if_le_vme.c revision 1.29 1 1.29 tsutsui /* $NetBSD: if_le_vme.c,v 1.29 2010/03/16 17:56:41 tsutsui Exp $ */
2 1.18 agc
3 1.18 agc /*-
4 1.20 wiz * Copyright (c) 1998 maximum entropy. All rights reserved.
5 1.19 leo * Copyright (c) 1997 Leo Weppelman. All rights reserved.
6 1.18 agc * Copyright (c) 1992, 1993
7 1.18 agc * The Regents of the University of California. All rights reserved.
8 1.18 agc *
9 1.18 agc * This code is derived from software contributed to Berkeley by
10 1.18 agc * Ralph Campbell and Rick Macklem.
11 1.18 agc *
12 1.18 agc * Redistribution and use in source and binary forms, with or without
13 1.18 agc * modification, are permitted provided that the following conditions
14 1.18 agc * are met:
15 1.18 agc * 1. Redistributions of source code must retain the above copyright
16 1.18 agc * notice, this list of conditions and the following disclaimer.
17 1.18 agc * 2. Redistributions in binary form must reproduce the above copyright
18 1.18 agc * notice, this list of conditions and the following disclaimer in the
19 1.18 agc * documentation and/or other materials provided with the distribution.
20 1.18 agc * 3. Neither the name of the University nor the names of its contributors
21 1.18 agc * may be used to endorse or promote products derived from this software
22 1.18 agc * without specific prior written permission.
23 1.18 agc *
24 1.18 agc * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
25 1.18 agc * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
26 1.18 agc * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
27 1.18 agc * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
28 1.18 agc * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
29 1.18 agc * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
30 1.18 agc * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
31 1.18 agc * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
32 1.18 agc * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
33 1.18 agc * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
34 1.18 agc * SUCH DAMAGE.
35 1.18 agc *
36 1.18 agc * @(#)if_le.c 8.2 (Berkeley) 11/16/93
37 1.18 agc */
38 1.1 leo
39 1.1 leo /*-
40 1.1 leo * Copyright (c) 1995 Charles M. Hannum. All rights reserved.
41 1.1 leo *
42 1.1 leo * This code is derived from software contributed to Berkeley by
43 1.1 leo * Ralph Campbell and Rick Macklem.
44 1.1 leo *
45 1.1 leo * Redistribution and use in source and binary forms, with or without
46 1.1 leo * modification, are permitted provided that the following conditions
47 1.1 leo * are met:
48 1.1 leo * 1. Redistributions of source code must retain the above copyright
49 1.1 leo * notice, this list of conditions and the following disclaimer.
50 1.1 leo * 2. Redistributions in binary form must reproduce the above copyright
51 1.1 leo * notice, this list of conditions and the following disclaimer in the
52 1.1 leo * documentation and/or other materials provided with the distribution.
53 1.1 leo * 3. All advertising materials mentioning features or use of this software
54 1.1 leo * must display the following acknowledgement:
55 1.1 leo * This product includes software developed by the University of
56 1.1 leo * California, Berkeley and its contributors.
57 1.1 leo * 4. Neither the name of the University nor the names of its contributors
58 1.1 leo * may be used to endorse or promote products derived from this software
59 1.1 leo * without specific prior written permission.
60 1.1 leo *
61 1.1 leo * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
62 1.1 leo * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
63 1.1 leo * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
64 1.1 leo * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
65 1.1 leo * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
66 1.1 leo * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
67 1.1 leo * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
68 1.1 leo * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
69 1.1 leo * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
70 1.1 leo * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
71 1.1 leo * SUCH DAMAGE.
