esp.c revision 1.18 1 1.18 lukem /* $NetBSD: esp.c,v 1.18 2003/07/15 03:36:14 lukem Exp $ */
2 1.1 jeremy
3 1.3 gwr /*-
4 1.3 gwr * Copyright (c) 1997 The NetBSD Foundation, Inc.
5 1.3 gwr * All rights reserved.
6 1.1 jeremy *
7 1.3 gwr * This code is derived from software contributed to The NetBSD Foundation
8 1.3 gwr * by Jeremy Cooper and Gordon W. Ross
9 1.1 jeremy *
10 1.1 jeremy * Redistribution and use in source and binary forms, with or without
11 1.1 jeremy * modification, are permitted provided that the following conditions
12 1.1 jeremy * are met:
13 1.1 jeremy * 1. Redistributions of source code must retain the above copyright
14 1.1 jeremy * notice, this list of conditions and the following disclaimer.
15 1.1 jeremy * 2. Redistributions in binary form must reproduce the above copyright
16 1.1 jeremy * notice, this list of conditions and the following disclaimer in the
17 1.1 jeremy * documentation and/or other materials provided with the distribution.
18 1.1 jeremy * 3. All advertising materials mentioning features or use of this software
19 1.1 jeremy * must display the following acknowledgement:
20 1.3 gwr * This product includes software developed by the NetBSD
21 1.3 gwr * Foundation, Inc. and its contributors.
22 1.3 gwr * 4. Neither the name of The NetBSD Foundation nor the names of its
23 1.3 gwr * contributors may be used to endorse or promote products derived
24 1.3 gwr * from this software without specific prior written permission.
25 1.1 jeremy *
26 1.3 gwr * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
27 1.3 gwr * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
28 1.3 gwr * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
29 1.3 gwr * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
30 1.3 gwr * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
31 1.3 gwr * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
32 1.3 gwr * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
33 1.3 gwr * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
34 1.3 gwr * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
35 1.3 gwr * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
36 1.1 jeremy * POSSIBILITY OF SUCH DAMAGE.
37 1.1 jeremy */
38 1.1 jeremy
39 1.1 jeremy /*
40 1.3 gwr * "Front end" glue for the ncr53c9x chip, formerly known as the
41 1.3 gwr * Emulex SCSI Processor (ESP) which is what we actually have.
42 1.1 jeremy */
43 1.18 lukem
44 1.18 lukem #include <sys/cdefs.h>
45 1.18 lukem __KERNEL_RCSID(0, "$NetBSD: esp.c,v 1.18 2003/07/15 03:36:14 lukem Exp $");
46 1.1 jeremy
47 1.1 jeremy #include <sys/types.h>
48 1.1 jeremy #include <sys/param.h>
49 1.1 jeremy #include <sys/systm.h>
50 1.1 jeremy #include <sys/kernel.h>
51 1.1 jeremy #include <sys/errno.h>
52 1.1 jeremy #include <sys/device.h>
53 1.1 jeremy #include <sys/buf.h>
54 1.1 jeremy
55 1.5 bouyer #include <dev/scsipi/scsi_all.h>
56 1.5 bouyer #include <dev/scsipi/scsipi_all.h>
57 1.5 bouyer #include <dev/scsipi/scsiconf.h>
58 1.5 bouyer #include <dev/scsipi/scsi_message.h>
59 1.1 jeremy
60 1.1 jeremy #include <machine/autoconf.h>
61 1.3 gwr
62 1.3 gwr #include <dev/ic/ncr53c9xreg.h>
63 1.3 gwr #include <dev/ic/ncr53c9xvar.h>
64 1.3 gwr
65 1.7 gwr #include <sun3/dev/dmareg.h>
66 1.7 gwr #include <sun3/dev/dmavar.h>
67 1.1 jeremy
68 1.1 jeremy #define ESP_REG_SIZE (12*4)
69 1.1 jeremy
70 1.3 gwr struct esp_softc {
71 1.3 gwr struct ncr53c9x_softc sc_ncr53c9x; /* glue to MI code */
72 1.3 gwr volatile u_char *sc_reg; /* the registers */
73 1.3 gwr struct dma_softc *sc_dma; /* pointer to my dma */
74 1.3 gwr };
75 1.1 jeremy
76 1.3 gwr static int espmatch __P((struct device *, struct cfdata *, void *));
77 1.3 gwr static void espattach __P((struct device *, struct device *, void *));
78 1.1 jeremy
79 1.16 thorpej CFATTACH_DECL(esp, sizeof(struct esp_softc),
80 1.17 thorpej espmatch, espattach, NULL, NULL);
81 1.1 jeremy
82 1.3 gwr /*
83 1.3 gwr * Functions and the switch for the MI code.
