycroft
457 1.6 mycroft /*
458 1.1 mycroft * Initialize device.
459 1.1 mycroft */
460 1.1 mycroft void
461 1.59 tsutsui mb86960_init(struct mb86960_softc *sc)
462 1.1 mycroft {
463 1.21 enami bus_space_tag_t bst = sc->sc_bst;
464 1.21 enami bus_space_handle_t bsh = sc->sc_bsh;
465 1.21 enami struct ifnet *ifp = &sc->sc_ec.ec_if;
466 1.5 mycroft int i;
467 1.1 mycroft
468 1.1 mycroft #if FE_DEBUG >= 3
469 1.70 tsutsui log(LOG_INFO, "%s: top of mb86960_init()\n", device_xname(sc->sc_dev));
470 1.21 enami mb86960_dump(LOG_INFO, sc);
471 1.1 mycroft #endif
472 1.1 mycroft
473 1.1 mycroft /* Reset transmitter flags. */
474 1.1 mycroft ifp->if_flags &= ~IFF_OACTIVE;
475 1.1 mycroft ifp->if_timer = 0;
476 1.1 mycroft
477 1.1 mycroft sc->txb_free = sc->txb_size;
478 1.1 mycroft sc->txb_count = 0;
479 1.1 mycroft sc->txb_sched = 0;
480 1.1 mycroft
481 1.21 enami /* Do any card-specific initialization, if applicable. */
482 1.21 enami if (sc->init_card)
483 1.21 enami (*sc->init_card)(sc);
484 1.1 mycroft
485 1.1 mycroft #if FE_DEBUG >= 3
486 1.70 tsutsui log(LOG_INFO, "%s: after init hook\n", device_xname(sc->sc_dev));
487 1.21 enami mb86960_dump(LOG_INFO, sc);
488 1.1 mycroft #endif
489 1.1 mycroft
490 1.1 mycroft /*
491 1.1 mycroft * Make sure to disable the chip, also.
492 1.1 mycroft * This may also help re-programming the chip after
493 1.1 mycroft * hot insertion of PCMCIAs.
494 1.1 mycroft */
495 1.21 enami bus_space_write_1(bst, bsh, FE_DLCR6,
496 1.21 enami sc->proto_dlcr6 | FE_D6_DLC_DISABLE);
497 1.21 enami delay(200);
498 1.1 mycroft
499 1.1 mycroft /* Power up the chip and select register bank for DLCRs. */
500 1.21 enami bus_space_write_1(bst, bsh, FE_DLCR7,
501 1.1 mycroft sc->proto_dlcr7 | FE_D7_RBS_DLCR | FE_D7_POWER_UP);
502 1.1 mycroft delay(200);
503 1.1 mycroft
504 1.1 mycroft /* Feed the station address. */
505 1.21 enami bus_space_write_region_1(bst, bsh, FE_DLCR8,
506 1.21 enami sc->sc_enaddr, ETHER_ADDR_LEN);
507 1.1 mycroft
508 1.1 mycroft /* Select the BMPR bank for runtime register access. */
509 1.21 enami bus_space_write_1(bst, bsh, FE_DLCR7,
510 1.1 mycroft sc->proto_dlcr7 | FE_D7_RBS_BMPR | FE_D7_POWER_UP);
511 1.1 mycroft
512 1.1 mycroft /* Initialize registers. */
513 1.21 enami bus_space_write_1(bst, bsh, FE_DLCR0, 0xFF); /* Clear all bits. */
514 1.21 enami bus_space_write_1(bst, bsh, FE_DLCR1, 0xFF); /* ditto. */
515 1.21 enami bus_space_write_1(bst, bsh, FE_DLCR2, 0x00);
516 1.21 enami bus_space_write_1(bst, bsh, FE_DLCR3, 0x00);
517 1.21 enami bus_space_write_1(bst, bsh, FE_DLCR4, sc->proto_dlcr4);
518 1.21 enami bus_space_write_1(bst, bsh, FE_DLCR5, sc->proto_dlcr5);
519 1.21 enami bus_space_write_1(bst, bsh, FE_BMPR10, 0x00);
520 1.21 enami bus_space_write_1(bst, bsh, FE_BMPR11, FE_B11_CTRL_SKIP);
521 1.21 enami bus_space_write_1(bst, bsh, FE_BMPR12, 0x00);
522 1.21 enami bus_space_write_1(bst, bsh, FE_BMPR13, sc->proto_bmpr13);
523 1.21 enami bus_space_write_1(bst, bsh, FE_BMPR14, FE_B14_FILTER);
524 1.21 enami bus_space_write_1(bst, bsh, FE_BMPR15, 0x00);
525 1.1 mycroft
526 1.1 mycroft #if FE_DEBUG >= 3
527 1.70 tsutsui log(LOG_INFO, "%s: just before enabling DLC\n",
528 1.70 tsutsui device_xname(sc->sc_dev));
529 1.21 enami mb86960_dump(LOG_INFO, sc);
530 1.1 mycroft #endif
531 1.1 mycroft
532 1.1 mycroft /* Enable interrupts. */
533 1.21 enami bus_space_write_1(bst, bsh, FE_DLCR2, FE_TMASK);
534 1.21 enami bus_space_write_1(bst, bsh, FE_DLCR3, FE_RMASK);
535 1.1 mycroft
536 1.1 mycroft /* Enable transmitter and receiver. */
537 1.1 mycroft delay(200);
538 1.21 enami bus_space_write_1(bst, bsh, FE_DLCR6,
539 1.21 enami sc->proto_dlcr6 | FE_D6_DLC_ENABLE);
540 1.1 mycroft delay(200);
541 1.1 mycroft
542 1.1 mycroft #if FE_DEBUG >= 3
543 1.70 tsutsui log(LOG_INFO, "%s: just after enabling DLC\n",
544 1.70 tsutsui device_xname(sc->sc_dev));
545 1.21 enami mb86960_dump(LOG_INFO, sc);
546 1.1 mycroft #endif
547 1.1 mycroft
548 1.1 mycroft /*
549 1.1 mycroft * Make sure to empty the receive buffer.
550 1.1 mycroft *
551 1.1 mycroft * This may be redundant, but *if* the receive buffer were full
552 1.1 mycroft * at this point, the driver would hang. I have experienced
553 1.1 mycroft * some strange hangups just after UP. I hope the following
554 1.1 mycroft * code solve the problem.
555 1.1 mycroft *
556 1.1 mycroft * I have changed the order of hardware initialization.
557 1.1 mycroft * I think the receive buffer cannot have any packets at this
558 1.1 mycroft * point in this version. The following code *must* be
559 1.1 mycroft * redundant now. FIXME.
560 1.1 mycroft */
561 1.1 mycroft for (i = 0; i < FE_MAX_RECV_COUNT; i++) {
562 1.21 enami if (bus_space_read_1(bst, bsh, FE_DLCR5) & FE_D5_BUFEMP)
563 1.1 mycroft break;
564 1.21 enami mb86960_droppacket(sc);
565 1.1 mycroft }
566 1.1 mycroft #if FE_DEBUG >= 1
567 1.21 enami if (i >= FE_MAX_RECV_COUNT)
568 1.1 mycroft log(LOG_ERR, "%s: cannot empty receive buffer\n",
569 1.70 tsutsui device_xname(sc->sc_dev));
570 1.1 mycroft #endif
571 1.1 mycroft #if FE_DEBUG >= 3
572 1.21 enami if (i < FE_MAX_RECV_COUNT)
573 1.1 mycroft log(LOG_INFO, "%s: receive buffer emptied (%d)\n",
574 1.70 tsutsui device_xname(sc->sc_dev), i);
575 1.1 mycroft #endif
576 1.1 mycroft
577 1.1 mycroft #if FE_DEBUG >= 3
578 1.70 tsutsui log(LOG_INFO, "%s: after ERB loop\n", device_xname(sc->sc_dev));
579 1.21 enami mb86960_dump(LOG_INFO, sc);
580 1.1 mycroft #endif
581 1.1 mycroft
582 1.1 mycroft /* Do we need this here? */
583 1.21 enami bus_space_write_1(bst, bsh, FE_DLCR0, 0xFF); /* Clear all bits. */
584 1.21 enami bus_space_write_1(bst, bsh, FE_DLCR1, 0xFF); /* ditto. */
585 1.1 mycroft
586 1.1 mycroft #if FE_DEBUG >= 3
587 1.70 tsutsui log(LOG_INFO, "%s: after FIXME\n", device_xname(sc->sc_dev));
588 1.21 enami mb86960_dump(LOG_INFO, sc);
589 1.1 mycroft #endif
590 1.1 mycroft
591 1.1 mycroft /* Set 'running' flag. */
592 1.1 mycroft ifp->if_flags |= IFF_RUNNING;
593 1.1 mycroft
594 1.1 mycroft /*
595 1.1 mycroft * At this point, the interface is runnung properly,
596 1.1 mycroft * except that it receives *no* packets. we then call
597 1.21 enami * mb86960_setmode() to tell the chip what packets to be
598 1.1 mycroft * received, based on the if_flags and multicast group
599 1.1 mycroft * list. It completes the initialization process.
600 1.1 mycroft */
601 1.21 enami mb86960_setmode(sc);
602 1.1 mycroft
603 1.1 mycroft #if FE_DEBUG >= 3
604 1.70 tsutsui log(LOG_INFO, "%s: after setmode\n", device_xname(sc->sc_dev));
605 1.21 enami mb86960_dump(LOG_INFO, sc);
606 1.1 mycroft #endif
607 1.1 mycroft
608 1.1 mycroft /* ...and attempt to start output. */
609 1.21 enami mb86960_start(ifp);
610 1.1 mycroft
611 1.1 mycroft #if FE_DEBUG >= 3
612 1.70 tsutsui log(LOG_INFO, "%s: end of mb86960_init()\n", device_xname(sc->sc_dev));
613 1.21 enami mb86960_dump(LOG_INFO, sc);
614 1.1 mycroft #endif
615 1.1 mycroft }
616 1.1 mycroft
617 1.1 mycroft /*
618 1.1 mycroft * This routine actually starts the transmission on the interface
619 1.1 mycroft */
620 1.62 perry static inline void
621 1.59 tsutsui mb86960_xmit(struct mb86960_softc *sc)
622 1.1 mycroft {
623 1.21 enami bus_space_tag_t bst = sc->sc_bst;
624 1.21 enami bus_space_handle_t bsh = sc->sc_bsh;
625 1.1 mycroft
626 1.1 mycroft /*
627 1.1 mycroft * Set a timer just in case we never hear from the board again.
628 1.1 mycroft * We use longer timeout for multiple packet transmission.
629 1.1 mycroft * I'm not sure this timer value is appropriate. FIXME.
630 1.1 mycroft */
631 1.21 enami sc->sc_ec.ec_if.if_timer = 1 + sc->txb_count;
632 1.1 mycroft
633 1.1 mycroft /* Update txb variables. */
634 1.1 mycroft sc->txb_sched = sc->txb_count;
635 1.1 mycroft sc->txb_count = 0;
636 1.1 mycroft sc->txb_free = sc->txb_size;
637 1.1 mycroft
638 1.1 mycroft #if FE_DELAYED_PADDING
639 1.1 mycroft /* Omit the postponed padding process. */
640 1.1 mycroft sc->txb_padding = 0;
641 1.1 mycroft #endif
642 1.1 mycroft
643 1.1 mycroft /* Start transmitter, passing packets in TX buffer. */
644 1.21 enami bus_space_write_1(bst, bsh, FE_BMPR10, sc->txb_sched | FE_B10_START);
645 1.1 mycroft }
646 1.1 mycroft
647 1.1 mycroft /*
648 1.1 mycroft * Start output on interface.
