if_ae.c revision 1.1 1 1.1 briggs /*
2 1.1 briggs * Device driver for National Semiconductor DS8390 based ethernet adapters.
3 1.1 briggs *
4 1.1 briggs * Based on original ISA bus driver by David Greenman, 29-April-1993
5 1.1 briggs *
6 1.1 briggs * Copyright (C) 1993, David Greenman. This software may be used, modified,
7 1.1 briggs * copied, distributed, and sold, in both source and binary form provided
8 1.1 briggs * that the above copyright and these terms are retained. Under no
9 1.1 briggs * circumstances is the author responsible for the proper functioning
10 1.1 briggs * of this software, nor does the author assume any responsibility
11 1.1 briggs * for damages incurred with its use.
12 1.1 briggs *
13 1.1 briggs * Adapted for MacBSD by Brad Parker <brad (at) fcr.com>
14 1.1 briggs *
15 1.1 briggs * Currently supports:
16 1.1 briggs * Apples NB Ethernet card
17 1.1 briggs * Interlan A310 Nubus Ethernet card
18 1.1 briggs * Cayman Systems GatorCard
19 1.1 briggs */
20 1.1 briggs
21 1.1 briggs /*
22 1.1 briggs * $Id: if_ae.c,v 1.1 1993/11/29 00:32:43 briggs Exp $
23 1.1 briggs */
24 1.1 briggs
25 1.1 briggs /*
26 1.1 briggs * Modification history
27 1.1 briggs *
28 1.1 briggs * $Log: if_ae.c,v $
29 1.1 briggs * Revision 1.1 1993/11/29 00:32:43 briggs
30 1.1 briggs * Update to current work in progress. This includes an update to
31 1.1 briggs * use config.new.
32 1.1 briggs * Numerous updates to console so it works better on the SE/30 screen.
33 1.1 briggs * Some nice changes from Brad Parker for handling NuBUS and an ethernet
34 1.1 briggs * driver that I haven't worked on, yet.
35 1.1 briggs *
36 1.1 briggs *
37 1.1 briggs */
38 1.1 briggs
39 1.1 briggs #include "ae.h"
40 1.1 briggs #if NAE > 0
41 1.1 briggs /* bpfilter included here in case it is needed in future net includes */
42 1.1 briggs #include "bpfilter.h"
43 1.1 briggs
44 1.1 briggs #include "param.h"
45 1.1 briggs #include "systm.h"
46 1.1 briggs #include "errno.h"
47 1.1 briggs #include "ioctl.h"
48 1.1 briggs #include "mbuf.h"
49 1.1 briggs #include "socket.h"
50 1.1 briggs #include "syslog.h"
51 1.1 briggs
52 1.1 briggs #include "net/if.h"
53 1.1 briggs #include "net/if_dl.h"
54 1.1 briggs #include "net/if_types.h"
55 1.1 briggs #include "net/netisr.h"
56 1.1 briggs
57 1.1 briggs #ifdef INET
58 1.1 briggs #include "netinet/in.h"
59 1.1 briggs #include "netinet/in_systm.h"
60 1.1 briggs #include "netinet/in_var.h"
61 1.1 briggs #include "netinet/ip.h"
62 1.1 briggs #include "netinet/if_ether.h"
63 1.1 briggs #endif
64 1.1 briggs
65 1.1 briggs #ifdef NS
66 1.1 briggs #include "netns/ns.h"
67 1.1 briggs #include "netns/ns_if.h"
68 1.1 briggs #endif
69 1.1 briggs
70 1.1 briggs #if NBPFILTER > 0
71 1.1 briggs #include "net/bpf.h"
72 1.1 briggs #include "net/bpfdesc.h"
73 1.1 briggs #endif
74 1.1 briggs
75 1.1 briggs #include "device.h"
76 1.1 briggs #include "if_aereg.h"
77 1.1 briggs
78 1.1 briggs /* For backwards compatibility */
79 1.1 briggs #ifndef IFF_ALTPHYS
80 1.1 briggs #define IFF_ALTPHYS IFF_LLC0
81 1.1 briggs #endif
82 1.1 briggs
83 1.1 briggs /*
84 1.1 briggs * ae_softc: per line info and status
85 1.1 briggs */
86 1.1 briggs struct ae_softc {
87 1.1 briggs struct arpcom arpcom; /* ethernet common */
88 1.1 briggs
89 1.1 briggs char *type_str; /* pointer to type string */
90 1.1 briggs u_char vendor; /* interface vendor */
91 1.1 briggs u_char type; /* interface type code */
92 1.1 briggs u_char slot; /* slot (0-f) */
93 1.1 briggs #define APPLE_CARD(sc) ((sc)->vendor == AE_VENDOR_APPLE)
94 1.1 briggs #define REG_MAP(sc, reg) (APPLE_CARD(sc) ? (0x0f-(reg))<<2 : (reg)<<2)
95 1.1 briggs #define NIC_GET(sc, reg) ((sc)->nic_addr[REG_MAP(sc, reg)])
96 1.1 briggs #define NIC_PUT(sc, reg, val) ((sc)->nic_addr[REG_MAP(sc, reg)] = (val))
97 1.1 briggs volatile caddr_t nic_addr; /* NIC (DS8390) I/O bus address */
98 1.1 briggs caddr_t rom_addr; /* on board prom address */
99 1.1 briggs caddr_t smem_start; /* shared memory start address */
100 1.1 briggs caddr_t smem_end; /* shared memory end address */
101 1.1 briggs u_long smem_size; /* total shared memory size */
102 1.1 briggs caddr_t smem_ring; /* start of RX ring-buffer (in smem) */
103 1.1 briggs
104 1.1 briggs caddr_t bpf; /* BPF "magic cookie" */
105 1.1 briggs
106 1.1 briggs u_char xmit_busy; /* transmitter is busy */
107 1.1 briggs u_char txb_cnt; /* Number of transmit buffers */
108 1.1 briggs u_char txb_next; /* Pointer to next buffer ready to xmit */
109 1.1 briggs u_short txb_next_len; /* next xmit buffer length */
110 1.1 briggs u_char data_buffered; /* data has been buffered in interface memory */
111 1.1 briggs u_char tx_page_start; /* first page of TX buffer area */
112 1.1 briggs
113 1.1 briggs u_char rec_page_start; /* first page of RX ring-buffer */
114 1.1 briggs u_char rec_page_stop; /* last page of RX ring-buffer */
115 1.1 briggs u_char next_packet; /* pointer to next unread RX packet */
116 1.1 briggs } ae_softc[NAE];
117 1.1 briggs
118 1.1 briggs void ae_find();
119 1.1 briggs int ae_attach(), ae_init(), aeintr(), ae_ioctl(), ae_probe(),
120 1.1 briggs ae_start(), ae_reset(), ae_watchdog();
121 1.1 briggs
122 1.1 briggs static void ae_stop();
123 1.1 briggs static inline void ae_rint();
124 1.1 briggs static inline void ae_xmit();
125 1.1 briggs static inline char *ae_ring_copy();
126 1.1 briggs
127 1.1 briggs extern int ether_output();
128 1.1 briggs
129 1.1 briggs /*
130 1.1 briggs struct isa_driver eddriver = {
131 1.1 briggs ae_probe,
132 1.1 briggs ae_attach,
133 1.1 briggs "ae"
134 1.1 briggs };
135 1.1 briggs */
136 1.1 briggs
137 1.1 briggs #define ETHER_MIN_LEN 64
138 1.1 briggs #define ETHER_MAX_LEN 1518
139 1.1 briggs #define ETHER_ADDR_LEN 6
140 1.1 briggs #define ETHER_HDR_SIZE 14
141 1.1 briggs
142 1.1 briggs extern struct nubus_hw nubus_table[MAXSLOTS];
143 1.1 briggs char ae_name[] = "8390 Nubus Ethernet card";
144 1.1 briggs static char zero = 0;
145 1.1 briggs static u_char ones = 0xff;
146 1.1 briggs
147 1.1 briggs
148 1.1 briggs void
149 1.1 briggs ae_find(struct macdriver *md)
150 1.1 briggs {
151 1.1 briggs int slot;
152 1.1 briggs
153 1.1 briggs for (slot = 0; slot < MAXSLOTS; slot++)
154 1.1 briggs {
155 1.1 briggs register struct nubus_hw *nu = &nubus_table[slot];
156 1.1 briggs
157 1.1 briggs if (!nu->found || nu->claimed)
158 1.1 briggs continue;
159 1.1 briggs
160 1.1 briggs if (nu->Slot.type == NUBUS_NETWORK) {
161 1.1 briggs printf("ae: found network card; slot %d, type 0x%x\n", slot, nu->Slot.type);
162 1.1 briggs
163 1.1 briggs if (ae_probe(md, slot)) {
164 1.1 briggs if (!md->hwfound) {
165 1.1 briggs md->hwfound = 1;
166 1.1 briggs md->name = ae_name;
167 1.1 briggs }
168 1.1 briggs nu->claimed = 1;
169 1.1 briggs ae_attach(md);
170 1.1 briggs }
171 1.1 briggs
172 1.1 briggs break;
173 1.1 briggs }
174 1.1 briggs }
175 1.1 briggs }
176 1.1 briggs
177 1.1 briggs int
178 1.1 briggs ae_probe(struct macdriver *md, int slot)
179 1.1 briggs {
180 1.1 briggs register struct nubus_hw *nu = &nubus_table[slot];
181 1.1 briggs struct ae_softc *sc = &ae_softc[md->unit];
182 1.1 briggs int i, memsize;
183 1.1 briggs int flags = 0;
184 1.1 briggs
185 1.1 briggs /*
186 1.1 briggs * Try to determine what type of card this is...