84 1.3 gwr */
85 1.10 gwr static u_char esp_read_reg __P((struct ncr53c9x_softc *, int));
86 1.10 gwr static void esp_write_reg __P((struct ncr53c9x_softc *, int, u_char));
87 1.10 gwr static int esp_dma_isintr __P((struct ncr53c9x_softc *));
88 1.10 gwr static void esp_dma_reset __P((struct ncr53c9x_softc *));
89 1.10 gwr static int esp_dma_intr __P((struct ncr53c9x_softc *));
90 1.10 gwr static int esp_dma_setup __P((struct ncr53c9x_softc *, caddr_t *,
91 1.10 gwr size_t *, int, size_t *));
92 1.10 gwr static void esp_dma_go __P((struct ncr53c9x_softc *));
93 1.10 gwr static void esp_dma_stop __P((struct ncr53c9x_softc *));
94 1.10 gwr static int esp_dma_isactive __P((struct ncr53c9x_softc *));
95 1.3 gwr
96 1.3 gwr static struct ncr53c9x_glue esp_glue = {
97 1.3 gwr esp_read_reg,
98 1.3 gwr esp_write_reg,
99 1.3 gwr esp_dma_isintr,
100 1.3 gwr esp_dma_reset,
101 1.3 gwr esp_dma_intr,
102 1.3 gwr esp_dma_setup,
103 1.3 gwr esp_dma_go,
104 1.3 gwr esp_dma_stop,
105 1.3 gwr esp_dma_isactive,
106 1.3 gwr NULL, /* gl_clear_latched_intr */
107 1.3 gwr };
108 1.3 gwr
109 1.3 gwr static int
110 1.1 jeremy espmatch(parent, cf, aux)
111 1.1 jeremy struct device *parent;
112 1.1 jeremy struct cfdata *cf;
113 1.1 jeremy void *aux;
114 1.1 jeremy {
115 1.1 jeremy struct confargs *ca = aux;
116 1.1 jeremy
117 1.1 jeremy /*
118 1.1 jeremy * Check for the esp registers.
119 1.1 jeremy */
120 1.1 jeremy if (bus_peek(ca->ca_bustype,
121 1.3 gwr ca->ca_paddr + (NCR_STAT * 4), 1) == -1)
122 1.1 jeremy return (0);
123 1.1 jeremy
124 1.1 jeremy /* If default ipl, fill it in. */
125 1.1 jeremy if (ca->ca_intpri == -1)
126 1.1 jeremy ca->ca_intpri = 2;
127 1.1 jeremy
128 1.1 jeremy return (1);
129 1.1 jeremy }
130 1.1 jeremy
131 1.3 gwr static void
132 1.1 jeremy espattach(parent, self, aux)
133 1.1 jeremy struct device *parent, *self;
134 1.1 jeremy void *aux;
135 1.1 jeremy {
136 1.10 gwr struct confargs *ca = aux;
137 1.3 gwr struct esp_softc *esc = (void *)self;
138 1.3 gwr struct ncr53c9x_softc *sc = &esc->sc_ncr53c9x;
139 1.1 jeremy
140 1.1 jeremy /*
141 1.3 gwr * Set up glue for MI code early; we use some of it here.
