if_de.c revision 1.3 1 1.3 matt /* $NetBSD: if_de.c,v 1.3 2000/06/04 06:17:03 matt Exp $ */
2 1.1 ragge /*
3 1.1 ragge * Copyright (c) 1982, 1986, 1989 Regents of the University of California.
4 1.1 ragge * Copyright (c) 2000 Ludd, University of Lule}, Sweden.
5 1.1 ragge * All rights reserved.
6 1.1 ragge *
7 1.1 ragge *
8 1.1 ragge * Redistribution and use in source and binary forms, with or without
9 1.1 ragge * modification, are permitted provided that the following conditions
10 1.1 ragge * are met:
11 1.1 ragge * 1. Redistributions of source code must retain the above copyright
12 1.1 ragge * notice, this list of conditions and the following disclaimer.
13 1.1 ragge * 2. Redistributions in binary form must reproduce the above copyright
14 1.1 ragge * notice, this list of conditions and the following disclaimer in the
15 1.1 ragge * documentation and/or other materials provided with the distribution.
16 1.1 ragge * 3. All advertising materials mentioning features or use of this software
17 1.1 ragge * must display the following acknowledgement:
18 1.1 ragge * This product includes software developed by the University of
19 1.1 ragge * California, Berkeley and its contributors.
20 1.1 ragge * 4. Neither the name of the University nor the names of its contributors
21 1.1 ragge * may be used to endorse or promote products derived from this software
22 1.1 ragge * without specific prior written permission.
23 1.1 ragge *
24 1.1 ragge * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
25 1.1 ragge * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
26 1.1 ragge * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
27 1.1 ragge * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
28 1.1 ragge * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
29 1.1 ragge * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
30 1.1 ragge * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
31 1.1 ragge * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
32 1.1 ragge * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
33 1.1 ragge * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
34 1.1 ragge * SUCH DAMAGE.
35 1.1 ragge *
36 1.1 ragge * @(#)if_de.c 7.12 (Berkeley) 12/16/90
37 1.1 ragge */
38 1.1 ragge
39 1.1 ragge /*
40 1.1 ragge * DEC DEUNA interface
41 1.1 ragge *
42 1.1 ragge * Lou Salkind
43 1.1 ragge * New York University
44 1.1 ragge *
45 1.2 ragge * Rewritten by Ragge 30 April 2000 to match new world.
46 1.1 ragge *
47 1.1 ragge * TODO:
48 1.1 ragge * timeout routine (get statistics)
49 1.1 ragge */
50 1.1 ragge
51 1.1 ragge #include "opt_inet.h"
52 1.1 ragge #include "opt_iso.h"
53 1.2 ragge #include "bpfilter.h"
54 1.1 ragge
55 1.1 ragge #include <sys/param.h>
56 1.1 ragge #include <sys/systm.h>
57 1.1 ragge #include <sys/mbuf.h>
58 1.1 ragge #include <sys/buf.h>
59 1.1 ragge #include <sys/protosw.h>
60 1.1 ragge #include <sys/socket.h>
61 1.1 ragge #include <sys/ioctl.h>
62 1.1 ragge #include <sys/errno.h>
63 1.1 ragge #include <sys/syslog.h>
64 1.1 ragge #include <sys/device.h>
65 1.1 ragge
66 1.1 ragge #include <net/if.h>
67 1.1 ragge #include <net/if_ether.h>
68 1.1 ragge #include <net/if_dl.h>
69 1.1 ragge
70 1.1 ragge #ifdef INET
71 1.1 ragge #include <netinet/in.h>
72 1.1 ragge #include <netinet/if_inarp.h>
73 1.1 ragge #endif
74 1.1 ragge
75 1.2 ragge #if NBPFILTER > 0
76 1.2 ragge #include <net/bpf.h>
77 1.2 ragge #include <net/bpfdesc.h>
78 1.1 ragge #endif
79 1.1 ragge
80 1.1 ragge #include <machine/bus.h>
81 1.1 ragge
82 1.1 ragge #include <dev/qbus/ubavar.h>
83 1.1 ragge #include <dev/qbus/if_dereg.h>
84 1.1 ragge
85 1.1 ragge #include "ioconf.h"
86 1.1 ragge
87 1.1 ragge /*
88 1.1 ragge * Be careful with transmit/receive buffers, each entry steals 4 map
89 1.1 ragge * registers, and there is only 496 on one unibus...
90 1.1 ragge */
91 1.1 ragge #define NRCV 10 /* number of receive buffers (must be > 1) */
92 1.2 ragge #define NXMT 10 /* number of transmit buffers */
93 1.1 ragge
94 1.1 ragge /*
95 1.1 ragge * Structure containing the elements that must be in DMA-safe memory.
96 1.1 ragge */
97 1.1 ragge struct de_cdata {
98 1.1 ragge /* the following structures are always mapped in */
99 1.1 ragge struct de_pcbb dc_pcbb; /* port control block */
100 1.1 ragge struct de_ring dc_xrent[NXMT]; /* transmit ring entrys */
101 1.1 ragge struct de_ring dc_rrent[NRCV]; /* receive ring entrys */
102 1.1 ragge struct de_udbbuf dc_udbbuf; /* UNIBUS data buffer */
103 1.2 ragge char dc_xbuf[NXMT][ETHER_MAX_LEN];
104 1.1 ragge /* end mapped area */
105 1.1 ragge };
106 1.1 ragge
107 1.1 ragge /*
108 1.1 ragge * Ethernet software status per interface.
109 1.1 ragge *
110 1.1 ragge * Each interface is referenced by a network interface structure,
111 1.1 ragge * ds_if, which the routing code uses to locate the interface.
112 1.1 ragge * This structure contains the output queue for the interface, its address, ...
113 1.1 ragge * We also have, for each interface, a UBA interface structure, which
114 1.1 ragge * contains information about the UNIBUS resources held by the interface:
115 1.1 ragge * map registers, buffered data paths, etc. Information is cached in this
116 1.1 ragge * structure for use by the if_uba.c routines in running the interface
117 1.1 ragge * efficiently.