187 1.1 briggs */
188 1.1 briggs sc->vendor == AE_VENDOR_APPLE;
189 1.1 briggs
190 1.1 briggs /* see if it's an Interlan/GatorCard */
191 1.1 briggs sc->rom_addr = nu->addr + GC_ROM_OFFSET;
192 1.1 briggs if (sc->rom_addr[0x18] == 0x0 &&
193 1.1 briggs sc->rom_addr[0x1c] == 0x55) {
194 1.1 briggs sc->vendor = AE_VENDOR_INTERLAN;
195 1.1 briggs printf("found interlan card in slot %x\n", slot);
196 1.1 briggs }
197 1.1 briggs
198 1.1 briggs sc->type = 0;
199 1.1 briggs sc->slot = slot;
200 1.1 briggs
201 1.1 briggs switch (sc->vendor) {
202 1.1 briggs case AE_VENDOR_INTERLAN:
203 1.1 briggs sc->nic_addr = nu->addr + GC_NIC_OFFSET;
204 1.1 briggs sc->rom_addr = nu->addr + GC_ROM_OFFSET;
205 1.1 briggs sc->smem_start = nu->addr + GC_DATA_OFFSET;
206 1.1 briggs sc->type_str = "Interlan";
207 1.1 briggs memsize = 8192;
208 1.1 briggs
209 1.1 briggs /* reset the NIC chip */
210 1.1 briggs *((caddr_t)nu->addr + GC_RESET_OFFSET) = (char)zero;
211 1.1 briggs
212 1.1 briggs /* Get station address from on-board ROM */
213 1.1 briggs for (i = 0; i < ETHER_ADDR_LEN; ++i)
214 1.1 briggs sc->arpcom.ac_enaddr[i] = *(sc->rom_addr + i*4);
215 1.1 briggs break;
216 1.1 briggs
217 1.1 briggs case AE_VENDOR_APPLE:
218 1.1 briggs default:
219 1.1 briggs sc->nic_addr = nu->addr + AE_NIC_OFFSET;
220 1.1 briggs sc->rom_addr = nu->addr + AE_ROM_OFFSET;
221 1.1 briggs sc->smem_start = nu->addr + AE_DATA_OFFSET;
222 1.1 briggs sc->type_str = "Apple";
223 1.1 briggs memsize = 8192;
224 1.1 briggs
225 1.1 briggs /* Get station address from on-board ROM */
226 1.1 briggs for (i = 0; i < ETHER_ADDR_LEN; ++i)
227 1.1 briggs sc->arpcom.ac_enaddr[i] = *(sc->rom_addr + i*2);
228 1.1 briggs break;
229 1.1 briggs }
230 1.1 briggs
231 1.1 briggs /*
232 1.1 briggs * allocate one xmit buffer if < 16k, two buffers otherwise
233 1.1 briggs */
234 1.1 briggs if ((memsize < 16384) || (flags & AE_FLAGS_NO_DOUBLE_BUFFERING)) {
235 1.1 briggs sc->smem_ring = sc->smem_start + (AE_PAGE_SIZE * AE_TXBUF_SIZE);
236 1.1 briggs sc->txb_cnt = 1;
237 1.1 briggs sc->rec_page_start = AE_TXBUF_SIZE;
238 1.1 briggs } else {
239 1.1 briggs sc->smem_ring = sc->smem_start + (AE_PAGE_SIZE * AE_TXBUF_SIZE * 2);
240 1.1 briggs sc->txb_cnt = 2;
241 1.1 briggs sc->rec_page_start = AE_TXBUF_SIZE * 2;
242 1.1 briggs }
243 1.1 briggs
244 1.1 briggs sc->smem_size = memsize;
245 1.1 briggs sc->smem_end = sc->smem_start + memsize;
246 1.1 briggs sc->rec_page_stop = memsize / AE_PAGE_SIZE;
247 1.1 briggs sc->tx_page_start = 0;
248 1.1 briggs
249 1.1 briggs /*
250 1.1 briggs * Now zero memory and verify that it is clear
251 1.1 briggs */
252 1.1 briggs bzero(sc->smem_start, memsize);
253 1.1 briggs
254 1.1 briggs for (i = 0; i < memsize; ++i)
255 1.1 briggs if (sc->smem_start[i]) {
256 1.1 briggs printf("ae%d: failed to clear shared memory at %x\n",
257 1.1 briggs md->unit, sc->smem_start + i);
258 1.1 briggs
259 1.1 briggs return(0);
260 1.1 briggs }
261 1.1 briggs
262 1.1 briggs #ifdef DEBUG_PRINT
263 1.1 briggs printf("nic_addr %x, rom_addr %x\n",
264 1.1 briggs sc->nic_addr, sc->rom_addr);
265 1.1 briggs printf("smem_size %d\n", sc->smem_size);
266 1.1 briggs printf("smem_start %x, smem_ring %x, smem_end %x\n",
267 1.1 briggs sc->smem_start, sc->smem_ring, sc->smem_end);
268 1.1 briggs printf("phys address %02x:%02x:%02x:%02x:%02x:%02x\n",
269 1.1 briggs sc->arpcom.ac_enaddr[0],
270 1.1 briggs sc->arpcom.ac_enaddr[1],
271 1.1 briggs sc->arpcom.ac_enaddr[2],
272 1.1 briggs sc->arpcom.ac_enaddr[3],
273 1.1 briggs sc->arpcom.ac_enaddr[4],
274 1.1 briggs sc->arpcom.ac_enaddr[5]);
275 1.1 briggs #endif
276 1.1 briggs
277 1.1 briggs return(1);
278 1.1 briggs }
279 1.1 briggs
280 1.1 briggs /*
281 1.1 briggs * Install interface into kernel networking data structures
282 1.1 briggs */
283 1.1 briggs int
284 1.1 briggs ae_attach(struct macdriver *md)
285 1.1 briggs {
286 1.1 briggs struct ae_softc *sc = &ae_softc[md->unit];
287 1.1 briggs struct ifnet *ifp = &sc->arpcom.ac_if;
288 1.1 briggs struct ifaddr *ifa;
289 1.1 briggs struct sockaddr_dl *sdl;
290 1.1 briggs
291 1.1 briggs /*
292 1.1 briggs * Set interface to stopped condition (reset)
293 1.1 briggs */
294 1.1 briggs ae_stop(md->unit);
295 1.1 briggs
296 1.1 briggs /*
297 1.1 briggs * Initialize ifnet structure
298 1.1 briggs */
299 1.1 briggs ifp->if_unit = md->unit;
300 1.1 briggs ifp->if_name = "ae";
301 1.1 briggs ifp->if_mtu = ETHERMTU;
302 1.1 briggs ifp->if_init = ae_init;
303 1.1 briggs ifp->if_output = ether_output;
304 1.1 briggs ifp->if_start = ae_start;
305 1.1 briggs ifp->if_ioctl = ae_ioctl;
306 1.1 briggs ifp->if_reset = ae_reset;
307 1.1 briggs ifp->if_watchdog = ae_watchdog;
308 1.1 briggs ifp->if_flags = (IFF_BROADCAST | IFF_SIMPLEX | IFF_NOTRAILERS);
309 1.1 briggs
310 1.1 briggs /*
311 1.1 briggs * Attach the interface
312 1.1 briggs */
313 1.1 briggs if_attach(ifp);
314 1.1 briggs
315 1.1 briggs /*
316 1.1 briggs * Search down the ifa address list looking for the AF_LINK type entry
317 1.1 briggs */
318 1.1 briggs ifa = ifp->if_addrlist;
319 1.1 briggs while ((ifa != 0) && (ifa->ifa_addr != 0) &&
320 1.1 briggs (ifa->ifa_addr->sa_family != AF_LINK))
321 1.1 briggs ifa = ifa->ifa_next;
322 1.1 briggs /*
323 1.1 briggs * If we find an AF_LINK type entry we fill in the hardware address.
324 1.1 briggs * This is useful for netstat(1) to keep track of which interface
325 1.1 briggs * is which.