142 1.1 jeremy */
143 1.3 gwr sc->sc_glue = &esp_glue;
144 1.3 gwr
145 1.3 gwr /*
146 1.3 gwr * Map in the ESP registers.
147 1.3 gwr */
148 1.10 gwr esc->sc_reg =
149 1.10 gwr bus_mapin(ca->ca_bustype, ca->ca_paddr, ESP_REG_SIZE);
150 1.1 jeremy
151 1.3 gwr /* Other settings */
152 1.1 jeremy sc->sc_id = 7;
153 1.1 jeremy sc->sc_freq = 20; /* The 3/80 esp runs at 20 Mhz */
154 1.1 jeremy
155 1.1 jeremy /*
156 1.3 gwr * Hook up the DMA driver.
157 1.3 gwr */
158 1.10 gwr esc->sc_dma = espdmafind(sc->sc_dev.dv_unit);
159 1.3 gwr esc->sc_dma->sc_esp = sc; /* Point back to us */
160 1.3 gwr
161 1.3 gwr /*
162 1.3 gwr * XXX More of this should be in ncr53c9x_attach(), but
163 1.3 gwr * XXX should we really poke around the chip that much in
164 1.3 gwr * XXX the MI code? Think about this more...
165 1.3 gwr */
166 1.3 gwr
167 1.3 gwr /*
168 1.1 jeremy * It is necessary to try to load the 2nd config register here,
169 1.3 gwr * to find out what rev the esp chip is, else the ncr53c9x_reset
170 1.1 jeremy * will not set up the defaults correctly.
171 1.1 jeremy */
172 1.3 gwr sc->sc_cfg1 = sc->sc_id | NCRCFG1_PARENB;
173 1.3 gwr sc->sc_cfg2 = NCRCFG2_SCSI2 | NCRCFG2_RPE;
174 1.3 gwr sc->sc_cfg3 = NCRCFG3_CDB;
175 1.3 gwr NCR_WRITE_REG(sc, NCR_CFG2, sc->sc_cfg2);
176 1.3 gwr
177 1.3 gwr if ((NCR_READ_REG(sc, NCR_CFG2) & ~NCRCFG2_RSVD) !=
178 1.3 gwr (NCRCFG2_SCSI2 | NCRCFG2_RPE)) {
179 1.3 gwr sc->sc_rev = NCR_VARIANT_ESP100;
180 1.1 jeremy } else {
181 1.3 gwr sc->sc_cfg2 = NCRCFG2_SCSI2;
182 1.3 gwr NCR_WRITE_REG(sc, NCR_CFG2, sc->sc_cfg2);
183 1.1 jeremy sc->sc_cfg3 = 0;
184 1.3 gwr NCR_WRITE_REG(sc, NCR_CFG3, sc->sc_cfg3);
185 1.3 gwr sc->sc_cfg3 = (NCRCFG3_CDB | NCRCFG3_FCLK);
186 1.3 gwr NCR_WRITE_REG(sc, NCR_CFG3, sc->sc_cfg3);
187 1.3 gwr if (NCR_READ_REG(sc, NCR_CFG3) !=
188 1.3 gwr (NCRCFG3_CDB | NCRCFG3_FCLK)) {
189 1.3 gwr sc->sc_rev = NCR_VARIANT_ESP100A;
190 1.1 jeremy } else {
191 1.3 gwr /* NCRCFG2_FE enables > 64K transfers */
192 1.3 gwr sc->sc_cfg2 |= NCRCFG2_FE;
193 1.1 jeremy sc->sc_cfg3 = 0;
194 1.3 gwr NCR_WRITE_REG(sc, NCR_CFG3, sc->sc_cfg3);
195 1.3 gwr sc->sc_rev = NCR_VARIANT_ESP200;
196 1.1 jeremy }
197 1.1 jeremy }
198 1.1 jeremy
199 1.1 jeremy /*
200 1.3 gwr * XXX minsync and maxxfer _should_ be set up in MI code,
201 1.3 gwr * XXX but it appears to have some dependency on what sort
202 1.3 gwr * XXX of DMA we're hooked up to, etc.