118 1.1 ragge */
119 1.1 ragge struct de_softc {
120 1.1 ragge struct device sc_dev; /* Configuration common part */
121 1.3 matt struct evcnt sc_intrcnt; /* Interrupt counting */
122 1.1 ragge struct ethercom sc_ec; /* Ethernet common part */
123 1.1 ragge #define sc_if sc_ec.ec_if /* network-visible interface */
124 1.1 ragge bus_space_tag_t sc_iot;
125 1.1 ragge bus_addr_t sc_ioh;
126 1.1 ragge bus_dma_tag_t sc_dmat;
127 1.2 ragge bus_dmamap_t sc_cmap;
128 1.1 ragge struct de_cdata *sc_dedata; /* Control structure */
129 1.1 ragge struct de_cdata *sc_pdedata; /* Bus-mapped control structure */
130 1.2 ragge #ifdef notdef
131 1.2 ragge bus_dmamap_t sc_xmtmap[NXMT]; /* unibus xmit maps */
132 1.1 ragge struct mbuf *sc_txmbuf[NXMT];
133 1.2 ragge #endif
134 1.2 ragge bus_dmamap_t sc_rcvmap[NRCV]; /* unibus receive maps */
135 1.1 ragge struct mbuf *sc_rxmbuf[NRCV];
136 1.2 ragge int sc_nexttx; /* next tx descriptor to put data on */
137 1.2 ragge int sc_nextrx; /* next rx descriptor for recv */
138 1.2 ragge int sc_inq; /* # if xmit packets in queue */
139 1.2 ragge int sc_lastack; /* Last handled rx descriptor */
140 1.2 ragge void *sc_sh; /* shutdownhook cookie */
141 1.1 ragge };
142 1.1 ragge
143 1.1 ragge static int dematch(struct device *, struct cfdata *, void *);
144 1.1 ragge static void deattach(struct device *, struct device *, void *);
145 1.2 ragge static void dewait(struct de_softc *, char *);
146 1.1 ragge static void deinit(struct de_softc *);
147 1.1 ragge static int deioctl(struct ifnet *, u_long, caddr_t);
148 1.1 ragge static void dereset(struct device *);
149 1.1 ragge static void destart(struct ifnet *);
150 1.1 ragge static void derecv(struct de_softc *);
151 1.1 ragge static void dexmit(struct de_softc *);
152 1.1 ragge static void deintr(void *);
153 1.1 ragge static int de_add_rxbuf(struct de_softc *, int);
154 1.2 ragge static void desetup(struct de_softc *sc);
155 1.2 ragge static void deshutdown(void *);
156 1.1 ragge
157 1.1 ragge struct cfattach de_ca = {
158 1.1 ragge sizeof(struct de_softc), dematch, deattach
159 1.1 ragge };
160 1.1 ragge
161 1.1 ragge #define DE_WCSR(csr, val) \
162 1.1 ragge bus_space_write_2(sc->sc_iot, sc->sc_ioh, csr, val)
163 1.1 ragge #define DE_WLOW(val) \
164 1.1 ragge bus_space_write_1(sc->sc_iot, sc->sc_ioh, DE_PCSR0, val)
165 1.1 ragge #define DE_WHIGH(val) \
166 1.1 ragge bus_space_write_1(sc->sc_iot, sc->sc_ioh, DE_PCSR0 + 1, val)
167 1.1 ragge #define DE_RCSR(csr) \
168 1.1 ragge bus_space_read_2(sc->sc_iot, sc->sc_ioh, csr)
169 1.1 ragge
170 1.1 ragge #define LOWORD(x) ((int)(x) & 0xffff)
171 1.1 ragge #define HIWORD(x) (((int)(x) >> 16) & 0x3)
172 1.1 ragge /*
173 1.1 ragge * Interface exists: make available by filling in network interface
174 1.1 ragge * record. System will initialize the interface when it is ready
175 1.1 ragge * to accept packets. We get the ethernet address here.
176 1.1 ragge */
177 1.1 ragge void
178 1.1 ragge deattach(struct device *parent, struct device *self, void *aux)
179 1.1 ragge {
180 1.1 ragge struct uba_attach_args *ua = aux;
181 1.1 ragge struct de_softc *sc = (struct de_softc *)self;
182 1.1 ragge struct ifnet *ifp = &sc->sc_if;
183 1.1 ragge u_int8_t myaddr[ETHER_ADDR_LEN];
184 1.2 ragge int csr1, rseg, error, i;
185 1.1 ragge bus_dma_segment_t seg;
186 1.1 ragge char *c;
187 1.1 ragge
188 1.1 ragge sc->sc_iot = ua->ua_iot;
189 1.1 ragge sc->sc_ioh = ua->ua_ioh;
190 1.1 ragge sc->sc_dmat = ua->ua_dmat;
191 1.1 ragge
192 1.1 ragge /*
193 1.1 ragge * What kind of a board is this?
194 1.1 ragge * The error bits 4-6 in pcsr1 are a device id as long as
195 1.1 ragge * the high byte is zero.
196 1.1 ragge */
197 1.1 ragge csr1 = DE_RCSR(DE_PCSR1);
198 1.1 ragge if (csr1 & 0xff60)
199 1.1 ragge c = "broken";
200 1.1 ragge else if (csr1 & 0x10)
201 1.1 ragge c = "delua";
202 1.1 ragge else
203 1.1 ragge c = "deuna";
204 1.1 ragge
205 1.1 ragge /*
206 1.1 ragge * Reset the board and temporarily map
207 1.1 ragge * the pcbb buffer onto the Unibus.