326 1.1 briggs */
327 1.1 briggs if ((ifa != 0) && (ifa->ifa_addr != 0)) {
328 1.1 briggs /*
329 1.1 briggs * Fill in the link-level address for this interface
330 1.1 briggs */
331 1.1 briggs sdl = (struct sockaddr_dl *)ifa->ifa_addr;
332 1.1 briggs sdl->sdl_type = IFT_ETHER;
333 1.1 briggs sdl->sdl_alen = ETHER_ADDR_LEN;
334 1.1 briggs sdl->sdl_slen = 0;
335 1.1 briggs bcopy(sc->arpcom.ac_enaddr, LLADDR(sdl), ETHER_ADDR_LEN);
336 1.1 briggs }
337 1.1 briggs
338 1.1 briggs /*
339 1.1 briggs * Print additional info when attached
340 1.1 briggs */
341 1.1 briggs printf("ae%d: address %s, ", md->unit,
342 1.1 briggs ether_sprintf(sc->arpcom.ac_enaddr));
343 1.1 briggs
344 1.1 briggs if (sc->type_str && (*sc->type_str != 0))
345 1.1 briggs printf("type %s ", sc->type_str);
346 1.1 briggs else
347 1.1 briggs printf("type unknown (0x%x) ", sc->type);
348 1.1 briggs
349 1.1 briggs printf("\n");
350 1.1 briggs
351 1.1 briggs /*
352 1.1 briggs * If BPF is in the kernel, call the attach for it
353 1.1 briggs */
354 1.1 briggs #if NBPFILTER > 0
355 1.1 briggs bpfattach(&sc->bpf, ifp, DLT_EN10MB, sizeof(struct ether_header));
356 1.1 briggs #endif
357 1.1 briggs
358 1.1 briggs }
359 1.1 briggs
360 1.1 briggs /*
361 1.1 briggs * Reset interface.
362 1.1 briggs */
363 1.1 briggs int
364 1.1 briggs ae_reset(unit)
365 1.1 briggs int unit;
366 1.1 briggs {
367 1.1 briggs int s;
368 1.1 briggs
369 1.1 briggs s = splnet();
370 1.1 briggs
371 1.1 briggs /*
372 1.1 briggs * Stop interface and re-initialize.
373 1.1 briggs */
374 1.1 briggs ae_stop(unit);
375 1.1 briggs ae_init(unit);
376 1.1 briggs
377 1.1 briggs (void) splx(s);
378 1.1 briggs }
379 1.1 briggs
380 1.1 briggs /*
381 1.1 briggs * Take interface offline.
382 1.1 briggs */
383 1.1 briggs void
384 1.1 briggs ae_stop(unit)
385 1.1 briggs int unit;
386 1.1 briggs {
387 1.1 briggs struct ae_softc *sc = &ae_softc[unit];
388 1.1 briggs int n = 5000;
389 1.1 briggs
390 1.1 briggs /*
391 1.1 briggs * Stop everything on the interface, and select page 0 registers.
392 1.1 briggs */
393 1.1 briggs NIC_PUT(sc, AE_P0_CR, AE_CR_RD2|AE_CR_STP);
394 1.1 briggs
395 1.1 briggs /*
396 1.1 briggs * Wait for interface to enter stopped state, but limit # of checks
397 1.1 briggs * to 'n' (about 5ms). It shouldn't even take 5us on modern
398 1.1 briggs * DS8390's, but just in case it's an old one.
399 1.1 briggs */
400 1.1 briggs while (((NIC_GET(sc, AE_P0_ISR) & AE_ISR_RST) == 0) && --n);
401 1.1 briggs }
402 1.1 briggs
403 1.1 briggs /*
404 1.1 briggs * Device timeout/watchdog routine. Entered if the device neglects to
405 1.1 briggs * generate an interrupt after a transmit has been started on it.
406 1.1 briggs */
407 1.1 briggs int
408 1.1 briggs ae_watchdog(unit)
409 1.1 briggs int unit;
410 1.1 briggs {
411 1.1 briggs log(LOG_ERR, "ae%d: device timeout\n", unit);
412 1.1 briggs {
413 1.1 briggs struct ae_softc *sc = &ae_softc[unit];
414 1.1 briggs printf("cr %x, isr %x\n", NIC_GET(sc, AE_P0_CR), NIC_GET(sc, AE_P0_ISR));
415 1.1 briggs via_dump();
416 1.1 briggs if (NIC_GET(sc, AE_P0_ISR)) {
417 1.1 briggs aeintr(0);
418 1.1 briggs return;
419 1.1 briggs }
420 1.1 briggs }
421 1.1 briggs ae_reset(unit);
422 1.1 briggs }
423 1.1 briggs
424 1.1 briggs /*
425 1.1 briggs * Initialize device.
426 1.1 briggs */
427 1.1 briggs ae_init(unit)
428 1.1 briggs int unit;
429 1.1 briggs {
430 1.1 briggs struct ae_softc *sc = &ae_softc[unit];
431 1.1 briggs struct ifnet *ifp = &sc->arpcom.ac_if;
432 1.1 briggs int i, s;
433 1.1 briggs u_char command;
434 1.1 briggs
435 1.1 briggs
436 1.1 briggs /* address not known */
437 1.1 briggs if (ifp->if_addrlist == (struct ifaddr *)0) return;
438 1.1 briggs
439 1.1 briggs /*
440 1.1 briggs * Initialize the NIC in the exact order outlined in the NS manual.
441 1.1 briggs * This init procedure is "mandatory"...don't change what or when
442 1.1 briggs * things happen.
443 1.1 briggs */
444 1.1 briggs s = splnet();
445 1.1 briggs
446 1.1 briggs /* reset transmitter flags */
447 1.1 briggs sc->data_buffered = 0;
448 1.1 briggs sc->xmit_busy = 0;
449 1.1 briggs sc->arpcom.ac_if.if_timer = 0;
450 1.1 briggs
451 1.1 briggs sc->txb_next = 0;
452 1.1 briggs
453 1.1 briggs /* This variable is used below - don't move this assignment */
454 1.1 briggs sc->next_packet = sc->rec_page_start + 1;
455 1.1 briggs
456 1.1 briggs #ifdef DEBUG_PRINT
457 1.1 briggs printf("page_start %d, page_stop %d, next %d\n",
458 1.1 briggs sc->rec_page_start, sc->rec_page_stop, sc->next_packet);
459 1.1 briggs #endif
460 1.1 briggs
461 1.1 briggs /*
462 1.1 briggs * Set interface for page 0, Remote DMA complete, Stopped
463 1.1 briggs */
464 1.1 briggs NIC_PUT(sc, AE_P0_CR, AE_CR_RD2|AE_CR_STP);
465 1.1 briggs
466 1.1 briggs /*
467 1.1 briggs * Set FIFO threshold to 4, No auto-init Remote DMA, Burst mode,
468 1.1 briggs * byte order=80x86, word-wide DMA xfers,
469 1.1 briggs */
470 1.1 briggs NIC_PUT(sc, AE_P0_DCR, AE_DCR_FT1|AE_DCR_BMS|AE_DCR_WTS);
471 1.1 briggs
472 1.1 briggs /*
473 1.1 briggs * Clear Remote Byte Count Registers
474 1.1 briggs */
475 1.1 briggs NIC_PUT(sc, AE_P0_RBCR0, zero);
476 1.1 briggs NIC_PUT(sc, AE_P0_RBCR1, zero);
477 1.1 briggs
478 1.1 briggs /*
479 1.1 briggs * Enable reception of broadcast packets
480 1.1 briggs */
481 1.1 briggs NIC_PUT(sc, AE_P0_RCR, AE_RCR_AB);
482 1.1 briggs
483 1.1 briggs /*
484 1.1 briggs * Place NIC in internal loopback mode
485 1.1 briggs */
486 1.1 briggs NIC_PUT(sc, AE_P0_TCR, AE_TCR_LB0);
487 1.1 briggs
488 1.1 briggs /*
489 1.1 briggs * Initialize transmit/receive (ring-buffer) Page Start
490 1.1 briggs */
491 1.1 briggs NIC_PUT(sc, AE_P0_TPSR, sc->tx_page_start);
492 1.1 briggs NIC_PUT(sc, AE_P0_PSTART, sc->rec_page_start);
493 1.1 briggs
494 1.1 briggs /*
495 1.1 briggs * Initialize Receiver (ring-buffer) Page Stop and Boundry
496 1.1 briggs */
497 1.1 briggs NIC_PUT(sc, AE_P0_PSTOP, sc->rec_page_stop);
498 1.1 briggs NIC_PUT(sc, AE_P0_BNRY, sc->rec_page_start);
499 1.1 briggs
500 1.1 briggs /*
501 1.1 briggs * Clear all interrupts. A '1' in each bit position clears the
502 1.1 briggs * corresponding flag.
503 1.1 briggs */
504 1.1 briggs NIC_PUT(sc, AE_P0_ISR, ones);
505 1.1 briggs
506 1.1 briggs /*
507 1.1 briggs * Enable the following interrupts: receive/transmit complete,
508 1.1 briggs * receive/transmit error, and Receiver OverWrite.
509 1.1 briggs *
510 1.1 briggs * Counter overflow and Remote DMA complete are *not* enabled.