72 1.1 leo *
73 1.1 leo * @(#)if_le.c 8.2 (Berkeley) 11/16/93
74 1.1 leo */
75 1.17 lukem
76 1.17 lukem #include <sys/cdefs.h>
77 1.29 tsutsui __KERNEL_RCSID(0, "$NetBSD: if_le_vme.c,v 1.29 2010/03/16 17:56:41 tsutsui Exp $");
78 1.1 leo
79 1.5 jonathan #include "opt_inet.h"
80 1.1 leo
81 1.1 leo #include <sys/param.h>
82 1.1 leo #include <sys/systm.h>
83 1.1 leo #include <sys/mbuf.h>
84 1.1 leo #include <sys/syslog.h>
85 1.1 leo #include <sys/socket.h>
86 1.1 leo #include <sys/device.h>
87 1.1 leo
88 1.1 leo #include <net/if.h>
89 1.3 thorpej #include <net/if_media.h>
90 1.4 leo #include <net/if_ether.h>
91 1.1 leo
92 1.1 leo #ifdef INET
93 1.1 leo #include <netinet/in.h>
94 1.4 leo #include <netinet/if_inarp.h>
95 1.1 leo #endif
96 1.1 leo
97 1.1 leo #include <machine/cpu.h>
98 1.1 leo #include <machine/bus.h>
99 1.1 leo #include <machine/iomap.h>
100 1.1 leo #include <machine/scu.h>
101 1.26 tsutsui #include <machine/intr.h>
102 1.1 leo
103 1.1 leo #include <atari/atari/device.h>
104 1.1 leo
105 1.6 drochner #include <dev/ic/lancereg.h>
106 1.6 drochner #include <dev/ic/lancevar.h>
107 1.1 leo #include <dev/ic/am7990reg.h>
108 1.1 leo #include <dev/ic/am7990var.h>
109 1.1 leo
110 1.1 leo #include <atari/vme/vmevar.h>
111 1.1 leo #include <atari/vme/if_levar.h>
112 1.1 leo
113 1.7 leo /*
114 1.7 leo * All cards except BVME410 have 64KB RAM. However.... On the Riebl cards the
115 1.7 leo * area between the offsets 0xee70-0xeec0 is used to store config data.
116 1.7 leo */
117 1.1 leo struct le_addresses {
118 1.1 leo u_long reg_addr;
119 1.1 leo u_long mem_addr;
120 1.1 leo int irq;
121 1.7 leo int reg_size;
122 1.7 leo int mem_size;
123 1.8 leo int type_hint;
124 1.1 leo } lestd[] = {
125 1.8 leo { 0xfe00fff0, 0xfe010000, IRQUNK, 16, 64*1024,
126 1.8 leo LE_OLD_RIEBL|LE_NEW_RIEBL }, /* Riebl */
127 1.29 tsutsui { 0xfecffff0, 0xfecf0000, 5, 16, 64*1024,
128 1.8 leo LE_PAM }, /* PAM */
129 1.8 leo { 0xfecffff0, 0xfecf0000, 5, 16, 64*1024,
130 1.8 leo LE_ROTHRON }, /* Rhotron */
131 1.8 leo { 0xfeff4100, 0xfe000000, 4, 8, VMECF_MEMSIZ_DEFAULT,
132 1.8 leo LE_BVME410 } /* BVME410 */
133 1.1 leo };
134 1.1 leo
135 1.23 tsutsui #define NLESTD __arraycount(lestd)
136 1.1 leo
137 1.1 leo /*
138 1.1 leo * Default mac for RIEBL cards without a (working) battery. The first 4 bytes
139 1.1 leo * are the manufacturer id.
140 1.1 leo */
141 1.1 leo static u_char riebl_def_mac[] = {
142 1.1 leo 0x00, 0x00, 0x36, 0x04, 0x00, 0x00
143 1.1 leo };
144 1.1 leo
145 1.23 tsutsui static int le_intr(struct le_softc *, int);
146 1.23 tsutsui static void lepseudointr(struct le_softc *, void *);
147 1.23 tsutsui static int le_vme_match(device_t, cfdata_t, void *);
148 1.23 tsutsui static void le_vme_attach(device_t, device_t, void *);
149 1.23 tsutsui static int probe_addresses(bus_space_tag_t *, bus_space_tag_t *,
150 1.23 tsutsui bus_space_handle_t *, bus_space_handle_t *);
151 1.23 tsutsui static void riebl_skip_reserved_area(struct lance_softc *);
152 1.23 tsutsui static int nm93c06_read(bus_space_tag_t, bus_space_handle_t, int);
153 1.23 tsutsui static int bvme410_probe(bus_space_tag_t, bus_space_handle_t);