208 1.1 ragge */
209 1.1 ragge DE_WCSR(DE_PCSR0, 0); /* reset INTE */
210 1.1 ragge DELAY(100);
211 1.1 ragge DE_WCSR(DE_PCSR0, PCSR0_RSET);
212 1.2 ragge dewait(sc, "reset");
213 1.1 ragge
214 1.1 ragge if ((error = bus_dmamem_alloc(sc->sc_dmat,
215 1.1 ragge sizeof(struct de_cdata), NBPG, 0, &seg, 1, &rseg,
216 1.1 ragge BUS_DMA_NOWAIT)) != 0) {
217 1.1 ragge printf(": unable to allocate control data, error = %d\n",
218 1.1 ragge error);
219 1.1 ragge goto fail_0;
220 1.1 ragge }
221 1.1 ragge if ((error = bus_dmamem_map(sc->sc_dmat, &seg, rseg,
222 1.1 ragge sizeof(struct de_cdata), (caddr_t *)&sc->sc_dedata,
223 1.1 ragge BUS_DMA_NOWAIT|BUS_DMA_COHERENT)) != 0) {
224 1.1 ragge printf(": unable to map control data, error = %d\n", error);
225 1.1 ragge goto fail_1;
226 1.1 ragge }
227 1.1 ragge
228 1.2 ragge if ((error = bus_dmamap_create(sc->sc_dmat, sizeof(struct de_cdata),
229 1.2 ragge 1, sizeof(struct de_cdata), 0, BUS_DMA_NOWAIT,
230 1.2 ragge &sc->sc_cmap)) != 0) {
231 1.2 ragge printf(": unable to create control data DMA map, error = %d\n",
232 1.2 ragge error);
233 1.2 ragge goto fail_2;
234 1.2 ragge }
235 1.2 ragge
236 1.2 ragge if ((error = bus_dmamap_load(sc->sc_dmat, sc->sc_cmap,
237 1.2 ragge sc->sc_dedata, sizeof(struct de_cdata), NULL,
238 1.2 ragge BUS_DMA_NOWAIT)) != 0) {
239 1.2 ragge printf(": unable to load control data DMA map, error = %d\n",
240 1.2 ragge error);
241 1.2 ragge goto fail_3;
242 1.2 ragge }
243 1.2 ragge
244 1.2 ragge bzero(sc->sc_dedata, sizeof(struct de_cdata));
245 1.2 ragge sc->sc_pdedata = (struct de_cdata *)sc->sc_cmap->dm_segs[0].ds_addr;
246 1.2 ragge
247 1.2 ragge #ifdef notdef
248 1.1 ragge /*
249 1.1 ragge * Create the transmit descriptor DMA maps.
250 1.1 ragge *
251 1.1 ragge * XXX - should allocate transmit map pages when needed, not here.
252 1.1 ragge */
253 1.1 ragge for (i = 0; i < NXMT; i++) {
254 1.2 ragge if ((error = bus_dmamap_create(sc->sc_dmat, MCLBYTES, 1,
255 1.1 ragge MCLBYTES, 0, BUS_DMA_NOWAIT|BUS_DMA_ALLOCNOW,
256 1.1 ragge &sc->sc_xmtmap[i]))) {
257 1.1 ragge printf(": unable to create tx DMA map %d, error = %d\n",
258 1.1 ragge i, error);
259 1.1 ragge goto fail_4;
260 1.1 ragge }
261 1.1 ragge }
262 1.2 ragge #endif
263 1.1 ragge
264 1.1 ragge /*
265 1.1 ragge * Create receive buffer DMA maps.
266 1.1 ragge */
267 1.1 ragge for (i = 0; i < NRCV; i++) {
268 1.1 ragge if ((error = bus_dmamap_create(sc->sc_dmat, MCLBYTES, 1,
269 1.2 ragge MCLBYTES, 0, BUS_DMA_NOWAIT|BUS_DMA_ALLOCNOW,
270 1.1 ragge &sc->sc_rcvmap[i]))) {
271 1.1 ragge printf(": unable to create rx DMA map %d, error = %d\n",
272 1.1 ragge i, error);
273 1.1 ragge goto fail_5;
274 1.1 ragge }
275 1.1 ragge }
276 1.1 ragge
277 1.1 ragge /*
278 1.1 ragge * Pre-allocate the receive buffers.
279 1.1 ragge */
280 1.1 ragge for (i = 0; i < NRCV; i++) {
281 1.1 ragge if ((error = de_add_rxbuf(sc, i)) != 0) {
282 1.1 ragge printf(": unable to allocate or map rx buffer %d\n,"
283 1.1 ragge " error = %d\n", i, error);
284 1.1 ragge goto fail_6;
285 1.1 ragge }
286 1.1 ragge }
287 1.1 ragge
288 1.1 ragge /*
289 1.1 ragge * Tell the DEUNA about our PCB
290 1.1 ragge */
291 1.1 ragge DE_WCSR(DE_PCSR2, LOWORD(sc->sc_pdedata));
292 1.1 ragge DE_WCSR(DE_PCSR3, HIWORD(sc->sc_pdedata));
293 1.1 ragge DE_WLOW(CMD_GETPCBB);
294 1.2 ragge dewait(sc, "pcbb");
295 1.1 ragge
296 1.1 ragge sc->sc_dedata->dc_pcbb.pcbb0 = FC_RDPHYAD;
297 1.1 ragge DE_WLOW(CMD_GETCMD);
298 1.2 ragge dewait(sc, "read addr ");
299 1.1 ragge
300 1.1 ragge bcopy((caddr_t)&sc->sc_dedata->dc_pcbb.pcbb2, myaddr, sizeof (myaddr));
301 1.2 ragge printf("\n%s: %s, hardware address %s\n", sc->sc_dev.dv_xname, c,
302 1.1 ragge ether_sprintf(myaddr));
303 1.1 ragge
304 1.3 matt uba_intr_establish(ua->ua_icookie, ua->ua_cvec, deintr,
305 1.3 matt sc, &sc->sc_intrcnt);
306 1.1 ragge uba_reset_establish(dereset, &sc->sc_dev);
307 1.3 matt evcnt_attach(&sc->sc_dev, "intr", &sc->sc_intrcnt);
308 1.1 ragge
309 1.1 ragge strcpy(ifp->if_xname, sc->sc_dev.dv_xname);
310 1.1 ragge ifp->if_softc = sc;
311 1.1 ragge ifp->if_flags = IFF_BROADCAST | IFF_MULTICAST | IFF_SIMPLEX;
312 1.1 ragge ifp->if_ioctl = deioctl;
313 1.1 ragge ifp->if_start = destart;
314 1.1 ragge if_attach(ifp);
315 1.1 ragge ether_ifattach(ifp, myaddr);
316 1.1 ragge #if NBPFILTER > 0
317 1.1 ragge bpfattach(&ifp->if_bpf, ifp, DLT_EN10MB, sizeof(struct ether_header));
318 1.1 ragge #endif
319 1.2 ragge sc->sc_sh = shutdownhook_establish(deshutdown, sc);
320 1.1 ragge return;
321 1.1 ragge
322 1.1 ragge /*
323 1.1 ragge * Free any resources we've allocated during the failed attach
324 1.1 ragge * attempt. Do this in reverse order and fall through.