203 1.1 jeremy */
204 1.1 jeremy
205 1.1 jeremy /*
206 1.1 jeremy * This is the value used to start sync negotiations
207 1.3 gwr * Note that the NCR register "SYNCTP" is programmed
208 1.1 jeremy * in "clocks per byte", and has a minimum value of 4.
209 1.1 jeremy * The SCSI period used in negotiation is one-fourth
210 1.1 jeremy * of the time (in nanoseconds) needed to transfer one byte.
211 1.1 jeremy * Since the chip's clock is given in MHz, we have the following
212 1.1 jeremy * formula: 4 * period = (1000 / freq) * 4
213 1.1 jeremy */
214 1.1 jeremy sc->sc_minsync = 1000 / sc->sc_freq;
215 1.1 jeremy
216 1.1 jeremy /*
217 1.1 jeremy * Alas, we must now modify the value a bit, because it's
218 1.1 jeremy * only valid when can switch on FASTCLK and FASTSCSI bits
219 1.1 jeremy * in config register 3...
220 1.1 jeremy */
221 1.1 jeremy switch (sc->sc_rev) {
222 1.3 gwr case NCR_VARIANT_ESP100:
223 1.3 gwr sc->sc_maxxfer = 64 * 1024;
224 1.1 jeremy sc->sc_minsync = 0; /* No synch on old chip? */
225 1.1 jeremy break;
226 1.3 gwr
227 1.3 gwr case NCR_VARIANT_ESP100A:
228 1.1 jeremy sc->sc_maxxfer = 64 * 1024;
229 1.3 gwr /* Min clocks/byte is 5 */
230 1.3 gwr sc->sc_minsync = ncr53c9x_cpb2stp(sc, 5);
231 1.1 jeremy break;
232 1.3 gwr
233 1.3 gwr case NCR_VARIANT_ESP200:
234 1.1 jeremy sc->sc_maxxfer = 16 * 1024 * 1024;
235 1.1 jeremy /* XXX - do actually set FAST* bits */
236 1.3 gwr break;
237 1.1 jeremy }
238 1.1 jeremy
239 1.1 jeremy /* and the interuppts */
240 1.12 nisimura isr_add_autovect(ncr53c9x_intr, sc, ca->ca_intpri);
241 1.11 cgd evcnt_attach_dynamic(&sc->sc_intrcnt, EVCNT_TYPE_INTR, NULL,
242 1.11 cgd sc->sc_dev.dv_xname, "intr");
243 1.1 jeremy
244 1.3 gwr /* Do the common parts of attachment. */
245 1.14 bouyer sc->sc_adapter.adapt_minphys = minphys;
246 1.14 bouyer sc->sc_adapter.adapt_request = ncr53c9x_scsipi_request;
247 1.14 bouyer ncr53c9x_attach(sc);
248 1.10 gwr
249 1.10 gwr #if 0
250 1.10 gwr /* XXX - This doesn't work yet. Not sure why... */
251 1.10 gwr /* Turn on target selection using the `dma' method */
252 1.13 petrov sc->sc_features |= NCR_F_DMASELECT; /* XXX - OK? */
253 1.10 gwr #endif
254 1.1 jeremy }
255 1.1 jeremy
256 1.1 jeremy
257 1.1 jeremy /*
258 1.3 gwr * Glue functions.