649 1.1 mycroft * We make two assumptions here:
650 1.8 mycroft * 1) that the current priority is set to splnet _before_ this code
651 1.1 mycroft * is called *and* is returned to the appropriate priority after
652 1.1 mycroft * return
653 1.1 mycroft * 2) that the IFF_OACTIVE flag is checked before this code is called
654 1.1 mycroft * (i.e. that the output part of the interface is idle)
655 1.1 mycroft */
656 1.1 mycroft void
657 1.59 tsutsui mb86960_start(struct ifnet *ifp)
658 1.1 mycroft {
659 1.21 enami struct mb86960_softc *sc = ifp->if_softc;
660 1.1 mycroft struct mbuf *m;
661 1.1 mycroft
662 1.1 mycroft #if FE_DEBUG >= 1
663 1.1 mycroft /* Just a sanity check. */
664 1.1 mycroft if ((sc->txb_count == 0) != (sc->txb_free == sc->txb_size)) {
665 1.1 mycroft /*
666 1.1 mycroft * Txb_count and txb_free co-works to manage the
667 1.1 mycroft * transmission buffer. Txb_count keeps track of the
668 1.1 mycroft * used potion of the buffer, while txb_free does unused
669 1.1 mycroft * potion. So, as long as the driver runs properly,
670 1.1 mycroft * txb_count is zero if and only if txb_free is same
671 1.1 mycroft * as txb_size (which represents whole buffer.)
672 1.1 mycroft */
673 1.1 mycroft log(LOG_ERR, "%s: inconsistent txb variables (%d, %d)\n",
674 1.70 tsutsui device_xname(sc->sc_dev), sc->txb_count, sc->txb_free);
675 1.1 mycroft /*
676 1.1 mycroft * So, what should I do, then?
677 1.1 mycroft *
678 1.1 mycroft * We now know txb_count and txb_free contradicts. We
679 1.1 mycroft * cannot, however, tell which is wrong. More
680 1.1 mycroft * over, we cannot peek 86960 transmission buffer or
681 1.1 mycroft * reset the transmission buffer. (In fact, we can
682 1.1 mycroft * reset the entire interface. I don't want to do it.)
683 1.1 mycroft *
684 1.1 mycroft * If txb_count is incorrect, leaving it as is will cause
685 1.1 mycroft * sending of gabages after next interrupt. We have to
686 1.1 mycroft * avoid it. Hence, we reset the txb_count here. If
687 1.1 mycroft * txb_free was incorrect, resetting txb_count just loose
688 1.1 mycroft * some packets. We can live with it.
689 1.1 mycroft */
690 1.1 mycroft sc->txb_count = 0;
691 1.1 mycroft }
692 1.1 mycroft #endif
693 1.1 mycroft
694 1.1 mycroft #if FE_DEBUG >= 1
695 1.1 mycroft /*
696 1.1 mycroft * First, see if there are buffered packets and an idle
697 1.1 mycroft * transmitter - should never happen at this point.
698 1.1 mycroft */
699 1.1 mycroft if ((sc->txb_count > 0) && (sc->txb_sched == 0)) {
700 1.1 mycroft log(LOG_ERR, "%s: transmitter idle with %d buffered packets\n",
701 1.70 tsutsui device_xname(sc->sc_dev), sc->txb_count);
702 1.21 enami mb86960_xmit(sc);
703 1.1 mycroft }
704 1.1 mycroft #endif
705 1.1 mycroft
706 1.1 mycroft /*
707 1.1 mycroft * Stop accepting more transmission packets temporarily, when
708 1.1 mycroft * a filter change request is delayed. Updating the MARs on
709 1.1 mycroft * 86960 flushes the transmisstion buffer, so it is delayed
710 1.1 mycroft * until all buffered transmission packets have been sent
711 1.1 mycroft * out.
712 1.1 mycroft */
713 1.1 mycroft if (sc->filter_change) {
714 1.1 mycroft /*
715 1.57 wiz * Filter change request is delayed only when the DLC is
716 1.1 mycroft * working. DLC soon raise an interrupt after finishing
717 1.1 mycroft * the work.
718 1.1 mycroft */
719 1.1 mycroft goto indicate_active;
720 1.1 mycroft }
721 1.1 mycroft
722 1.1 mycroft for (;;) {
723 1.1 mycroft /*
724 1.1 mycroft * See if there is room to put another packet in the buffer.
725 1.1 mycroft * We *could* do better job by peeking the send queue to
726 1.1 mycroft * know the length of the next packet. Current version just
727 1.1 mycroft * tests against the worst case (i.e., longest packet). FIXME.
728 1.60 perry *
729 1.1 mycroft * When adding the packet-peek feature, don't forget adding a
730 1.1 mycroft * test on txb_count against QUEUEING_MAX.
731 1.1 mycroft * There is a little chance the packet count exceeds
732 1.1 mycroft * the limit. Assume transmission buffer is 8KB (2x8KB
733 1.1 mycroft * configuration) and an application sends a bunch of small
734 1.1 mycroft * (i.e., minimum packet sized) packets rapidly. An 8KB
735 1.1 mycroft * buffer can hold 130 blocks of 62 bytes long...
736 1.1 mycroft */
737 1.32 thorpej if (sc->txb_free <
738 1.54 tsutsui (ETHER_MAX_LEN - ETHER_CRC_LEN) + FE_TXLEN_SIZE) {
739 1.1 mycroft /* No room. */
740 1.1 mycroft goto indicate_active;
741 1.1 mycroft }
742 1.1 mycroft
743 1.1 mycroft #if FE_SINGLE_TRANSMISSION
744 1.1 mycroft if (sc->txb_count > 0) {
745 1.1 mycroft /* Just one packet per a transmission buffer. */
746 1.1 mycroft goto indicate_active;
747 1.1 mycroft }
748 1.1 mycroft #endif
749 1.1 mycroft
750 1.1 mycroft /*
751 1.1 mycroft * Get the next mbuf chain for a packet to send.
752 1.1 mycroft */
753 1.44 thorpej IFQ_DEQUEUE(&ifp->if_snd, m);
754 1.1 mycroft if (m == 0) {
755 1.1 mycroft /* No more packets to send. */
756 1.1 mycroft goto indicate_inactive;
757 1.1 mycroft }
758 1.1 mycroft
759 1.6 mycroft #if NBPFILTER > 0
760 1.6 mycroft /* Tap off here if there is a BPF listener. */
761 1.6 mycroft if (ifp->if_bpf)
762 1.6 mycroft bpf_mtap(ifp->if_bpf, m);
763 1.6 mycroft #endif
764 1.6 mycroft
765 1.1 mycroft /*
766 1.1 mycroft * Copy the mbuf chain into the transmission buffer.
767 1.1 mycroft * txb_* variables are updated as necessary.
768 1.1 mycroft */
769 1.21 enami mb86960_write_mbufs(sc, m);
770 1.1 mycroft
771 1.6 mycroft m_freem(m);
772 1.6 mycroft
773 1.1 mycroft /* Start transmitter if it's idle. */
774 1.1 mycroft if (sc->txb_sched == 0)
775 1.21 enami mb86960_xmit(sc);
776 1.1 mycroft }
777 1.1 mycroft
778 1.1 mycroft indicate_inactive:
779 1.1 mycroft /*
780 1.1 mycroft * We are using the !OACTIVE flag to indicate to
781 1.1 mycroft * the outside world that we can accept an
782 1.1 mycroft * additional packet rather than that the
783 1.1 mycroft * transmitter is _actually_ active. Indeed, the
784 1.1 mycroft * transmitter may be active, but if we haven't
785 1.1 mycroft * filled all the buffers with data then we still
786 1.1 mycroft * want to accept more.
787 1.1 mycroft */
788 1.1 mycroft ifp->if_flags &= ~IFF_OACTIVE;
789 1.1 mycroft return;
790 1.1 mycroft
791 1.1 mycroft indicate_active:
792 1.1 mycroft /*
793 1.1 mycroft * The transmitter is active, and there are no room for
794 1.1 mycroft * more outgoing packets in the transmission buffer.
795 1.1 mycroft */
796 1.1 mycroft ifp->if_flags |= IFF_OACTIVE;
797 1.1 mycroft return;
798 1.1 mycroft }
799 1.1 mycroft
800 1.1 mycroft /*
801 1.1 mycroft * Transmission interrupt handler
802 1.1 mycroft * The control flow of this function looks silly. FIXME.
803 1.1 mycroft */
804 1.1 mycroft void
805 1.59 tsutsui mb86960_tint(struct mb86960_softc *sc, uint8_t tstat)
806 1.1 mycroft {
807 1.21 enami bus_space_tag_t bst = sc->sc_bst;
808 1.21 enami bus_space_handle_t bsh = sc->sc_bsh;
809 1.21 enami struct ifnet *ifp = &sc->sc_ec.ec_if;
810 1.1 mycroft int left;
811 1.1 mycroft int col;
812 1.1 mycroft
813 1.1 mycroft /*
814 1.1 mycroft * Handle "excessive collision" interrupt.
815 1.1 mycroft */
816 1.1 mycroft if (tstat & FE_D0_COLL16) {
817 1.1 mycroft /*
818 1.1 mycroft * Find how many packets (including this collided one)
819 1.1 mycroft * are left unsent in transmission buffer.
820 1.1 mycroft */
821 1.21 enami left = bus_space_read_1(bst, bsh, FE_BMPR10);
822 1.1 mycroft
823 1.1 mycroft #if FE_DEBUG >= 2
824 1.1 mycroft log(LOG_WARNING, "%s: excessive collision (%d/%d)\n",
825 1.70 tsutsui device_xname(sc->sc_dev), left, sc->txb_sched);
826 1.1 mycroft #endif
827 1.1 mycroft #if FE_DEBUG >= 3
828 1.21 enami mb86960_dump(LOG_INFO, sc);
829 1.1 mycroft #endif
830 1.1 mycroft
831 1.1 mycroft /*
832 1.1 mycroft * Update statistics.
833 1.1 mycroft */
834 1.1 mycroft ifp->if_collisions += 16;
835 1.1 mycroft ifp->if_oerrors++;
836 1.1 mycroft ifp->if_opackets += sc->txb_sched - left;
837 1.1 mycroft
838 1.1 mycroft /*
839 1.1 mycroft * Collision statistics has been updated.
840 1.1 mycroft * Clear the collision flag on 86960 now to avoid confusion.
841 1.1 mycroft */
842 1.21 enami bus_space_write_1(bst, bsh, FE_DLCR0, FE_D0_COLLID);
843 1.1 mycroft
844 1.1 mycroft /*
845 1.1 mycroft * Restart transmitter, skipping the
846 1.1 mycroft * collided packet.