154 1.23 tsutsui static int bvme410_mem_size(bus_space_tag_t, u_long);
155 1.23 tsutsui static void bvme410_copytobuf(struct lance_softc *, void *, int, int);
156 1.23 tsutsui static void bvme410_zerobuf(struct lance_softc *, int, int);
157 1.1 leo
158 1.23 tsutsui CFATTACH_DECL_NEW(le_vme, sizeof(struct le_softc),
159 1.16 thorpej le_vme_match, le_vme_attach, NULL, NULL);
160 1.1 leo
161 1.12 mrg #if defined(_KERNEL_OPT)
162 1.6 drochner #include "opt_ddb.h"
163 1.6 drochner #endif
164 1.6 drochner
165 1.6 drochner #ifdef DDB
166 1.6 drochner #define integrate
167 1.6 drochner #define hide
168 1.6 drochner #else
169 1.22 perry #define integrate static inline
170 1.6 drochner #define hide static
171 1.6 drochner #endif
172 1.6 drochner
173 1.23 tsutsui hide void lewrcsr(struct lance_softc *, uint16_t, uint16_t);
174 1.23 tsutsui hide uint16_t lerdcsr(struct lance_softc *, uint16_t);
175 1.1 leo
176 1.1 leo hide void
177 1.23 tsutsui lewrcsr(struct lance_softc *sc, uint16_t port, uint16_t val)
178 1.1 leo {
179 1.1 leo struct le_softc *lesc = (struct le_softc *)sc;
180 1.1 leo int s;
181 1.1 leo
182 1.1 leo s = splhigh();
183 1.1 leo bus_space_write_2(lesc->sc_iot, lesc->sc_ioh, LER_RAP, port);
184 1.1 leo bus_space_write_2(lesc->sc_iot, lesc->sc_ioh, LER_RDP, val);
185 1.1 leo splx(s);
186 1.1 leo }
187 1.1 leo
188 1.23 tsutsui hide uint16_t
189 1.23 tsutsui lerdcsr(struct lance_softc *sc, uint16_t port)
190 1.1 leo {
191 1.1 leo struct le_softc *lesc = (struct le_softc *)sc;
192 1.23 tsutsui uint16_t val;
193 1.1 leo int s;
194 1.1 leo
195 1.1 leo s = splhigh();
196 1.1 leo bus_space_write_2(lesc->sc_iot, lesc->sc_ioh, LER_RAP, port);
197 1.1 leo val = bus_space_read_2(lesc->sc_iot, lesc->sc_ioh, LER_RDP);
198 1.1 leo splx(s);
199 1.1 leo
200 1.1 leo return (val);
201 1.1 leo }
202 1.1 leo
203 1.1 leo static int
204 1.23 tsutsui le_vme_match(device_t parent, cfdata_t cfp, void *aux)
205 1.1 leo {
206 1.1 leo struct vme_attach_args *va = aux;
207 1.1 leo int i;
208 1.1 leo bus_space_tag_t iot;
209 1.1 leo bus_space_tag_t memt;
210 1.1 leo bus_space_handle_t ioh;
211 1.1 leo bus_space_handle_t memh;
212 1.1 leo
213 1.1 leo iot = va->va_iot;
214 1.1 leo memt = va->va_memt;
215 1.1 leo
216 1.1 leo for (i = 0; i < NLESTD; i++) {
217 1.1 leo struct le_addresses *le_ap = &lestd[i];
218 1.1 leo int found = 0;
219 1.1 leo
220 1.1 leo if ((va->va_iobase != IOBASEUNK)
221 1.1 leo && (va->va_iobase != le_ap->reg_addr))
222 1.1 leo continue;
223 1.1 leo
224 1.1 leo if ((va->va_maddr != MADDRUNK)
225 1.1 leo && (va->va_maddr != le_ap->mem_addr))
226 1.1 leo continue;
227 1.1 leo
228 1.1 leo if ((le_ap->irq != IRQUNK) && (va->va_irq != le_ap->irq))
229 1.1 leo continue;
230 1.1 leo
231 1.7 leo if (bus_space_map(iot, le_ap->reg_addr, le_ap->reg_size, 0, &ioh)) {
232 1.23 tsutsui aprint_error("leprobe: cannot map io-area\n");
233 1.1 leo return (0);
234 1.1 leo }
235 1.7 leo if (le_ap->mem_size == VMECF_MEMSIZ_DEFAULT) {
236 1.9 leo if (bvme410_probe(iot, ioh)) {
237 1.7 leo bus_space_write_2(iot, ioh, BVME410_BAR, 0x1); /* XXX */
