if_ie.c revision 1.14 1 1.14 christos /* $NetBSD: if_ie.c,v 1.14 1996/10/13 03:47:28 christos Exp $ */
2 1.1 gwr
3 1.1 gwr /*-
4 1.3 gwr * Copyright (c) 1993, 1994, 1995 Charles Hannum.
5 1.1 gwr * Copyright (c) 1992, 1993, University of Vermont and State
6 1.1 gwr * Agricultural College.
7 1.1 gwr * Copyright (c) 1992, 1993, Garrett A. Wollman.
8 1.1 gwr *
9 1.1 gwr * Portions:
10 1.3 gwr * Copyright (c) 1994, 1995, Rafal K. Boni
11 1.1 gwr * Copyright (c) 1990, 1991, William F. Jolitz
12 1.1 gwr * Copyright (c) 1990, The Regents of the University of California
13 1.1 gwr *
14 1.1 gwr * All rights reserved.
15 1.1 gwr *
16 1.1 gwr * Redistribution and use in source and binary forms, with or without
17 1.1 gwr * modification, are permitted provided that the following conditions
18 1.1 gwr * are met:
19 1.1 gwr * 1. Redistributions of source code must retain the above copyright
20 1.1 gwr * notice, this list of conditions and the following disclaimer.
21 1.1 gwr * 2. Redistributions in binary form must reproduce the above copyright
22 1.1 gwr * notice, this list of conditions and the following disclaimer in the
23 1.1 gwr * documentation and/or other materials provided with the distribution.
24 1.1 gwr * 3. All advertising materials mentioning features or use of this software
25 1.1 gwr * must display the following acknowledgement:
26 1.1 gwr * This product includes software developed by Charles Hannum, by the
27 1.1 gwr * University of Vermont and State Agricultural College and Garrett A.
28 1.1 gwr * Wollman, by William F. Jolitz, and by the University of California,
29 1.1 gwr * Berkeley, Lawrence Berkeley Laboratory, and its contributors.
30 1.1 gwr * 4. Neither the names of the Universities nor the names of the authors
31 1.1 gwr * may be used to endorse or promote products derived from this software
32 1.1 gwr * without specific prior written permission.
33 1.1 gwr *
34 1.1 gwr * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
35 1.1 gwr * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
36 1.1 gwr * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
37 1.1 gwr * ARE DISCLAIMED. IN NO EVENT SHALL THE UNIVERSITY OR AUTHORS BE LIABLE
38 1.1 gwr * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
39 1.1 gwr * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
40 1.1 gwr * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
41 1.1 gwr * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
42 1.1 gwr * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
43 1.1 gwr * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
44 1.1 gwr * SUCH DAMAGE.
45 1.1 gwr */
46 1.1 gwr
47 1.1 gwr /*
48 1.1 gwr * Intel 82586 Ethernet chip
49 1.1 gwr * Register, bit, and structure definitions.
50 1.1 gwr *
51 1.1 gwr * Original StarLAN driver written by Garrett Wollman with reference to the
52 1.1 gwr * Clarkson Packet Driver code for this chip written by Russ Nelson and others.
53 1.1 gwr *
54 1.1 gwr * BPF support code taken from hpdev/if_le.c, supplied with tcpdump.
55 1.1 gwr *
56 1.1 gwr * 3C507 support is loosely based on code donated to NetBSD by Rafal Boni.
57 1.1 gwr *
58 1.1 gwr * Majorly cleaned up and 3C507 code merged by Charles Hannum.
59 1.1 gwr *
60 1.3 gwr * Converted to SUN ie driver by Charles D. Cranor,
61 1.3 gwr * October 1994, January 1995.
62 1.3 gwr * This sun version based on i386 version 1.30.
63 1.1 gwr */
64 1.1 gwr
65 1.1 gwr /*
66 1.1 gwr * The i82586 is a very painful chip, found in sun3's, sun-4/100's
67 1.1 gwr * sun-4/200's, and VME based suns. The byte order is all wrong for a
68 1.1 gwr * SUN, making life difficult. Programming this chip is mostly the same,
69 1.1 gwr * but certain details differ from system to system. This driver is
70 1.1 gwr * written so that different "ie" interfaces can be controled by the same
71 1.1 gwr * driver.
72 1.1 gwr */
73 1.1 gwr
74 1.1 gwr /*
75 1.1 gwr Mode of operation:
76 1.1 gwr
77 1.1 gwr We run the 82586 in a standard Ethernet mode. We keep NFRAMES
78 1.1 gwr received frame descriptors around for the receiver to use, and
79 1.1 gwr NRXBUF associated receive buffer descriptors, both in a circular
80 1.1 gwr list. Whenever a frame is received, we rotate both lists as
81 1.1 gwr necessary. (The 586 treats both lists as a simple queue.) We also
82 1.1 gwr keep a transmit command around so that packets can be sent off
83 1.1 gwr quickly.
84 1.3 gwr
85 1.1 gwr We configure the adapter in AL-LOC = 1 mode, which means that the
86 1.1 gwr Ethernet/802.3 MAC header is placed at the beginning of the receive
87 1.1 gwr buffer rather than being split off into various fields in the RFD.
88 1.1 gwr This also means that we must include this header in the transmit
89 1.1 gwr buffer as well.
90 1.3 gwr
91 1.1 gwr By convention, all transmit commands, and only transmit commands,
92 1.1 gwr shall have the I (IE_CMD_INTR) bit set in the command. This way,
93 1.1 gwr when an interrupt arrives at ieintr(), it is immediately possible
94 1.1 gwr to tell what precisely caused it. ANY OTHER command-sending
95 1.6 mycroft routines should run at splnet(), and should post an acknowledgement
96 1.1 gwr to every interrupt they generate.
97 1.1 gwr */
98 1.1 gwr
99 1.1 gwr #include "bpfilter.h"
100 1.1 gwr
101 1.1 gwr #include <sys/param.h>
102 1.1 gwr #include <sys/systm.h>
103 1.1 gwr #include <sys/mbuf.h>
104 1.1 gwr #include <sys/buf.h>
105 1.1 gwr #include <sys/protosw.h>
106 1.1 gwr #include <sys/socket.h>
107 1.1 gwr #include <sys/ioctl.h>
108 1.3 gwr #include <sys/errno.h>
109 1.1 gwr #include <sys/syslog.h>
110 1.3 gwr #include <sys/device.h>
111 1.1 gwr
112 1.1 gwr #include <net/if.h>
113 1.1 gwr #include <net/if_types.h>
114 1.1 gwr #include <net/if_dl.h>
115 1.1 gwr #include <net/netisr.h>
116 1.1 gwr #include <net/route.h>
117 1.1 gwr
118 1.1 gwr #if NBPFILTER > 0
119 1.1 gwr #include <net/bpf.h>
120 1.1 gwr #include <net/bpfdesc.h>
121 1.1 gwr #endif
122 1.1 gwr
123 1.1 gwr #ifdef INET
124 1.1 gwr #include <netinet/in.h>
125 1.1 gwr #include <netinet/in_systm.h>
126 1.1 gwr #include <netinet/in_var.h>
127 1.1 gwr #include <netinet/ip.h>
128 1.1 gwr #include <netinet/if_ether.h>
129 1.1 gwr #endif
130 1.1 gwr
131 1.1 gwr #ifdef NS
132 1.1 gwr #include <netns/ns.h>
133 1.1 gwr #include <netns/ns_if.h>
134 1.1 gwr #endif
135 1.1 gwr
136 1.1 gwr #include <vm/vm.h>
137 1.1 gwr
138 1.1 gwr /*
139 1.1 gwr * ugly byte-order hack for SUNs
140 1.1 gwr */
141 1.1 gwr
142 1.1 gwr #define SWAP(x) ((u_short)(XSWAP((u_short)(x))))
143 1.1 gwr #define XSWAP(y) ( ((y) >> 8) | ((y) << 8) )
144 1.1 gwr
145 1.1 gwr #include <machine/autoconf.h>
146 1.1 gwr #include <machine/cpu.h>
147 1.1 gwr #include <machine/pmap.h>
148 1.1 gwr
149 1.1 gwr #include "i82586.h"
150 1.10 gwr #include "if_iereg.h"
151 1.10 gwr #include "if_ievar.h"
152 1.1 gwr
153 1.1 gwr static struct mbuf *last_not_for_us;
154 1.1 gwr
155 1.1 gwr /*
156 1.1 gwr * IED: ie debug flags
157 1.1 gwr */
158 1.1 gwr
159 1.1 gwr #define IED_RINT 0x01
160 1.1 gwr #define IED_TINT 0x02
161 1.1 gwr #define IED_RNR 0x04
162 1.1 gwr #define IED_CNA 0x08
163 1.1 gwr #define IED_READFRAME 0x10
164 1.1 gwr #define IED_ALL 0x1f
165 1.1 gwr
166 1.1 gwr #define ETHER_MIN_LEN 64
167 1.1 gwr #define ETHER_MAX_LEN 1518
168 1.1 gwr #define ETHER_ADDR_LEN 6
169 1.1 gwr
170 1.11 thorpej void iewatchdog __P((struct ifnet *));
171 1.3 gwr int ieinit __P((struct ie_softc *));
172 1.3 gwr int ieioctl __P((struct ifnet *, u_long, caddr_t));
173 1.4 gwr void iestart __P((struct ifnet *));
174 1.1 gwr void iereset __P((struct ie_softc *));
175 1.3 gwr static void ie_readframe __P((struct ie_softc *, int));
176 1.3 gwr static void ie_drop_packet_buffer __P((struct ie_softc *));
177 1.3 gwr static int command_and_wait __P((struct ie_softc *, int,
178 1.3 gwr void volatile *, int));
179 1.3 gwr static void ierint __P((struct ie_softc *));
180 1.3 gwr static void ietint __P((struct ie_softc *));
181 1.3 gwr static void setup_bufs __P((struct ie_softc *));
182 1.3 gwr static int mc_setup __P((struct ie_softc *, void *));
183 1.3 gwr static void mc_reset __P((struct ie_softc *));
184 1.1 gwr
185 1.1 gwr #ifdef IEDEBUG
186 1.3 gwr void print_rbd __P((volatile struct ie_recv_buf_desc *));
187 1.1 gwr int in_ierint = 0;
188 1.1 gwr int in_ietint = 0;
189 1.1 gwr #endif
190 1.1 gwr
191 1.8 thorpej
192 1.8 thorpej struct cfdriver ie_cd = {
193 1.8 thorpej NULL, "ie", DV_IFNET
194 1.1 gwr };
195 1.1 gwr
196 1.9 gwr
197 1.1 gwr /*
198 1.1 gwr * address generation macros
199 1.1 gwr * MK_24 = KVA -> 24 bit address in SUN byte order
200 1.1 gwr * MK_16 = KVA -> 16 bit address in INTEL byte order
201 1.1 gwr * ST_24 = store a 24 bit address in SUN byte order to INTEL byte order
202 1.1 gwr */
203 1.1 gwr #define MK_24(base, ptr) ((caddr_t)((u_long)ptr - (u_long)base))
204 1.1 gwr #define MK_16(base, ptr) SWAP((u_short)( ((u_long)(ptr)) - ((u_long)(base)) ))
205 1.1 gwr #define ST_24(to, from) { \
206 1.1 gwr u_long fval = (u_long)(from); \
207 1.1 gwr u_char *t = (u_char *)&(to), *f = (u_char *)&fval; \
208 1.1 gwr t[0] = f[3]; t[1] = f[2]; t[2] = f[1]; /*t[3] = f[0];*/ \
209 1.1 gwr }
210 1.1 gwr
211 1.1 gwr /*
212 1.1 gwr * Here are a few useful functions. We could have done these as macros,
213 1.1 gwr * but since we have the inline facility, it makes sense to use that
214 1.1 gwr * instead.