325 1.1 ragge */
326 1.1 ragge fail_6:
327 1.1 ragge for (i = 0; i < NRCV; i++) {
328 1.1 ragge if (sc->sc_rxmbuf[i] != NULL) {
329 1.2 ragge bus_dmamap_unload(sc->sc_dmat, sc->sc_rcvmap[i]);
330 1.1 ragge m_freem(sc->sc_rxmbuf[i]);
331 1.1 ragge }
332 1.1 ragge }
333 1.1 ragge fail_5:
334 1.1 ragge for (i = 0; i < NRCV; i++) {
335 1.2 ragge if (sc->sc_rcvmap[i] != NULL)
336 1.2 ragge bus_dmamap_destroy(sc->sc_dmat, sc->sc_rcvmap[i]);
337 1.1 ragge }
338 1.2 ragge #ifdef notdef
339 1.1 ragge fail_4:
340 1.1 ragge for (i = 0; i < NXMT; i++) {
341 1.2 ragge if (sc->sc_xmtmap[i] != NULL)
342 1.2 ragge bus_dmamap_destroy(sc->sc_dmat, sc->sc_xmtmap[i]);
343 1.1 ragge }
344 1.2 ragge bus_dmamap_unload(sc->sc_dmat, sc->sc_cmap);
345 1.2 ragge #endif
346 1.2 ragge fail_3:
347 1.2 ragge bus_dmamap_destroy(sc->sc_dmat, sc->sc_cmap);
348 1.2 ragge fail_2:
349 1.1 ragge bus_dmamem_unmap(sc->sc_dmat, (caddr_t)sc->sc_dedata,
350 1.1 ragge sizeof(struct de_cdata));
351 1.1 ragge fail_1:
352 1.1 ragge bus_dmamem_free(sc->sc_dmat, &seg, rseg);
353 1.1 ragge fail_0:
354 1.1 ragge return;
355 1.1 ragge }
356 1.1 ragge
357 1.1 ragge /*
358 1.1 ragge * Reset of interface after UNIBUS reset.
359 1.1 ragge */
360 1.1 ragge void
361 1.1 ragge dereset(struct device *dev)
362 1.1 ragge {
363 1.1 ragge struct de_softc *sc = (void *)dev;
364 1.1 ragge
365 1.1 ragge sc->sc_if.if_flags &= ~(IFF_RUNNING | IFF_OACTIVE);
366 1.1 ragge DE_WCSR(DE_PCSR0, PCSR0_RSET);
367 1.2 ragge dewait(sc, "reset");
368 1.1 ragge deinit(sc);
369 1.1 ragge }
370 1.1 ragge
371 1.1 ragge /*
372 1.1 ragge * Initialization of interface; clear recorded pending
373 1.1 ragge * operations, and reinitialize UNIBUS usage.
374 1.1 ragge */
375 1.1 ragge void
376 1.1 ragge deinit(struct de_softc *sc)
377 1.1 ragge {
378 1.2 ragge struct de_cdata *dc, *pdc;
379 1.1 ragge int s, i;
380 1.1 ragge
381 1.2 ragge if (sc->sc_if.if_flags & IFF_RUNNING)
382 1.1 ragge return;
383 1.1 ragge /*
384 1.1 ragge * Tell the DEUNA about our PCB
385 1.1 ragge */
386 1.1 ragge DE_WCSR(DE_PCSR2, LOWORD(sc->sc_pdedata));
387 1.1 ragge DE_WCSR(DE_PCSR3, HIWORD(sc->sc_pdedata));
388 1.1 ragge DE_WLOW(0); /* reset INTE */
389 1.1 ragge DELAY(500);
390 1.1 ragge DE_WLOW(CMD_GETPCBB);
391 1.2 ragge dewait(sc, "pcbb");
392 1.1 ragge
393 1.1 ragge dc = sc->sc_dedata;
394 1.2 ragge pdc = sc->sc_pdedata;
395 1.1 ragge /* set the transmit and receive ring header addresses */
396 1.1 ragge dc->dc_pcbb.pcbb0 = FC_WTRING;
397 1.2 ragge dc->dc_pcbb.pcbb2 = LOWORD(&pdc->dc_udbbuf);
398 1.2 ragge dc->dc_pcbb.pcbb4 = HIWORD(&pdc->dc_udbbuf);
399 1.1 ragge
400 1.2 ragge dc->dc_udbbuf.b_tdrbl = LOWORD(&pdc->dc_xrent[0]);
401 1.2 ragge dc->dc_udbbuf.b_tdrbh = HIWORD(&pdc->dc_xrent[0]);
402 1.1 ragge dc->dc_udbbuf.b_telen = sizeof (struct de_ring) / sizeof(u_int16_t);
403 1.1 ragge dc->dc_udbbuf.b_trlen = NXMT;
404 1.2 ragge dc->dc_udbbuf.b_rdrbl = LOWORD(&pdc->dc_rrent[0]);
405 1.2 ragge dc->dc_udbbuf.b_rdrbh = HIWORD(&pdc->dc_rrent[0]);
406 1.1 ragge dc->dc_udbbuf.b_relen = sizeof (struct de_ring) / sizeof(u_int16_t);
407 1.1 ragge dc->dc_udbbuf.b_rrlen = NRCV;
408 1.1 ragge
409 1.1 ragge DE_WLOW(CMD_GETCMD);
410 1.2 ragge dewait(sc, "wtring");
411 1.1 ragge
412 1.2 ragge desetup(sc);
413 1.1 ragge
414 1.2 ragge /* Link the transmit buffers to the descriptors */
415 1.1 ragge for (i = 0; i < NXMT; i++) {
416 1.1 ragge dc->dc_xrent[i].r_flags = 0;
417 1.2 ragge dc->dc_xrent[i].r_segbl = LOWORD(&pdc->dc_xbuf[i][0]);
418 1.2 ragge dc->dc_xrent[i].r_segbh = HIWORD(&pdc->dc_xbuf[i][0]);
419 1.1 ragge }
420 1.2 ragge
421 1.1 ragge for (i = 0; i < NRCV; i++)
422 1.1 ragge dc->dc_rrent[i].r_flags = RFLG_OWN;
423 1.1 ragge sc->sc_nexttx = sc->sc_inq = sc->sc_lastack = sc->sc_nextrx = 0;
424 1.1 ragge
425 1.1 ragge /* start up the board (rah rah) */
426 1.1 ragge s = splnet();
427 1.1 ragge sc->sc_if.if_flags |= IFF_RUNNING;
428 1.2 ragge DE_WLOW(PCSR0_INTE); /* Change to interrupts */
429 1.2 ragge DELAY(500);
430 1.1 ragge DE_WLOW(CMD_START|PCSR0_INTE);
431 1.2 ragge dewait(sc, "start");
432 1.2 ragge DE_WLOW(CMD_PDMD|PCSR0_INTE);
433 1.2 ragge dewait(sc, "initpoll");
434 1.1 ragge splx(s);
435 1.1 ragge }
436 1.1 ragge
437 1.1 ragge /*
438 1.1 ragge * Setup output on interface.