238 1.7 leo le_ap->mem_size = bvme410_mem_size(memt, le_ap->mem_addr);
239 1.7 leo }
240 1.7 leo }
241 1.7 leo if (le_ap->mem_size == VMECF_MEMSIZ_DEFAULT) {
242 1.11 leo bus_space_unmap(iot, ioh, le_ap->reg_size);
243 1.7 leo continue;
244 1.7 leo }
245 1.7 leo
246 1.7 leo if (bus_space_map(memt, le_ap->mem_addr, le_ap->mem_size, 0, &memh)) {
247 1.11 leo bus_space_unmap(iot, ioh, le_ap->reg_size);
248 1.23 tsutsui aprint_error("leprobe: cannot map memory-area\n");
249 1.1 leo return (0);
250 1.1 leo }
251 1.1 leo found = probe_addresses(&iot, &memt, &ioh, &memh);
252 1.11 leo bus_space_unmap(iot, ioh, le_ap->reg_size);
253 1.11 leo bus_space_unmap(memt, memh, le_ap->mem_size);
254 1.1 leo
255 1.1 leo if (found) {
256 1.1 leo va->va_iobase = le_ap->reg_addr;
257 1.7 leo va->va_iosize = le_ap->reg_size;
258 1.1 leo va->va_maddr = le_ap->mem_addr;
259 1.7 leo va->va_msize = le_ap->mem_size;
260 1.8 leo va->va_aux = le_ap;
261 1.1 leo if (va->va_irq == IRQUNK)
262 1.1 leo va->va_irq = le_ap->irq;
263 1.1 leo return 1;
264 1.1 leo }
265 1.1 leo }
266 1.1 leo return (0);
267 1.1 leo }
268 1.1 leo
269 1.1 leo static int
270 1.23 tsutsui probe_addresses(bus_space_tag_t *iot, bus_space_tag_t *memt,
271 1.23 tsutsui bus_space_handle_t *ioh, bus_space_handle_t *memh)
272 1.1 leo {
273 1.23 tsutsui
274 1.1 leo /*
275 1.1 leo * Test accesibility of register and memory area
276 1.1 leo */
277 1.23 tsutsui if (!bus_space_peek_2(*iot, *ioh, LER_RDP))
278 1.1 leo return 0;
279 1.23 tsutsui if (!bus_space_peek_1(*memt, *memh, 0))
280 1.1 leo return 0;
281 1.1 leo
282 1.1 leo /*
283 1.1 leo * Test for writable memory
284 1.1 leo */
285 1.1 leo bus_space_write_2(*memt, *memh, 0, 0xa5a5);
286 1.1 leo if (bus_space_read_2(*memt, *memh, 0) != 0xa5a5)
287 1.1 leo return 0;
288 1.1 leo
289 1.1 leo /*
290 1.1 leo * Test writability of selector port.
291 1.1 leo */
292 1.1 leo bus_space_write_2(*iot, *ioh, LER_RAP, LE_CSR1);
293 1.1 leo if (bus_space_read_2(*iot, *ioh, LER_RAP) != LE_CSR1)
294 1.1 leo return 0;
295 1.1 leo
296 1.1 leo /*
297 1.1 leo * Do a small register test
298 1.1 leo */
299 1.1 leo bus_space_write_2(*iot, *ioh, LER_RAP, LE_CSR0);
300 1.1 leo bus_space_write_2(*iot, *ioh, LER_RDP, LE_C0_INIT | LE_C0_STOP);
301 1.1 leo if (bus_space_read_2(*iot, *ioh, LER_RDP) != LE_C0_STOP)
302 1.1 leo return 0;
303 1.1 leo
304 1.1 leo bus_space_write_2(*iot, *ioh, LER_RDP, LE_C0_STOP);
305 1.1 leo if (bus_space_read_2(*iot, *ioh, LER_RDP) != LE_C0_STOP)
306 1.1 leo return 0;
307 1.1 leo
308 1.1 leo return 1;
309 1.1 leo }
310 1.1 leo
311 1.1 leo /*
312 1.1 leo * Interrupt mess. Because the card's interrupt is hardwired to either
313 1.1 leo * ipl5 or ipl3 (mostly on ipl5) and raising splnet to spl5() just won't do
314 1.13 wiz * (it kills the serial at the least), we use a 2-level interrupt scheme. The
315 1.1 leo * card interrupt is routed to 'le_intr'. If the previous ipl was below
316 1.1 leo * splnet, just call the mi-function. If not, save the interrupt status,
317 1.1 leo * turn off card interrupts (the card is *very* persistent) and arrange
318 1.1 leo * for a softint 'callback' through 'lepseudointr'.