215 1.1 gwr */
216 1.1 gwr static inline void
217 1.3 gwr ie_setup_config(cmd, promiscuous, manchester)
218 1.1 gwr volatile struct ie_config_cmd *cmd;
219 1.3 gwr int promiscuous, manchester;
220 1.1 gwr {
221 1.1 gwr
222 1.1 gwr /*
223 1.3 gwr * these are all char's so no need to byte-swap
224 1.1 gwr */
225 1.1 gwr cmd->ie_config_count = 0x0c;
226 1.1 gwr cmd->ie_fifo = 8;
227 1.1 gwr cmd->ie_save_bad = 0x40;
228 1.1 gwr cmd->ie_addr_len = 0x2e;
229 1.1 gwr cmd->ie_priority = 0;
230 1.1 gwr cmd->ie_ifs = 0x60;
231 1.1 gwr cmd->ie_slot_low = 0;
232 1.1 gwr cmd->ie_slot_high = 0xf2;
233 1.3 gwr cmd->ie_promisc = !!promiscuous | manchester << 2;
234 1.1 gwr cmd->ie_crs_cdt = 0;
235 1.1 gwr cmd->ie_min_len = 64;
236 1.1 gwr cmd->ie_junk = 0xff;
237 1.1 gwr }
238 1.1 gwr
239 1.1 gwr static inline caddr_t
240 1.1 gwr Align(ptr)
241 1.1 gwr caddr_t ptr;
242 1.1 gwr {
243 1.1 gwr u_long l = (u_long)ptr;
244 1.1 gwr
245 1.1 gwr l = (l + 3) & ~3L;
246 1.1 gwr return (caddr_t)l;
247 1.1 gwr }
248 1.1 gwr
249 1.1 gwr static inline void
250 1.1 gwr ie_ack(sc, mask)
251 1.1 gwr struct ie_softc *sc;
252 1.1 gwr u_int mask;
253 1.1 gwr {
254 1.1 gwr volatile struct ie_sys_ctl_block *scb = sc->scb;
255 1.1 gwr
256 1.1 gwr command_and_wait(sc, scb->ie_status & mask, 0, 0);
257 1.1 gwr }
258 1.1 gwr
259 1.1 gwr
260 1.1 gwr /*
261 1.1 gwr * Taken almost exactly from Bill's if_is.c,
262 1.1 gwr * then modified beyond recognition...
263 1.1 gwr */
264 1.1 gwr void
265 1.9 gwr ie_attach(sc)
266 1.9 gwr struct ie_softc *sc;
267 1.1 gwr {
268 1.1 gwr struct ifnet *ifp = &sc->sc_if;
269 1.9 gwr int off;
270 1.1 gwr
271 1.9 gwr /* MD code has done its part before calling this. */
272 1.14 christos printf(" hwaddr %s\n", ether_sprintf(sc->sc_addr));
273 1.1 gwr
274 1.9 gwr /* Allocate from end of buffer space for ISCP, SCB */
275 1.9 gwr off = sc->buf_area_sz;
276 1.9 gwr off &= ~3;
277 1.9 gwr
278 1.9 gwr /* Space for ISCP */
279 1.9 gwr off -= sizeof(*sc->iscp);
280 1.9 gwr sc->iscp = (volatile void *) (sc->buf_area + off);
281 1.9 gwr
282 1.9 gwr /* Space for SCB */
283 1.9 gwr off -= sizeof(*sc->scb);
284 1.9 gwr sc->scb = (volatile void *) (sc->buf_area + off);
285 1.9 gwr
286 1.9 gwr /* Remainder is for buffers, etc. */
287 1.9 gwr sc->buf_area_sz = off;
288 1.9 gwr
289 1.1 gwr /*
290 1.9 gwr * Setup RAM for transmit/receive
291 1.1 gwr */
292 1.1 gwr if (ie_setupram(sc) == 0) {
293 1.14 christos printf(": RAM CONFIG FAILED!\n");
294 1.1 gwr /* XXX should reclaim resources? */
295 1.1 gwr return;
296 1.1 gwr }
297 1.1 gwr
298 1.1 gwr /*
299 1.1 gwr * Initialize and attach S/W interface
300 1.1 gwr */
301 1.11 thorpej bcopy(sc->sc_dev.dv_xname, ifp->if_xname, IFNAMSIZ);
302 1.11 thorpej ifp->if_softc = sc;
303 1.1 gwr ifp->if_start = iestart;
304 1.1 gwr ifp->if_ioctl = ieioctl;
305 1.1 gwr ifp->if_watchdog = iewatchdog;
306 1.5 mycroft ifp->if_flags =
307 1.5 mycroft IFF_BROADCAST | IFF_SIMPLEX | IFF_NOTRAILERS | IFF_MULTICAST;
308 1.1 gwr
309 1.1 gwr /* Attach the interface. */
310 1.1 gwr if_attach(ifp);
311 1.1 gwr ether_ifattach(ifp);
312 1.1 gwr #if NBPFILTER > 0
313 1.5 mycroft bpfattach(&ifp->if_bpf, ifp, DLT_EN10MB, sizeof(struct ether_header));
314 1.1 gwr #endif
315 1.1 gwr }
316 1.1 gwr
317 1.1 gwr /*
318 1.1 gwr * Device timeout/watchdog routine. Entered if the device neglects to
319 1.1 gwr * generate an interrupt after a transmit has been started on it.
320 1.1 gwr */
321 1.4 gwr void
322 1.11 thorpej iewatchdog(ifp)
323 1.11 thorpej struct ifnet *ifp;
324 1.1 gwr {
325 1.12 thorpej struct ie_softc *sc = ifp->if_softc;
326 1.1 gwr
327 1.1 gwr log(LOG_ERR, "%s: device timeout\n", sc->sc_dev.dv_xname);
328 1.1 gwr ++sc->sc_arpcom.ac_if.if_oerrors;
329 1.1 gwr
330 1.1 gwr iereset(sc);
331 1.1 gwr }
332 1.1 gwr
333 1.1 gwr /*
334 1.1 gwr * What to do upon receipt of an interrupt.
335 1.1 gwr */
336 1.1 gwr int
337 1.1 gwr ie_intr(v)
338 1.1 gwr void *v;
339 1.1 gwr {
340 1.1 gwr struct ie_softc *sc = v;
341 1.1 gwr register u_short status;
342 1.1 gwr
343 1.1 gwr status = sc->scb->ie_status;
344 1.1 gwr
345 1.1 gwr /*
346 1.1 gwr * check for parity error
347 1.1 gwr */
348 1.1 gwr if (sc->hard_type == IE_VME) {
349 1.1 gwr volatile struct ievme *iev = (volatile struct ievme *)sc->sc_reg;
350 1.1 gwr if (iev->status & IEVME_PERR) {
351 1.14 christos printf("%s: parity error (ctrl %x @ %02x%04x)\n",
352 1.1 gwr iev->pectrl, iev->pectrl & IEVME_HADDR,
353 1.1 gwr iev->peaddr);
354 1.1 gwr iev->pectrl = iev->pectrl | IEVME_PARACK;
355 1.1 gwr }
356 1.1 gwr }
357 1.3 gwr
358 1.1 gwr loop:
359 1.3 gwr /* Ack interrupts FIRST in case we receive more during the ISR. */
360 1.3 gwr ie_ack(sc, IE_ST_WHENCE & status);
361 1.3 gwr
362 1.1 gwr if (status & (IE_ST_RECV | IE_ST_RNR)) {
363 1.1 gwr #ifdef IEDEBUG
364 1.1 gwr in_ierint++;
365 1.1 gwr if (sc->sc_debug & IED_RINT)
366 1.14 christos printf("%s: rint\n", sc->sc_dev.dv_xname);
367 1.1 gwr #endif
368 1.1 gwr ierint(sc);
369 1.1 gwr #ifdef IEDEBUG
370 1.1 gwr in_ierint--;
371 1.1 gwr #endif
372 1.1 gwr }
373 1.3 gwr
374 1.1 gwr if (status & IE_ST_DONE) {
375 1.1 gwr #ifdef IEDEBUG
376 1.1 gwr in_ietint++;
377 1.1 gwr if (sc->sc_debug & IED_TINT)
378 1.14 christos printf("%s: tint\n", sc->sc_dev.dv_xname);
379 1.1 gwr #endif
380 1.1 gwr ietint(sc);
381 1.1 gwr #ifdef IEDEBUG
382 1.1 gwr in_ietint--;
383 1.1 gwr #endif
384 1.1 gwr }
385 1.3 gwr
386 1.1 gwr if (status & IE_ST_RNR) {
387 1.14 christos printf("%s: receiver not ready\n", sc->sc_dev.dv_xname);
388 1.3 gwr sc->sc_arpcom.ac_if.if_ierrors++;
389 1.3 gwr iereset(sc);
390 1.1 gwr }
391 1.3 gwr
392 1.1 gwr #ifdef IEDEBUG
393 1.1 gwr if ((status & IE_ST_ALLDONE) && (sc->sc_debug & IED_CNA))
394 1.14 christos printf("%s: cna\n", sc->sc_dev.dv_xname);
395 1.1 gwr #endif
396 1.1 gwr
397 1.1 gwr if ((status = sc->scb->ie_status) & IE_ST_WHENCE)
398 1.1 gwr goto loop;
399 1.3 gwr
400 1.1 gwr return 1;
401 1.1 gwr }
402 1.1 gwr
403 1.1 gwr /*
404 1.1 gwr * Process a received-frame interrupt.
405 1.1 gwr */
406 1.1 gwr void
407 1.1 gwr ierint(sc)
408 1.1 gwr struct ie_softc *sc;
409 1.1 gwr {
410 1.1 gwr volatile struct ie_sys_ctl_block *scb = sc->scb;
411 1.1 gwr int i, status;
412 1.1 gwr static int timesthru = 1024;
413 1.1 gwr
414 1.1 gwr i = sc->rfhead;
415 1.1 gwr for (;;) {
416 1.1 gwr status = sc->rframes[i]->ie_fd_status;
417 1.1 gwr
418 1.1 gwr if ((status & IE_FD_COMPLETE) && (status & IE_FD_OK)) {
419 1.1 gwr sc->sc_arpcom.ac_if.if_ipackets++;
420 1.1 gwr if (!--timesthru) {
421 1.1 gwr sc->sc_arpcom.ac_if.if_ierrors +=
422 1.1 gwr SWAP(scb->ie_err_crc) +
423 1.1 gwr SWAP(scb->ie_err_align) +
424 1.1 gwr SWAP(scb->ie_err_resource) +
425 1.1 gwr SWAP(scb->ie_err_overrun);
426 1.3 gwr scb->ie_err_crc = 0;
427 1.3 gwr scb->ie_err_align = 0;
428 1.1 gwr scb->ie_err_resource = 0;
429 1.1 gwr scb->ie_err_overrun = 0;
430 1.1 gwr timesthru = 1024;
431 1.1 gwr }
432 1.1 gwr ie_readframe(sc, i);
433 1.1 gwr } else {
434 1.1 gwr if ((status & IE_FD_RNR) != 0 &&
435 1.1 gwr (scb->ie_status & IE_RU_READY) == 0) {
436 1.3 gwr sc->rframes[0]->ie_fd_buf_desc =
437 1.3 gwr MK_16(sc->sc_maddr, sc->rbuffs[0]);
438 1.2 gwr scb->ie_recv_list =
439 1.3 gwr MK_16(sc->sc_maddr, sc->rframes[0]);
440 1.1 gwr command_and_wait(sc, IE_RU_START, 0, 0);
441 1.1 gwr }
442 1.1 gwr break;
443 1.1 gwr }
444 1.1 gwr i = (i + 1) % sc->nframes;
445 1.1 gwr }
446 1.1 gwr }
447 1.1 gwr
448 1.1 gwr /*
449 1.1 gwr * Process a command-complete interrupt. These are only generated by
450 1.1 gwr * the transmission of frames. This routine is deceptively simple, since
451 1.1 gwr * most of the real work is done by iestart().