511 1.1 briggs */
512 1.1 briggs NIC_PUT(sc, AE_P0_IMR,
513 1.1 briggs AE_IMR_PRXE|AE_IMR_PTXE|AE_IMR_RXEE|AE_IMR_TXEE|AE_IMR_OVWE);
514 1.1 briggs
515 1.1 briggs /*
516 1.1 briggs * Program Command Register for page 1
517 1.1 briggs */
518 1.1 briggs NIC_PUT(sc, AE_P0_CR, AE_CR_PAGE_1|AE_CR_RD2|AE_CR_STP);
519 1.1 briggs
520 1.1 briggs /*
521 1.1 briggs * Copy out our station address
522 1.1 briggs */
523 1.1 briggs for (i = 0; i < ETHER_ADDR_LEN; ++i)
524 1.1 briggs NIC_PUT(sc, AE_P1_PAR0 + i, sc->arpcom.ac_enaddr[i]);
525 1.1 briggs
526 1.1 briggs #if NBPFILTER > 0
527 1.1 briggs /*
528 1.1 briggs * Initialize multicast address hashing registers to accept
529 1.1 briggs * all multicasts (only used when in promiscuous mode)
530 1.1 briggs */
531 1.1 briggs for (i = 0; i < 8; ++i)
532 1.1 briggs NIC_PUT(sc, AE_P1_MAR0 + i, 0xff);
533 1.1 briggs #endif
534 1.1 briggs
535 1.1 briggs /*
536 1.1 briggs * Set Current Page pointer to next_packet (initialized above)
537 1.1 briggs */
538 1.1 briggs NIC_PUT(sc, AE_P1_CURR, sc->next_packet);
539 1.1 briggs
540 1.1 briggs /*
541 1.1 briggs * Set Command Register for page 0, Remote DMA complete,
542 1.1 briggs * and interface Start.
543 1.1 briggs */
544 1.1 briggs NIC_PUT(sc, AE_P1_CR, AE_CR_RD2|AE_CR_STA);
545 1.1 briggs
546 1.1 briggs /*
547 1.1 briggs * Take interface out of loopback
548 1.1 briggs */
549 1.1 briggs NIC_PUT(sc, AE_P0_TCR, zero);
550 1.1 briggs
551 1.1 briggs /*
552 1.1 briggs * Set 'running' flag, and clear output active flag.
553 1.1 briggs */
554 1.1 briggs ifp->if_flags |= IFF_RUNNING;
555 1.1 briggs ifp->if_flags &= ~IFF_OACTIVE;
556 1.1 briggs
557 1.1 briggs /* */
558 1.1 briggs add_nubus_intr(sc->slot, aeintr, sc - ae_softc);
559 1.1 briggs
560 1.1 briggs /*
561 1.1 briggs * ...and attempt to start output
562 1.1 briggs */
563 1.1 briggs ae_start(ifp);
564 1.1 briggs
565 1.1 briggs (void) splx(s);
566 1.1 briggs }
567 1.1 briggs
568 1.1 briggs /*
569 1.1 briggs * This routine actually starts the transmission on the interface
570 1.1 briggs */
571 1.1 briggs static inline void ae_xmit(ifp)
572 1.1 briggs struct ifnet *ifp;
573 1.1 briggs {
574 1.1 briggs struct ae_softc *sc = &ae_softc[ifp->if_unit];
575 1.1 briggs u_short len = sc->txb_next_len;
576 1.1 briggs
577 1.1 briggs /*
578 1.1 briggs * Set NIC for page 0 register access
579 1.1 briggs */
580 1.1 briggs NIC_PUT(sc, AE_P0_CR, AE_CR_RD2|AE_CR_STA);
581 1.1 briggs
582 1.1 briggs /*
583 1.1 briggs * Set TX buffer start page
584 1.1 briggs */
585 1.1 briggs NIC_PUT(sc, AE_P0_TPSR, sc->tx_page_start +
586 1.1 briggs sc->txb_next * AE_TXBUF_SIZE);
587 1.1 briggs
588 1.1 briggs /*
589 1.1 briggs * Set TX length
590 1.1 briggs */
591 1.1 briggs NIC_PUT(sc, AE_P0_TBCR0, len & 0xff);
592 1.1 briggs NIC_PUT(sc, AE_P0_TBCR1, len >> 8);
593 1.1 briggs
594 1.1 briggs /*
595 1.1 briggs * Set page 0, Remote DMA complete, Transmit Packet, and *Start*
596 1.1 briggs */
597 1.1 briggs NIC_PUT(sc, AE_P0_CR, AE_CR_RD2|AE_CR_TXP|AE_CR_STA);
598 1.1 briggs
599 1.1 briggs sc->xmit_busy = 1;
600 1.1 briggs sc->data_buffered = 0;
601 1.1 briggs
602 1.1 briggs /*
603 1.1 briggs * Switch buffers if we are doing double-buffered transmits
604 1.1 briggs */
605 1.1 briggs if ((sc->txb_next == 0) && (sc->txb_cnt > 1))
606 1.1 briggs sc->txb_next = 1;
607 1.1 briggs else
608 1.1 briggs sc->txb_next = 0;
609 1.1 briggs
610 1.1 briggs /*
611 1.1 briggs * Set a timer just in case we never hear from the board again
612 1.1 briggs */
613 1.1 briggs ifp->if_timer = 2;
614 1.1 briggs }
615 1.1 briggs
616 1.1 briggs /*
617 1.1 briggs * Start output on interface.
618 1.1 briggs * We make two assumptions here:
619 1.1 briggs * 1) that the current priority is set to splnet _before_ this code
620 1.1 briggs * is called *and* is returned to the appropriate priority after
621 1.1 briggs * return
622 1.1 briggs * 2) that the IFF_OACTIVE flag is checked before this code is called
623 1.1 briggs * (i.e. that the output part of the interface is idle)
624 1.1 briggs */
625 1.1 briggs int
626 1.1 briggs ae_start(ifp)
627 1.1 briggs struct ifnet *ifp;
628 1.1 briggs {
629 1.1 briggs struct ae_softc *sc = &ae_softc[ifp->if_unit];
630 1.1 briggs struct mbuf *m0, *m;
631 1.1 briggs caddr_t buffer;
632 1.1 briggs int len;
633 1.1 briggs
634 1.1 briggs outloop:
635 1.1 briggs /*
636 1.1 briggs * See if there is room to send more data (i.e. one or both of the
637 1.1 briggs * buffers is empty).
638 1.1 briggs */
639 1.1 briggs if (sc->data_buffered)
640 1.1 briggs if (sc->xmit_busy) {
641 1.1 briggs /*
642 1.1 briggs * No room. Indicate this to the outside world
643 1.1 briggs * and exit.
644 1.1 briggs */
645 1.1 briggs ifp->if_flags |= IFF_OACTIVE;
646 1.1 briggs return;
647 1.1 briggs } else {
648 1.1 briggs /*
649 1.1 briggs * Data is buffered, but we're not transmitting, so
650 1.1 briggs * start the xmit on the buffered data.
651 1.1 briggs * Note that ae_xmit() resets the data_buffered flag
652 1.1 briggs * before returning.
653 1.1 briggs */
654 1.1 briggs ae_xmit(ifp);
655 1.1 briggs }
656 1.1 briggs
657 1.1 briggs IF_DEQUEUE(&sc->arpcom.ac_if.if_snd, m);
658 1.1 briggs if (m == 0) {
659 1.1 briggs /*
660 1.1 briggs * The following isn't pretty; we are using the !OACTIVE flag to
661 1.1 briggs * indicate to the outside world that we can accept an additional
662 1.1 briggs * packet rather than that the transmitter is _actually_
663 1.1 briggs * active. Indeed, the transmitter may be active, but if we haven't
664 1.1 briggs * filled the secondary buffer with data then we still want to
665 1.1 briggs * accept more.
666 1.1 briggs * Note that it isn't necessary to test the data_buffered flag -
667 1.1 briggs * we wouldn't have tried to de-queue the packet in the first place
668 1.1 briggs * if it was set.
669 1.1 briggs */
670 1.1 briggs ifp->if_flags &= ~IFF_OACTIVE;
671 1.1 briggs return;
672 1.1 briggs }
673 1.1 briggs
674 1.1 briggs /*
675 1.1 briggs * Copy the mbuf chain into the transmit buffer
676 1.1 briggs */
677 1.1 briggs buffer = sc->smem_start + (sc->txb_next * AE_TXBUF_SIZE * AE_PAGE_SIZE);
678 1.1 briggs len = 0;
679 1.1 briggs for (m0 = m; m != 0; m = m->m_next) {
680 1.1 briggs /*printf("ae: copy %d bytes @ %x\n", m->m_len, buffer);*/
681 1.1 briggs bcopy(mtod(m, caddr_t), buffer, m->m_len);
682 1.1 briggs buffer += m->m_len;
683 1.1 briggs len += m->m_len;
684 1.1 briggs }
685 1.1 briggs if (len & 1) len++;
686 1.1 briggs
687 1.1 briggs sc->txb_next_len = MAX(len, ETHER_MIN_LEN);
688 1.1 briggs
689 1.1 briggs if (sc->txb_cnt > 1)
690 1.1 briggs /*
691 1.1 briggs * only set 'buffered' flag if doing multiple buffers
692 1.1 briggs */
693 1.1 briggs sc->data_buffered = 1;
694 1.1 briggs
695 1.1 briggs if (sc->xmit_busy == 0)
696 1.1 briggs ae_xmit(ifp);
697 1.1 briggs /*
698 1.1 briggs * If there is BPF support in the configuration, tap off here.