319 1.1 leo */
320 1.1 leo static int
321 1.23 tsutsui le_intr(struct le_softc *lesc, int sr)
322 1.1 leo {
323 1.6 drochner struct lance_softc *sc = &lesc->sc_am7990.lsc;
324 1.23 tsutsui uint16_t csr0;
325 1.1 leo
326 1.24 isaki if ((sr & PSL_IPL) < (ipl2psl_table[IPL_NET] & PSL_IPL))
327 1.1 leo am7990_intr(sc);
328 1.1 leo else {
329 1.1 leo sc->sc_saved_csr0 = csr0 = lerdcsr(sc, LE_CSR0);
330 1.1 leo lewrcsr(sc, LE_CSR0, csr0 & ~LE_C0_INEA);
331 1.1 leo add_sicallback((si_farg)lepseudointr, lesc, sc);
332 1.1 leo }
333 1.1 leo return 1;
334 1.1 leo }
335 1.1 leo
336 1.1 leo
337 1.1 leo static void
338 1.23 tsutsui lepseudointr(struct le_softc *lesc, void *sc)
339 1.1 leo {
340 1.1 leo int s;
341 1.1 leo
342 1.1 leo s = splx(lesc->sc_splval);
343 1.1 leo am7990_intr(sc);
344 1.1 leo splx(s);
345 1.1 leo }
346 1.1 leo
347 1.1 leo static void
348 1.23 tsutsui le_vme_attach(device_t parent, device_t self, void *aux)
349 1.1 leo {
350 1.23 tsutsui struct le_softc *lesc = device_private(self);
351 1.6 drochner struct lance_softc *sc = &lesc->sc_am7990.lsc;
352 1.1 leo struct vme_attach_args *va = aux;
353 1.1 leo bus_space_handle_t ioh;
354 1.1 leo bus_space_handle_t memh;
355 1.8 leo struct le_addresses *le_ap;
356 1.1 leo int i;
357 1.1 leo
358 1.23 tsutsui sc->sc_dev = self;
359 1.23 tsutsui aprint_normal("\n%s: ", device_xname(self));
360 1.1 leo
361 1.1 leo if (bus_space_map(va->va_iot, va->va_iobase, va->va_iosize, 0, &ioh))
362 1.14 provos panic("leattach: cannot map io-area");
363 1.1 leo if (bus_space_map(va->va_memt, va->va_maddr, va->va_msize, 0, &memh))
364 1.14 provos panic("leattach: cannot map mem-area");
365 1.1 leo
366 1.1 leo lesc->sc_iot = va->va_iot;
367 1.1 leo lesc->sc_ioh = ioh;
368 1.1 leo lesc->sc_memt = va->va_memt;
369 1.1 leo lesc->sc_memh = memh;
370 1.1 leo lesc->sc_splval = (va->va_irq << 8) | PSL_S; /* XXX */
371 1.8 leo le_ap = (struct le_addresses *)va->va_aux;
372 1.1 leo
373 1.1 leo /*
374 1.1 leo * Go on to find board type
375 1.1 leo */
376 1.8 leo if ((le_ap->type_hint & LE_PAM)
377 1.8 leo && bus_space_peek_1(va->va_iot, ioh, LER_EEPROM)) {
378 1.23 tsutsui aprint_normal("PAM card");
379 1.1 leo lesc->sc_type = LE_PAM;
380 1.1 leo bus_space_read_1(va->va_iot, ioh, LER_MEME);
381 1.1 leo }
382 1.8 leo else if((le_ap->type_hint & LE_BVME410)
383 1.9 leo && bvme410_probe(va->va_iot, ioh)) {
384 1.23 tsutsui aprint_normal("BVME410");
385 1.7 leo lesc->sc_type = LE_BVME410;
386 1.7 leo }
387 1.8 leo else if (le_ap->type_hint & (LE_NEW_RIEBL|LE_OLD_RIEBL)) {
388 1.23 tsutsui aprint_normal("Riebl card");
389 1.1 leo if(bus_space_read_4(va->va_memt, memh, RIEBL_MAGIC_ADDR)
390 1.1 leo == RIEBL_MAGIC)
391 1.1 leo lesc->sc_type = LE_NEW_RIEBL;
392 1.1 leo else {