452 1.1 gwr */
453 1.1 gwr void
454 1.1 gwr ietint(sc)
455 1.1 gwr struct ie_softc *sc;
456 1.1 gwr {
457 1.1 gwr int status;
458 1.1 gwr int i;
459 1.1 gwr
460 1.1 gwr sc->sc_arpcom.ac_if.if_timer = 0;
461 1.1 gwr sc->sc_arpcom.ac_if.if_flags &= ~IFF_OACTIVE;
462 1.1 gwr
463 1.3 gwr status = sc->xmit_cmds[sc->xctail]->ie_xmit_status;
464 1.1 gwr
465 1.3 gwr if (!(status & IE_STAT_COMPL) || (status & IE_STAT_BUSY))
466 1.14 christos printf("ietint: command still busy!\n");
467 1.3 gwr
468 1.3 gwr if (status & IE_STAT_OK) {
469 1.3 gwr sc->sc_arpcom.ac_if.if_opackets++;
470 1.3 gwr sc->sc_arpcom.ac_if.if_collisions +=
471 1.3 gwr SWAP(status & IE_XS_MAXCOLL);
472 1.3 gwr } else if (status & IE_STAT_ABORT) {
473 1.14 christos printf("%s: send aborted\n", sc->sc_dev.dv_xname);
474 1.3 gwr sc->sc_arpcom.ac_if.if_oerrors++;
475 1.3 gwr } else if (status & IE_XS_NOCARRIER) {
476 1.14 christos printf("%s: no carrier\n", sc->sc_dev.dv_xname);
477 1.3 gwr sc->sc_arpcom.ac_if.if_oerrors++;
478 1.3 gwr } else if (status & IE_XS_LOSTCTS) {
479 1.14 christos printf("%s: lost CTS\n", sc->sc_dev.dv_xname);
480 1.3 gwr sc->sc_arpcom.ac_if.if_oerrors++;
481 1.3 gwr } else if (status & IE_XS_UNDERRUN) {
482 1.14 christos printf("%s: DMA underrun\n", sc->sc_dev.dv_xname);
483 1.3 gwr sc->sc_arpcom.ac_if.if_oerrors++;
484 1.3 gwr } else if (status & IE_XS_EXCMAX) {
485 1.14 christos printf("%s: too many collisions\n", sc->sc_dev.dv_xname);
486 1.3 gwr sc->sc_arpcom.ac_if.if_collisions += 16;
487 1.3 gwr sc->sc_arpcom.ac_if.if_oerrors++;
488 1.1 gwr }
489 1.1 gwr
490 1.1 gwr /*
491 1.1 gwr * If multicast addresses were added or deleted while we
492 1.1 gwr * were transmitting, mc_reset() set the want_mcsetup flag
493 1.1 gwr * indicating that we should do it.
494 1.1 gwr */
495 1.1 gwr if (sc->want_mcsetup) {
496 1.3 gwr mc_setup(sc, (caddr_t)sc->xmit_cbuffs[sc->xctail]);
497 1.1 gwr sc->want_mcsetup = 0;
498 1.1 gwr }
499 1.3 gwr
500 1.3 gwr /* Done with the buffer. */
501 1.3 gwr sc->xmit_free++;
502 1.3 gwr sc->xmit_busy = 0;
503 1.3 gwr sc->xctail = (sc->xctail + 1) % NTXBUF;
504 1.1 gwr
505 1.1 gwr iestart(&sc->sc_arpcom.ac_if);
506 1.1 gwr }
507 1.1 gwr
508 1.1 gwr /*
509 1.1 gwr * Compare two Ether/802 addresses for equality, inlined and
510 1.1 gwr * unrolled for speed. I'd love to have an inline assembler
511 1.9 gwr * version of this... XXX: Who wanted that? mycroft?
512 1.9 gwr * I wrote one, but the following is just as efficient.
513 1.9 gwr * This expands to 10 short m68k instructions! -gwr
514 1.9 gwr * Note: use this like bcmp()
515 1.1 gwr */
516 1.9 gwr static inline u_short
517 1.9 gwr ether_cmp(one, two)
518 1.1 gwr u_char *one, *two;
519 1.1 gwr {
520 1.9 gwr register u_short *a = (u_short *) one;
521 1.9 gwr register u_short *b = (u_short *) two;
522 1.9 gwr register u_short diff;
523 1.9 gwr
524 1.9 gwr diff = *a++ - *b++;
525 1.9 gwr diff |= *a++ - *b++;
526 1.9 gwr diff |= *a++ - *b++;
527 1.1 gwr
528 1.9 gwr return (diff);
529 1.1 gwr }
530 1.9 gwr #define ether_equal !ether_cmp
531 1.1 gwr
532 1.1 gwr /*
533 1.1 gwr * Check for a valid address. to_bpf is filled in with one of the following:
534 1.1 gwr * 0 -> BPF doesn't get this packet
535 1.1 gwr * 1 -> BPF does get this packet
536 1.1 gwr * 2 -> BPF does get this packet, but we don't
537 1.1 gwr * Return value is true if the packet is for us, and false otherwise.
538 1.1 gwr *
539 1.1 gwr * This routine is a mess, but it's also critical that it be as fast
540 1.1 gwr * as possible. It could be made cleaner if we can assume that the
541 1.1 gwr * only client which will fiddle with IFF_PROMISC is BPF. This is
542 1.1 gwr * probably a good assumption, but we do not make it here. (Yet.)
543 1.1 gwr */
544 1.1 gwr static inline int
545 1.1 gwr check_eh(sc, eh, to_bpf)
546 1.1 gwr struct ie_softc *sc;
547 1.1 gwr struct ether_header *eh;
548 1.1 gwr int *to_bpf;
549 1.1 gwr {
550 1.1 gwr int i;
551 1.1 gwr
552 1.1 gwr switch (sc->promisc) {
553 1.1 gwr case IFF_ALLMULTI:
554 1.1 gwr /*
555 1.1 gwr * Receiving all multicasts, but no unicasts except those
556 1.1 gwr * destined for us.
557 1.1 gwr */
558 1.1 gwr #if NBPFILTER > 0
559 1.3 gwr /* BPF gets this packet if anybody cares */
560 1.1 gwr *to_bpf = (sc->sc_arpcom.ac_if.if_bpf != 0);
561 1.1 gwr #endif
562 1.1 gwr if (eh->ether_dhost[0] & 1)
563 1.1 gwr return 1;
564 1.1 gwr if (ether_equal(eh->ether_dhost, sc->sc_arpcom.ac_enaddr))
565 1.1 gwr return 1;
566 1.1 gwr return 0;
567 1.1 gwr
568 1.1 gwr case IFF_PROMISC:
569 1.1 gwr /*
570 1.1 gwr * Receiving all packets. These need to be passed on to BPF.
571 1.1 gwr */
572 1.1 gwr #if NBPFILTER > 0
573 1.1 gwr *to_bpf = (sc->sc_arpcom.ac_if.if_bpf != 0);
574 1.1 gwr #endif
575 1.1 gwr /* If for us, accept and hand up to BPF */
576 1.1 gwr if (ether_equal(eh->ether_dhost, sc->sc_arpcom.ac_enaddr))
577 1.1 gwr return 1;
578 1.1 gwr
579 1.1 gwr #if NBPFILTER > 0
580 1.1 gwr if (*to_bpf)
581 1.1 gwr *to_bpf = 2; /* we don't need to see it */
582 1.1 gwr #endif
583 1.1 gwr
584 1.1 gwr /*
585 1.1 gwr * Not a multicast, so BPF wants to see it but we don't.
586 1.1 gwr */
587 1.1 gwr if (!(eh->ether_dhost[0] & 1))
588 1.1 gwr return 1;
589 1.1 gwr
590 1.1 gwr /*
591 1.1 gwr * If it's one of our multicast groups, accept it and pass it
592 1.1 gwr * up.
593 1.1 gwr */
594 1.1 gwr for (i = 0; i < sc->mcast_count; i++) {
595 1.1 gwr if (ether_equal(eh->ether_dhost,
596 1.1 gwr (u_char *)&sc->mcast_addrs[i])) {
597 1.1 gwr #if NBPFILTER > 0
598 1.1 gwr if (*to_bpf)
599 1.1 gwr *to_bpf = 1;
600 1.1 gwr #endif
601 1.1 gwr return 1;
602 1.1 gwr }
603 1.1 gwr }
604 1.1 gwr return 1;
605 1.1 gwr
606 1.1 gwr case IFF_ALLMULTI | IFF_PROMISC:
607 1.1 gwr /*
608 1.1 gwr * Acting as a multicast router, and BPF running at the same
609 1.1 gwr * time. Whew! (Hope this is a fast machine...)
610 1.1 gwr */
611 1.1 gwr #if NBPFILTER > 0
612 1.1 gwr *to_bpf = (sc->sc_arpcom.ac_if.if_bpf != 0);
613 1.1 gwr #endif
614 1.1 gwr /* We want to see multicasts. */
615 1.1 gwr if (eh->ether_dhost[0] & 1)
616 1.1 gwr return 1;
617 1.1 gwr
618 1.1 gwr /* We want to see our own packets */
619 1.1 gwr if (ether_equal(eh->ether_dhost, sc->sc_arpcom.ac_enaddr))
620 1.1 gwr return 1;
621 1.1 gwr
622 1.1 gwr /* Anything else goes to BPF but nothing else. */
623 1.1 gwr #if NBPFILTER > 0
624 1.1 gwr if (*to_bpf)
625 1.1 gwr *to_bpf = 2;
626 1.1 gwr #endif
627 1.1 gwr return 1;
628 1.1 gwr
629 1.1 gwr default:
630 1.1 gwr /*
631 1.1 gwr * Only accept unicast packets destined for us, or multicasts
632 1.1 gwr * for groups that we belong to. For now, we assume that the
633 1.1 gwr * '586 will only return packets that we asked it for. This
634 1.1 gwr * isn't strictly true (it uses hashing for the multicast filter),
635 1.1 gwr * but it will do in this case, and we want to get out of here
636 1.1 gwr * as quickly as possible.
637 1.1 gwr */
638 1.1 gwr #if NBPFILTER > 0
639 1.1 gwr *to_bpf = (sc->sc_arpcom.ac_if.if_bpf != 0);
640 1.1 gwr #endif
641 1.1 gwr return 1;
642 1.1 gwr }
643 1.1 gwr return 0;
644 1.1 gwr }
645 1.1 gwr
646 1.1 gwr /*
647 1.1 gwr * We want to isolate the bits that have meaning... This assumes that
648 1.1 gwr * IE_RBUF_SIZE is an even power of two. If somehow the act_len exceeds
649 1.1 gwr * the size of the buffer, then we are screwed anyway.