699 1.1 briggs * The following has support for converting trailer packets
700 1.1 briggs * back to normal.
701 1.1 briggs */
702 1.1 briggs #if NBPFILTER > 0
703 1.1 briggs if (sc->bpf) {
704 1.1 briggs u_short etype;
705 1.1 briggs int off, datasize, resid;
706 1.1 briggs struct ether_header *eh;
707 1.1 briggs struct trailer_header {
708 1.1 briggs u_short ether_type;
709 1.1 briggs u_short ether_residual;
710 1.1 briggs } trailer_header;
711 1.1 briggs char ether_packet[ETHER_MAX_LEN];
712 1.1 briggs char *ep;
713 1.1 briggs
714 1.1 briggs ep = ether_packet;
715 1.1 briggs
716 1.1 briggs /*
717 1.1 briggs * We handle trailers below:
718 1.1 briggs * Copy ether header first, then residual data,
719 1.1 briggs * then data. Put all this in a temporary buffer
720 1.1 briggs * 'ether_packet' and send off to bpf. Since the
721 1.1 briggs * system has generated this packet, we assume
722 1.1 briggs * that all of the offsets in the packet are
723 1.1 briggs * correct; if they're not, the system will almost
724 1.1 briggs * certainly crash in m_copydata.
725 1.1 briggs * We make no assumptions about how the data is
726 1.1 briggs * arranged in the mbuf chain (i.e. how much
727 1.1 briggs * data is in each mbuf, if mbuf clusters are
728 1.1 briggs * used, etc.), which is why we use m_copydata
729 1.1 briggs * to get the ether header rather than assume
730 1.1 briggs * that this is located in the first mbuf.
731 1.1 briggs */
732 1.1 briggs /* copy ether header */
733 1.1 briggs m_copydata(m0, 0, sizeof(struct ether_header), ep);
734 1.1 briggs eh = (struct ether_header *) ep;
735 1.1 briggs ep += sizeof(struct ether_header);
736 1.1 briggs etype = ntohs(eh->ether_type);
737 1.1 briggs if (etype >= ETHERTYPE_TRAIL &&
738 1.1 briggs etype < ETHERTYPE_TRAIL+ETHERTYPE_NTRAILER) {
739 1.1 briggs datasize = ((etype - ETHERTYPE_TRAIL) << 9);
740 1.1 briggs off = datasize + sizeof(struct ether_header);
741 1.1 briggs
742 1.1 briggs /* copy trailer_header into a data structure */
743 1.1 briggs m_copydata(m0, off, sizeof(struct trailer_header),
744 1.1 briggs &trailer_header.ether_type);
745 1.1 briggs
746 1.1 briggs /* copy residual data */
747 1.1 briggs m_copydata(m0, off+sizeof(struct trailer_header),
748 1.1 briggs resid = ntohs(trailer_header.ether_residual) -
749 1.1 briggs sizeof(struct trailer_header), ep);
750 1.1 briggs ep += resid;
751 1.1 briggs
752 1.1 briggs /* copy data */
753 1.1 briggs m_copydata(m0, sizeof(struct ether_header),
754 1.1 briggs datasize, ep);
755 1.1 briggs ep += datasize;
756 1.1 briggs
757 1.1 briggs /* restore original ether packet type */
758 1.1 briggs eh->ether_type = trailer_header.ether_type;
759 1.1 briggs
760 1.1 briggs bpf_tap(sc->bpf, ether_packet, ep - ether_packet);
761 1.1 briggs } else
762 1.1 briggs bpf_mtap(sc->bpf, m0);
763 1.1 briggs }
764 1.1 briggs #endif
765 1.1 briggs
766 1.1 briggs m_freem(m0);
767 1.1 briggs
768 1.1 briggs /*
769 1.1 briggs * If we are doing double-buffering, a buffer might be free to
770 1.1 briggs * fill with another packet, so loop back to the top.
771 1.1 briggs */
772 1.1 briggs if (sc->txb_cnt > 1)
773 1.1 briggs goto outloop;
774 1.1 briggs else {
775 1.1 briggs ifp->if_flags |= IFF_OACTIVE;
776 1.1 briggs return;
777 1.1 briggs }
778 1.1 briggs }
779 1.1 briggs
780 1.1 briggs /*
781 1.1 briggs * Ethernet interface receiver interrupt.
782 1.1 briggs */
783 1.1 briggs static inline void
784 1.1 briggs ae_rint(unit)
785 1.1 briggs int unit;
786 1.1 briggs {
787 1.1 briggs register struct ae_softc *sc = &ae_softc[unit];
788 1.1 briggs u_char boundry, current;
789 1.1 briggs u_short len;
790 1.1 briggs struct ae_ring *packet_ptr;
791 1.1 briggs
792 1.1 briggs /*
793 1.1 briggs * Set NIC to page 1 registers to get 'current' pointer
794 1.1 briggs */
795 1.1 briggs NIC_PUT(sc, AE_P0_CR, AE_CR_PAGE_1|AE_CR_RD2|AE_CR_STA);
796 1.1 briggs
797 1.1 briggs /*
798 1.1 briggs * 'sc->next_packet' is the logical beginning of the ring-buffer - i.e.
799 1.1 briggs * it points to where new data has been buffered. The 'CURR'
800 1.1 briggs * (current) register points to the logical end of the ring-buffer
801 1.1 briggs * - i.e. it points to where additional new data will be added.
802 1.1 briggs * We loop here until the logical beginning equals the logical
803 1.1 briggs * end (or in other words, until the ring-buffer is empty).
804 1.1 briggs */
805 1.1 briggs while (sc->next_packet != NIC_GET(sc, AE_P1_CURR)) {
806 1.1 briggs
807 1.1 briggs /* get pointer to this buffer header structure */
808 1.1 briggs packet_ptr = (struct ae_ring *)(sc->smem_ring +
809 1.1 briggs (sc->next_packet - sc->rec_page_start) * AE_PAGE_SIZE);
810 1.1 briggs
811 1.1 briggs /*
812 1.1 briggs * The byte count includes the FCS - Frame Check Sequence (a
813 1.1 briggs * 32 bit CRC).
814 1.1 briggs */
815 1.1 briggs len = packet_ptr->count[0] | (packet_ptr->count[1] << 8);
816 1.1 briggs if ((len >= ETHER_MIN_LEN) && (len <= ETHER_MAX_LEN)) {
817 1.1 briggs /*
818 1.1 briggs * Go get packet. len - 4 removes CRC from length.
819 1.1 briggs * (packet_ptr + 1) points to data just after the packet ring
820 1.1 briggs * header (+4 bytes)
821 1.1 briggs */
822 1.1 briggs ae_get_packet(sc, (caddr_t)(packet_ptr + 1), len - 4);
823 1.1 briggs ++sc->arpcom.ac_if.if_ipackets;
824 1.1 briggs } else {
825 1.1 briggs /*
826 1.1 briggs * Really BAD...probably indicates that the ring pointers
827 1.1 briggs * are corrupted. Also seen on early rev chips under
828 1.1 briggs * high load - the byte order of the length gets switched.