393 1.23 tsutsui aprint_normal("(without battery) ");
394 1.1 leo lesc->sc_type = LE_OLD_RIEBL;
395 1.1 leo }
396 1.1 leo }
397 1.23 tsutsui else
398 1.23 tsutsui aprint_error("le_vme_attach: Unsupported card!");
399 1.1 leo
400 1.7 leo switch (lesc->sc_type) {
401 1.7 leo case LE_BVME410:
402 1.7 leo sc->sc_copytodesc = bvme410_copytobuf;
403 1.7 leo sc->sc_copyfromdesc = lance_copyfrombuf_contig;
404 1.7 leo sc->sc_copytobuf = bvme410_copytobuf;
405 1.7 leo sc->sc_copyfrombuf = lance_copyfrombuf_contig;
406 1.7 leo sc->sc_zerobuf = bvme410_zerobuf;
407 1.7 leo break;
408 1.7 leo default:
409 1.7 leo sc->sc_copytodesc = lance_copytobuf_contig;
410 1.7 leo sc->sc_copyfromdesc = lance_copyfrombuf_contig;
411 1.7 leo sc->sc_copytobuf = lance_copytobuf_contig;
412 1.7 leo sc->sc_copyfrombuf = lance_copyfrombuf_contig;
413 1.7 leo sc->sc_zerobuf = lance_zerobuf_contig;
414 1.7 leo break;
415 1.7 leo }
416 1.1 leo
417 1.1 leo sc->sc_rdcsr = lerdcsr;
418 1.1 leo sc->sc_wrcsr = lewrcsr;
419 1.1 leo sc->sc_hwinit = NULL;
420 1.1 leo sc->sc_conf3 = LE_C3_BSWP;
421 1.1 leo sc->sc_addr = 0;
422 1.1 leo sc->sc_memsize = va->va_msize;
423 1.1 leo sc->sc_mem = (void *)memh; /* XXX */
424 1.1 leo
425 1.1 leo /*
426 1.1 leo * Get MAC address
427 1.1 leo */
428 1.1 leo switch (lesc->sc_type) {
429 1.1 leo case LE_OLD_RIEBL:
430 1.27 tsutsui memcpy(sc->sc_enaddr, riebl_def_mac,
431 1.4 leo sizeof(sc->sc_enaddr));
432 1.1 leo break;
433 1.1 leo case LE_NEW_RIEBL:
434 1.4 leo for (i = 0; i < sizeof(sc->sc_enaddr); i++)
435 1.4 leo sc->sc_enaddr[i] =
436 1.1 leo bus_space_read_1(va->va_memt, memh, i + RIEBL_MAC_ADDR);
437 1.1 leo break;
438 1.1 leo case LE_PAM:
439 1.1 leo i = bus_space_read_1(va->va_iot, ioh, LER_EEPROM);
440 1.4 leo for (i = 0; i < sizeof(sc->sc_enaddr); i++) {
441 1.4 leo sc->sc_enaddr[i] =
442 1.1 leo (bus_space_read_2(va->va_memt, memh, 2 * i) << 4) |
443 1.1 leo (bus_space_read_2(va->va_memt, memh, 2 * i + 1) & 0xf);
444 1.1 leo }
445 1.1 leo i = bus_space_read_1(va->va_iot, ioh, LER_MEME);
446 1.1 leo break;
447 1.7 leo case LE_BVME410:
448 1.7 leo for (i = 0; i < (sizeof(sc->sc_enaddr) >> 1); i++) {
449 1.23 tsutsui uint16_t tmp;
450 1.7 leo
451 1.7 leo tmp = nm93c06_read(va->va_iot, ioh, i);
452 1.7 leo sc->sc_enaddr[2 * i] = (tmp >> 8) & 0xff;
453 1.7 leo sc->sc_enaddr[2 * i + 1] = tmp & 0xff;
454 1.7 leo }
455 1.7 leo bus_space_write_2(va->va_iot, ioh, BVME410_BAR, 0x1); /* XXX */
456 1.1 leo }
457 1.1 leo
458 1.6 drochner am7990_config(&lesc->sc_am7990);
459 1.1 leo
460 1.1 leo if ((lesc->sc_type == LE_OLD_RIEBL) || (lesc->sc_type == LE_NEW_RIEBL))
461 1.1 leo riebl_skip_reserved_area(sc);
462 1.1 leo
463 1.1 leo /*
464 1.1 leo * XXX: We always use uservector 64....