650 1.1 gwr */
651 1.1 gwr static inline int
652 1.1 gwr ie_buflen(sc, head)
653 1.1 gwr struct ie_softc *sc;
654 1.1 gwr int head;
655 1.1 gwr {
656 1.1 gwr
657 1.1 gwr return (SWAP(sc->rbuffs[head]->ie_rbd_actual)
658 1.1 gwr & (IE_RBUF_SIZE | (IE_RBUF_SIZE - 1)));
659 1.1 gwr }
660 1.1 gwr
661 1.1 gwr static inline int
662 1.1 gwr ie_packet_len(sc)
663 1.1 gwr struct ie_softc *sc;
664 1.1 gwr {
665 1.1 gwr int i;
666 1.1 gwr int head = sc->rbhead;
667 1.1 gwr int acc = 0;
668 1.1 gwr
669 1.1 gwr do {
670 1.1 gwr if (!(sc->rbuffs[sc->rbhead]->ie_rbd_actual & IE_RBD_USED)) {
671 1.1 gwr #ifdef IEDEBUG
672 1.1 gwr print_rbd(sc->rbuffs[sc->rbhead]);
673 1.1 gwr #endif
674 1.1 gwr log(LOG_ERR, "%s: receive descriptors out of sync at %d\n",
675 1.1 gwr sc->sc_dev.dv_xname, sc->rbhead);
676 1.1 gwr iereset(sc);
677 1.1 gwr return -1;
678 1.1 gwr }
679 1.3 gwr
680 1.1 gwr i = sc->rbuffs[head]->ie_rbd_actual & IE_RBD_LAST;
681 1.1 gwr
682 1.1 gwr acc += ie_buflen(sc, head);
683 1.1 gwr head = (head + 1) % sc->nrxbuf;
684 1.1 gwr } while (!i);
685 1.1 gwr
686 1.1 gwr return acc;
687 1.1 gwr }
688 1.1 gwr
689 1.1 gwr /*
690 1.3 gwr * Setup all necessary artifacts for an XMIT command, and then pass the XMIT
691 1.3 gwr * command to the chip to be executed. On the way, if we have a BPF listener
692 1.3 gwr * also give him a copy.
693 1.3 gwr */
694 1.3 gwr inline static void
695 1.3 gwr iexmit(sc)
696 1.3 gwr struct ie_softc *sc;
697 1.3 gwr {
698 1.3 gwr
699 1.3 gwr #if NBPFILTER > 0
700 1.3 gwr /*
701 1.3 gwr * If BPF is listening on this interface, let it see the packet before
702 1.3 gwr * we push it on the wire.
703 1.3 gwr */
704 1.3 gwr if (sc->sc_arpcom.ac_if.if_bpf)
705 1.3 gwr bpf_tap(sc->sc_arpcom.ac_if.if_bpf,
706 1.3 gwr sc->xmit_cbuffs[sc->xctail],
707 1.3 gwr SWAP(sc->xmit_buffs[sc->xctail]->ie_xmit_flags));
708 1.3 gwr #endif
709 1.3 gwr
710 1.3 gwr sc->xmit_buffs[sc->xctail]->ie_xmit_flags |= IE_XMIT_LAST;
711 1.3 gwr sc->xmit_buffs[sc->xctail]->ie_xmit_next = SWAP(0xffff);
712 1.3 gwr ST_24(sc->xmit_buffs[sc->xctail]->ie_xmit_buf,
713 1.3 gwr MK_24(sc->sc_iobase, sc->xmit_cbuffs[sc->xctail]));
714 1.3 gwr
715 1.3 gwr sc->xmit_cmds[sc->xctail]->com.ie_cmd_link = SWAP(0xffff);
716 1.3 gwr sc->xmit_cmds[sc->xctail]->com.ie_cmd_cmd =
717 1.3 gwr IE_CMD_XMIT | IE_CMD_INTR | IE_CMD_LAST;
718 1.3 gwr
719 1.3 gwr sc->xmit_cmds[sc->xctail]->ie_xmit_status = SWAP(0);
720 1.3 gwr sc->xmit_cmds[sc->xctail]->ie_xmit_desc =
721 1.3 gwr MK_16(sc->sc_maddr, sc->xmit_buffs[sc->xctail]);
722 1.3 gwr
723 1.3 gwr sc->scb->ie_command_list =
724 1.3 gwr MK_16(sc->sc_maddr, sc->xmit_cmds[sc->xctail]);
725 1.3 gwr command_and_wait(sc, IE_CU_START, 0, 0);
726 1.3 gwr
727 1.3 gwr sc->xmit_busy = 1;
728 1.3 gwr sc->sc_arpcom.ac_if.if_timer = 5;
729 1.3 gwr }
730 1.3 gwr
731 1.3 gwr /*
732 1.1 gwr * Read data off the interface, and turn it into an mbuf chain.
733 1.1 gwr *
734 1.1 gwr * This code is DRAMATICALLY different from the previous version; this
735 1.1 gwr * version tries to allocate the entire mbuf chain up front, given the
736 1.1 gwr * length of the data available. This enables us to allocate mbuf
737 1.1 gwr * clusters in many situations where before we would have had a long
738 1.1 gwr * chain of partially-full mbufs. This should help to speed up the
739 1.1 gwr * operation considerably. (Provided that it works, of course.)
740 1.1 gwr */
741 1.1 gwr static inline int
742 1.1 gwr ieget(sc, mp, ehp, to_bpf)
743 1.1 gwr struct ie_softc *sc;
744 1.1 gwr struct mbuf **mp;
745 1.1 gwr struct ether_header *ehp;
746 1.1 gwr int *to_bpf;
747 1.1 gwr {
748 1.1 gwr struct mbuf *m, *top, **mymp;
749 1.1 gwr int i;
750 1.1 gwr int offset;
751 1.1 gwr int totlen, resid;
752 1.1 gwr int thismboff;
753 1.1 gwr int head;
754 1.1 gwr
755 1.1 gwr totlen = ie_packet_len(sc);
756 1.1 gwr if (totlen <= 0)
757 1.1 gwr return -1;
758 1.1 gwr
759 1.1 gwr i = sc->rbhead;
760 1.1 gwr
761 1.1 gwr /*
762 1.1 gwr * Snarf the Ethernet header.
763 1.1 gwr */
764 1.3 gwr (sc->sc_bcopy)((caddr_t)sc->cbuffs[i], (caddr_t)ehp, sizeof *ehp);
765 1.1 gwr
766 1.1 gwr /*
767 1.1 gwr * As quickly as possible, check if this packet is for us.
768 1.1 gwr * If not, don't waste a single cycle copying the rest of the
769 1.1 gwr * packet in.
770 1.1 gwr * This is only a consideration when FILTER is defined; i.e., when
771 1.1 gwr * we are either running BPF or doing multicasting.
772 1.1 gwr */
773 1.1 gwr if (!check_eh(sc, ehp, to_bpf)) {
774 1.1 gwr ie_drop_packet_buffer(sc);
775 1.3 gwr /* just this case, it's not an error */
776 1.3 gwr sc->sc_arpcom.ac_if.if_ierrors--;
777 1.1 gwr return -1;
778 1.1 gwr }
779 1.1 gwr totlen -= (offset = sizeof *ehp);
780 1.1 gwr
781 1.1 gwr MGETHDR(*mp, M_DONTWAIT, MT_DATA);
782 1.1 gwr if (!*mp) {
783 1.1 gwr ie_drop_packet_buffer(sc);
784 1.1 gwr return -1;
785 1.1 gwr }
786 1.3 gwr
787 1.1 gwr m = *mp;
788 1.1 gwr m->m_pkthdr.rcvif = &sc->sc_arpcom.ac_if;
789 1.1 gwr m->m_len = MHLEN;
790 1.1 gwr resid = m->m_pkthdr.len = totlen;
791 1.1 gwr top = 0;
792 1.1 gwr mymp = ⊤
793 1.1 gwr
794 1.1 gwr /*
795 1.1 gwr * This loop goes through and allocates mbufs for all the data we will
796 1.1 gwr * be copying in. It does not actually do the copying yet.
797 1.1 gwr */
798 1.1 gwr do { /* while (resid > 0) */
799 1.1 gwr /*
800 1.1 gwr * Try to allocate an mbuf to hold the data that we have. If
801 1.1 gwr * we already allocated one, just get another one and stick it
802 1.1 gwr * on the end (eventually). If we don't already have one, try
803 1.1 gwr * to allocate an mbuf cluster big enough to hold the whole
804 1.1 gwr * packet, if we think it's reasonable, or a single mbuf which
805 1.1 gwr * may or may not be big enough. Got that?
806 1.1 gwr */
807 1.1 gwr if (top) {
808 1.1 gwr MGET(m, M_DONTWAIT, MT_DATA);
809 1.1 gwr if (!m) {
810 1.1 gwr m_freem(top);
811 1.1 gwr ie_drop_packet_buffer(sc);
812 1.1 gwr return -1;
813 1.1 gwr }
814 1.1 gwr m->m_len = MLEN;
815 1.1 gwr }
816 1.3 gwr
817 1.1 gwr if (resid >= MINCLSIZE) {
818 1.1 gwr MCLGET(m, M_DONTWAIT);
819 1.1 gwr if (m->m_flags & M_EXT)
820 1.1 gwr m->m_len = min(resid, MCLBYTES);
821 1.1 gwr } else {
822 1.1 gwr if (resid < m->m_len) {
823 1.1 gwr if (!top && resid + max_linkhdr <= m->m_len)
824 1.1 gwr m->m_data += max_linkhdr;
825 1.1 gwr m->m_len = resid;
826 1.1 gwr }
827 1.1 gwr }
828 1.1 gwr resid -= m->m_len;
829 1.1 gwr *mymp = m;
830 1.1 gwr mymp = &m->m_next;
831 1.1 gwr } while (resid > 0);
832 1.1 gwr
833 1.1 gwr resid = totlen;
834 1.1 gwr m = top;
835 1.1 gwr thismboff = 0;
836 1.1 gwr head = sc->rbhead;
837 1.1 gwr
838 1.1 gwr /*
839 1.1 gwr * Now we take the mbuf chain (hopefully only one mbuf most of the
840 1.1 gwr * time) and stuff the data into it. There are no possible failures
841 1.1 gwr * at or after this point.
842 1.1 gwr */
843 1.1 gwr while (resid > 0) { /* while there's stuff left */
844 1.1 gwr int thislen = ie_buflen(sc, head) - offset;
845 1.1 gwr
846 1.1 gwr /*
847 1.1 gwr * If too much data for the current mbuf, then fill the current one
848 1.1 gwr * up, go to the next one, and try again.
849 1.1 gwr */
850 1.1 gwr if (thislen > m->m_len - thismboff) {
851 1.1 gwr int newlen = m->m_len - thismboff;
852 1.3 gwr (sc->sc_bcopy)((caddr_t)(sc->cbuffs[head] + offset),
853 1.1 gwr mtod(m, caddr_t) + thismboff, (u_int)newlen);
854 1.1 gwr m = m->m_next;
855 1.1 gwr thismboff = 0; /* new mbuf, so no offset */
856 1.1 gwr offset += newlen; /* we are now this far into
857 1.1 gwr * the packet */
858 1.1 gwr resid -= newlen; /* so there is this much left
859 1.1 gwr * to get */
860 1.1 gwr continue;
861 1.1 gwr }
862 1.3 gwr
863 1.1 gwr /*
864 1.1 gwr * If there is more than enough space in the mbuf to hold the
865 1.1 gwr * contents of this buffer, copy everything in, advance pointers,
866 1.1 gwr * and so on.
867 1.1 gwr */
868 1.1 gwr if (thislen < m->m_len - thismboff) {
869 1.3 gwr (sc->sc_bcopy)((caddr_t)(sc->cbuffs[head] + offset),
870 1.1 gwr mtod(m, caddr_t) + thismboff, (u_int)thislen);
871 1.1 gwr thismboff += thislen; /* we are this far into the
872 1.1 gwr * mbuf */
873 1.1 gwr resid -= thislen; /* and this much is left */
874 1.1 gwr goto nextbuf;
875 1.1 gwr }
876 1.3 gwr
877 1.1 gwr /*
878 1.1 gwr * Otherwise, there is exactly enough space to put this buffer's
879 1.1 gwr * contents into the current mbuf. Do the combination of the above
880 1.1 gwr * actions.