847 1.1 mycroft *
848 1.1 mycroft * We *must* skip the packet to keep network running
849 1.1 mycroft * properly. Excessive collision error is an
850 1.1 mycroft * indication of the network overload. If we
851 1.1 mycroft * tried sending the same packet after excessive
852 1.1 mycroft * collision, the network would be filled with
853 1.1 mycroft * out-of-time packets. Packets belonging
854 1.1 mycroft * to reliable transport (such as TCP) are resent
855 1.1 mycroft * by some upper layer.
856 1.1 mycroft */
857 1.21 enami bus_space_write_1(bst, bsh, FE_BMPR11,
858 1.1 mycroft FE_B11_CTRL_SKIP | FE_B11_MODE1);
859 1.1 mycroft sc->txb_sched = left - 1;
860 1.1 mycroft }
861 1.1 mycroft
862 1.1 mycroft /*
863 1.1 mycroft * Handle "transmission complete" interrupt.
864 1.1 mycroft */
865 1.1 mycroft if (tstat & FE_D0_TXDONE) {
866 1.1 mycroft /*
867 1.1 mycroft * Add in total number of collisions on last
868 1.1 mycroft * transmission. We also clear "collision occurred" flag
869 1.1 mycroft * here.
870 1.1 mycroft *
871 1.1 mycroft * 86960 has a design flow on collision count on multiple
872 1.1 mycroft * packet transmission. When we send two or more packets
873 1.1 mycroft * with one start command (that's what we do when the
874 1.1 mycroft * transmission queue is clauded), 86960 informs us number
875 1.49 wiz * of collisions occurred on the last packet on the
876 1.1 mycroft * transmission only. Number of collisions on previous
877 1.1 mycroft * packets are lost. I have told that the fact is clearly
878 1.1 mycroft * stated in the Fujitsu document.
879 1.1 mycroft *
880 1.1 mycroft * I considered not to mind it seriously. Collision
881 1.1 mycroft * count is not so important, anyway. Any comments? FIXME.
882 1.1 mycroft */
883 1.1 mycroft
884 1.21 enami if (bus_space_read_1(bst, bsh, FE_DLCR0) & FE_D0_COLLID) {
885 1.1 mycroft /* Clear collision flag. */
886 1.21 enami bus_space_write_1(bst, bsh, FE_DLCR0, FE_D0_COLLID);
887 1.1 mycroft
888 1.1 mycroft /* Extract collision count from 86960. */
889 1.21 enami col = bus_space_read_1(bst, bsh, FE_DLCR4) & FE_D4_COL;
890 1.1 mycroft if (col == 0) {
891 1.1 mycroft /*
892 1.1 mycroft * Status register indicates collisions,
893 1.1 mycroft * while the collision count is zero.
894 1.1 mycroft * This can happen after multiple packet
895 1.1 mycroft * transmission, indicating that one or more
896 1.1 mycroft * previous packet(s) had been collided.
897 1.1 mycroft *
898 1.1 mycroft * Since the accurate number of collisions
899 1.1 mycroft * has been lost, we just guess it as 1;
900 1.1 mycroft * Am I too optimistic? FIXME.
901 1.1 mycroft */
902 1.1 mycroft col = 1;
903 1.1 mycroft } else
904 1.1 mycroft col >>= FE_D4_COL_SHIFT;
905 1.1 mycroft ifp->if_collisions += col;
906 1.1 mycroft #if FE_DEBUG >= 4
907 1.1 mycroft log(LOG_WARNING, "%s: %d collision%s (%d)\n",
908 1.70 tsutsui device_xname(sc->sc_dev), col, col == 1 ? "" : "s",
909 1.1 mycroft sc->txb_sched);
910 1.1 mycroft #endif
911 1.1 mycroft }
912 1.1 mycroft
913 1.1 mycroft /*
914 1.1 mycroft * Update total number of successfully
915 1.1 mycroft * transmitted packets.
916 1.1 mycroft */
917 1.1 mycroft ifp->if_opackets += sc->txb_sched;
918 1.1 mycroft sc->txb_sched = 0;
919 1.10 mycroft }
920 1.1 mycroft
921 1.10 mycroft if (sc->txb_sched == 0) {
922 1.1 mycroft /*
923 1.1 mycroft * The transmitter is no more active.
924 1.60 perry * Reset output active flag and watchdog timer.
925 1.1 mycroft */
926 1.1 mycroft ifp->if_flags &= ~IFF_OACTIVE;
927 1.1 mycroft ifp->if_timer = 0;
928 1.1 mycroft
929 1.1 mycroft /*
930 1.1 mycroft * If more data is ready to transmit in the buffer, start
931 1.1 mycroft * transmitting them. Otherwise keep transmitter idle,
932 1.1 mycroft * even if more data is queued. This gives receive
933 1.1 mycroft * process a slight priority.
934 1.1 mycroft */
935 1.1 mycroft if (sc->txb_count > 0)
936 1.21 enami mb86960_xmit(sc);
937 1.1 mycroft }
938 1.1 mycroft }
939 1.1 mycroft
940 1.1 mycroft /*
941 1.1 mycroft * Ethernet interface receiver interrupt.
942 1.1 mycroft */
943 1.1 mycroft void
944 1.59 tsutsui mb86960_rint(struct mb86960_softc *sc, uint8_t rstat)
945 1.1 mycroft {
946 1.21 enami bus_space_tag_t bst = sc->sc_bst;
947 1.21 enami bus_space_handle_t bsh = sc->sc_bsh;
948 1.21 enami struct ifnet *ifp = &sc->sc_ec.ec_if;
949 1.54 tsutsui u_int status, len;
950 1.1 mycroft int i;
951 1.1 mycroft
952 1.1 mycroft /*
953 1.1 mycroft * Update statistics if this interrupt is caused by an error.
954 1.1 mycroft */
955 1.21 enami if (rstat & (FE_D1_OVRFLO | FE_D1_CRCERR | FE_D1_ALGERR |
956 1.21 enami FE_D1_SRTPKT)) {
957 1.1 mycroft #if FE_DEBUG >= 3
958 1.41 tv char sbuf[sizeof(FE_D1_ERRBITS) + 64];
959 1.41 tv
960 1.72 christos snprintb(sbuf, sizeof(sbuf), FE_D1_ERRBITS, rstat);
961 1.41 tv log(LOG_WARNING, "%s: receive error: %s\n",
962 1.70 tsutsui device_xname(sc->sc_dev), sbuf);
963 1.1 mycroft #endif
964 1.1 mycroft ifp->if_ierrors++;
965 1.1 mycroft }
966 1.1 mycroft
967 1.1 mycroft /*
968 1.1 mycroft * MB86960 has a flag indicating "receive queue empty."
969 1.54 tsutsui * We just loop checking the flag to pull out all received
970 1.1 mycroft * packets.
971 1.1 mycroft *
972 1.1 mycroft * We limit the number of iterrations to avoid infinite loop.
973 1.1 mycroft * It can be caused by a very slow CPU (some broken
974 1.1 mycroft * peripheral may insert incredible number of wait cycles)
975 1.1 mycroft * or, worse, by a broken MB86960 chip.
976 1.1 mycroft */
977 1.1 mycroft for (i = 0; i < FE_MAX_RECV_COUNT; i++) {
978 1.1 mycroft /* Stop the iterration if 86960 indicates no packets. */
979 1.21 enami if (bus_space_read_1(bst, bsh, FE_DLCR5) & FE_D5_BUFEMP)
980 1.1 mycroft break;
981 1.1 mycroft
982 1.1 mycroft /*
983 1.54 tsutsui * Extract receive packet status from the receive
984 1.54 tsutsui * packet header.
985 1.1 mycroft */
986 1.54 tsutsui if (sc->sc_flags & FE_FLAGS_SBW_BYTE) {
987 1.54 tsutsui status = bus_space_read_1(bst, bsh, FE_BMPR8);
988 1.54 tsutsui (void)bus_space_read_1(bst, bsh, FE_BMPR8);
989 1.54 tsutsui } else
990 1.54 tsutsui status = bus_space_read_2(bst, bsh, FE_BMPR8);
991 1.54 tsutsui
992 1.1 mycroft #if FE_DEBUG >= 4
993 1.1 mycroft log(LOG_INFO, "%s: receive status = %02x\n",
994 1.70 tsutsui device_xname(sc->sc_dev), status);
995 1.1 mycroft #endif
996 1.1 mycroft
997 1.1 mycroft /*
998 1.1 mycroft * If there was an error, update statistics and drop
999 1.1 mycroft * the packet, unless the interface is in promiscuous
1000 1.1 mycroft * mode.
1001 1.1 mycroft */
1002 1.54 tsutsui if ((status & FE_RXSTAT_GOODPKT) == 0) {
1003 1.1 mycroft if ((ifp->if_flags & IFF_PROMISC) == 0) {
1004 1.1 mycroft ifp->if_ierrors++;
1005 1.21 enami mb86960_droppacket(sc);
1006 1.1 mycroft continue;
1007 1.1 mycroft }
1008 1.1 mycroft }
1009 1.1 mycroft
1010 1.1 mycroft /*
1011 1.54 tsutsui * Extract the packet length from the receive packet header.
1012 1.1 mycroft * It is a sum of a header (14 bytes) and a payload.
1013 1.1 mycroft * CRC has been stripped off by the 86960.
1014 1.1 mycroft */
1015 1.54 tsutsui if (sc->sc_flags & FE_FLAGS_SBW_BYTE) {
1016 1.54 tsutsui len = bus_space_read_1(bst, bsh, FE_BMPR8);
1017 1.54 tsutsui len |= bus_space_read_1(bst, bsh, FE_BMPR8) << 8;
1018 1.54 tsutsui } else
1019 1.54 tsutsui len = bus_space_read_2(bst, bsh, FE_BMPR8);
1020 1.1 mycroft
1021 1.1 mycroft /*
1022 1.1 mycroft * MB86965 checks the packet length and drop big packet
1023 1.1 mycroft * before passing it to us. There are no chance we can
1024 1.1 mycroft * get [crufty] packets. Hence, if the length exceeds
1025 1.1 mycroft * the specified limit, it means some serious failure,
1026 1.1 mycroft * such as out-of-sync on receive buffer management.
1027 1.1 mycroft *
1028 1.1 mycroft * Is this statement true? FIXME.
1029 1.1 mycroft */
1030 1.32 thorpej if (len > (ETHER_MAX_LEN - ETHER_CRC_LEN) ||
1031 1.32 thorpej len < ETHER_HDR_LEN) {
1032 1.1 mycroft #if FE_DEBUG >= 2
1033 1.1 mycroft log(LOG_WARNING,
1034 1.1 mycroft "%s: received a %s packet? (%u bytes)\n",
1035 1.70 tsutsui device_xname(sc->sc_dev),
1036 1.32 thorpej len < ETHER_HDR_LEN ? "partial" : "big", len);
1037 1.1 mycroft #endif
1038 1.1 mycroft ifp->if_ierrors++;
1039 1.21 enami mb86960_droppacket(sc);
1040 1.1 mycroft continue;
1041 1.1 mycroft }
1042 1.1 mycroft
1043 1.1 mycroft /*
1044 1.1 mycroft * Check for a short (RUNT) packet. We *do* check
1045 1.1 mycroft * but do nothing other than print a message.
1046 1.1 mycroft * Short packets are illegal, but does nothing bad
1047 1.1 mycroft * if it carries data for upper layer.