465 1.1 leo */
466 1.1 leo if ((lesc->sc_intr = intr_establish(64, USER_VEC, 0,
467 1.1 leo (hw_ifun_t)le_intr, lesc)) == NULL) {
468 1.23 tsutsui aprint_error("le_vme_attach: Can't establish interrupt\n");
469 1.1 leo return;
470 1.1 leo }
471 1.1 leo
472 1.1 leo /*
473 1.1 leo * Notify the card of the vector
474 1.1 leo */
475 1.1 leo switch (lesc->sc_type) {
476 1.1 leo case LE_OLD_RIEBL:
477 1.1 leo case LE_NEW_RIEBL:
478 1.1 leo bus_space_write_2(va->va_memt, memh, RIEBL_IVEC_ADDR,
479 1.1 leo 64 + 64);
480 1.1 leo break;
481 1.1 leo case LE_PAM:
482 1.1 leo bus_space_write_1(va->va_iot, ioh, LER_IVEC, 64 + 64);
483 1.1 leo break;
484 1.7 leo case LE_BVME410:
485 1.7 leo bus_space_write_2(va->va_iot, ioh, BVME410_IVEC, 64 + 64);
486 1.7 leo break;
487 1.1 leo }
488 1.1 leo
489 1.1 leo /*
490 1.1 leo * Unmask the VME-interrupt we're on
491 1.1 leo */
492 1.1 leo if (machineid & ATARI_TT)
493 1.1 leo SCU->vme_mask |= 1 << va->va_irq;
494 1.1 leo }
495 1.1 leo
496 1.1 leo /*
497 1.1 leo * True if 'addr' containe within [start,len]
498 1.1 leo */
499 1.1 leo #define WITHIN(start, len, addr) \
500 1.1 leo ((addr >= start) && ((addr) <= ((start) + (len))))
501 1.1 leo static void
502 1.23 tsutsui riebl_skip_reserved_area(struct lance_softc *sc)
503 1.1 leo {
504 1.1 leo int offset = 0;
505 1.1 leo int i;
506 1.1 leo
507 1.1 leo for(i = 0; i < sc->sc_nrbuf; i++) {
508 1.1 leo if (WITHIN(sc->sc_rbufaddr[i], LEBLEN, RIEBL_RES_START)
509 1.1 leo || WITHIN(sc->sc_rbufaddr[i], LEBLEN, RIEBL_RES_END)) {
510 1.1 leo offset = RIEBL_RES_END - sc->sc_rbufaddr[i];
511 1.1 leo }
512 1.1 leo sc->sc_rbufaddr[i] += offset;
513 1.1 leo }
514 1.1 leo
515 1.1 leo for(i = 0; i < sc->sc_ntbuf; i++) {
516 1.1 leo if (WITHIN(sc->sc_tbufaddr[i], LEBLEN, RIEBL_RES_START)
517 1.1 leo || WITHIN(sc->sc_tbufaddr[i], LEBLEN, RIEBL_RES_END)) {
518 1.1 leo offset = RIEBL_RES_END - sc->sc_tbufaddr[i];
519 1.1 leo }
520 1.1 leo sc->sc_tbufaddr[i] += offset;
521 1.1 leo }
522 1.1 leo }
523 1.7 leo
524 1.7 leo static int
525 1.23 tsutsui nm93c06_read(bus_space_tag_t iot, bus_space_handle_t ioh, int nm93c06reg)
526 1.7 leo {
527 1.7 leo int bar;
528 1.7 leo int shift;
529 1.7 leo int bits = 0x180 | (nm93c06reg & 0xf);
530 1.7 leo int data = 0;
531 1.7 leo
532 1.23 tsutsui bar = 1 << BVME410_CS_SHIFT;
533 1.7 leo bus_space_write_2(iot, ioh, BVME410_BAR, bar);
534 1.7 leo delay(1); /* tCSS = 1 us */
535 1.7 leo for (shift = 9; shift >= 0; shift--) {
536 1.7 leo if (((bits >> shift) & 1) == 1)
537 1.23 tsutsui bar |= 1 << BVME410_DIN_SHIFT;
538 1.7 leo else
539 1.23 tsutsui bar &= ~(1 << BVME410_DIN_SHIFT);
540 1.7 leo bus_space_write_2(iot, ioh, BVME410_BAR, bar);
541 1.7 leo delay(1); /* tDIS = 0.4 us */
542 1.23 tsutsui bar |= 1 << BVME410_CLK_SHIFT;
543 1.7 leo bus_space_write_2(iot, ioh, BVME410_BAR, bar);
544 1.7 leo delay(2); /* tSKH = 1 us, tSKH + tSKL >= 4 us */
545 1.23 tsutsui bar &= ~(1 << BVME410_CLK_SHIFT);
546 1.7 leo bus_space_write_2(iot, ioh, BVME410_BAR, bar);
547 1.7 leo delay(2); /* tSKL = 1 us, tSKH + tSKL >= 4 us */
548 1.7 leo }
549 1.23 tsutsui bar &= ~(1 << BVME410_DIN_SHIFT);
550 1.7 leo for (shift = 15; shift >= 0; shift--) {