881 1.1 gwr */
882 1.3 gwr (sc->sc_bcopy)((caddr_t)(sc->cbuffs[head] + offset),
883 1.1 gwr mtod(m, caddr_t) + thismboff, (u_int)thislen);
884 1.1 gwr m = m->m_next;
885 1.1 gwr thismboff = 0; /* new mbuf, start at the beginning */
886 1.1 gwr resid -= thislen; /* and we are this far through */
887 1.1 gwr
888 1.1 gwr /*
889 1.1 gwr * Advance all the pointers. We can get here from either of the
890 1.1 gwr * last two cases, but never the first.
891 1.1 gwr */
892 1.3 gwr nextbuf:
893 1.1 gwr offset = 0;
894 1.1 gwr sc->rbuffs[head]->ie_rbd_actual = SWAP(0);
895 1.1 gwr sc->rbuffs[head]->ie_rbd_length |= IE_RBD_LAST;
896 1.1 gwr sc->rbhead = head = (head + 1) % sc->nrxbuf;
897 1.1 gwr sc->rbuffs[sc->rbtail]->ie_rbd_length &= ~IE_RBD_LAST;
898 1.1 gwr sc->rbtail = (sc->rbtail + 1) % sc->nrxbuf;
899 1.1 gwr }
900 1.1 gwr
901 1.1 gwr /*
902 1.1 gwr * Unless something changed strangely while we were doing the copy,
903 1.1 gwr * we have now copied everything in from the shared memory.
904 1.1 gwr * This means that we are done.
905 1.1 gwr */
906 1.1 gwr return 0;
907 1.1 gwr }
908 1.1 gwr
909 1.1 gwr /*
910 1.1 gwr * Read frame NUM from unit UNIT (pre-cached as IE).
911 1.1 gwr *
912 1.1 gwr * This routine reads the RFD at NUM, and copies in the buffers from
913 1.1 gwr * the list of RBD, then rotates the RBD and RFD lists so that the receiver
914 1.1 gwr * doesn't start complaining. Trailers are DROPPED---there's no point
915 1.1 gwr * in wasting time on confusing code to deal with them. Hopefully,
916 1.1 gwr * this machine will never ARP for trailers anyway.
917 1.1 gwr */
918 1.1 gwr static void
919 1.1 gwr ie_readframe(sc, num)
920 1.1 gwr struct ie_softc *sc;
921 1.1 gwr int num; /* frame number to read */
922 1.1 gwr {
923 1.3 gwr int status;
924 1.1 gwr struct mbuf *m = 0;
925 1.1 gwr struct ether_header eh;
926 1.1 gwr #if NBPFILTER > 0
927 1.1 gwr int bpf_gets_it = 0;
928 1.1 gwr #endif
929 1.1 gwr
930 1.3 gwr status = sc->rframes[num]->ie_fd_status;
931 1.1 gwr
932 1.1 gwr /* Immediately advance the RFD list, since we have copied ours now. */
933 1.1 gwr sc->rframes[num]->ie_fd_status = SWAP(0);
934 1.1 gwr sc->rframes[num]->ie_fd_last |= IE_FD_LAST;
935 1.1 gwr sc->rframes[sc->rftail]->ie_fd_last &= ~IE_FD_LAST;
936 1.1 gwr sc->rftail = (sc->rftail + 1) % sc->nframes;
937 1.1 gwr sc->rfhead = (sc->rfhead + 1) % sc->nframes;
938 1.1 gwr
939 1.3 gwr if (status & IE_FD_OK) {
940 1.1 gwr #if NBPFILTER > 0
941 1.1 gwr if (ieget(sc, &m, &eh, &bpf_gets_it)) {
942 1.1 gwr #else
943 1.1 gwr if (ieget(sc, &m, &eh, 0)) {
944 1.1 gwr #endif
945 1.1 gwr sc->sc_arpcom.ac_if.if_ierrors++;
946 1.1 gwr return;
947 1.1 gwr }
948 1.1 gwr }
949 1.3 gwr
950 1.1 gwr #ifdef IEDEBUG
951 1.1 gwr if (sc->sc_debug & IED_READFRAME)
952 1.14 christos printf("%s: frame from ether %s type %x\n", sc->sc_dev.dv_xname,
953 1.1 gwr ether_sprintf(eh.ether_shost), (u_int)eh.ether_type);
954 1.1 gwr #endif
955 1.1 gwr
956 1.1 gwr if (!m)
957 1.1 gwr return;
958 1.1 gwr
959 1.1 gwr if (last_not_for_us) {
960 1.1 gwr m_freem(last_not_for_us);
961 1.1 gwr last_not_for_us = 0;
962 1.1 gwr }
963 1.3 gwr
964 1.1 gwr #if NBPFILTER > 0
965 1.1 gwr /*
966 1.1 gwr * Check for a BPF filter; if so, hand it up.
967 1.1 gwr * Note that we have to stick an extra mbuf up front, because
968 1.1 gwr * bpf_mtap expects to have the ether header at the front.
969 1.1 gwr * It doesn't matter that this results in an ill-formatted mbuf chain,
970 1.1 gwr * since BPF just looks at the data. (It doesn't try to free the mbuf,
971 1.1 gwr * tho' it will make a copy for tcpdump.)
972 1.1 gwr */
973 1.1 gwr if (bpf_gets_it) {
974 1.1 gwr struct mbuf m0;
975 1.1 gwr m0.m_len = sizeof eh;
976 1.1 gwr m0.m_data = (caddr_t)&eh;
977 1.1 gwr m0.m_next = m;
978 1.1 gwr
979 1.1 gwr /* Pass it up */
980 1.1 gwr bpf_mtap(sc->sc_arpcom.ac_if.if_bpf, &m0);
981 1.1 gwr }
982 1.1 gwr /*
983 1.1 gwr * A signal passed up from the filtering code indicating that the
984 1.1 gwr * packet is intended for BPF but not for the protocol machinery.
985 1.1 gwr * We can save a few cycles by not handing it off to them.
986 1.1 gwr */
987 1.1 gwr if (bpf_gets_it == 2) {
988 1.1 gwr last_not_for_us = m;
989 1.1 gwr return;
990 1.1 gwr }
991 1.3 gwr #endif /* NBPFILTER > 0 */
992 1.1 gwr
993 1.1 gwr /*
994 1.1 gwr * In here there used to be code to check destination addresses upon
995 1.1 gwr * receipt of a packet. We have deleted that code, and replaced it
996 1.1 gwr * with code to check the address much earlier in the cycle, before
997 1.1 gwr * copying the data in; this saves us valuable cycles when operating
998 1.1 gwr * as a multicast router or when using BPF.
999 1.1 gwr */
1000 1.1 gwr
1001 1.1 gwr /*
1002 1.1 gwr * Finally pass this packet up to higher layers.
1003 1.1 gwr */
1004 1.1 gwr ether_input(&sc->sc_arpcom.ac_if, &eh, m);
1005 1.1 gwr }
1006 1.1 gwr
1007 1.1 gwr static void
1008 1.1 gwr ie_drop_packet_buffer(sc)
1009 1.1 gwr struct ie_softc *sc;
1010 1.1 gwr {
1011 1.3 gwr int i;
1012 1.1 gwr
1013 1.1 gwr do {
1014 1.1 gwr /*
1015 1.1 gwr * This means we are somehow out of sync. So, we reset the
1016 1.1 gwr * adapter.
1017 1.1 gwr */
1018 1.1 gwr if (!(sc->rbuffs[sc->rbhead]->ie_rbd_actual & IE_RBD_USED)) {
1019 1.1 gwr #ifdef IEDEBUG
1020 1.1 gwr print_rbd(sc->rbuffs[sc->rbhead]);
1021 1.1 gwr #endif
1022 1.1 gwr log(LOG_ERR, "%s: receive descriptors out of sync at %d\n",
1023 1.1 gwr sc->sc_dev.dv_xname, sc->rbhead);
1024 1.1 gwr iereset(sc);
1025 1.1 gwr return;
1026 1.1 gwr }
1027 1.3 gwr
1028 1.1 gwr i = sc->rbuffs[sc->rbhead]->ie_rbd_actual & IE_RBD_LAST;
1029 1.1 gwr
1030 1.1 gwr sc->rbuffs[sc->rbhead]->ie_rbd_length |= IE_RBD_LAST;
1031 1.1 gwr sc->rbuffs[sc->rbhead]->ie_rbd_actual = SWAP(0);
1032 1.1 gwr sc->rbhead = (sc->rbhead + 1) % sc->nrxbuf;
1033 1.1 gwr sc->rbuffs[sc->rbtail]->ie_rbd_length &= ~IE_RBD_LAST;
1034 1.1 gwr sc->rbtail = (sc->rbtail + 1) % sc->nrxbuf;
1035 1.1 gwr } while (!i);
1036 1.1 gwr }
1037 1.1 gwr
1038 1.1 gwr /*
1039 1.1 gwr * Start transmission on an interface.