829 1.1 briggs */
830 1.1 briggs log(LOG_ERR,
831 1.1 briggs "ae%d: shared memory corrupt - invalid packet length %d\n",
832 1.1 briggs unit, len);
833 1.1 briggs ae_reset(unit);
834 1.1 briggs return;
835 1.1 briggs }
836 1.1 briggs
837 1.1 briggs /*
838 1.1 briggs * Update next packet pointer
839 1.1 briggs */
840 1.1 briggs sc->next_packet = packet_ptr->next_packet;
841 1.1 briggs
842 1.1 briggs /*
843 1.1 briggs * Update NIC boundry pointer - being careful to keep it
844 1.1 briggs * one buffer behind. (as recommended by NS databook)
845 1.1 briggs */
846 1.1 briggs boundry = sc->next_packet - 1;
847 1.1 briggs if (boundry < sc->rec_page_start)
848 1.1 briggs boundry = sc->rec_page_stop - 1;
849 1.1 briggs
850 1.1 briggs /*
851 1.1 briggs * Set NIC to page 0 registers to update boundry register
852 1.1 briggs */
853 1.1 briggs NIC_PUT(sc, AE_P0_CR, AE_CR_RD2|AE_CR_STA);
854 1.1 briggs
855 1.1 briggs NIC_PUT(sc, AE_P0_BNRY, boundry);
856 1.1 briggs
857 1.1 briggs /*
858 1.1 briggs * Set NIC to page 1 registers before looping to top (prepare to
859 1.1 briggs * get 'CURR' current pointer)
860 1.1 briggs */
861 1.1 briggs NIC_PUT(sc, AE_P0_CR, AE_CR_PAGE_1|AE_CR_RD2|AE_CR_STA);
862 1.1 briggs }
863 1.1 briggs }
864 1.1 briggs
865 1.1 briggs /*
866 1.1 briggs * Ethernet interface interrupt processor
867 1.1 briggs */
868 1.1 briggs int
869 1.1 briggs aeintr(unit)
870 1.1 briggs int unit;
871 1.1 briggs {
872 1.1 briggs struct ae_softc *sc = &ae_softc[unit];
873 1.1 briggs u_char isr;
874 1.1 briggs
875 1.1 briggs /*
876 1.1 briggs * Set NIC to page 0 registers
877 1.1 briggs */
878 1.1 briggs NIC_PUT(sc, AE_P0_CR, AE_CR_RD2|AE_CR_STA);
879 1.1 briggs
880 1.1 briggs /*
881 1.1 briggs * loop until there are no more new interrupts
882 1.1 briggs */
883 1.1 briggs while (isr = NIC_GET(sc, AE_P0_ISR)) {
884 1.1 briggs
885 1.1 briggs /*
886 1.1 briggs * reset all the bits that we are 'acknowledging'
887 1.1 briggs * by writing a '1' to each bit position that was set
888 1.1 briggs * (writing a '1' *clears* the bit)
889 1.1 briggs */
890 1.1 briggs NIC_PUT(sc, AE_P0_ISR, isr);
891 1.1 briggs
892 1.1 briggs /*
893 1.1 briggs * Handle transmitter interrupts. Handle these first
894 1.1 briggs * because the receiver will reset the board under
895 1.1 briggs * some conditions.
896 1.1 briggs */
897 1.1 briggs if (isr & (AE_ISR_PTX|AE_ISR_TXE)) {
898 1.1 briggs u_char collisions = NIC_GET(sc, AE_P0_NCR);
899 1.1 briggs
900 1.1 briggs /*
901 1.1 briggs * Check for transmit error. If a TX completed with an
902 1.1 briggs * error, we end up throwing the packet away. Really
903 1.1 briggs * the only error that is possible is excessive
904 1.1 briggs * collisions, and in this case it is best to allow the
905 1.1 briggs * automatic mechanisms of TCP to backoff the flow. Of
906 1.1 briggs * course, with UDP we're screwed, but this is expected
907 1.1 briggs * when a network is heavily loaded.
908 1.1 briggs */
909 1.1 briggs if (isr & AE_ISR_TXE) {
910 1.1 briggs
911 1.1 briggs /*
912 1.1 briggs * Excessive collisions (16)
913 1.1 briggs */
914 1.1 briggs if ((NIC_GET(sc, AE_P0_TSR) & AE_TSR_ABT)
915 1.1 briggs && (collisions == 0)) {
916 1.1 briggs /*
917 1.1 briggs * When collisions total 16, the
918 1.1 briggs * P0_NCR will indicate 0, and the
919 1.1 briggs * TSR_ABT is set.
920 1.1 briggs */
921 1.1 briggs collisions = 16;
922 1.1 briggs }
923 1.1 briggs
924 1.1 briggs /*
925 1.1 briggs * update output errors counter
926 1.1 briggs */
927 1.1 briggs ++sc->arpcom.ac_if.if_oerrors;
928 1.1 briggs } else {
929 1.1 briggs /*
930 1.1 briggs * Update total number of successfully
931 1.1 briggs * transmitted packets.
932 1.1 briggs */
933 1.1 briggs ++sc->arpcom.ac_if.if_opackets;
934 1.1 briggs }
935 1.1 briggs
936 1.1 briggs /*
937 1.1 briggs * reset tx busy and output active flags
938 1.1 briggs */
939 1.1 briggs sc->xmit_busy = 0;
940 1.1 briggs sc->arpcom.ac_if.if_flags &= ~IFF_OACTIVE;
941 1.1 briggs
942 1.1 briggs /*
943 1.1 briggs * clear watchdog timer
944 1.1 briggs */
945 1.1 briggs sc->arpcom.ac_if.if_timer = 0;
946 1.1 briggs
947 1.1 briggs /*
948 1.1 briggs * Add in total number of collisions on last
949 1.1 briggs * transmission.
950 1.1 briggs */
951 1.1 briggs sc->arpcom.ac_if.if_collisions += collisions;
952 1.1 briggs
953 1.1 briggs /*
954 1.1 briggs * If data is ready to transmit, start it transmitting,
955 1.1 briggs * otherwise defer until after handling receiver
956 1.1 briggs */
957 1.1 briggs if (sc->data_buffered)
958 1.1 briggs ae_xmit(&sc->arpcom.ac_if);
959 1.1 briggs }
960 1.1 briggs
961 1.1 briggs /*
962 1.1 briggs * Handle receiver interrupts
963 1.1 briggs */
964 1.1 briggs if (isr & (AE_ISR_PRX|AE_ISR_RXE|AE_ISR_OVW)) {
965 1.1 briggs /*
966 1.1 briggs * Overwrite warning. In order to make sure that a lockup
967 1.1 briggs * of the local DMA hasn't occurred, we reset and
968 1.1 briggs * re-init the NIC. The NSC manual suggests only a
969 1.1 briggs * partial reset/re-init is necessary - but some
970 1.1 briggs * chips seem to want more. The DMA lockup has been
971 1.1 briggs * seen only with early rev chips - Methinks this
972 1.1 briggs * bug was fixed in later revs. -DG
973 1.1 briggs */
974 1.1 briggs if (isr & AE_ISR_OVW) {
975 1.1 briggs ++sc->arpcom.ac_if.if_ierrors;
976 1.1 briggs log(LOG_WARNING,
977 1.1 briggs "ae%d: warning - receiver ring buffer overrun\n",
978 1.1 briggs unit);
979 1.1 briggs /*
980 1.1 briggs * Stop/reset/re-init NIC
981 1.1 briggs */
982 1.1 briggs ae_reset(unit);
983 1.1 briggs } else {
984 1.1 briggs
985 1.1 briggs /*
986 1.1 briggs * Receiver Error. One or more of: CRC error, frame
987 1.1 briggs * alignment error FIFO overrun, or missed packet.
988 1.1 briggs */
989 1.1 briggs if (isr & AE_ISR_RXE) {
990 1.1 briggs ++sc->arpcom.ac_if.if_ierrors;
991 1.1 briggs #ifdef AE_DEBUG
992 1.1 briggs printf("ae%d: receive error %x\n", unit,
993 1.1 briggs NIC_GET(sc, AE_P0_RSR));
994 1.1 briggs #endif
995 1.1 briggs }
996 1.1 briggs
997 1.1 briggs /*
998 1.1 briggs * Go get the packet(s)
999 1.1 briggs * XXX - Doing this on an error is dubious
1000 1.1 briggs * because there shouldn't be any data to
1001 1.1 briggs * get (we've configured the interface to
1002 1.1 briggs * not accept packets with errors).
1003 1.1 briggs */
1004 1.1 briggs ae_rint (unit);
1005 1.1 briggs }
1006 1.1 briggs }
1007 1.1 briggs
1008 1.1 briggs /*
1009 1.1 briggs * If it looks like the transmitter can take more data,
1010 1.1 briggs * attempt to start output on the interface.
1011 1.1 briggs * This is done after handling the receiver to
1012 1.1 briggs * give the receiver priority.
1013 1.1 briggs */
1014 1.1 briggs if ((sc->arpcom.ac_if.if_flags & IFF_OACTIVE) == 0)
1015 1.1 briggs ae_start(&sc->arpcom.ac_if);
1016 1.1 briggs
1017 1.1 briggs /*
1018 1.1 briggs * return NIC CR to standard state: page 0, remote DMA complete,
1019 1.1 briggs * start (toggling the TXP bit off, even if was just set
1020 1.1 briggs * in the transmit routine, is *okay* - it is 'edge'
1021 1.1 briggs * triggered from low to high)
1022 1.1 briggs */
1023 1.1 briggs NIC_PUT(sc, AE_P0_CR, AE_CR_RD2|AE_CR_STA);
1024 1.1 briggs
1025 1.1 briggs /*
1026 1.1 briggs * If the Network Talley Counters overflow, read them to
1027 1.1 briggs * reset them. It appears that old 8390's won't
1028 1.1 briggs * clear the ISR flag otherwise - resulting in an
1029 1.1 briggs * infinite loop.