1048 1.1 mycroft */
1049 1.1 mycroft #if FE_DEBUG >= 2
1050 1.32 thorpej if (len < (ETHER_MIN_LEN - ETHER_CRC_LEN)) {
1051 1.1 mycroft log(LOG_WARNING,
1052 1.21 enami "%s: received a short packet? (%u bytes)\n",
1053 1.70 tsutsui device_xname(sc->sc_dev), len);
1054 1.1 mycroft }
1055 1.60 perry #endif
1056 1.1 mycroft
1057 1.1 mycroft /*
1058 1.1 mycroft * Go get a packet.
1059 1.1 mycroft */
1060 1.54 tsutsui if (mb86960_get_packet(sc, len) == 0) {
1061 1.1 mycroft /* Skip a packet, updating statistics. */
1062 1.1 mycroft #if FE_DEBUG >= 2
1063 1.1 mycroft log(LOG_WARNING,
1064 1.1 mycroft "%s: out of mbufs; dropping packet (%u bytes)\n",
1065 1.70 tsutsui device_xname(sc->sc_dev), len);
1066 1.1 mycroft #endif
1067 1.1 mycroft ifp->if_ierrors++;
1068 1.21 enami mb86960_droppacket(sc);
1069 1.1 mycroft
1070 1.1 mycroft /*
1071 1.1 mycroft * We stop receiving packets, even if there are
1072 1.1 mycroft * more in the buffer. We hope we can get more
1073 1.1 mycroft * mbufs next time.
1074 1.1 mycroft */
1075 1.1 mycroft return;
1076 1.1 mycroft }
1077 1.1 mycroft
1078 1.1 mycroft /* Successfully received a packet. Update stat. */
1079 1.1 mycroft ifp->if_ipackets++;
1080 1.1 mycroft }
1081 1.1 mycroft }
1082 1.1 mycroft
1083 1.1 mycroft /*
1084 1.1 mycroft * Ethernet interface interrupt processor
1085 1.1 mycroft */
1086 1.1 mycroft int
1087 1.59 tsutsui mb86960_intr(void *arg)
1088 1.1 mycroft {
1089 1.21 enami struct mb86960_softc *sc = arg;
1090 1.21 enami bus_space_tag_t bst = sc->sc_bst;
1091 1.21 enami bus_space_handle_t bsh = sc->sc_bsh;
1092 1.21 enami struct ifnet *ifp = &sc->sc_ec.ec_if;
1093 1.59 tsutsui uint8_t tstat, rstat;
1094 1.1 mycroft
1095 1.54 tsutsui if ((sc->sc_stat & FE_STAT_ENABLED) == 0 ||
1096 1.70 tsutsui !device_is_active(sc->sc_dev))
1097 1.70 tsutsui return 0;
1098 1.21 enami
1099 1.1 mycroft #if FE_DEBUG >= 4
1100 1.70 tsutsui log(LOG_INFO, "%s: mb86960_intr()\n", device_xname(sc->sc_dev));
1101 1.21 enami mb86960_dump(LOG_INFO, sc);
1102 1.1 mycroft #endif
1103 1.1 mycroft
1104 1.1 mycroft /*
1105 1.1 mycroft * Get interrupt conditions, masking unneeded flags.
1106 1.1 mycroft */
1107 1.21 enami tstat = bus_space_read_1(bst, bsh, FE_DLCR0) & FE_TMASK;
1108 1.21 enami rstat = bus_space_read_1(bst, bsh, FE_DLCR1) & FE_RMASK;
1109 1.1 mycroft if (tstat == 0 && rstat == 0)
1110 1.70 tsutsui return 0;
1111 1.1 mycroft
1112 1.1 mycroft /*
1113 1.1 mycroft * Loop until there are no more new interrupt conditions.
1114 1.1 mycroft */
1115 1.1 mycroft for (;;) {
1116 1.1 mycroft /*
1117 1.1 mycroft * Reset the conditions we are acknowledging.
1118 1.1 mycroft */
1119 1.21 enami bus_space_write_1(bst, bsh, FE_DLCR0, tstat);
1120 1.21 enami bus_space_write_1(bst, bsh, FE_DLCR1, rstat);
1121 1.1 mycroft
1122 1.1 mycroft /*
1123 1.1 mycroft * Handle transmitter interrupts. Handle these first because
1124 1.1 mycroft * the receiver will reset the board under some conditions.
1125 1.1 mycroft */
1126 1.1 mycroft if (tstat != 0)
1127 1.21 enami mb86960_tint(sc, tstat);
1128 1.1 mycroft
1129 1.1 mycroft /*
1130 1.1 mycroft * Handle receiver interrupts.
1131 1.1 mycroft */
1132 1.1 mycroft if (rstat != 0)
1133 1.21 enami mb86960_rint(sc, rstat);
1134 1.1 mycroft
1135 1.1 mycroft /*
1136 1.1 mycroft * Update the multicast address filter if it is
1137 1.1 mycroft * needed and possible. We do it now, because
1138 1.1 mycroft * we can make sure the transmission buffer is empty,
1139 1.1 mycroft * and there is a good chance that the receive queue
1140 1.1 mycroft * is empty. It will minimize the possibility of
1141 1.1 mycroft * packet lossage.
1142 1.1 mycroft */
1143 1.1 mycroft if (sc->filter_change &&
1144 1.1 mycroft sc->txb_count == 0 && sc->txb_sched == 0) {
1145 1.21 enami mb86960_loadmar(sc);
1146 1.21 enami ifp->if_flags &= ~IFF_OACTIVE;
1147 1.1 mycroft }
1148 1.1 mycroft
1149 1.1 mycroft /*
1150 1.1 mycroft * If it looks like the transmitter can take more data,
1151 1.1 mycroft * attempt to start output on the interface. This is done
1152 1.1 mycroft * after handling the receiver interrupt to give the
1153 1.1 mycroft * receive operation priority.
1154 1.1 mycroft */
1155 1.21 enami if ((ifp->if_flags & IFF_OACTIVE) == 0)
1156 1.21 enami mb86960_start(ifp);
1157 1.18 explorer
1158 1.18 explorer #if NRND > 0
1159 1.18 explorer if (rstat != 0 || tstat != 0)
1160 1.18 explorer rnd_add_uint32(&sc->rnd_source, rstat + tstat);
1161 1.18 explorer #endif
1162 1.1 mycroft
1163 1.1 mycroft /*
1164 1.1 mycroft * Get interrupt conditions, masking unneeded flags.
1165 1.1 mycroft */
1166 1.21 enami tstat = bus_space_read_1(bst, bsh, FE_DLCR0) & FE_TMASK;
1167 1.21 enami rstat = bus_space_read_1(bst, bsh, FE_DLCR1) & FE_RMASK;
1168 1.1 mycroft if (tstat == 0 && rstat == 0)
1169 1.70 tsutsui return 1;
1170 1.1 mycroft }
1171 1.1 mycroft }
1172 1.1 mycroft
1173 1.1 mycroft /*
1174 1.1 mycroft * Process an ioctl request. This code needs some work - it looks pretty ugly.
1175 1.1 mycroft */
1176 1.1 mycroft int
1177 1.66 christos mb86960_ioctl(struct ifnet *ifp, u_long cmd, void *data)
1178 1.1 mycroft {
1179 1.21 enami struct mb86960_softc *sc = ifp->if_softc;
1180 1.21 enami struct ifaddr *ifa = (struct ifaddr *)data;
1181 1.1 mycroft struct ifreq *ifr = (struct ifreq *)data;
1182 1.1 mycroft int s, error = 0;
1183 1.1 mycroft
1184 1.1 mycroft #if FE_DEBUG >= 3
1185 1.70 tsutsui log(LOG_INFO, "%s: ioctl(%lx)\n", device_xname(sc->sc_dev), cmd);
1186 1.1 mycroft #endif
1187 1.1 mycroft
1188 1.8 mycroft s = splnet();
1189 1.1 mycroft
1190 1.21 enami switch (cmd) {
1191 1.71 dyoung case SIOCINITIFADDR:
1192 1.21 enami if ((error = mb86960_enable(sc)) != 0)
1193 1.21 enami break;
1194 1.1 mycroft ifp->if_flags |= IFF_UP;
1195 1.1 mycroft
1196 1.71 dyoung mb86960_init(sc);
1197 1.1 mycroft switch (ifa->ifa_addr->sa_family) {
1198 1.1 mycroft #ifdef INET
1199 1.1 mycroft case AF_INET:
1200 1.17 is arp_ifinit(ifp, ifa);
1201 1.1 mycroft break;
1202 1.1 mycroft #endif
1203 1.1 mycroft default:
1204 1.1 mycroft break;
1205 1.1 mycroft }
1206 1.1 mycroft break;
1207 1.1 mycroft
1208 1.1 mycroft case SIOCSIFFLAGS:
1209 1.71 dyoung if ((error = ifioctl_common(ifp, cmd, data)) != 0)
1210 1.71 dyoung break;
1211 1.71 dyoung /* XXX re-use ether_ioctl() */
1212 1.71 dyoung switch (ifp->if_flags & (IFF_UP|IFF_RUNNING)) {
1213 1.71 dyoung case IFF_RUNNING:
1214 1.1 mycroft /*
1215 1.1 mycroft * If interface is marked down and it is running, then
1216 1.1 mycroft * stop it.
1217 1.1 mycroft */
1218 1.21 enami mb86960_stop(sc);
1219 1.1 mycroft ifp->if_flags &= ~IFF_RUNNING;
1220 1.21 enami mb86960_disable(sc);
1221 1.71 dyoung break;
1222 1.71 dyoung case IFF_UP:
1223 1.1 mycroft /*
1224 1.1 mycroft * If interface is marked up and it is stopped, then
1225 1.1 mycroft * start it.
1226 1.1 mycroft */
1227 1.21 enami if ((error = mb86960_enable(sc)) != 0)
1228 1.21 enami break;
1229 1.21 enami mb86960_init(sc);
1230 1.71 dyoung break;
1231 1.71 dyoung case IFF_UP|IFF_RUNNING:
1232 1.1 mycroft /*
1233 1.1 mycroft * Reset the interface to pick up changes in any other
1234 1.1 mycroft * flags that affect hardware registers.
1235 1.1 mycroft */
1236 1.21 enami mb86960_setmode(sc);
1237 1.71 dyoung break;
1238 1.71 dyoung case 0:
1239 1.71 dyoung break;
1240 1.1 mycroft }
1241 1.45 lukem #if FE_DEBUG >= 1
1242 1.1 mycroft /* "ifconfig fe0 debug" to print register dump. */
1243 1.1 mycroft if (ifp->if_flags & IFF_DEBUG) {
1244 1.21 enami log(LOG_INFO, "%s: SIOCSIFFLAGS(DEBUG)\n",
1245 1.70 tsutsui device_xname(sc->sc_dev));
1246 1.21 enami mb86960_dump(LOG_DEBUG, sc);
1247 1.1 mycroft }
1248 1.1 mycroft #endif
1249 1.1 mycroft break;
1250 1.1 mycroft
1251 1.1 mycroft case SIOCADDMULTI:
1252 1.1 mycroft case SIOCDELMULTI:
1253 1.54 tsutsui if ((sc->sc_stat & FE_STAT_ENABLED) == 0) {
1254 1.21 enami error = EIO;
1255 1.21 enami break;
1256 1.21 enami }
1257 1.21 enami
1258 1.1 mycroft /* Update our multicast list. */
1259 1.67 dyoung if ((error = ether_ioctl(ifp, cmd, data)) == ENETRESET) {
1260 1.1 mycroft /*
1261 1.1 mycroft * Multicast list has changed; set the hardware filter
1262 1.1 mycroft * accordingly.