1040 1.1 gwr */
1041 1.4 gwr void
1042 1.1 gwr iestart(ifp)
1043 1.1 gwr struct ifnet *ifp;
1044 1.1 gwr {
1045 1.11 thorpej struct ie_softc *sc = ifp->if_softc;
1046 1.1 gwr struct mbuf *m0, *m;
1047 1.1 gwr u_char *buffer;
1048 1.1 gwr u_short len;
1049 1.1 gwr
1050 1.3 gwr if ((ifp->if_flags & IFF_RUNNING) == 0)
1051 1.4 gwr return;
1052 1.1 gwr
1053 1.3 gwr if (sc->xmit_free == 0) {
1054 1.3 gwr ifp->if_flags |= IFF_OACTIVE;
1055 1.3 gwr if (!sc->xmit_busy)
1056 1.3 gwr iexmit(sc);
1057 1.4 gwr return;
1058 1.3 gwr }
1059 1.3 gwr
1060 1.1 gwr do {
1061 1.1 gwr IF_DEQUEUE(&sc->sc_arpcom.ac_if.if_snd, m);
1062 1.1 gwr if (!m)
1063 1.1 gwr break;
1064 1.1 gwr
1065 1.1 gwr len = 0;
1066 1.3 gwr buffer = sc->xmit_cbuffs[sc->xchead];
1067 1.1 gwr
1068 1.3 gwr for (m0 = m; m && (len + m->m_len) < IE_TBUF_SIZE; m = m->m_next) {
1069 1.3 gwr (sc->sc_bcopy)(mtod(m, caddr_t), buffer, m->m_len);
1070 1.1 gwr buffer += m->m_len;
1071 1.1 gwr len += m->m_len;
1072 1.1 gwr }
1073 1.3 gwr if (m)
1074 1.14 christos printf("%s: tbuf overflow\n", sc->sc_dev.dv_xname);
1075 1.1 gwr
1076 1.1 gwr m_freem(m0);
1077 1.1 gwr len = max(len, ETHER_MIN_LEN);
1078 1.3 gwr sc->xmit_buffs[sc->xchead]->ie_xmit_flags = SWAP(len);
1079 1.1 gwr
1080 1.3 gwr sc->xmit_free--;
1081 1.3 gwr sc->xchead = (sc->xchead + 1) % NTXBUF;
1082 1.3 gwr } while (sc->xmit_free > 0);
1083 1.3 gwr
1084 1.3 gwr /* If we stuffed any packets into the card's memory, send now. */
1085 1.3 gwr if ((sc->xmit_free < NTXBUF) && (!sc->xmit_busy))
1086 1.3 gwr iexmit(sc);
1087 1.1 gwr
1088 1.4 gwr return;
1089 1.1 gwr }
1090 1.1 gwr
1091 1.1 gwr /*
1092 1.1 gwr * set up IE's ram space
1093 1.1 gwr */
1094 1.1 gwr int
1095 1.1 gwr ie_setupram(sc)
1096 1.1 gwr struct ie_softc *sc;
1097 1.1 gwr {
1098 1.1 gwr volatile struct ie_sys_conf_ptr *scp;
1099 1.1 gwr volatile struct ie_int_sys_conf_ptr *iscp;
1100 1.1 gwr volatile struct ie_sys_ctl_block *scb;
1101 1.1 gwr int s;
1102 1.1 gwr
1103 1.6 mycroft s = splnet();
1104 1.1 gwr
1105 1.1 gwr scp = sc->scp;
1106 1.3 gwr (sc->sc_bzero)((char *) scp, sizeof *scp);
1107 1.1 gwr
1108 1.1 gwr iscp = sc->iscp;
1109 1.3 gwr (sc->sc_bzero)((char *) iscp, sizeof *iscp);
1110 1.1 gwr
1111 1.1 gwr scb = sc->scb;
1112 1.3 gwr (sc->sc_bzero)((char *) scb, sizeof *scb);
1113 1.1 gwr
1114 1.1 gwr scp->ie_bus_use = 0; /* 16-bit */
1115 1.1 gwr ST_24(scp->ie_iscp_ptr, MK_24(sc->sc_iobase, iscp));
1116 1.1 gwr
1117 1.1 gwr iscp->ie_busy = 1; /* ie_busy == char */
1118 1.1 gwr iscp->ie_scb_offset = MK_16(sc->sc_maddr, scb);
1119 1.1 gwr ST_24(iscp->ie_base, MK_24(sc->sc_iobase, sc->sc_maddr));
1120 1.1 gwr
1121 1.1 gwr (sc->reset_586) (sc);
1122 1.1 gwr (sc->chan_attn) (sc);
1123 1.1 gwr
1124 1.1 gwr delay(100); /* wait a while... */
1125 1.1 gwr
1126 1.1 gwr if (iscp->ie_busy) {
1127 1.1 gwr splx(s);
1128 1.1 gwr return 0;
1129 1.1 gwr }
1130 1.1 gwr /*
1131 1.1 gwr * Acknowledge any interrupts we may have caused...
1132 1.1 gwr */
1133 1.1 gwr ie_ack(sc, IE_ST_WHENCE);
1134 1.1 gwr splx(s);
1135 1.1 gwr
1136 1.1 gwr return 1;
1137 1.1 gwr }
1138 1.1 gwr
1139 1.1 gwr void
1140 1.1 gwr iereset(sc)
1141 1.1 gwr struct ie_softc *sc;
1142 1.1 gwr {
1143 1.6 mycroft int s = splnet();
1144 1.1 gwr
1145 1.14 christos printf("%s: reset\n", sc->sc_dev.dv_xname);
1146 1.3 gwr
1147 1.3 gwr /* Clear OACTIVE in case we're called from watchdog (frozen xmit). */
1148 1.3 gwr sc->sc_arpcom.ac_if.if_flags &= ~(IFF_UP | IFF_OACTIVE);
1149 1.1 gwr ieioctl(&sc->sc_arpcom.ac_if, SIOCSIFFLAGS, 0);
1150 1.1 gwr
1151 1.1 gwr /*
1152 1.1 gwr * Stop i82586 dead in its tracks.
1153 1.1 gwr */
1154 1.1 gwr if (command_and_wait(sc, IE_RU_ABORT | IE_CU_ABORT, 0, 0))
1155 1.14 christos printf("%s: abort commands timed out\n", sc->sc_dev.dv_xname);
1156 1.1 gwr
1157 1.1 gwr if (command_and_wait(sc, IE_RU_DISABLE | IE_CU_STOP, 0, 0))
1158 1.14 christos printf("%s: disable commands timed out\n", sc->sc_dev.dv_xname);
1159 1.1 gwr
1160 1.3 gwr #ifdef notdef
1161 1.3 gwr if (!check_ie_present(sc, sc->sc_maddr, sc->sc_msize))
1162 1.3 gwr panic("ie disappeared!\n");
1163 1.3 gwr #endif
1164 1.3 gwr
1165 1.1 gwr sc->sc_arpcom.ac_if.if_flags |= IFF_UP;
1166 1.1 gwr ieioctl(&sc->sc_arpcom.ac_if, SIOCSIFFLAGS, 0);
1167 1.1 gwr
1168 1.1 gwr splx(s);
1169 1.1 gwr }
1170 1.1 gwr
1171 1.1 gwr /*
1172 1.1 gwr * This is called if we time out.
1173 1.1 gwr */
1174 1.1 gwr static void
1175 1.1 gwr chan_attn_timeout(rock)
1176 1.1 gwr caddr_t rock;
1177 1.1 gwr {
1178 1.1 gwr *(int *) rock = 1;
1179 1.1 gwr }
1180 1.1 gwr
1181 1.1 gwr /*
1182 1.1 gwr * Send a command to the controller and wait for it to either
1183 1.1 gwr * complete or be accepted, depending on the command. If the
1184 1.1 gwr * command pointer is null, then pretend that the command is
1185 1.1 gwr * not an action command. If the command pointer is not null,
1186 1.1 gwr * and the command is an action command, wait for
1187 1.1 gwr * ((volatile struct ie_cmd_common *)pcmd)->ie_cmd_status & MASK
1188 1.1 gwr * to become true.
1189 1.1 gwr */
1190 1.1 gwr static int
1191 1.1 gwr command_and_wait(sc, cmd, pcmd, mask)
1192 1.1 gwr struct ie_softc *sc;
1193 1.1 gwr int cmd;
1194 1.1 gwr volatile void *pcmd;
1195 1.1 gwr int mask;
1196 1.1 gwr {
1197 1.1 gwr volatile struct ie_cmd_common *cc = pcmd;
1198 1.1 gwr volatile struct ie_sys_ctl_block *scb = sc->scb;
1199 1.1 gwr volatile int timedout = 0;
1200 1.1 gwr extern int hz;
1201 1.1 gwr
1202 1.1 gwr scb->ie_command = (u_short)cmd;
1203 1.1 gwr
1204 1.1 gwr if (IE_ACTION_COMMAND(cmd) && pcmd) {
1205 1.3 gwr (sc->chan_attn)(sc);
1206 1.1 gwr
1207 1.1 gwr /*
1208 1.1 gwr * XXX
1209 1.1 gwr * I don't think this timeout works on suns.
1210 1.6 mycroft * we are at splnet() in the loop, and the timeout
1211 1.1 gwr * stuff runs at software spl (so it is masked off?).
1212 1.1 gwr */
1213 1.1 gwr
1214 1.1 gwr /*
1215 1.1 gwr * According to the packet driver, the minimum timeout should be
1216 1.1 gwr * .369 seconds, which we round up to .4.
1217 1.1 gwr */
1218 1.1 gwr
1219 1.1 gwr timeout(chan_attn_timeout, (caddr_t)&timedout, 2 * hz / 5);
1220 1.1 gwr
1221 1.1 gwr /*
1222 1.1 gwr * Now spin-lock waiting for status. This is not a very nice
1223 1.1 gwr * thing to do, but I haven't figured out how, or indeed if, we
1224 1.1 gwr * can put the process waiting for action to sleep. (We may
1225 1.1 gwr * be getting called through some other timeout running in the
1226 1.1 gwr * kernel.)
1227 1.1 gwr */
1228 1.1 gwr for (;;)
1229 1.1 gwr if ((cc->ie_cmd_status & mask) || timedout)
1230 1.1 gwr break;
1231 1.1 gwr
1232 1.1 gwr untimeout(chan_attn_timeout, (caddr_t)&timedout);
1233 1.1 gwr
1234 1.1 gwr return timedout;
1235 1.1 gwr } else {
1236 1.1 gwr /*
1237 1.1 gwr * Otherwise, just wait for the command to be accepted.
1238 1.1 gwr */
1239 1.3 gwr (sc->chan_attn)(sc);
1240 1.1 gwr
1241 1.3 gwr while (scb->ie_command)
1242 1.3 gwr ; /* spin lock */
1243 1.1 gwr
1244 1.1 gwr return 0;
1245 1.1 gwr }
1246 1.1 gwr }
1247 1.1 gwr
1248 1.1 gwr /*
1249 1.1 gwr * Run the time-domain reflectometer...
1250 1.1 gwr */
1251 1.3 gwr static void
1252 1.1 gwr run_tdr(sc, cmd)
1253 1.1 gwr struct ie_softc *sc;
1254 1.1 gwr struct ie_tdr_cmd *cmd;
1255 1.1 gwr {
1256 1.3 gwr int result;
1257 1.1 gwr
1258 1.1 gwr cmd->com.ie_cmd_status = SWAP(0);
1259 1.1 gwr cmd->com.ie_cmd_cmd = IE_CMD_TDR | IE_CMD_LAST;
1260 1.1 gwr cmd->com.ie_cmd_link = SWAP(0xffff);
1261 1.1 gwr
1262 1.2 gwr sc->scb->ie_command_list = MK_16(sc->sc_maddr, cmd);
1263 1.1 gwr cmd->ie_tdr_time = SWAP(0);
1264 1.1 gwr
1265 1.1 gwr if (command_and_wait(sc, IE_CU_START, cmd, IE_STAT_COMPL) ||
1266 1.1 gwr !(cmd->com.ie_cmd_status & IE_STAT_OK))
1267 1.1 gwr result = 0x10000; /* XXX */
1268 1.1 gwr else
1269 1.1 gwr result = cmd->ie_tdr_time;
1270 1.1 gwr
1271 1.1 gwr ie_ack(sc, IE_ST_WHENCE);
1272 1.1 gwr
1273 1.1 gwr if (result & IE_TDR_SUCCESS)
1274 1.1 gwr return;
1275 1.1 gwr
1276 1.1 gwr if (result & 0x10000) {
1277 1.14 christos printf("%s: TDR command failed\n", sc->sc_dev.dv_xname);
1278 1.1 gwr } else if (result & IE_TDR_XCVR) {
1279 1.14 christos printf("%s: transceiver problem\n", sc->sc_dev.dv_xname);
1280 1.1 gwr } else if (result & IE_TDR_OPEN) {
1281 1.14 christos printf("%s: TDR detected an open %d clocks away\n",
1282 1.1 gwr sc->sc_dev.dv_xname, SWAP(result & IE_TDR_TIME));
1283 1.1 gwr } else if (result & IE_TDR_SHORT) {
1284 1.14 christos printf("%s: TDR detected a short %d clocks away\n",
1285 1.1 gwr sc->sc_dev.dv_xname, SWAP(result & IE_TDR_TIME));
1286 1.1 gwr } else {
1287 1.14 christos printf("%s: TDR returned unknown status %x\n",
1288 1.1 gwr sc->sc_dev.dv_xname, result);
1289 1.1 gwr }
1290 1.1 gwr }
1291 1.1 gwr
1292 1.1 gwr /*
1293 1.1 gwr * setup_bufs: set up the buffers
1294 1.1 gwr *
1295 1.1 gwr * we have a block of KVA at sc->buf_area which is of size sc->buf_area_sz.