439 1.1 ragge * Get another datagram to send off of the interface queue,
440 1.1 ragge * and map it to the interface before starting the output.
441 1.1 ragge * Must be called from ipl >= our interrupt level.
442 1.1 ragge */
443 1.1 ragge void
444 1.1 ragge destart(struct ifnet *ifp)
445 1.1 ragge {
446 1.1 ragge struct de_softc *sc = ifp->if_softc;
447 1.2 ragge struct de_cdata *dc;
448 1.2 ragge struct mbuf *m;
449 1.2 ragge int idx, s, running;
450 1.1 ragge
451 1.1 ragge /*
452 1.1 ragge * the following test is necessary, since
453 1.1 ragge * the code is not reentrant and we have
454 1.1 ragge * multiple transmission buffers.
455 1.1 ragge */
456 1.2 ragge if (ifp->if_flags & IFF_OACTIVE) /* Too much to do already */
457 1.1 ragge return;
458 1.2 ragge
459 1.2 ragge if (ifp->if_snd.ifq_head == 0) /* Nothing to do at all */
460 1.2 ragge return;
461 1.2 ragge
462 1.1 ragge s = splimp();
463 1.2 ragge dc = sc->sc_dedata;
464 1.2 ragge running = (sc->sc_inq != 0);
465 1.1 ragge while (sc->sc_inq < (NXMT - 1)) {
466 1.2 ragge
467 1.1 ragge idx = sc->sc_nexttx;
468 1.1 ragge IF_DEQUEUE(&ifp->if_snd, m);
469 1.1 ragge if (m == 0)
470 1.1 ragge goto out;
471 1.1 ragge
472 1.1 ragge #if NBPFILTER > 0
473 1.1 ragge if (ifp->if_bpf)
474 1.1 ragge bpf_mtap(ifp->if_bpf, m);
475 1.1 ragge #endif
476 1.2 ragge m_copydata(m, 0, m->m_pkthdr.len, &dc->dc_xbuf[idx][0]);
477 1.2 ragge dc->dc_xrent[idx].r_slen = m->m_pkthdr.len;
478 1.2 ragge dc->dc_xrent[idx].r_tdrerr = 0;
479 1.2 ragge dc->dc_xrent[idx].r_flags = XFLG_STP|XFLG_ENP|XFLG_OWN;
480 1.2 ragge m_freem(m);
481 1.2 ragge
482 1.2 ragge sc->sc_inq++;
483 1.2 ragge if (++sc->sc_nexttx == NXMT)
484 1.2 ragge sc->sc_nexttx = 0;
485 1.2 ragge ifp->if_timer = 5; /* If transmit logic dies */
486 1.1 ragge }
487 1.1 ragge if (sc->sc_inq == (NXMT - 1))
488 1.1 ragge ifp->if_flags |= IFF_OACTIVE;
489 1.1 ragge
490 1.2 ragge out: if (running == 0) {
491 1.2 ragge DE_WLOW(PCSR0_INTE|CMD_PDMD);
492 1.2 ragge dewait(sc, "poll");
493 1.2 ragge }
494 1.1 ragge
495 1.1 ragge splx(s);
496 1.1 ragge }
497 1.1 ragge
498 1.1 ragge /*
499 1.1 ragge * Command done interrupt.
500 1.1 ragge */
501 1.1 ragge void
502 1.1 ragge deintr(void *arg)
503 1.1 ragge {
504 1.1 ragge struct de_softc *sc = arg;
505 1.2 ragge short csr0, csr1;
506 1.1 ragge
507 1.1 ragge /* save flags right away - clear out interrupt bits */
508 1.1 ragge csr0 = DE_RCSR(DE_PCSR0);
509 1.2 ragge csr1 = DE_RCSR(DE_PCSR1);
510 1.1 ragge DE_WHIGH(csr0 >> 8);
511 1.1 ragge
512 1.1 ragge if (csr0 & PCSR0_RXI)
513 1.1 ragge derecv(sc);
514 1.1 ragge
515 1.1 ragge if (csr0 & PCSR0_TXI)
516 1.1 ragge dexmit(sc);
517 1.1 ragge
518 1.2 ragge /* Should never end up here */
519 1.2 ragge if (csr0 & PCSR0_PCEI) {
520 1.2 ragge printf("%s: Port command error interrupt\n",
521 1.2 ragge sc->sc_dev.dv_xname);
522 1.2 ragge }
523 1.2 ragge
524 1.2 ragge if (csr0 & PCSR0_SERI) {
525 1.2 ragge printf("%s: Status error interrupt\n", sc->sc_dev.dv_xname);
526 1.2 ragge }
527 1.2 ragge
528 1.2 ragge if (csr0 & PCSR0_RCBI) {
529 1.2 ragge printf("%s: Receive buffer unavail interrupt\n",
530 1.2 ragge sc->sc_dev.dv_xname);
531 1.2 ragge DE_WLOW(PCSR0_INTE|CMD_PDMD);
532 1.2 ragge dewait(sc, "repoll");
533 1.2 ragge }
534 1.1 ragge destart(&sc->sc_if);
535 1.1 ragge }
536 1.1 ragge
537 1.1 ragge void
538 1.1 ragge dexmit(struct de_softc *sc)
539 1.1 ragge {
540 1.1 ragge struct ifnet *ifp = &sc->sc_if;
541 1.1 ragge struct de_ring *rp;
542 1.1 ragge
543 1.1 ragge /*
544 1.1 ragge * Poll transmit ring and check status.