1263 1.1 mycroft */
1264 1.58 thorpej if (ifp->if_flags & IFF_RUNNING)
1265 1.58 thorpej mb86960_setmode(sc);
1266 1.1 mycroft error = 0;
1267 1.1 mycroft }
1268 1.1 mycroft break;
1269 1.1 mycroft
1270 1.21 enami case SIOCGIFMEDIA:
1271 1.21 enami case SIOCSIFMEDIA:
1272 1.21 enami error = ifmedia_ioctl(ifp, ifr, &sc->sc_media, cmd);
1273 1.21 enami break;
1274 1.21 enami
1275 1.1 mycroft default:
1276 1.71 dyoung error = ether_ioctl(ifp, cmd, data);
1277 1.21 enami break;
1278 1.1 mycroft }
1279 1.1 mycroft
1280 1.1 mycroft splx(s);
1281 1.70 tsutsui return error;
1282 1.1 mycroft }
1283 1.1 mycroft
1284 1.1 mycroft /*
1285 1.46 wiz * Retrieve packet from receive buffer and send to the next level up via
1286 1.1 mycroft * ether_input(). If there is a BPF listener, give a copy to BPF, too.
1287 1.1 mycroft * Returns 0 if success, -1 if error (i.e., mbuf allocation failure).
1288 1.1 mycroft */
1289 1.1 mycroft int
1290 1.59 tsutsui mb86960_get_packet(struct mb86960_softc *sc, u_int len)
1291 1.1 mycroft {
1292 1.21 enami bus_space_tag_t bst = sc->sc_bst;
1293 1.21 enami bus_space_handle_t bsh = sc->sc_bsh;
1294 1.21 enami struct ifnet *ifp = &sc->sc_ec.ec_if;
1295 1.1 mycroft struct mbuf *m;
1296 1.1 mycroft
1297 1.1 mycroft /* Allocate a header mbuf. */
1298 1.1 mycroft MGETHDR(m, M_DONTWAIT, MT_DATA);
1299 1.1 mycroft if (m == 0)
1300 1.70 tsutsui return 0;
1301 1.1 mycroft m->m_pkthdr.rcvif = ifp;
1302 1.1 mycroft m->m_pkthdr.len = len;
1303 1.1 mycroft
1304 1.1 mycroft /* The following silliness is to make NFS happy. */
1305 1.1 mycroft #define EROUND ((sizeof(struct ether_header) + 3) & ~3)
1306 1.1 mycroft #define EOFF (EROUND - sizeof(struct ether_header))
1307 1.1 mycroft
1308 1.1 mycroft /*
1309 1.1 mycroft * Our strategy has one more problem. There is a policy on
1310 1.1 mycroft * mbuf cluster allocation. It says that we must have at
1311 1.6 mycroft * least MINCLSIZE (208 bytes) to allocate a cluster. For a
1312 1.6 mycroft * packet of a size between (MHLEN - 2) to (MINCLSIZE - 2),
1313 1.6 mycroft * our code violates the rule...
1314 1.54 tsutsui * On the other hand, the current code is short, simple,
1315 1.1 mycroft * and fast, however. It does no harmful thing, just waists
1316 1.1 mycroft * some memory. Any comments? FIXME.
1317 1.1 mycroft */
1318 1.1 mycroft
1319 1.1 mycroft /* Attach a cluster if this packet doesn't fit in a normal mbuf. */
1320 1.1 mycroft if (len > MHLEN - EOFF) {
1321 1.1 mycroft MCLGET(m, M_DONTWAIT);
1322 1.1 mycroft if ((m->m_flags & M_EXT) == 0) {
1323 1.1 mycroft m_freem(m);
1324 1.70 tsutsui return 0;
1325 1.1 mycroft }
1326 1.1 mycroft }
1327 1.1 mycroft
1328 1.1 mycroft /*
1329 1.1 mycroft * The following assumes there is room for the ether header in the
1330 1.1 mycroft * header mbuf.
1331 1.1 mycroft */
1332 1.1 mycroft m->m_data += EOFF;
1333 1.1 mycroft
1334 1.1 mycroft /* Set the length of this packet. */
1335 1.1 mycroft m->m_len = len;
1336 1.1 mycroft
1337 1.1 mycroft /* Get a packet. */
1338 1.54 tsutsui if (sc->sc_flags & FE_FLAGS_SBW_BYTE)
1339 1.54 tsutsui bus_space_read_multi_1(bst, bsh, FE_BMPR8,
1340 1.59 tsutsui mtod(m, uint8_t *), len);
1341 1.54 tsutsui else
1342 1.54 tsutsui bus_space_read_multi_stream_2(bst, bsh, FE_BMPR8,
1343 1.59 tsutsui mtod(m, uint16_t *), (len + 1) >> 1);
1344 1.1 mycroft
1345 1.1 mycroft #if NBPFILTER > 0
1346 1.1 mycroft /*
1347 1.1 mycroft * Check if there's a BPF listener on this interface. If so, hand off
1348 1.1 mycroft * the raw packet to bpf.
1349 1.1 mycroft */
1350 1.42 thorpej if (ifp->if_bpf)
1351 1.1 mycroft bpf_mtap(ifp->if_bpf, m);
1352 1.1 mycroft #endif
1353 1.1 mycroft
1354 1.33 thorpej (*ifp->if_input)(ifp, m);
1355 1.70 tsutsui return 1;
1356 1.1 mycroft }
1357 1.1 mycroft
1358 1.1 mycroft /*
1359 1.1 mycroft * Write an mbuf chain to the transmission buffer memory using 16 bit PIO.
1360 1.1 mycroft * Returns number of bytes actually written, including length word.
1361 1.1 mycroft *
1362 1.1 mycroft * If an mbuf chain is too long for an Ethernet frame, it is not sent.
1363 1.1 mycroft * Packets shorter than Ethernet minimum are legal, and we pad them
1364 1.60 perry * before sending out. An exception is "partial" packets which are
1365 1.1 mycroft * shorter than mandatory Ethernet header.
1366 1.1 mycroft *
1367 1.1 mycroft * I wrote a code for an experimental "delayed padding" technique.
1368 1.1 mycroft * When employed, it postpones the padding process for short packets.
1369 1.49 wiz * If xmit() occurred at the moment, the padding process is omitted, and
1370 1.1 mycroft * garbages are sent as pad data. If next packet is stored in the
1371 1.1 mycroft * transmission buffer before xmit(), write_mbuf() pads the previous
1372 1.1 mycroft * packet before transmitting new packet. This *may* gain the
1373 1.1 mycroft * system performance (slightly).
1374 1.1 mycroft */
1375 1.1 mycroft void
1376 1.59 tsutsui mb86960_write_mbufs(struct mb86960_softc *sc, struct mbuf *m)
1377 1.1 mycroft {
1378 1.21 enami bus_space_tag_t bst = sc->sc_bst;
1379 1.21 enami bus_space_handle_t bsh = sc->sc_bsh;
1380 1.54 tsutsui int totlen, len;
1381 1.21 enami #if FE_DEBUG >= 2
1382 1.21 enami struct mbuf *mp;
1383 1.21 enami #endif
1384 1.16 thorpej
1385 1.1 mycroft #if FE_DELAYED_PADDING
1386 1.1 mycroft /* Do the "delayed padding." */
1387 1.54 tsutsui if (sc->txb_padding > 0) {
1388 1.54 tsutsui if (sc->sc_flags & FE_FLAGS_SBW_BYTE) {
1389 1.54 tsutsui for (len = sc->txb_padding; len > 0; len--)
1390 1.54 tsutsui bus_space_write_1(bst, bsh, FE_BMPR8, 0);
1391 1.54 tsutsui } else {
1392 1.54 tsutsui for (len = sc->txb_padding >> 1; len > 0; len--)
1393 1.54 tsutsui bus_space_write_2(bst, bsh, FE_BMPR8, 0);
1394 1.54 tsutsui }
1395 1.1 mycroft sc->txb_padding = 0;
1396 1.1 mycroft }
1397 1.1 mycroft #endif
1398 1.1 mycroft
1399 1.4 mycroft /* We need to use m->m_pkthdr.len, so require the header */
1400 1.4 mycroft if ((m->m_flags & M_PKTHDR) == 0)
1401 1.21 enami panic("mb86960_write_mbufs: no header mbuf");
1402 1.4 mycroft
1403 1.1 mycroft #if FE_DEBUG >= 2
1404 1.1 mycroft /* First, count up the total number of bytes to copy. */
1405 1.1 mycroft for (totlen = 0, mp = m; mp != 0; mp = mp->m_next)
1406 1.1 mycroft totlen += mp->m_len;
1407 1.1 mycroft /* Check if this matches the one in the packet header. */
1408 1.1 mycroft if (totlen != m->m_pkthdr.len)
1409 1.1 mycroft log(LOG_WARNING, "%s: packet length mismatch? (%d/%d)\n",
1410 1.70 tsutsui device_xname(sc->sc_dev), totlen, m->m_pkthdr.len);
1411 1.1 mycroft #else
1412 1.1 mycroft /* Just use the length value in the packet header. */
1413 1.1 mycroft totlen = m->m_pkthdr.len;
1414 1.1 mycroft #endif
1415 1.1 mycroft
1416 1.1 mycroft #if FE_DEBUG >= 1
1417 1.1 mycroft /*
1418 1.1 mycroft * Should never send big packets. If such a packet is passed,
1419 1.1 mycroft * it should be a bug of upper layer. We just ignore it.
1420 1.1 mycroft * ... Partial (too short) packets, neither.
1421 1.1 mycroft */
1422 1.32 thorpej if (totlen > (ETHER_MAX_LEN - ETHER_CRC_LEN) ||
1423 1.32 thorpej totlen < ETHER_HDR_LEN) {
1424 1.1 mycroft log(LOG_ERR, "%s: got a %s packet (%u bytes) to send\n",
1425 1.70 tsutsui device_xname(sc->sc_dev),
1426 1.32 thorpej totlen < ETHER_HDR_LEN ? "partial" : "big", totlen);
1427 1.21 enami sc->sc_ec.ec_if.if_oerrors++;
1428 1.1 mycroft return;
1429 1.1 mycroft }
1430 1.1 mycroft #endif
1431 1.1 mycroft
1432 1.1 mycroft /*
1433 1.1 mycroft * Put the length word for this frame.
1434 1.1 mycroft * Does 86960 accept odd length? -- Yes.
1435 1.1 mycroft * Do we need to pad the length to minimum size by ourselves?
1436 1.1 mycroft * -- Generally yes. But for (or will be) the last
1437 1.1 mycroft * packet in the transmission buffer, we can skip the
1438 1.1 mycroft * padding process. It may gain performance slightly. FIXME.