1296 1.1 gwr * this is to be used for the buffers. the chip indexs its control data
1297 1.1 gwr * structures with 16 bit offsets, and it indexes actual buffers with
1298 1.1 gwr * 24 bit addresses. so we should allocate control buffers first so that
1299 1.1 gwr * we don't overflow the 16 bit offset field. The number of transmit
1300 1.1 gwr * buffers is fixed at compile time.
1301 1.1 gwr *
1302 1.1 gwr * note: this function was written to be easy to understand, rather than
1303 1.1 gwr * highly efficient (it isn't in the critical path).
1304 1.1 gwr */
1305 1.1 gwr static void
1306 1.1 gwr setup_bufs(sc)
1307 1.1 gwr struct ie_softc *sc;
1308 1.1 gwr {
1309 1.1 gwr caddr_t ptr = sc->buf_area; /* memory pool */
1310 1.1 gwr volatile struct ie_recv_frame_desc *rfd = (void *) ptr;
1311 1.1 gwr volatile struct ie_recv_buf_desc *rbd;
1312 1.1 gwr int n, r;
1313 1.1 gwr
1314 1.1 gwr /*
1315 1.1 gwr * step 0: zero memory and figure out how many recv buffers and
1316 1.1 gwr * frames we can have. XXX CURRENTLY HARDWIRED AT MAX
1317 1.1 gwr */
1318 1.3 gwr (sc->sc_bzero)(ptr, sc->buf_area_sz);
1319 1.1 gwr ptr = Align(ptr); /* set alignment and stick with it */
1320 1.1 gwr
1321 1.1 gwr n = (int)Align(sizeof(struct ie_xmit_cmd)) +
1322 1.1 gwr (int)Align(sizeof(struct ie_xmit_buf)) + IE_TBUF_SIZE;
1323 1.1 gwr n *= NTXBUF; /* n = total size of xmit area */
1324 1.1 gwr
1325 1.1 gwr n = sc->buf_area_sz - n;/* n = free space for recv stuff */
1326 1.1 gwr
1327 1.1 gwr r = (int)Align(sizeof(struct ie_recv_frame_desc)) +
1328 1.1 gwr (((int)Align(sizeof(struct ie_recv_buf_desc)) + IE_RBUF_SIZE) * B_PER_F);
1329 1.1 gwr
1330 1.1 gwr /* r = size of one R frame */
1331 1.1 gwr
1332 1.1 gwr sc->nframes = n / r;
1333 1.1 gwr if (sc->nframes <= 0)
1334 1.1 gwr panic("ie: bogus buffer calc\n");
1335 1.1 gwr if (sc->nframes > MXFRAMES)
1336 1.1 gwr sc->nframes = MXFRAMES;
1337 1.1 gwr
1338 1.1 gwr sc->nrxbuf = sc->nframes * B_PER_F;
1339 1.1 gwr
1340 1.1 gwr #ifdef IEDEBUG
1341 1.14 christos printf("IEDEBUG: %d frames %d bufs\n", sc->nframes, sc->nrxbuf);
1342 1.1 gwr #endif
1343 1.1 gwr
1344 1.1 gwr /*
1345 1.1 gwr * step 1a: lay out and zero frame data structures for transmit and recv
1346 1.1 gwr */
1347 1.1 gwr for (n = 0; n < NTXBUF; n++) {
1348 1.1 gwr sc->xmit_cmds[n] = (volatile struct ie_xmit_cmd *) ptr;
1349 1.1 gwr ptr = Align(ptr + sizeof(struct ie_xmit_cmd));
1350 1.1 gwr }
1351 1.1 gwr
1352 1.1 gwr for (n = 0; n < sc->nframes; n++) {
1353 1.1 gwr sc->rframes[n] = (volatile struct ie_recv_frame_desc *) ptr;
1354 1.1 gwr ptr = Align(ptr + sizeof(struct ie_recv_frame_desc));
1355 1.1 gwr }
1356 1.1 gwr
1357 1.1 gwr /*
1358 1.1 gwr * step 1b: link together the recv frames and set EOL on last one
1359 1.1 gwr */
1360 1.1 gwr for (n = 0; n < sc->nframes; n++) {
1361 1.1 gwr sc->rframes[n]->ie_fd_next =
1362 1.2 gwr MK_16(sc->sc_maddr, sc->rframes[(n + 1) % sc->nframes]);
1363 1.1 gwr }
1364 1.1 gwr sc->rframes[sc->nframes - 1]->ie_fd_last |= IE_FD_LAST;
1365 1.1 gwr
1366 1.1 gwr /*
1367 1.1 gwr * step 2a: lay out and zero frame buffer structures for xmit and recv
1368 1.1 gwr */
1369 1.1 gwr for (n = 0; n < NTXBUF; n++) {
1370 1.1 gwr sc->xmit_buffs[n] = (volatile struct ie_xmit_buf *) ptr;
1371 1.1 gwr ptr = Align(ptr + sizeof(struct ie_xmit_buf));
1372 1.1 gwr }
1373 1.1 gwr
1374 1.1 gwr for (n = 0; n < sc->nrxbuf; n++) {
1375 1.1 gwr sc->rbuffs[n] = (volatile struct ie_recv_buf_desc *) ptr;
1376 1.1 gwr ptr = Align(ptr + sizeof(struct ie_recv_buf_desc));
1377 1.1 gwr }
1378 1.1 gwr
1379 1.1 gwr /*
1380 1.1 gwr * step 2b: link together recv bufs and set EOL on last one
1381 1.1 gwr */
1382 1.1 gwr for (n = 0; n < sc->nrxbuf; n++) {
1383 1.1 gwr sc->rbuffs[n]->ie_rbd_next =
1384 1.2 gwr MK_16(sc->sc_maddr, sc->rbuffs[(n + 1) % sc->nrxbuf]);
1385 1.1 gwr }
1386 1.1 gwr sc->rbuffs[sc->nrxbuf - 1]->ie_rbd_length |= IE_RBD_LAST;
1387 1.1 gwr
1388 1.1 gwr /*
1389 1.1 gwr * step 3: allocate the actual data buffers for xmit and recv
1390 1.1 gwr * recv buffer gets linked into recv_buf_desc list here
1391 1.1 gwr */
1392 1.1 gwr for (n = 0; n < NTXBUF; n++) {
1393 1.1 gwr sc->xmit_cbuffs[n] = (u_char *) ptr;
1394 1.1 gwr ptr = Align(ptr + IE_TBUF_SIZE);
1395 1.1 gwr }
1396 1.1 gwr
1397 1.3 gwr /* Pointers to last packet sent and next available transmit buffer. */
1398 1.3 gwr sc->xchead = sc->xctail = 0;
1399 1.3 gwr
1400 1.3 gwr /* Clear transmit-busy flag and set number of free transmit buffers. */
1401 1.3 gwr sc->xmit_busy = 0;
1402 1.3 gwr sc->xmit_free = NTXBUF;
1403 1.3 gwr
1404 1.1 gwr for (n = 0; n < sc->nrxbuf; n++) {
1405 1.1 gwr sc->cbuffs[n] = (char *) ptr; /* XXX why char vs uchar? */
1406 1.1 gwr sc->rbuffs[n]->ie_rbd_length = SWAP(IE_RBUF_SIZE);
1407 1.2 gwr ST_24(sc->rbuffs[n]->ie_rbd_buffer, MK_24(sc->sc_iobase, ptr));
1408 1.1 gwr ptr = Align(ptr + IE_RBUF_SIZE);
1409 1.1 gwr }
1410 1.1 gwr
1411 1.1 gwr /*
1412 1.1 gwr * step 4: set the head and tail pointers on receive to keep track of
1413 1.1 gwr * the order in which RFDs and RBDs are used. link in recv frames
1414 1.1 gwr * and buffer into the scb.
1415 1.1 gwr */
1416 1.1 gwr
1417 1.1 gwr sc->rfhead = 0;
1418 1.1 gwr sc->rftail = sc->nframes - 1;
1419 1.1 gwr sc->rbhead = 0;
1420 1.1 gwr sc->rbtail = sc->nrxbuf - 1;
1421 1.1 gwr
1422 1.2 gwr sc->scb->ie_recv_list = MK_16(sc->sc_maddr, sc->rframes[0]);
1423 1.2 gwr sc->rframes[0]->ie_fd_buf_desc = MK_16(sc->sc_maddr, sc->rbuffs[0]);
1424 1.1 gwr
1425 1.1 gwr #ifdef IEDEBUG
1426 1.14 christos printf("IE_DEBUG: reserved %d bytes\n", ptr - sc->buf_area);
1427 1.1 gwr #endif
1428 1.1 gwr }
1429 1.1 gwr
1430 1.1 gwr /*
1431 1.1 gwr * Run the multicast setup command.
1432 1.6 mycroft * Called at splnet().
1433 1.1 gwr */
1434 1.1 gwr static int
1435 1.1 gwr mc_setup(sc, ptr)
1436 1.1 gwr struct ie_softc *sc;
1437 1.3 gwr void *ptr;
1438 1.1 gwr {
1439 1.3 gwr volatile struct ie_mcast_cmd *cmd = ptr;
1440 1.1 gwr
1441 1.1 gwr cmd->com.ie_cmd_status = SWAP(0);
1442 1.1 gwr cmd->com.ie_cmd_cmd = IE_CMD_MCAST | IE_CMD_LAST;
1443 1.1 gwr cmd->com.ie_cmd_link = SWAP(0xffff);
1444 1.1 gwr
1445 1.3 gwr (sc->sc_bcopy)((caddr_t)sc->mcast_addrs, (caddr_t)cmd->ie_mcast_addrs,
1446 1.1 gwr sc->mcast_count * sizeof *sc->mcast_addrs);
1447 1.1 gwr
1448 1.1 gwr cmd->ie_mcast_bytes =
1449 1.3 gwr SWAP(sc->mcast_count * ETHER_ADDR_LEN); /* grrr... */
1450 1.1 gwr
1451 1.2 gwr sc->scb->ie_command_list = MK_16(sc->sc_maddr, cmd);
1452 1.1 gwr if (command_and_wait(sc, IE_CU_START, cmd, IE_STAT_COMPL) ||
1453 1.1 gwr !(cmd->com.ie_cmd_status & IE_STAT_OK)) {
1454 1.14 christos printf("%s: multicast address setup command failed\n",
1455 1.1 gwr sc->sc_dev.dv_xname);
1456 1.1 gwr return 0;
1457 1.1 gwr }
1458 1.1 gwr return 1;
1459 1.1 gwr }
1460 1.1 gwr
1461 1.1 gwr /*
1462 1.1 gwr * This routine inits the ie.
1463 1.1 gwr * This includes executing the CONFIGURE, IA-SETUP, and MC-SETUP commands,
1464 1.1 gwr * starting the receiver unit, and clearing interrupts.
1465 1.1 gwr *
1466 1.6 mycroft * THIS ROUTINE MUST BE CALLED AT splnet() OR HIGHER.
1467 1.1 gwr */
1468 1.3 gwr int
1469 1.1 gwr ieinit(sc)
1470 1.1 gwr struct ie_softc *sc;
1471 1.1 gwr {
1472 1.1 gwr volatile struct ie_sys_ctl_block *scb = sc->scb;
1473 1.3 gwr void *ptr;
1474 1.1 gwr int n;
1475 1.1 gwr
1476 1.1 gwr ptr = sc->buf_area;
1477 1.1 gwr
1478 1.1 gwr /*
1479 1.1 gwr * Send the configure command first.