545 1.1 ragge * Then free buffer space and check for
546 1.1 ragge * more transmit requests.
547 1.1 ragge */
548 1.1 ragge rp = &sc->sc_dedata->dc_xrent[sc->sc_lastack];
549 1.1 ragge while ((rp->r_flags & XFLG_OWN) == 0) {
550 1.2 ragge int idx = sc->sc_lastack;
551 1.2 ragge
552 1.2 ragge if (idx == sc->sc_nexttx)
553 1.2 ragge break;
554 1.2 ragge if (rp->r_flags & XFLG_ENP)
555 1.1 ragge ifp->if_opackets++;
556 1.1 ragge if (rp->r_flags & (XFLG_ERRS|XFLG_MTCH|XFLG_ONE|XFLG_MORE)) {
557 1.1 ragge if (rp->r_flags & XFLG_ERRS) {
558 1.1 ragge ifp->if_oerrors++;
559 1.1 ragge } else if (rp->r_flags & XFLG_ONE) {
560 1.1 ragge ifp->if_collisions++;
561 1.1 ragge } else if (rp->r_flags & XFLG_MORE) {
562 1.1 ragge ifp->if_collisions += 3;
563 1.1 ragge }
564 1.1 ragge /* else if (rp->r_flags & XFLG_MTCH)
565 1.1 ragge * Matches ourself, but why care?
566 1.1 ragge * Let upper layer deal with this.
567 1.1 ragge */
568 1.1 ragge }
569 1.1 ragge if (++sc->sc_lastack == NXMT)
570 1.1 ragge sc->sc_lastack = 0;
571 1.1 ragge sc->sc_inq--;
572 1.1 ragge rp = &sc->sc_dedata->dc_xrent[sc->sc_lastack];
573 1.1 ragge }
574 1.1 ragge ifp->if_flags &= ~IFF_OACTIVE;
575 1.1 ragge if (sc->sc_inq == 0)
576 1.1 ragge ifp->if_timer = 0;
577 1.1 ragge }
578 1.1 ragge
579 1.1 ragge /*
580 1.1 ragge * Ethernet interface receiver interface.
581 1.1 ragge * If input error just drop packet.
582 1.1 ragge * Otherwise purge input buffered data path and examine
583 1.1 ragge * packet to determine type. If can't determine length
584 1.1 ragge * from type, then have to drop packet. Othewise decapsulate
585 1.1 ragge * packet based on type and pass to type specific higher-level
586 1.1 ragge * input routine.
587 1.1 ragge */
588 1.1 ragge void
589 1.1 ragge derecv(struct de_softc *sc)
590 1.1 ragge {
591 1.1 ragge struct ifnet *ifp = &sc->sc_if;
592 1.1 ragge struct de_ring *rp;
593 1.1 ragge struct mbuf *m;
594 1.1 ragge int len;
595 1.1 ragge
596 1.1 ragge rp = &sc->sc_dedata->dc_rrent[sc->sc_nextrx];
597 1.1 ragge while ((rp->r_flags & RFLG_OWN) == 0) {
598 1.1 ragge ifp->if_ipackets++;
599 1.1 ragge /* check for errors */
600 1.1 ragge if ((rp->r_flags & (RFLG_ERRS|RFLG_FRAM|RFLG_OFLO|RFLG_CRC)) ||
601 1.1 ragge (rp->r_flags&(RFLG_STP|RFLG_ENP)) != (RFLG_STP|RFLG_ENP) ||
602 1.2 ragge (rp->r_lenerr & (RERR_BUFL|RERR_UBTO))) {
603 1.1 ragge ifp->if_ierrors++;
604 1.1 ragge goto next;
605 1.1 ragge }
606 1.1 ragge m = sc->sc_rxmbuf[sc->sc_nextrx];
607 1.2 ragge len = (rp->r_lenerr&RERR_MLEN) - ETHER_CRC_LEN;
608 1.1 ragge de_add_rxbuf(sc, sc->sc_nextrx);
609 1.1 ragge m->m_pkthdr.rcvif = ifp;
610 1.1 ragge m->m_pkthdr.len = m->m_len = len;
611 1.2 ragge
612 1.1 ragge #if NBPFILTER > 0
613 1.1 ragge if (ifp->if_bpf) {
614 1.2 ragge struct ether_header *eh;
615 1.2 ragge
616 1.2 ragge eh = mtod(m, struct ether_header *);
617 1.1 ragge bpf_mtap(ifp->if_bpf, m);
618 1.1 ragge if ((ifp->if_flags & IFF_PROMISC) != 0 &&
619 1.1 ragge bcmp(LLADDR(ifp->if_sadl), eh->ether_dhost,
620 1.1 ragge ETHER_ADDR_LEN) != 0 &&
621 1.2 ragge (ETHER_IS_MULTICAST(eh->ether_dhost) == 0)) {
622 1.1 ragge m_freem(m);
623 1.1 ragge goto next;
624 1.1 ragge }
625 1.1 ragge }
626 1.1 ragge #endif
627 1.1 ragge (*ifp->if_input)(ifp, m);
628 1.1 ragge
629 1.1 ragge /* hang the receive buffer again */
630 1.1 ragge next: rp->r_lenerr = 0;
631 1.1 ragge rp->r_flags = RFLG_OWN;
632 1.1 ragge
633 1.1 ragge /* check next receive buffer */
634 1.1 ragge if (++sc->sc_nextrx == NRCV)
635 1.1 ragge sc->sc_nextrx = 0;
636 1.1 ragge rp = &sc->sc_dedata->dc_rrent[sc->sc_nextrx];
637 1.1 ragge }
638 1.1 ragge }
639 1.1 ragge
640 1.1 ragge /*
641 1.1 ragge * Add a receive buffer to the indicated descriptor.