259 1.1 jeremy */
260 1.1 jeremy
261 1.3 gwr u_char
262 1.3 gwr esp_read_reg(sc, reg)
263 1.3 gwr struct ncr53c9x_softc *sc;
264 1.3 gwr int reg;
265 1.1 jeremy {
266 1.3 gwr struct esp_softc *esc = (struct esp_softc *)sc;
267 1.1 jeremy
268 1.3 gwr return (esc->sc_reg[reg * 4]);
269 1.1 jeremy }
270 1.1 jeremy
271 1.1 jeremy void
272 1.3 gwr esp_write_reg(sc, reg, val)
273 1.3 gwr struct ncr53c9x_softc *sc;
274 1.3 gwr int reg;
275 1.3 gwr u_char val;
276 1.1 jeremy {
277 1.3 gwr struct esp_softc *esc = (struct esp_softc *)sc;
278 1.1 jeremy
279 1.10 gwr esc->sc_reg[reg * 4] = val;
280 1.1 jeremy }
281 1.1 jeremy
282 1.3 gwr int
283 1.3 gwr esp_dma_isintr(sc)
284 1.3 gwr struct ncr53c9x_softc *sc;
285 1.1 jeremy {
286 1.3 gwr struct esp_softc *esc = (struct esp_softc *)sc;
287 1.10 gwr u_int32_t csr;
288 1.1 jeremy
289 1.10 gwr csr = DMACSR(esc->sc_dma);
290 1.10 gwr return (csr & (D_INT_PEND|D_ERR_PEND));
291 1.1 jeremy }
292 1.1 jeremy
293 1.1 jeremy void
294 1.3 gwr esp_dma_reset(sc)
295 1.3 gwr struct ncr53c9x_softc *sc;
296 1.1 jeremy {
297 1.3 gwr struct esp_softc *esc = (struct esp_softc *)sc;
298 1.1 jeremy
299 1.3 gwr dma_reset(esc->sc_dma);
300 1.1 jeremy }
301 1.1 jeremy
302 1.1 jeremy int
303 1.3 gwr esp_dma_intr(sc)
304 1.3 gwr struct ncr53c9x_softc *sc;
305 1.1 jeremy {
306 1.3 gwr struct esp_softc *esc = (struct esp_softc *)sc;
307 1.1 jeremy
308 1.3 gwr return (espdmaintr(esc->sc_dma));
309 1.1 jeremy }
310 1.1 jeremy
311 1.1 jeremy int
312 1.3 gwr esp_dma_setup(sc, addr, len, datain, dmasize)
313 1.3 gwr struct ncr53c9x_softc *sc;
314 1.3 gwr caddr_t *addr;
315 1.3 gwr size_t *len;
316 1.3 gwr int datain;
317 1.3 gwr size_t *dmasize;
318 1.1 jeremy {
319 1.3 gwr struct esp_softc *esc = (struct esp_softc *)sc;
320 1.1 jeremy
321 1.3 gwr return (dma_setup(esc->sc_dma, addr, len, datain, dmasize));
322 1.1 jeremy }
323 1.1 jeremy
324 1.1 jeremy void
325 1.3 gwr esp_dma_go(sc)
326 1.3 gwr struct ncr53c9x_softc *sc;
327 1.1 jeremy {
328 1.3 gwr struct esp_softc *esc = (struct esp_softc *)sc;
329 1.1 jeremy
330 1.3 gwr /* Start DMA */
331 1.3 gwr DMACSR(esc->sc_dma) |= D_EN_DMA;
332 1.3 gwr esc->sc_dma->sc_active = 1;
333 1.1 jeremy }
334 1.1 jeremy
335 1.1 jeremy void
336 1.3 gwr esp_dma_stop(sc)
337 1.3 gwr struct ncr53c9x_softc *sc;
338 1.1 jeremy {
339 1.3 gwr struct esp_softc *esc = (struct esp_softc *)sc;
340 1.1 jeremy
341 1.3 gwr DMACSR(esc->sc_dma) &= ~D_EN_DMA;
342 1.1 jeremy }
343 1.1 jeremy
344 1.1 jeremy int
345 1.3 gwr esp_dma_isactive(sc)
346 1.3 gwr struct ncr53c9x_softc *sc;
347 1.1 jeremy {
348 1.3 gwr struct esp_softc *esc = (struct esp_softc *)sc;
349 1.1 jeremy
350 1.3 gwr return (esc->sc_dma->sc_active);
351 1.1 jeremy }
352