1030 1.1 briggs */
1031 1.1 briggs if (isr & AE_ISR_CNT) {
1032 1.1 briggs (void) NIC_GET(sc, AE_P0_CNTR0);
1033 1.1 briggs (void) NIC_GET(sc, AE_P0_CNTR1);
1034 1.1 briggs (void) NIC_GET(sc, AE_P0_CNTR2);
1035 1.1 briggs }
1036 1.1 briggs }
1037 1.1 briggs }
1038 1.1 briggs
1039 1.1 briggs /*
1040 1.1 briggs * Process an ioctl request. This code needs some work - it looks
1041 1.1 briggs * pretty ugly.
1042 1.1 briggs */
1043 1.1 briggs int
1044 1.1 briggs ae_ioctl(ifp, command, data)
1045 1.1 briggs register struct ifnet *ifp;
1046 1.1 briggs int command;
1047 1.1 briggs caddr_t data;
1048 1.1 briggs {
1049 1.1 briggs register struct ifaddr *ifa = (struct ifaddr *)data;
1050 1.1 briggs struct ae_softc *sc = &ae_softc[ifp->if_unit];
1051 1.1 briggs struct ifreq *ifr = (struct ifreq *)data;
1052 1.1 briggs int s, error = 0;
1053 1.1 briggs
1054 1.1 briggs s = splnet();
1055 1.1 briggs
1056 1.1 briggs switch (command) {
1057 1.1 briggs
1058 1.1 briggs case SIOCSIFADDR:
1059 1.1 briggs ifp->if_flags |= IFF_UP;
1060 1.1 briggs
1061 1.1 briggs switch (ifa->ifa_addr->sa_family) {
1062 1.1 briggs #ifdef INET
1063 1.1 briggs case AF_INET:
1064 1.1 briggs ae_init(ifp->if_unit); /* before arpwhohas */
1065 1.1 briggs /*
1066 1.1 briggs * See if another station has *our* IP address.
1067 1.1 briggs * i.e.: There is an address conflict! If a
1068 1.1 briggs * conflict exists, a message is sent to the
1069 1.1 briggs * console.
1070 1.1 briggs */
1071 1.1 briggs ((struct arpcom *)ifp)->ac_ipaddr =
1072 1.1 briggs IA_SIN(ifa)->sin_addr;
1073 1.1 briggs arpwhohas((struct arpcom *)ifp, &IA_SIN(ifa)->sin_addr);
1074 1.1 briggs break;
1075 1.1 briggs #endif
1076 1.1 briggs #ifdef NS
1077 1.1 briggs /*
1078 1.1 briggs * XXX - This code is probably wrong
1079 1.1 briggs */
1080 1.1 briggs case AF_NS:
1081 1.1 briggs {
1082 1.1 briggs register struct ns_addr *ina = &(IA_SNS(ifa)->sns_addr);
1083 1.1 briggs
1084 1.1 briggs if (ns_nullhost(*ina))
1085 1.1 briggs ina->x_host =
1086 1.1 briggs *(union ns_host *)(sc->arpcom.ac_enaddr);
1087 1.1 briggs else {
1088 1.1 briggs /*
1089 1.1 briggs *
1090 1.1 briggs */
1091 1.1 briggs bcopy((caddr_t)ina->x_host.c_host,
1092 1.1 briggs (caddr_t)sc->arpcom.ac_enaddr,
1093 1.1 briggs sizeof(sc->arpcom.ac_enaddr));
1094 1.1 briggs }
1095 1.1 briggs /*
1096 1.1 briggs * Set new address
1097 1.1 briggs */
1098 1.1 briggs ae_init(ifp->if_unit);
1099 1.1 briggs break;
1100 1.1 briggs }
1101 1.1 briggs #endif
1102 1.1 briggs default:
1103 1.1 briggs ae_init(ifp->if_unit);
1104 1.1 briggs break;
1105 1.1 briggs }
1106 1.1 briggs break;
1107 1.1 briggs
1108 1.1 briggs case SIOCSIFFLAGS:
1109 1.1 briggs /*
1110 1.1 briggs * If interface is marked down and it is running, then stop it
1111 1.1 briggs */
1112 1.1 briggs if (((ifp->if_flags & IFF_UP) == 0) &&
1113 1.1 briggs (ifp->if_flags & IFF_RUNNING)) {
1114 1.1 briggs ae_stop(ifp->if_unit);
1115 1.1 briggs ifp->if_flags &= ~IFF_RUNNING;
1116 1.1 briggs } else {
1117 1.1 briggs /*
1118 1.1 briggs * If interface is marked up and it is stopped, then start it
1119 1.1 briggs */
1120 1.1 briggs if ((ifp->if_flags & IFF_UP) &&
1121 1.1 briggs ((ifp->if_flags & IFF_RUNNING) == 0))
1122 1.1 briggs ae_init(ifp->if_unit);
1123 1.1 briggs }
1124 1.1 briggs #if NBPFILTER > 0
1125 1.1 briggs if (ifp->if_flags & IFF_PROMISC) {
1126 1.1 briggs /*
1127 1.1 briggs * Set promiscuous mode on interface.
1128 1.1 briggs * XXX - for multicasts to work, we would need to
1129 1.1 briggs * write 1's in all bits of multicast
1130 1.1 briggs * hashing array. For now we assume that
1131 1.1 briggs * this was done in ae_init().
1132 1.1 briggs */
1133 1.1 briggs NIC_PUT(sc, AE_P0_RCR,
1134 1.1 briggs AE_RCR_PRO|AE_RCR_AM|AE_RCR_AB);
1135 1.1 briggs } else {
1136 1.1 briggs /*
1137 1.1 briggs * XXX - for multicasts to work, we would need to
1138 1.1 briggs * rewrite the multicast hashing array with the
1139 1.1 briggs * proper hash (would have been destroyed above).
1140 1.1 briggs */
1141 1.1 briggs NIC_PUT(sc, AE_P0_RCR, AE_RCR_AB);
1142 1.1 briggs }
1143 1.1 briggs #endif
1144 1.1 briggs break;
1145 1.1 briggs
1146 1.1 briggs default:
1147 1.1 briggs error = EINVAL;
1148 1.1 briggs }
1149 1.1 briggs (void) splx(s);
1150 1.1 briggs return (error);
1151 1.1 briggs }
1152 1.1 briggs
1153 1.1 briggs /*
1154 1.1 briggs * Macro to calculate a new address within shared memory when given an offset
1155 1.1 briggs * from an address, taking into account ring-wrap.
1156 1.1 briggs */
1157 1.1 briggs #define ringoffset(sc, start, off, type) \
1158 1.1 briggs ((type)( ((caddr_t)(start)+(off) >= (sc)->smem_end) ? \
1159 1.1 briggs (((caddr_t)(start)+(off))) - (sc)->smem_end \
1160 1.1 briggs + (sc)->smem_ring: \
1161 1.1 briggs ((caddr_t)(start)+(off)) ))
1162 1.1 briggs
1163 1.1 briggs /*
1164 1.1 briggs * Retreive packet from shared memory and send to the next level up via
1165 1.1 briggs * ether_input(). If there is a BPF listener, give a copy to BPF, too.
1166 1.1 briggs */
1167 1.1 briggs ae_get_packet(sc, buf, len)
1168 1.1 briggs struct ae_softc *sc;
1169 1.1 briggs char *buf;
1170 1.1 briggs u_short len;
1171 1.1 briggs {
1172 1.1 briggs struct ether_header *eh;
1173 1.1 briggs struct mbuf *m, *head, *ae_ring_to_mbuf();
1174 1.1 briggs u_short off;
1175 1.1 briggs int resid;
1176 1.1 briggs u_short etype;
1177 1.1 briggs struct trailer_header {
1178 1.1 briggs u_short trail_type;
1179 1.1 briggs u_short trail_residual;
1180 1.1 briggs } trailer_header;
1181 1.1 briggs
1182 1.1 briggs /* Allocate a header mbuf */
1183 1.1 briggs MGETHDR(m, M_DONTWAIT, MT_DATA);
1184 1.1 briggs if (m == 0)
1185 1.1 briggs goto bad;
1186 1.1 briggs m->m_pkthdr.rcvif = &sc->arpcom.ac_if;
1187 1.1 briggs m->m_pkthdr.len = len;
1188 1.1 briggs m->m_len = 0;
1189 1.1 briggs head = m;
1190 1.1 briggs
1191 1.1 briggs eh = (struct ether_header *)buf;
1192 1.1 briggs
1193 1.1 briggs /* The following sillines is to make NFS happy */
1194 1.1 briggs #define EROUND ((sizeof(struct ether_header) + 3) & ~3)
1195 1.1 briggs #define EOFF (EROUND - sizeof(struct ether_header))
1196 1.1 briggs
1197 1.1 briggs /*
1198 1.1 briggs * The following assumes there is room for
1199 1.1 briggs * the ether header in the header mbuf
1200 1.1 briggs */
1201 1.1 briggs head->m_data += EOFF;
1202 1.1 briggs bcopy(buf, mtod(head, caddr_t), sizeof(struct ether_header));
1203 1.1 briggs buf += sizeof(struct ether_header);
1204 1.1 briggs head->m_len += sizeof(struct ether_header);
1205 1.1 briggs len -= sizeof(struct ether_header);
1206 1.1 briggs
1207 1.1 briggs etype = ntohs((u_short)eh->ether_type);
1208 1.1 briggs
1209 1.1 briggs /*
1210 1.1 briggs * Deal with trailer protocol:
1211 1.1 briggs * If trailer protocol, calculate the datasize as 'off',
1212 1.1 briggs * which is also the offset to the trailer header.