1439 1.1 mycroft */
1440 1.54 tsutsui len = max(totlen, (ETHER_MIN_LEN - ETHER_CRC_LEN));
1441 1.54 tsutsui if (sc->sc_flags & FE_FLAGS_SBW_BYTE) {
1442 1.54 tsutsui bus_space_write_1(bst, bsh, FE_BMPR8, len);
1443 1.54 tsutsui bus_space_write_1(bst, bsh, FE_BMPR8, len >> 8);
1444 1.54 tsutsui } else {
1445 1.54 tsutsui bus_space_write_2(bst, bsh, FE_BMPR8, len);
1446 1.54 tsutsui /* roundup packet length since we will use word access */
1447 1.54 tsutsui totlen = (totlen + 1) & ~1;
1448 1.54 tsutsui }
1449 1.1 mycroft
1450 1.1 mycroft /*
1451 1.1 mycroft * Update buffer status now.
1452 1.54 tsutsui * Truncate the length up to an even number
1453 1.54 tsutsui * if the chip is set in SBW_WORD mode.
1454 1.1 mycroft */
1455 1.54 tsutsui sc->txb_free -= FE_TXLEN_SIZE +
1456 1.32 thorpej max(totlen, (ETHER_MIN_LEN - ETHER_CRC_LEN));
1457 1.1 mycroft sc->txb_count++;
1458 1.1 mycroft
1459 1.1 mycroft #if FE_DELAYED_PADDING
1460 1.1 mycroft /* Postpone the packet padding if necessary. */
1461 1.32 thorpej if (totlen < (ETHER_MIN_LEN - ETHER_CRC_LEN))
1462 1.32 thorpej sc->txb_padding = (ETHER_MIN_LEN - ETHER_CRC_LEN) - totlen;
1463 1.1 mycroft #endif
1464 1.1 mycroft
1465 1.1 mycroft /*
1466 1.60 perry * Transfer the data from mbuf chain to the transmission buffer.
1467 1.54 tsutsui * If the MB86960 is configured in word mode, data needs to be
1468 1.54 tsutsui * transferred as words, and only words.
1469 1.54 tsutsui * So that we require some extra code to patch over odd-length
1470 1.54 tsutsui * or unaligned mbufs.
1471 1.54 tsutsui */
1472 1.54 tsutsui if (sc->sc_flags & FE_FLAGS_SBW_BYTE) {
1473 1.54 tsutsui /* It's simple in byte mode. */
1474 1.54 tsutsui for (; m != NULL; m = m->m_next) {
1475 1.54 tsutsui if (m->m_len) {
1476 1.54 tsutsui bus_space_write_multi_1(bst, bsh, FE_BMPR8,
1477 1.59 tsutsui mtod(m, uint8_t *), m->m_len);
1478 1.54 tsutsui }
1479 1.54 tsutsui }
1480 1.54 tsutsui } else {
1481 1.54 tsutsui /* a bit trickier in word mode. */
1482 1.59 tsutsui uint8_t *data, savebyte[2];
1483 1.54 tsutsui int leftover;
1484 1.54 tsutsui
1485 1.54 tsutsui leftover = 0;
1486 1.54 tsutsui savebyte[0] = savebyte[1] = 0;
1487 1.54 tsutsui
1488 1.54 tsutsui for (; m != NULL; m = m->m_next) {
1489 1.54 tsutsui len = m->m_len;
1490 1.54 tsutsui if (len == 0)
1491 1.54 tsutsui continue;
1492 1.59 tsutsui data = mtod(m, uint8_t *);
1493 1.54 tsutsui while (len > 0) {
1494 1.54 tsutsui if (leftover) {
1495 1.54 tsutsui /*
1496 1.54 tsutsui * Data left over (from mbuf or
1497 1.54 tsutsui * realignment). Buffer the next
1498 1.54 tsutsui * byte, and write it and the
1499 1.54 tsutsui * leftover data out.
1500 1.54 tsutsui */
1501 1.54 tsutsui savebyte[1] = *data++;
1502 1.54 tsutsui len--;
1503 1.54 tsutsui bus_space_write_stream_2(bst, bsh,
1504 1.59 tsutsui FE_BMPR8, *(uint16_t *)savebyte);
1505 1.60 perry leftover = 0;
1506 1.54 tsutsui } else if (BUS_SPACE_ALIGNED_POINTER(data,
1507 1.59 tsutsui uint16_t) == 0) {
1508 1.54 tsutsui /*
1509 1.54 tsutsui * Unaligned data; buffer the next byte.
1510 1.54 tsutsui */
1511 1.54 tsutsui savebyte[0] = *data++;
1512 1.54 tsutsui len--;
1513 1.54 tsutsui leftover = 1;
1514 1.54 tsutsui } else {
1515 1.54 tsutsui /*
1516 1.54 tsutsui * Aligned data; output contiguous
1517 1.54 tsutsui * words as much as we can, then
1518 1.54 tsutsui * buffer the remaining byte, if any.
1519 1.54 tsutsui */
1520 1.54 tsutsui leftover = len & 1;
1521 1.54 tsutsui len &= ~1;
1522 1.54 tsutsui bus_space_write_multi_stream_2(bst, bsh,
1523 1.59 tsutsui FE_BMPR8, (uint16_t *)data,
1524 1.54 tsutsui len >> 1);
1525 1.54 tsutsui data += len;
1526 1.54 tsutsui if (leftover)
1527 1.54 tsutsui savebyte[0] = *data++;
1528 1.54 tsutsui len = 0;
1529 1.54 tsutsui }
1530 1.54 tsutsui }
1531 1.54 tsutsui if (len < 0)
1532 1.54 tsutsui panic("mb86960_write_mbufs: negative len");
1533 1.1 mycroft }
1534 1.54 tsutsui if (leftover) {
1535 1.54 tsutsui savebyte[1] = 0;
1536 1.54 tsutsui bus_space_write_stream_2(bst, bsh, FE_BMPR8,
1537 1.59 tsutsui *(uint16_t *)savebyte);
1538 1.1 mycroft }
1539 1.1 mycroft }
1540 1.54 tsutsui #if FE_DELAYED_PADDING == 0
1541 1.1 mycroft /*
1542 1.1 mycroft * Pad the packet to the minimum length if necessary.
1543 1.1 mycroft */
1544 1.54 tsutsui len = (ETHER_MIN_LEN - ETHER_CRC_LEN) - totlen;
1545 1.54 tsutsui if (len > 0) {
1546 1.54 tsutsui if (sc->sc_flags & FE_FLAGS_SBW_BYTE) {
1547 1.54 tsutsui while (len-- > 0)
1548 1.54 tsutsui bus_space_write_1(bst, bsh, FE_BMPR8, 0);
1549 1.54 tsutsui } else {
1550 1.54 tsutsui len >>= 1;
1551 1.54 tsutsui while (len-- > 0)
1552 1.54 tsutsui bus_space_write_2(bst, bsh, FE_BMPR8, 0);
1553 1.54 tsutsui }
1554 1.54 tsutsui }
1555 1.1 mycroft #endif
1556 1.1 mycroft }
1557 1.1 mycroft
1558 1.1 mycroft /*
1559 1.1 mycroft * Compute the multicast address filter from the
1560 1.1 mycroft * list of multicast addresses we need to listen to.
1561 1.1 mycroft */
1562 1.1 mycroft void
1563 1.59 tsutsui mb86960_getmcaf(struct ethercom *ec, uint8_t *af)
1564 1.1 mycroft {
1565 1.17 is struct ifnet *ifp = &ec->ec_if;
1566 1.1 mycroft struct ether_multi *enm;
1567 1.59 tsutsui uint32_t crc;
1568 1.1 mycroft struct ether_multistep step;
1569 1.1 mycroft
1570 1.1 mycroft /*
1571 1.1 mycroft * Set up multicast address filter by passing all multicast addresses
1572 1.1 mycroft * through a crc generator, and then using the high order 6 bits as an
1573 1.1 mycroft * index into the 64 bit logical address filter. The high order bit
1574 1.1 mycroft * selects the word, while the rest of the bits select the bit within
1575 1.1 mycroft * the word.
1576 1.1 mycroft */
1577 1.1 mycroft
1578 1.1 mycroft if ((ifp->if_flags & IFF_PROMISC) != 0)
1579 1.1 mycroft goto allmulti;
1580 1.1 mycroft
1581 1.54 tsutsui memset(af, 0, FE_FILTER_LEN);
1582 1.17 is ETHER_FIRST_MULTI(step, ec, enm);
1583 1.1 mycroft while (enm != NULL) {
1584 1.47 thorpej if (memcmp(enm->enm_addrlo, enm->enm_addrhi,
1585 1.1 mycroft sizeof(enm->enm_addrlo)) != 0) {
1586 1.1 mycroft /*
1587 1.1 mycroft * We must listen to a range of multicast addresses.
1588 1.1 mycroft * For now, just accept all multicasts, rather than
1589 1.1 mycroft * trying to set only those filter bits needed to match
1590 1.1 mycroft * the range. (At this time, the only use of address
1591 1.1 mycroft * ranges is for IP multicast routing, for which the
1592 1.1 mycroft * range is big enough to require all bits set.)
1593 1.1 mycroft */
1594 1.1 mycroft goto allmulti;
1595 1.1 mycroft }
1596 1.1 mycroft
1597 1.39 thorpej crc = ether_crc32_le(enm->enm_addrlo, ETHER_ADDR_LEN);
1598 1.39 thorpej
1599 1.1 mycroft /* Just want the 6 most significant bits. */
1600 1.1 mycroft crc >>= 26;
1601 1.1 mycroft
1602 1.1 mycroft /* Turn on the corresponding bit in the filter. */
1603 1.1 mycroft af[crc >> 3] |= 1 << (crc & 7);
1604 1.1 mycroft
1605 1.1 mycroft ETHER_NEXT_MULTI(step, enm);
1606 1.1 mycroft }
1607 1.1 mycroft ifp->if_flags &= ~IFF_ALLMULTI;
1608 1.1 mycroft return;
1609 1.1 mycroft
1610 1.1 mycroft allmulti:
1611 1.1 mycroft ifp->if_flags |= IFF_ALLMULTI;
1612 1.54 tsutsui memset(af, 0xff, FE_FILTER_LEN);
1613 1.1 mycroft }
1614 1.1 mycroft
1615 1.1 mycroft /*
1616 1.1 mycroft * Calculate a new "multicast packet filter" and put the 86960
1617 1.1 mycroft * receiver in appropriate mode.
1618 1.1 mycroft */
1619 1.1 mycroft void
1620 1.59 tsutsui mb86960_setmode(struct mb86960_softc *sc)
1621 1.1 mycroft {
1622 1.21 enami bus_space_tag_t bst = sc->sc_bst;
1623 1.21 enami bus_space_handle_t bsh = sc->sc_bsh;
1624 1.21 enami int flags = sc->sc_ec.ec_if.if_flags;
1625 1.1 mycroft
1626 1.1 mycroft /*
1627 1.1 mycroft * If the interface is not running, we postpone the update
1628 1.1 mycroft * process for receive modes and multicast address filter
1629 1.1 mycroft * until the interface is restarted. It reduces some
1630 1.1 mycroft * complicated job on maintaining chip states. (Earlier versions
1631 1.1 mycroft * of this driver had a bug on that point...)
1632 1.1 mycroft *
1633 1.21 enami * To complete the trick, mb86960_init() calls mb86960_setmode() after
1634 1.1 mycroft * restarting the interface.