1480 1.1 gwr */
1481 1.1 gwr {
1482 1.3 gwr volatile struct ie_config_cmd *cmd = ptr;
1483 1.1 gwr
1484 1.3 gwr scb->ie_command_list = MK_16(sc->sc_maddr, cmd);
1485 1.1 gwr cmd->com.ie_cmd_status = SWAP(0);
1486 1.1 gwr cmd->com.ie_cmd_cmd = IE_CMD_CONFIG | IE_CMD_LAST;
1487 1.1 gwr cmd->com.ie_cmd_link = SWAP(0xffff);
1488 1.1 gwr
1489 1.3 gwr ie_setup_config(cmd, sc->promisc, 0);
1490 1.1 gwr
1491 1.1 gwr if (command_and_wait(sc, IE_CU_START, cmd, IE_STAT_COMPL) ||
1492 1.1 gwr !(cmd->com.ie_cmd_status & IE_STAT_OK)) {
1493 1.14 christos printf("%s: configure command failed\n",
1494 1.1 gwr sc->sc_dev.dv_xname);
1495 1.1 gwr return 0;
1496 1.1 gwr }
1497 1.1 gwr }
1498 1.3 gwr
1499 1.1 gwr /*
1500 1.1 gwr * Now send the Individual Address Setup command.
1501 1.1 gwr */
1502 1.1 gwr {
1503 1.3 gwr volatile struct ie_iasetup_cmd *cmd = ptr;
1504 1.1 gwr
1505 1.3 gwr scb->ie_command_list = MK_16(sc->sc_maddr, cmd);
1506 1.1 gwr cmd->com.ie_cmd_status = SWAP(0);
1507 1.1 gwr cmd->com.ie_cmd_cmd = IE_CMD_IASETUP | IE_CMD_LAST;
1508 1.1 gwr cmd->com.ie_cmd_link = SWAP(0xffff);
1509 1.1 gwr
1510 1.3 gwr (sc->sc_bcopy)(sc->sc_arpcom.ac_enaddr,
1511 1.1 gwr (caddr_t)&cmd->ie_address, sizeof cmd->ie_address);
1512 1.1 gwr
1513 1.1 gwr if (command_and_wait(sc, IE_CU_START, cmd, IE_STAT_COMPL) ||
1514 1.1 gwr !(cmd->com.ie_cmd_status & IE_STAT_OK)) {
1515 1.14 christos printf("%s: individual address setup command failed\n",
1516 1.1 gwr sc->sc_dev.dv_xname);
1517 1.1 gwr return 0;
1518 1.1 gwr }
1519 1.1 gwr }
1520 1.1 gwr
1521 1.1 gwr /*
1522 1.1 gwr * Now run the time-domain reflectometer.
1523 1.1 gwr */
1524 1.3 gwr run_tdr(sc, ptr);
1525 1.1 gwr
1526 1.1 gwr /*
1527 1.1 gwr * Acknowledge any interrupts we have generated thus far.
1528 1.1 gwr */
1529 1.1 gwr ie_ack(sc, IE_ST_WHENCE);
1530 1.1 gwr
1531 1.1 gwr /*
1532 1.1 gwr * Set up the transmit and recv buffers.
1533 1.1 gwr */
1534 1.1 gwr setup_bufs(sc);
1535 1.1 gwr
1536 1.3 gwr /* tell higher levels that we are here */
1537 1.3 gwr sc->sc_arpcom.ac_if.if_flags |= IFF_RUNNING;
1538 1.3 gwr
1539 1.3 gwr sc->scb->ie_recv_list = MK_16(sc->sc_maddr, sc->rframes[0]);
1540 1.3 gwr command_and_wait(sc, IE_RU_START, 0, 0);
1541 1.1 gwr
1542 1.3 gwr ie_ack(sc, IE_ST_WHENCE);
1543 1.1 gwr
1544 1.1 gwr if (sc->run_586)
1545 1.3 gwr (sc->run_586)(sc);
1546 1.1 gwr
1547 1.1 gwr return 0;
1548 1.1 gwr }
1549 1.1 gwr
1550 1.1 gwr static void
1551 1.1 gwr iestop(sc)
1552 1.1 gwr struct ie_softc *sc;
1553 1.1 gwr {
1554 1.1 gwr
1555 1.1 gwr command_and_wait(sc, IE_RU_DISABLE, 0, 0);
1556 1.1 gwr }
1557 1.1 gwr
1558 1.1 gwr int
1559 1.1 gwr ieioctl(ifp, cmd, data)
1560 1.1 gwr register struct ifnet *ifp;
1561 1.1 gwr u_long cmd;
1562 1.1 gwr caddr_t data;
1563 1.1 gwr {
1564 1.11 thorpej struct ie_softc *sc = ifp->if_softc;
1565 1.1 gwr struct ifaddr *ifa = (struct ifaddr *) data;
1566 1.1 gwr struct ifreq *ifr = (struct ifreq *) data;
1567 1.1 gwr int s, error = 0;
1568 1.1 gwr
1569 1.6 mycroft s = splnet();
1570 1.1 gwr
1571 1.1 gwr switch (cmd) {
1572 1.1 gwr
1573 1.1 gwr case SIOCSIFADDR:
1574 1.1 gwr ifp->if_flags |= IFF_UP;
1575 1.1 gwr
1576 1.1 gwr switch (ifa->ifa_addr->sa_family) {
1577 1.1 gwr #ifdef INET
1578 1.1 gwr case AF_INET:
1579 1.1 gwr ieinit(sc);
1580 1.5 mycroft arp_ifinit(&sc->sc_arpcom, ifa);
1581 1.1 gwr break;
1582 1.1 gwr #endif
1583 1.1 gwr #ifdef NS
1584 1.1 gwr /* XXX - This code is probably wrong. */
1585 1.1 gwr case AF_NS:
1586 1.1 gwr {
1587 1.1 gwr struct ns_addr *ina = &IA_SNS(ifa)->sns_addr;
1588 1.1 gwr
1589 1.1 gwr if (ns_nullhost(*ina))
1590 1.1 gwr ina->x_host =
1591 1.3 gwr *(union ns_host *)(sc->sc_arpcom.ac_enaddr);
1592 1.1 gwr else
1593 1.1 gwr bcopy(ina->x_host.c_host,
1594 1.1 gwr sc->sc_arpcom.ac_enaddr,
1595 1.1 gwr sizeof(sc->sc_arpcom.ac_enaddr));
1596 1.1 gwr /* Set new address. */
1597 1.1 gwr ieinit(sc);
1598 1.1 gwr break;
1599 1.1 gwr }
1600 1.1 gwr #endif /* NS */
1601 1.1 gwr default:
1602 1.1 gwr ieinit(sc);
1603 1.1 gwr break;
1604 1.1 gwr }
1605 1.1 gwr break;
1606 1.1 gwr
1607 1.1 gwr case SIOCSIFFLAGS:
1608 1.1 gwr sc->promisc = ifp->if_flags & (IFF_PROMISC | IFF_ALLMULTI);
1609 1.1 gwr
1610 1.1 gwr if ((ifp->if_flags & IFF_UP) == 0 &&
1611 1.1 gwr (ifp->if_flags & IFF_RUNNING) != 0) {
1612 1.1 gwr /*
1613 1.1 gwr * If interface is marked down and it is running, then
1614 1.1 gwr * stop it.
1615 1.1 gwr */
1616 1.1 gwr iestop(sc);
1617 1.1 gwr ifp->if_flags &= ~IFF_RUNNING;
1618 1.1 gwr } else if ((ifp->if_flags & IFF_UP) != 0 &&
1619 1.3 gwr (ifp->if_flags & IFF_RUNNING) == 0) {
1620 1.1 gwr /*
1621 1.1 gwr * If interface is marked up and it is stopped, then
1622 1.1 gwr * start it.
1623 1.1 gwr */
1624 1.1 gwr ieinit(sc);
1625 1.1 gwr } else {
1626 1.1 gwr /*
1627 1.1 gwr * Reset the interface to pick up changes in any other
1628 1.1 gwr * flags that affect hardware registers.
1629 1.1 gwr */
1630 1.1 gwr iestop(sc);
1631 1.1 gwr ieinit(sc);
1632 1.1 gwr }
1633 1.1 gwr #ifdef IEDEBUG
1634 1.1 gwr if (ifp->if_flags & IFF_DEBUG)
1635 1.1 gwr sc->sc_debug = IED_ALL;
1636 1.1 gwr else
1637 1.1 gwr sc->sc_debug = 0;
1638 1.1 gwr #endif
1639 1.1 gwr break;
1640 1.1 gwr
1641 1.1 gwr case SIOCADDMULTI:
1642 1.1 gwr case SIOCDELMULTI:
1643 1.1 gwr error = (cmd == SIOCADDMULTI) ?
1644 1.1 gwr ether_addmulti(ifr, &sc->sc_arpcom) :
1645 1.1 gwr ether_delmulti(ifr, &sc->sc_arpcom);
1646 1.1 gwr
1647 1.1 gwr if (error == ENETRESET) {
1648 1.1 gwr /*
1649 1.1 gwr * Multicast list has changed; set the hardware filter
1650 1.1 gwr * accordingly.
1651 1.1 gwr */
1652 1.1 gwr mc_reset(sc);
1653 1.1 gwr error = 0;
1654 1.1 gwr }
1655 1.1 gwr break;
1656 1.1 gwr
1657 1.1 gwr default:
1658 1.1 gwr error = EINVAL;
1659 1.1 gwr }
1660 1.1 gwr splx(s);
1661 1.1 gwr return error;
1662 1.1 gwr }
1663 1.1 gwr
1664 1.1 gwr static void
1665 1.1 gwr mc_reset(sc)
1666 1.1 gwr struct ie_softc *sc;
1667 1.1 gwr {
1668 1.1 gwr struct ether_multi *enm;
1669 1.1 gwr struct ether_multistep step;
1670 1.1 gwr
1671 1.1 gwr /*
1672 1.1 gwr * Step through the list of addresses.
1673 1.1 gwr */
1674 1.1 gwr sc->mcast_count = 0;
1675 1.1 gwr ETHER_FIRST_MULTI(step, &sc->sc_arpcom, enm);
1676 1.1 gwr while (enm) {
1677 1.1 gwr if (sc->mcast_count >= MAXMCAST ||
1678 1.1 gwr bcmp(enm->enm_addrlo, enm->enm_addrhi, 6) != 0) {
1679 1.1 gwr sc->sc_arpcom.ac_if.if_flags |= IFF_ALLMULTI;
1680 1.1 gwr ieioctl(&sc->sc_arpcom.ac_if, SIOCSIFFLAGS, (void *)0);
1681 1.1 gwr goto setflag;
1682 1.1 gwr }
1683 1.1 gwr bcopy(enm->enm_addrlo, &sc->mcast_addrs[sc->mcast_count], 6);
1684 1.1 gwr sc->mcast_count++;
1685 1.1 gwr ETHER_NEXT_MULTI(step, enm);
1686 1.1 gwr }
1687 1.1 gwr setflag:
1688 1.1 gwr sc->want_mcsetup = 1;
1689 1.1 gwr }
1690 1.1 gwr
1691 1.1 gwr #ifdef IEDEBUG
1692 1.1 gwr void
1693 1.1 gwr print_rbd(rbd)
1694 1.1 gwr volatile struct ie_recv_buf_desc *rbd;
1695 1.1 gwr {
1696 1.1 gwr
1697 1.14 christos printf("RBD at %08lx:\nactual %04x, next %04x, buffer %08x\n"
1698 1.1 gwr "length %04x, mbz %04x\n", (u_long)rbd, rbd->ie_rbd_actual,
1699 1.1 gwr rbd->ie_rbd_next, rbd->ie_rbd_buffer, rbd->ie_rbd_length,
1700 1.1 gwr rbd->mbz);
1701 1.1 gwr }
1702 1.1 gwr #endif
1703