1213 1.1 briggs * Set resid to the amount of packet data following the
1214 1.1 briggs * trailer header.
1215 1.1 briggs * Finally, copy residual data into mbuf chain.
1216 1.1 briggs */
1217 1.1 briggs if (etype >= ETHERTYPE_TRAIL &&
1218 1.1 briggs etype < ETHERTYPE_TRAIL+ETHERTYPE_NTRAILER) {
1219 1.1 briggs
1220 1.1 briggs off = (etype - ETHERTYPE_TRAIL) << 9;
1221 1.1 briggs if ((off + sizeof(struct trailer_header)) > len)
1222 1.1 briggs goto bad; /* insanity */
1223 1.1 briggs
1224 1.1 briggs eh->ether_type = *ringoffset(sc, buf, off, u_short *);
1225 1.1 briggs resid = ntohs(*ringoffset(sc, buf, off+2, u_short *));
1226 1.1 briggs
1227 1.1 briggs if ((off + resid) > len) goto bad; /* insanity */
1228 1.1 briggs
1229 1.1 briggs resid -= sizeof(struct trailer_header);
1230 1.1 briggs if (resid < 0) goto bad; /* insanity */
1231 1.1 briggs
1232 1.1 briggs m = ae_ring_to_mbuf(sc, ringoffset(sc, buf, off+4, char *), head, resid);
1233 1.1 briggs if (m == 0) goto bad;
1234 1.1 briggs
1235 1.1 briggs len = off;
1236 1.1 briggs head->m_pkthdr.len -= 4; /* subtract trailer header */
1237 1.1 briggs }
1238 1.1 briggs
1239 1.1 briggs /*
1240 1.1 briggs * Pull packet off interface. Or if this was a trailer packet,
1241 1.1 briggs * the data portion is appended.
1242 1.1 briggs */
1243 1.1 briggs m = ae_ring_to_mbuf(sc, buf, m, len);
1244 1.1 briggs if (m == 0) goto bad;
1245 1.1 briggs
1246 1.1 briggs #if NBPFILTER > 0
1247 1.1 briggs /*
1248 1.1 briggs * Check if there's a BPF listener on this interface.
1249 1.1 briggs * If so, hand off the raw packet to bpf.
1250 1.1 briggs */
1251 1.1 briggs if (sc->bpf) {
1252 1.1 briggs bpf_mtap(sc->bpf, head);
1253 1.1 briggs
1254 1.1 briggs /*
1255 1.1 briggs * Note that the interface cannot be in promiscuous mode if
1256 1.1 briggs * there are no BPF listeners. And if we are in promiscuous
1257 1.1 briggs * mode, we have to check if this packet is really ours.
1258 1.1 briggs *
1259 1.1 briggs * XXX This test does not support multicasts.
1260 1.1 briggs */
1261 1.1 briggs if ((sc->arpcom.ac_if.if_flags & IFF_PROMISC) &&
1262 1.1 briggs bcmp(eh->ether_dhost, sc->arpcom.ac_enaddr,
1263 1.1 briggs sizeof(eh->ether_dhost)) != 0 &&
1264 1.1 briggs bcmp(eh->ether_dhost, etherbroadcastaddr,
1265 1.1 briggs sizeof(eh->ether_dhost)) != 0) {
1266 1.1 briggs
1267 1.1 briggs m_freem(head);
1268 1.1 briggs return;
1269 1.1 briggs }
1270 1.1 briggs }
1271 1.1 briggs #endif
1272 1.1 briggs
1273 1.1 briggs /*
1274 1.1 briggs * Fix up data start offset in mbuf to point past ether header
1275 1.1 briggs */
1276 1.1 briggs m_adj(head, sizeof(struct ether_header));
1277 1.1 briggs
1278 1.1 briggs /*
1279 1.1 briggs * silly ether_input routine needs 'type' in host byte order
1280 1.1 briggs */
1281 1.1 briggs eh->ether_type = ntohs(eh->ether_type);
1282 1.1 briggs
1283 1.1 briggs ether_input(&sc->arpcom.ac_if, eh, head);
1284 1.1 briggs return;
1285 1.1 briggs
1286 1.1 briggs bad: if (head)
1287 1.1 briggs m_freem(head);
1288 1.1 briggs return;
1289 1.1 briggs }
1290 1.1 briggs
1291 1.1 briggs /*
1292 1.1 briggs * Supporting routines
1293 1.1 briggs */
1294 1.1 briggs
1295 1.1 briggs /*
1296 1.1 briggs * Given a source and destination address, copy 'amount' of a packet from
1297 1.1 briggs * the ring buffer into a linear destination buffer. Takes into account
1298 1.1 briggs * ring-wrap.
1299 1.1 briggs */
1300 1.1 briggs static inline char *
1301 1.1 briggs ae_ring_copy(sc,src,dst,amount)
1302 1.1 briggs struct ae_softc *sc;
1303 1.1 briggs char *src;
1304 1.1 briggs char *dst;
1305 1.1 briggs u_short amount;
1306 1.1 briggs {
1307 1.1 briggs u_short tmp_amount;
1308 1.1 briggs
1309 1.1 briggs /* does copy wrap to lower addr in ring buffer? */
1310 1.1 briggs if (src + amount > sc->smem_end) {
1311 1.1 briggs tmp_amount = sc->smem_end - src;
1312 1.1 briggs bcopy(src, dst, tmp_amount); /* copy amount up to end of smem */
1313 1.1 briggs amount -= tmp_amount;
1314 1.1 briggs src = sc->smem_ring;
1315 1.1 briggs dst += tmp_amount;
1316 1.1 briggs }
1317 1.1 briggs
1318 1.1 briggs bcopy(src, dst, amount);
1319 1.1 briggs
1320 1.1 briggs return(src + amount);
1321 1.1 briggs }
1322 1.1 briggs
1323 1.1 briggs /*
1324 1.1 briggs * Copy data from receive buffer to end of mbuf chain
1325 1.1 briggs * allocate additional mbufs as needed. return pointer
1326 1.1 briggs * to last mbuf in chain.
1327 1.1 briggs * sc = ed info (softc)
1328 1.1 briggs * src = pointer in ed ring buffer
1329 1.1 briggs * dst = pointer to last mbuf in mbuf chain to copy to
1330 1.1 briggs * amount = amount of data to copy
1331 1.1 briggs */
1332 1.1 briggs struct mbuf *
1333 1.1 briggs ae_ring_to_mbuf(sc,src,dst,total_len)
1334 1.1 briggs struct ae_softc *sc;
1335 1.1 briggs char *src;
1336 1.1 briggs struct mbuf *dst;
1337 1.1 briggs u_short total_len;
1338 1.1 briggs {
1339 1.1 briggs register struct mbuf *m = dst;
1340 1.1 briggs
1341 1.1 briggs while (total_len) {
1342 1.1 briggs register u_short amount = min(total_len, M_TRAILINGSPACE(m));
1343 1.1 briggs
1344 1.1 briggs if (amount == 0) { /* no more data in this mbuf, alloc another */
1345 1.1 briggs /*
1346 1.1 briggs * If there is enough data for an mbuf cluster, attempt
1347 1.1 briggs * to allocate one of those, otherwise, a regular
1348 1.1 briggs * mbuf will do.
1349 1.1 briggs * Note that a regular mbuf is always required, even if
1350 1.1 briggs * we get a cluster - getting a cluster does not
1351 1.1 briggs * allocate any mbufs, and one is needed to assign
1352 1.1 briggs * the cluster to. The mbuf that has a cluster
1353 1.1 briggs * extension can not be used to contain data - only
1354 1.1 briggs * the cluster can contain data.
1355 1.1 briggs */
1356 1.1 briggs dst = m;
1357 1.1 briggs MGET(m, M_DONTWAIT, MT_DATA);
1358 1.1 briggs if (m == 0)
1359 1.1 briggs return (0);
1360 1.1 briggs
1361 1.1 briggs if (total_len >= MINCLSIZE)
1362 1.1 briggs MCLGET(m, M_DONTWAIT);
1363 1.1 briggs
1364 1.1 briggs m->m_len = 0;
1365 1.1 briggs dst->m_next = m;
1366 1.1 briggs amount = min(total_len, M_TRAILINGSPACE(m));
1367 1.1 briggs }
1368 1.1 briggs
1369 1.1 briggs src = ae_ring_copy(sc, src, mtod(m, caddr_t) + m->m_len, amount);
1370 1.1 briggs
1371 1.1 briggs m->m_len += amount;
1372 total_len -= amount;
1373
1374 }
1375 return (m);
1376 }
1377 #endif
1378
1379