1635 1.1 mycroft */
1636 1.1 mycroft if ((flags & IFF_RUNNING) == 0)
1637 1.1 mycroft return;
1638 1.1 mycroft
1639 1.1 mycroft /*
1640 1.1 mycroft * Promiscuous mode is handled separately.
1641 1.1 mycroft */
1642 1.1 mycroft if ((flags & IFF_PROMISC) != 0) {
1643 1.1 mycroft /*
1644 1.1 mycroft * Program 86960 to receive all packets on the segment
1645 1.1 mycroft * including those directed to other stations.
1646 1.1 mycroft * Multicast filter stored in MARs are ignored
1647 1.1 mycroft * under this setting, so we don't need to update it.
1648 1.1 mycroft *
1649 1.6 mycroft * Promiscuous mode is used solely by BPF, and BPF only
1650 1.6 mycroft * listens to valid (no error) packets. So, we ignore
1651 1.6 mycroft * errornous ones even in this mode.
1652 1.1 mycroft */
1653 1.21 enami bus_space_write_1(bst, bsh, FE_DLCR5,
1654 1.1 mycroft sc->proto_dlcr5 | FE_D5_AFM0 | FE_D5_AFM1);
1655 1.1 mycroft sc->filter_change = 0;
1656 1.1 mycroft
1657 1.1 mycroft #if FE_DEBUG >= 3
1658 1.70 tsutsui log(LOG_INFO, "%s: promiscuous mode\n",
1659 1.70 tsutsui device_xname(sc->sc_dev));
1660 1.1 mycroft #endif
1661 1.1 mycroft return;
1662 1.1 mycroft }
1663 1.1 mycroft
1664 1.1 mycroft /*
1665 1.1 mycroft * Turn the chip to the normal (non-promiscuous) mode.
1666 1.1 mycroft */
1667 1.21 enami bus_space_write_1(bst, bsh, FE_DLCR5, sc->proto_dlcr5 | FE_D5_AFM1);
1668 1.1 mycroft
1669 1.1 mycroft /*
1670 1.1 mycroft * Find the new multicast filter value.
1671 1.1 mycroft */
1672 1.21 enami mb86960_getmcaf(&sc->sc_ec, sc->filter);
1673 1.1 mycroft sc->filter_change = 1;
1674 1.1 mycroft
1675 1.1 mycroft #if FE_DEBUG >= 3
1676 1.1 mycroft log(LOG_INFO,
1677 1.1 mycroft "%s: address filter: [%02x %02x %02x %02x %02x %02x %02x %02x]\n",
1678 1.70 tsutsui device_xname(sc->sc_dev),
1679 1.1 mycroft sc->filter[0], sc->filter[1], sc->filter[2], sc->filter[3],
1680 1.1 mycroft sc->filter[4], sc->filter[5], sc->filter[6], sc->filter[7]);
1681 1.1 mycroft #endif
1682 1.1 mycroft
1683 1.1 mycroft /*
1684 1.1 mycroft * We have to update the multicast filter in the 86960, A.S.A.P.
1685 1.1 mycroft *
1686 1.1 mycroft * Note that the DLC (Data Linc Control unit, i.e. transmitter
1687 1.1 mycroft * and receiver) must be stopped when feeding the filter, and
1688 1.54 tsutsui * DLC trashes all packets in both transmission and receive
1689 1.1 mycroft * buffers when stopped.
1690 1.1 mycroft *
1691 1.1 mycroft * ... Are the above sentenses correct? I have to check the
1692 1.1 mycroft * manual of the MB86960A. FIXME.
1693 1.1 mycroft *
1694 1.1 mycroft * To reduce the packet lossage, we delay the filter update
1695 1.1 mycroft * process until buffers are empty.
1696 1.1 mycroft */
1697 1.1 mycroft if (sc->txb_sched == 0 && sc->txb_count == 0 &&
1698 1.21 enami (bus_space_read_1(bst, bsh, FE_DLCR1) & FE_D1_PKTRDY) == 0) {
1699 1.1 mycroft /*
1700 1.1 mycroft * Buffers are (apparently) empty. Load
1701 1.1 mycroft * the new filter value into MARs now.
1702 1.1 mycroft */
1703 1.21 enami mb86960_loadmar(sc);
1704 1.1 mycroft } else {
1705 1.1 mycroft /*
1706 1.1 mycroft * Buffers are not empty. Mark that we have to update
1707 1.21 enami * the MARs. The new filter will be loaded by mb86960_intr()
1708 1.1 mycroft * later.
1709 1.1 mycroft */
1710 1.1 mycroft #if FE_DEBUG >= 4
1711 1.21 enami log(LOG_INFO, "%s: filter change delayed\n",
1712 1.70 tsutsui device_xname(sc->sc_dev));
1713 1.1 mycroft #endif
1714 1.1 mycroft }
1715 1.1 mycroft }
1716 1.1 mycroft
1717 1.1 mycroft /*
1718 1.1 mycroft * Load a new multicast address filter into MARs.
1719 1.1 mycroft *
1720 1.21 enami * The caller must have splnet'ed befor mb86960_loadmar.
1721 1.1 mycroft * This function starts the DLC upon return. So it can be called only
1722 1.1 mycroft * when the chip is working, i.e., from the driver's point of view, when
1723 1.1 mycroft * a device is RUNNING. (I mistook the point in previous versions.)
1724 1.1 mycroft */
1725 1.1 mycroft void
1726 1.59 tsutsui mb86960_loadmar(struct mb86960_softc *sc)
1727 1.1 mycroft {
1728 1.21 enami bus_space_tag_t bst = sc->sc_bst;
1729 1.21 enami bus_space_handle_t bsh = sc->sc_bsh;
1730 1.1 mycroft
1731 1.1 mycroft /* Stop the DLC (transmitter and receiver). */
1732 1.21 enami bus_space_write_1(bst, bsh, FE_DLCR6,
1733 1.21 enami sc->proto_dlcr6 | FE_D6_DLC_DISABLE);
1734 1.1 mycroft
1735 1.1 mycroft /* Select register bank 1 for MARs. */
1736 1.21 enami bus_space_write_1(bst, bsh, FE_DLCR7,
1737 1.1 mycroft sc->proto_dlcr7 | FE_D7_RBS_MAR | FE_D7_POWER_UP);
1738 1.1 mycroft
1739 1.1 mycroft /* Copy filter value into the registers. */
1740 1.21 enami bus_space_write_region_1(bst, bsh, FE_MAR8, sc->filter, FE_FILTER_LEN);
1741 1.1 mycroft
1742 1.1 mycroft /* Restore the bank selection for BMPRs (i.e., runtime registers). */
1743 1.21 enami bus_space_write_1(bst, bsh, FE_DLCR7,
1744 1.1 mycroft sc->proto_dlcr7 | FE_D7_RBS_BMPR | FE_D7_POWER_UP);
1745 1.1 mycroft
1746 1.1 mycroft /* Restart the DLC. */
1747 1.21 enami bus_space_write_1(bst, bsh, FE_DLCR6,
1748 1.21 enami sc->proto_dlcr6 | FE_D6_DLC_ENABLE);
1749 1.1 mycroft
1750 1.1 mycroft /* We have just updated the filter. */
1751 1.1 mycroft sc->filter_change = 0;
1752 1.1 mycroft
1753 1.1 mycroft #if FE_DEBUG >= 3
1754 1.70 tsutsui log(LOG_INFO, "%s: address filter changed\n", device_xname(sc->sc_dev));
1755 1.1 mycroft #endif
1756 1.1 mycroft }
1757 1.1 mycroft
1758 1.21 enami /*
1759 1.21 enami * Enable power on the interface.
1760 1.21 enami */
1761 1.21 enami int
1762 1.59 tsutsui mb86960_enable(struct mb86960_softc *sc)
1763 1.21 enami {
1764 1.21 enami
1765 1.21 enami #if FE_DEBUG >= 3
1766 1.70 tsutsui log(LOG_INFO, "%s: mb86960_enable()\n", device_xname(sc->sc_dev));
1767 1.21 enami #endif
1768 1.21 enami
1769 1.54 tsutsui if ((sc->sc_stat & FE_STAT_ENABLED) == 0 && sc->sc_enable != NULL) {
1770 1.21 enami if ((*sc->sc_enable)(sc) != 0) {
1771 1.70 tsutsui aprint_error_dev(sc->sc_dev, "device enable failed\n");
1772 1.70 tsutsui return EIO;
1773 1.21 enami }
1774 1.21 enami }
1775 1.21 enami
1776 1.54 tsutsui sc->sc_stat |= FE_STAT_ENABLED;
1777 1.70 tsutsui return 0;
1778 1.21 enami }
1779 1.21 enami
1780 1.21 enami /*
1781 1.21 enami * Disable power on the interface.
1782 1.21 enami */
1783 1.21 enami void
1784 1.59 tsutsui mb86960_disable(struct mb86960_softc *sc)
1785 1.21 enami {
1786 1.21 enami
1787 1.21 enami #if FE_DEBUG >= 3
1788 1.70 tsutsui log(LOG_INFO, "%s: mb86960_disable()\n", device_xname(sc->sc_dev));
1789 1.21 enami #endif
1790 1.21 enami
1791 1.54 tsutsui if ((sc->sc_stat & FE_STAT_ENABLED) != 0 && sc->sc_disable != NULL) {
1792 1.21 enami (*sc->sc_disable)(sc);
1793 1.54 tsutsui sc->sc_stat &= ~FE_STAT_ENABLED;
1794 1.21 enami }
1795 1.28 thorpej }
1796 1.28 thorpej
1797 1.36 enami /*
1798 1.36 enami * mbe_activate:
1799 1.36 enami *
1800 1.36 enami * Handle device activation/deactivation requests.
1801 1.36 enami */
1802 1.28 thorpej int
1803 1.73 cegger mb86960_activate(device_t self, enum devact act)
1804 1.28 thorpej {
1805 1.28 thorpej struct mb86960_softc *sc = (struct mb86960_softc *)self;
1806 1.54 tsutsui int rv, s;
1807 1.28 thorpej
1808 1.54 tsutsui rv = 0;
1809 1.28 thorpej s = splnet();
1810 1.28 thorpej switch (act) {
1811 1.28 thorpej case DVACT_ACTIVATE:
1812 1.28 thorpej rv = EOPNOTSUPP;
1813 1.28 thorpej break;
1814 1.28 thorpej
1815 1.28 thorpej case DVACT_DEACTIVATE:
1816 1.36 enami if_deactivate(&sc->sc_ec.ec_if);
1817 1.28 thorpej break;
1818 1.28 thorpej }
1819 1.28 thorpej splx(s);
1820 1.70 tsutsui return rv;
1821 1.36 enami }
1822 1.36 enami
1823 1.36 enami /*
1824 1.36 enami * mb86960_detach:
1825 1.36 enami *
1826 1.36 enami * Detach a MB86960 interface.