642 1.1 ragge */
643 1.1 ragge int
644 1.1 ragge de_add_rxbuf(sc, i)
645 1.1 ragge struct de_softc *sc;
646 1.1 ragge int i;
647 1.1 ragge {
648 1.1 ragge struct mbuf *m;
649 1.1 ragge struct de_ring *rp;
650 1.1 ragge vaddr_t addr;
651 1.1 ragge int error;
652 1.1 ragge
653 1.1 ragge MGETHDR(m, M_DONTWAIT, MT_DATA);
654 1.1 ragge if (m == NULL)
655 1.1 ragge return (ENOBUFS);
656 1.1 ragge
657 1.1 ragge MCLGET(m, M_DONTWAIT);
658 1.1 ragge if ((m->m_flags & M_EXT) == 0) {
659 1.1 ragge m_freem(m);
660 1.1 ragge return (ENOBUFS);
661 1.1 ragge }
662 1.1 ragge
663 1.1 ragge if (sc->sc_rxmbuf[i] != NULL)
664 1.1 ragge bus_dmamap_unload(sc->sc_dmat, sc->sc_rcvmap[i]);
665 1.1 ragge
666 1.1 ragge error = bus_dmamap_load(sc->sc_dmat, sc->sc_rcvmap[i],
667 1.1 ragge m->m_ext.ext_buf, m->m_ext.ext_size, NULL, BUS_DMA_NOWAIT);
668 1.1 ragge if (error)
669 1.1 ragge panic("%s: can't load rx DMA map %d, error = %d\n",
670 1.1 ragge sc->sc_dev.dv_xname, i, error);
671 1.1 ragge sc->sc_rxmbuf[i] = m;
672 1.1 ragge
673 1.1 ragge bus_dmamap_sync(sc->sc_dmat, sc->sc_rcvmap[i], 0,
674 1.1 ragge sc->sc_rcvmap[i]->dm_mapsize, BUS_DMASYNC_PREREAD);
675 1.1 ragge
676 1.1 ragge /*
677 1.1 ragge * We know that the mbuf cluster is page aligned. Also, be sure
678 1.1 ragge * that the IP header will be longword aligned.
679 1.1 ragge */
680 1.1 ragge m->m_data += 2;
681 1.1 ragge addr = sc->sc_rcvmap[i]->dm_segs[0].ds_addr + 2;
682 1.1 ragge rp = &sc->sc_dedata->dc_rrent[i];
683 1.1 ragge rp->r_lenerr = 0;
684 1.1 ragge rp->r_segbl = LOWORD(addr);
685 1.1 ragge rp->r_segbh = HIWORD(addr);
686 1.1 ragge rp->r_slen = m->m_ext.ext_size - 2;
687 1.1 ragge rp->r_flags = RFLG_OWN;
688 1.1 ragge
689 1.1 ragge return (0);
690 1.1 ragge }
691 1.1 ragge
692 1.1 ragge
693 1.1 ragge /*
694 1.1 ragge * Process an ioctl request.
695 1.1 ragge */
696 1.1 ragge int
697 1.1 ragge deioctl(struct ifnet *ifp, u_long cmd, caddr_t data)
698 1.1 ragge {
699 1.1 ragge struct ifaddr *ifa = (struct ifaddr *)data;
700 1.2 ragge struct ifreq *ifr = (struct ifreq *)data;
701 1.1 ragge struct de_softc *sc = ifp->if_softc;
702 1.1 ragge int s = splnet(), error = 0;
703 1.1 ragge
704 1.1 ragge switch (cmd) {
705 1.1 ragge
706 1.1 ragge case SIOCSIFADDR:
707 1.1 ragge ifp->if_flags |= IFF_UP;
708 1.1 ragge switch (ifa->ifa_addr->sa_family) {
709 1.1 ragge #ifdef INET
710 1.1 ragge case AF_INET:
711 1.2 ragge deinit(sc);
712 1.1 ragge arp_ifinit(ifp, ifa);
713 1.1 ragge break;
714 1.1 ragge #endif
715 1.1 ragge }
716 1.1 ragge break;
717 1.1 ragge
718 1.1 ragge case SIOCSIFFLAGS:
719 1.1 ragge if ((ifp->if_flags & IFF_UP) == 0 &&
720 1.2 ragge (ifp->if_flags & IFF_RUNNING) != 0) {
721 1.2 ragge /*
722 1.2 ragge * If interface is marked down and it is running,
723 1.2 ragge * stop it.
724 1.2 ragge */
725 1.2 ragge ifp->if_flags &= ~(IFF_RUNNING|IFF_OACTIVE);
726 1.2 ragge DE_WCSR(DE_PCSR0, PCSR0_RSET);
727 1.2 ragge dewait(sc, "down");
728 1.2 ragge } else if ((ifp->if_flags & IFF_UP) != 0 &&
729 1.2 ragge (ifp->if_flags & IFF_RUNNING) == 0) {
730 1.2 ragge /*
731 1.2 ragge * If interface it marked up and it is stopped, then
732 1.2 ragge * start it.
733 1.2 ragge */
734 1.1 ragge deinit(sc);
735 1.2 ragge } else if ((ifp->if_flags & IFF_UP) != 0) {
736 1.2 ragge /*
737 1.2 ragge * Send a new setup packet to match any new changes.
738 1.2 ragge * (Like IFF_PROMISC etc)
739 1.2 ragge */
740 1.2 ragge desetup(sc);
741 1.2 ragge }
742 1.2 ragge break;
743 1.2 ragge
744 1.2 ragge case SIOCADDMULTI:
745 1.2 ragge case SIOCDELMULTI:
746 1.2 ragge /*
747 1.2 ragge * Update our multicast list.
748 1.2 ragge */
749 1.2 ragge error = (cmd == SIOCADDMULTI) ?
750 1.2 ragge ether_addmulti(ifr, &sc->sc_ec):
751 1.2 ragge ether_delmulti(ifr, &sc->sc_ec);
752 1.2 ragge
753 1.2 ragge if (error == ENETRESET) {
754 1.2 ragge /*
755 1.2 ragge * Multicast list has changed; set the hardware filter
756 1.2 ragge * accordingly.