551 1.7 leo delay(1); /* tDIS = 100 ns, BVM manual says 0.4 us */
552 1.23 tsutsui bar |= 1 << BVME410_CLK_SHIFT;
553 1.7 leo bus_space_write_2(iot, ioh, BVME410_BAR, bar);
554 1.7 leo delay(2); /* tSKH = 1 us, tSKH + tSKL >= 4 us */
555 1.7 leo data |= (bus_space_read_2(iot, ioh, BVME410_BAR) & 1) << shift;
556 1.23 tsutsui bar &= ~(1 << BVME410_CLK_SHIFT);
557 1.7 leo bus_space_write_2(iot, ioh, BVME410_BAR, bar);
558 1.7 leo delay(2); /* tSKL = 1 us, tSKH + tSKL >= 4 us */
559 1.7 leo }
560 1.23 tsutsui bar &= ~(1 << BVME410_CS_SHIFT);
561 1.7 leo bus_space_write_2(iot, ioh, BVME410_BAR, bar);
562 1.7 leo delay(1); /* tCS = 1 us */
563 1.7 leo return data;
564 1.7 leo }
565 1.7 leo
566 1.7 leo static int
567 1.23 tsutsui bvme410_probe(bus_space_tag_t iot, bus_space_handle_t ioh)
568 1.9 leo {
569 1.23 tsutsui
570 1.9 leo if (!bus_space_peek_2(iot, ioh, BVME410_IVEC))
571 1.9 leo return 0;
572 1.9 leo
573 1.9 leo bus_space_write_2(iot, ioh, BVME410_IVEC, 0x0000);
574 1.9 leo if (bus_space_read_2(iot, ioh, BVME410_IVEC) != 0xff00)
575 1.9 leo return 0;
576 1.9 leo
577 1.9 leo bus_space_write_2(iot, ioh, BVME410_IVEC, 0xffff);
578 1.9 leo if (bus_space_read_2(iot, ioh, BVME410_IVEC) != 0xffff)
579 1.9 leo return 0;
580 1.9 leo
581 1.9 leo bus_space_write_2(iot, ioh, BVME410_IVEC, 0xa5a5);
582 1.9 leo if (bus_space_read_2(iot, ioh, BVME410_IVEC) != 0xffa5)
583 1.9 leo return 0;
584 1.9 leo
585 1.9 leo return 1;
586 1.9 leo }
587 1.9 leo
588 1.9 leo static int
589 1.23 tsutsui bvme410_mem_size(bus_space_tag_t memt, u_long mem_addr)
590 1.7 leo {
591 1.7 leo bus_space_handle_t memh;
592 1.7 leo int r;
593 1.7 leo
594 1.23 tsutsui if (bus_space_map(memt, mem_addr, 256 * 1024, 0, &memh))
595 1.7 leo return VMECF_MEMSIZ_DEFAULT;
596 1.7 leo if (!bus_space_peek_1(memt, memh, 0)) {
597 1.23 tsutsui bus_space_unmap(memt, memh, 256 * 1024);
598 1.7 leo return VMECF_MEMSIZ_DEFAULT;
599 1.7 leo }
600 1.7 leo bus_space_write_1(memt, memh, 0, 128);
601 1.23 tsutsui bus_space_write_1(memt, memh, 64 * 1024, 32);
602 1.23 tsutsui bus_space_write_1(memt, memh, 32 * 1024, 8);
603 1.7 leo r = (int)(bus_space_read_1(memt, memh, 0) * 2048);
604 1.23 tsutsui bus_space_unmap(memt, memh, 256 * 1024);
605 1.7 leo return r;
606 1.7 leo }
607 1.7 leo
608 1.7 leo /*
609 1.7 leo * Need to be careful when writing to the bvme410 dual port memory.
610 1.7 leo * Continue writing each byte until it reads back the same.
611 1.7 leo */
612 1.7 leo
613 1.7 leo static void
614 1.23 tsutsui bvme410_copytobuf(struct lance_softc *sc, void *from, int boff, int len)
615 1.7 leo {
616 1.23 tsutsui volatile char *buf = (volatile char *)sc->sc_mem;
617 1.23 tsutsui char *f = (char *)from;
618 1.7 leo
619 1.7 leo for (buf += boff; len; buf++,f++,len--)
620 1.9 leo do {
621 1.9 leo *buf = *f;
622 1.9 leo } while (*buf != *f);
623 1.7 leo }
624 1.7 leo
625 1.7 leo static void
626 1.23 tsutsui bvme410_zerobuf(struct lance_softc *sc, int boff, int len)
627 1.7 leo {
628 1.7 leo volatile char *buf = (volatile char *)sc->sc_mem;
629 1.7 leo
630 1.7 leo for (buf += boff; len; buf++,len--)
631 1.9 leo do {
632 1.9 leo *buf = '\0';
633 1.9 leo } while (*buf != '\0');
634 1.7 leo }
635 1.7 leo
636