1827 1.36 enami */
1828 1.36 enami int
1829 1.59 tsutsui mb86960_detach(struct mb86960_softc *sc)
1830 1.36 enami {
1831 1.36 enami struct ifnet *ifp = &sc->sc_ec.ec_if;
1832 1.40 jhawk
1833 1.40 jhawk /* Succeed now if there's no work to do. */
1834 1.54 tsutsui if ((sc->sc_stat & FE_STAT_ATTACHED) == 0)
1835 1.70 tsutsui return 0;
1836 1.36 enami
1837 1.36 enami /* Delete all media. */
1838 1.36 enami ifmedia_delete_instance(&sc->sc_media, IFM_INST_ANY);
1839 1.36 enami
1840 1.37 enami #if NRND > 0
1841 1.37 enami /* Unhook the entropy source. */
1842 1.37 enami rnd_detach_source(&sc->rnd_source);
1843 1.36 enami #endif
1844 1.36 enami ether_ifdetach(ifp);
1845 1.36 enami if_detach(ifp);
1846 1.36 enami
1847 1.36 enami mb86960_disable(sc);
1848 1.70 tsutsui return 0;
1849 1.21 enami }
1850 1.21 enami
1851 1.53 tsutsui /*
1852 1.53 tsutsui * Routines to read all bytes from the config EEPROM (93C06) through MB86965A.
1853 1.53 tsutsui */
1854 1.53 tsutsui void
1855 1.59 tsutsui mb86965_read_eeprom(bus_space_tag_t iot, bus_space_handle_t ioh, uint8_t *data)
1856 1.53 tsutsui {
1857 1.53 tsutsui int addr, op, bit;
1858 1.59 tsutsui uint16_t val;
1859 1.53 tsutsui
1860 1.53 tsutsui /* Read bytes from EEPROM; two bytes per an iteration. */
1861 1.53 tsutsui for (addr = 0; addr < FE_EEPROM_SIZE / 2; addr++) {
1862 1.53 tsutsui /* Reset the EEPROM interface. */
1863 1.53 tsutsui bus_space_write_1(iot, ioh, FE_BMPR16, 0x00);
1864 1.53 tsutsui bus_space_write_1(iot, ioh, FE_BMPR17, 0x00);
1865 1.53 tsutsui bus_space_write_1(iot, ioh, FE_BMPR16, FE_B16_SELECT);
1866 1.53 tsutsui
1867 1.53 tsutsui /* Send start bit. */
1868 1.53 tsutsui bus_space_write_1(iot, ioh, FE_BMPR17, FE_B17_DATA);
1869 1.53 tsutsui FE_EEPROM_DELAY();
1870 1.53 tsutsui bus_space_write_1(iot, ioh,
1871 1.53 tsutsui FE_BMPR16, FE_B16_SELECT | FE_B16_CLOCK);
1872 1.53 tsutsui FE_EEPROM_DELAY();
1873 1.53 tsutsui bus_space_write_1(iot, ioh, FE_BMPR16, FE_B16_SELECT);
1874 1.53 tsutsui
1875 1.53 tsutsui /* Send read command and read address. */
1876 1.53 tsutsui op = 0x80 | addr; /* READ instruction */
1877 1.53 tsutsui for (bit = 8; bit > 0; bit--) {
1878 1.53 tsutsui bus_space_write_1(iot, ioh, FE_BMPR17,
1879 1.53 tsutsui (op & (1 << (bit - 1))) ? FE_B17_DATA : 0);
1880 1.53 tsutsui FE_EEPROM_DELAY();
1881 1.53 tsutsui bus_space_write_1(iot, ioh,
1882 1.53 tsutsui FE_BMPR16, FE_B16_SELECT | FE_B16_CLOCK);
1883 1.53 tsutsui FE_EEPROM_DELAY();
1884 1.53 tsutsui bus_space_write_1(iot, ioh, FE_BMPR16, FE_B16_SELECT);
1885 1.53 tsutsui }
1886 1.53 tsutsui bus_space_write_1(iot, ioh, FE_BMPR17, 0x00);
1887 1.53 tsutsui
1888 1.53 tsutsui /* Read two bytes in each address */
1889 1.53 tsutsui val = 0;
1890 1.53 tsutsui for (bit = 16; bit > 0; bit--) {
1891 1.53 tsutsui FE_EEPROM_DELAY();
1892 1.53 tsutsui bus_space_write_1(iot, ioh,
1893 1.53 tsutsui FE_BMPR16, FE_B16_SELECT | FE_B16_CLOCK);
1894 1.53 tsutsui FE_EEPROM_DELAY();
1895 1.53 tsutsui if (bus_space_read_1(iot, ioh, FE_BMPR17) &
1896 1.53 tsutsui FE_B17_DATA)
1897 1.53 tsutsui val |= 1 << (bit - 1);
1898 1.53 tsutsui bus_space_write_1(iot, ioh,
1899 1.53 tsutsui FE_BMPR16, FE_B16_SELECT);
1900 1.53 tsutsui }
1901 1.53 tsutsui data[addr * 2] = val >> 8;
1902 1.53 tsutsui data[addr * 2 + 1] = val & 0xff;
1903 1.53 tsutsui }
1904 1.53 tsutsui
1905 1.53 tsutsui /* Make sure the EEPROM is turned off. */
1906 1.53 tsutsui bus_space_write_1(iot, ioh, FE_BMPR16, 0);
1907 1.53 tsutsui bus_space_write_1(iot, ioh, FE_BMPR17, 0);
1908 1.53 tsutsui
1909 1.53 tsutsui #if FE_DEBUG >= 3
1910 1.53 tsutsui /* Report what we got. */
1911 1.53 tsutsui log(LOG_INFO, "mb86965_read_eeprom: "
1912 1.53 tsutsui " %02x%02x%02x%02x %02x%02x%02x%02x -"
1913 1.53 tsutsui " %02x%02x%02x%02x %02x%02x%02x%02x -"
1914 1.53 tsutsui " %02x%02x%02x%02x %02x%02x%02x%02x -"
1915 1.53 tsutsui " %02x%02x%02x%02x %02x%02x%02x%02x\n",
1916 1.53 tsutsui data[ 0], data[ 1], data[ 2], data[ 3],
1917 1.53 tsutsui data[ 4], data[ 5], data[ 6], data[ 7],
1918 1.53 tsutsui data[ 8], data[ 9], data[10], data[11],
1919 1.53 tsutsui data[12], data[13], data[14], data[15],
1920 1.53 tsutsui data[16], data[17], data[18], data[19],
1921 1.53 tsutsui data[20], data[21], data[22], data[23],
1922 1.53 tsutsui data[24], data[25], data[26], data[27],
1923 1.53 tsutsui data[28], data[29], data[30], data[31]);
1924 1.53 tsutsui #endif
1925 1.53 tsutsui }
1926 1.53 tsutsui
1927 1.1 mycroft #if FE_DEBUG >= 1
1928 1.1 mycroft void
1929 1.59 tsutsui mb86960_dump(int level, struct mb86960_softc *sc)
1930 1.1 mycroft {
1931 1.21 enami bus_space_tag_t bst = sc->sc_bst;
1932 1.21 enami bus_space_handle_t bsh = sc->sc_bsh;
1933 1.59 tsutsui uint8_t save_dlcr7;
1934 1.1 mycroft
1935 1.21 enami save_dlcr7 = bus_space_read_1(bst, bsh, FE_DLCR7);
1936 1.1 mycroft
1937 1.21 enami log(level, "\tDLCR = %02x %02x %02x %02x %02x %02x %02x %02x\n",
1938 1.21 enami bus_space_read_1(bst, bsh, FE_DLCR0),
1939 1.21 enami bus_space_read_1(bst, bsh, FE_DLCR1),
1940 1.21 enami bus_space_read_1(bst, bsh, FE_DLCR2),
1941 1.21 enami bus_space_read_1(bst, bsh, FE_DLCR3),
1942 1.21 enami bus_space_read_1(bst, bsh, FE_DLCR4),
1943 1.21 enami bus_space_read_1(bst, bsh, FE_DLCR5),
1944 1.21 enami bus_space_read_1(bst, bsh, FE_DLCR6),
1945 1.21 enami bus_space_read_1(bst, bsh, FE_DLCR7));
1946 1.21 enami
1947 1.21 enami bus_space_write_1(bst, bsh, FE_DLCR7,
1948 1.21 enami (save_dlcr7 & ~FE_D7_RBS) | FE_D7_RBS_DLCR);
1949 1.21 enami log(level, "\t %02x %02x %02x %02x %02x %02x %02x %02x\n",
1950 1.21 enami bus_space_read_1(bst, bsh, FE_DLCR8),
1951 1.21 enami bus_space_read_1(bst, bsh, FE_DLCR9),
1952 1.21 enami bus_space_read_1(bst, bsh, FE_DLCR10),
1953 1.21 enami bus_space_read_1(bst, bsh, FE_DLCR11),
1954 1.21 enami bus_space_read_1(bst, bsh, FE_DLCR12),
1955 1.21 enami bus_space_read_1(bst, bsh, FE_DLCR13),
1956 1.21 enami bus_space_read_1(bst, bsh, FE_DLCR14),
1957 1.21 enami bus_space_read_1(bst, bsh, FE_DLCR15));
1958 1.21 enami
1959 1.21 enami bus_space_write_1(bst, bsh, FE_DLCR7,
1960 1.21 enami (save_dlcr7 & ~FE_D7_RBS) | FE_D7_RBS_MAR);
1961 1.21 enami log(level, "\tMAR = %02x %02x %02x %02x %02x %02x %02x %02x\n",
1962 1.21 enami bus_space_read_1(bst, bsh, FE_MAR8),
1963 1.21 enami bus_space_read_1(bst, bsh, FE_MAR9),
1964 1.21 enami bus_space_read_1(bst, bsh, FE_MAR10),
1965 1.21 enami bus_space_read_1(bst, bsh, FE_MAR11),
1966 1.21 enami bus_space_read_1(bst, bsh, FE_MAR12),
1967 1.21 enami bus_space_read_1(bst, bsh, FE_MAR13),
1968 1.21 enami bus_space_read_1(bst, bsh, FE_MAR14),
1969 1.21 enami bus_space_read_1(bst, bsh, FE_MAR15));
1970 1.21 enami
1971 1.21 enami bus_space_write_1(bst, bsh, FE_DLCR7,
1972 1.21 enami (save_dlcr7 & ~FE_D7_RBS) | FE_D7_RBS_BMPR);
1973 1.21 enami log(level,
1974 1.21 enami "\tBMPR = xx xx %02x %02x %02x %02x %02x %02x %02x %02x xx %02x\n",
1975 1.21 enami bus_space_read_1(bst, bsh, FE_BMPR10),
1976 1.21 enami bus_space_read_1(bst, bsh, FE_BMPR11),
1977 1.21 enami bus_space_read_1(bst, bsh, FE_BMPR12),
1978 1.21 enami bus_space_read_1(bst, bsh, FE_BMPR13),
1979 1.21 enami bus_space_read_1(bst, bsh, FE_BMPR14),
1980 1.21 enami bus_space_read_1(bst, bsh, FE_BMPR15),
1981 1.21 enami bus_space_read_1(bst, bsh, FE_BMPR16),
1982 1.21 enami bus_space_read_1(bst, bsh, FE_BMPR17),
1983 1.21 enami bus_space_read_1(bst, bsh, FE_BMPR19));
1984 1.1 mycroft
1985 1.21 enami bus_space_write_1(bst, bsh, FE_DLCR7, save_dlcr7);
1986 1.1 mycroft }
1987 1.1 mycroft #endif
1988 1.53 tsutsui
1989