757 1.2 ragge */
758 1.2 ragge desetup(sc);
759 1.2 ragge error = 0;
760 1.2 ragge }
761 1.1 ragge break;
762 1.1 ragge
763 1.1 ragge default:
764 1.1 ragge error = EINVAL;
765 1.1 ragge }
766 1.1 ragge splx(s);
767 1.1 ragge return (error);
768 1.1 ragge }
769 1.1 ragge
770 1.1 ragge /*
771 1.1 ragge * Await completion of the named function
772 1.1 ragge * and check for errors.
773 1.1 ragge */
774 1.2 ragge void
775 1.1 ragge dewait(struct de_softc *sc, char *fn)
776 1.1 ragge {
777 1.2 ragge int csr0, s;
778 1.1 ragge
779 1.2 ragge s = splimp();
780 1.1 ragge while ((DE_RCSR(DE_PCSR0) & PCSR0_INTR) == 0)
781 1.1 ragge ;
782 1.1 ragge csr0 = DE_RCSR(DE_PCSR0);
783 1.1 ragge DE_WHIGH(csr0 >> 8);
784 1.1 ragge if (csr0 & PCSR0_PCEI) {
785 1.1 ragge char bits[64];
786 1.1 ragge
787 1.1 ragge printf("%s: %s failed, csr0=%s ", sc->sc_dev.dv_xname, fn,
788 1.1 ragge bitmask_snprintf(csr0, PCSR0_BITS, bits, sizeof(bits)));
789 1.1 ragge printf("csr1=%s\n", bitmask_snprintf(DE_RCSR(DE_PCSR1),
790 1.1 ragge PCSR1_BITS, bits, sizeof(bits)));
791 1.1 ragge }
792 1.2 ragge splx(s);
793 1.2 ragge }
794 1.2 ragge
795 1.2 ragge /*
796 1.2 ragge * Changes multicast filter list/promiscous modes etc...
797 1.2 ragge */
798 1.2 ragge void
799 1.2 ragge desetup(struct de_softc *sc)
800 1.2 ragge {
801 1.2 ragge short mode, intr;
802 1.2 ragge
803 1.2 ragge /*
804 1.2 ragge * XXX - so far use ALLMULTI to receive multicast packets.
805 1.2 ragge */
806 1.2 ragge sc->sc_if.if_flags &= ~IFF_ALLMULTI;
807 1.2 ragge if (sc->sc_ec.ec_multiaddrs.lh_first)
808 1.2 ragge sc->sc_if.if_flags |= IFF_ALLMULTI;
809 1.2 ragge
810 1.2 ragge mode = MOD_TPAD|MOD_HDX|MOD_DRDC;
811 1.2 ragge if (sc->sc_if.if_flags & IFF_PROMISC)
812 1.2 ragge mode |= MOD_PROM;
813 1.2 ragge else if (sc->sc_if.if_flags & IFF_ALLMULTI)
814 1.2 ragge mode |= MOD_ENAL;
815 1.2 ragge
816 1.2 ragge sc->sc_dedata->dc_pcbb.pcbb0 = FC_WTMODE;
817 1.2 ragge sc->sc_dedata->dc_pcbb.pcbb2 = mode;
818 1.2 ragge intr = DE_RCSR(DE_PCSR0) & PCSR0_INTE;
819 1.2 ragge DE_WLOW(CMD_GETCMD | intr);
820 1.2 ragge dewait(sc, "wtmode");
821 1.1 ragge }
822 1.1 ragge
823 1.1 ragge int
824 1.1 ragge dematch(struct device *parent, struct cfdata *cf, void *aux)
825 1.1 ragge {
826 1.1 ragge struct uba_attach_args *ua = aux;
827 1.1 ragge struct de_softc ssc;
828 1.1 ragge struct de_softc *sc = &ssc;
829 1.1 ragge int i;
830 1.1 ragge
831 1.1 ragge sc->sc_iot = ua->ua_iot;
832 1.1 ragge sc->sc_ioh = ua->ua_ioh;
833 1.1 ragge /*
834 1.1 ragge * Make sure self-test is finished before we screw with the board.
835 1.1 ragge * Self-test on a DELUA can take 15 seconds (argh).
836 1.1 ragge */
837 1.1 ragge for (i = 0;
838 1.1 ragge (i < 160) &&
839 1.1 ragge (DE_RCSR(DE_PCSR0) & PCSR0_FATI) == 0 &&
840 1.1 ragge (DE_RCSR(DE_PCSR1) & PCSR1_STMASK) == STAT_RESET;
841 1.1 ragge ++i)
842 1.1 ragge DELAY(50000);
843 1.1 ragge if (((DE_RCSR(DE_PCSR0) & PCSR0_FATI) != 0) ||
844 1.1 ragge (((DE_RCSR(DE_PCSR1) & PCSR1_STMASK) != STAT_READY) &&
845 1.1 ragge ((DE_RCSR(DE_PCSR1) & PCSR1_STMASK) != STAT_RUN)))
846 1.1 ragge return(0);
847 1.1 ragge
848 1.1 ragge DE_WCSR(DE_PCSR0, 0);
849 1.1 ragge DELAY(5000);
850 1.1 ragge DE_WCSR(DE_PCSR0, PCSR0_RSET);
851 1.1 ragge while ((DE_RCSR(DE_PCSR0) & PCSR0_INTR) == 0)
852 1.1 ragge ;
853 1.1 ragge /* make board interrupt by executing a GETPCBB command */
854 1.1 ragge DE_WCSR(DE_PCSR0, PCSR0_INTE);
855 1.1 ragge DE_WCSR(DE_PCSR2, 0);
856 1.1 ragge DE_WCSR(DE_PCSR3, 0);
857 1.1 ragge DE_WCSR(DE_PCSR0, PCSR0_INTE|CMD_GETPCBB);
858 1.1 ragge DELAY(50000);
859 1.1 ragge
860 1.1 ragge return 1;
861 1.1 ragge }
862 1.2 ragge
863 1.2 ragge void
864 1.2 ragge deshutdown(void *arg)
865 1.2 ragge {
866 1.2 ragge struct de_softc *sc = arg;
867 1.2 ragge
868 1.2 ragge DE_WCSR(DE_PCSR0, PCSR0_RSET);
869 1.2 ragge dewait(sc, "shutdown");
870 1.2 ragge }
871 1.2 ragge
872