mba.c revision 1.14 1 1.14 ragge /* $NetBSD: mba.c,v 1.14 1998/05/21 13:16:14 ragge Exp $ */
2 1.1 ragge /*
3 1.3 ragge * Copyright (c) 1994, 1996 Ludd, University of Lule}, Sweden.
4 1.1 ragge * All rights reserved.
5 1.1 ragge *
6 1.1 ragge * Redistribution and use in source and binary forms, with or without
7 1.1 ragge * modification, are permitted provided that the following conditions
8 1.1 ragge * are met:
9 1.1 ragge * 1. Redistributions of source code must retain the above copyright
10 1.1 ragge * notice, this list of conditions and the following disclaimer.
11 1.1 ragge * 2. Redistributions in binary form must reproduce the above copyright
12 1.1 ragge * notice, this list of conditions and the following disclaimer in the
13 1.1 ragge * documentation and/or other materials provided with the distribution.
14 1.1 ragge * 3. All advertising materials mentioning features or use of this software
15 1.1 ragge * must display the following acknowledgement:
16 1.3 ragge * This product includes software developed at Ludd, University of
17 1.3 ragge * Lule}, Sweden and its contributors.
18 1.1 ragge * 4. The name of the author may not be used to endorse or promote products
19 1.1 ragge * derived from this software without specific prior written permission
20 1.1 ragge *
21 1.1 ragge * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
22 1.1 ragge * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
23 1.1 ragge * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
24 1.1 ragge * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
25 1.1 ragge * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
26 1.1 ragge * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
27 1.1 ragge * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
28 1.1 ragge * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
29 1.1 ragge * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
30 1.1 ragge * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
31 1.1 ragge */
32 1.1 ragge
33 1.3 ragge /*
34 1.3 ragge * Simple massbus drive routine.
35 1.3 ragge * TODO:
36 1.3 ragge * Autoconfig new devices 'on the fly'.
37 1.3 ragge * More intelligent way to handle different interrupts.
38 1.3 ragge */
39 1.3 ragge
40 1.3 ragge #include <sys/param.h>
41 1.6 ragge #include <sys/systm.h>
42 1.3 ragge #include <sys/device.h>
43 1.3 ragge #include <sys/queue.h>
44 1.3 ragge #include <sys/buf.h>
45 1.3 ragge #include <sys/proc.h>
46 1.3 ragge
47 1.3 ragge #include <vm/vm.h>
48 1.3 ragge #include <vm/vm_kern.h>
49 1.3 ragge
50 1.3 ragge #include <machine/trap.h>
51 1.3 ragge #include <machine/scb.h>
52 1.3 ragge #include <machine/nexus.h>
53 1.3 ragge #include <machine/pte.h>
54 1.3 ragge #include <machine/pcb.h>
55 1.4 ragge #include <machine/sid.h>
56 1.14 ragge #include <machine/cpu.h>
57 1.1 ragge
58 1.3 ragge #include <vax/mba/mbareg.h>
59 1.3 ragge #include <vax/mba/mbavar.h>
60 1.1 ragge
61 1.3 ragge struct mbaunit mbaunit[] = {
62 1.6 ragge {MBADT_RP04, "rp04", MB_RP},
63 1.6 ragge {MBADT_RP05, "rp05", MB_RP},
64 1.6 ragge {MBADT_RP06, "rp06", MB_RP},
65 1.6 ragge {MBADT_RP07, "rp07", MB_RP},
66 1.6 ragge {MBADT_RM02, "rm02", MB_RP},
67 1.6 ragge {MBADT_RM03, "rm03", MB_RP},
68 1.6 ragge {MBADT_RM05, "rm05", MB_RP},
69 1.6 ragge {MBADT_RM80, "rm80", MB_RP},
70 1.6 ragge {0, 0, 0}
71 1.3 ragge };
72 1.3 ragge
73 1.13 ragge int mbamatch __P((struct device *, struct cfdata *, void *));
74 1.3 ragge void mbaattach __P((struct device *, struct device *, void *));
75 1.3 ragge void mbaintr __P((int));
76 1.8 cgd int mbaprint __P((void *, const char *));
77 1.3 ragge void mbaqueue __P((struct mba_device *));
78 1.3 ragge void mbastart __P((struct mba_softc *));
79 1.3 ragge void mbamapregs __P((struct mba_softc *));
80 1.3 ragge
81 1.7 ragge struct cfattach mba_cmi_ca = {
82 1.7 ragge sizeof(struct mba_softc), mbamatch, mbaattach
83 1.7 ragge };
84 1.7 ragge
85 1.7 ragge struct cfattach mba_sbi_ca = {
86 1.5 ragge sizeof(struct mba_softc), mbamatch, mbaattach
87 1.3 ragge };
88 1.11 thorpej
89 1.12 ragge extern struct cfdriver mba_cd;
90 1.1 ragge
91 1.3 ragge /*
92 1.3 ragge * Look if this is a massbuss adapter.
93 1.3 ragge */
94 1.3 ragge int
95 1.13 ragge mbamatch(parent, cf, aux)
96 1.3 ragge struct device *parent;
97 1.13 ragge struct cfdata *cf;
98 1.13 ragge void *aux;
99 1.3 ragge {
100 1.3 ragge struct sbi_attach_args *sa = (struct sbi_attach_args *)aux;
101 1.1 ragge
102 1.3 ragge if ((cf->cf_loc[0] != sa->nexnum) && (cf->cf_loc[0] > -1 ))
103 1.3 ragge return 0;
104 1.1 ragge
105 1.3 ragge if (sa->type == NEX_MBA)
106 1.3 ragge return 1;
107 1.1 ragge
108 1.3 ragge return 0;
109 1.3 ragge }
110 1.1 ragge
111 1.3 ragge /*
112 1.3 ragge * Attach the found massbuss adapter. Setup its interrupt vectors,
113 1.3 ragge * reset it and go searching for drives on it.
114 1.3 ragge */
115 1.3 ragge void
116 1.3 ragge mbaattach(parent, self, aux)
117 1.3 ragge struct device *parent, *self;
118 1.3 ragge void *aux;
119 1.3 ragge {
120 1.3 ragge struct mba_softc *sc = (void *)self;
121 1.3 ragge struct sbi_attach_args *sa = (struct sbi_attach_args *)aux;
122 1.3 ragge volatile struct mba_regs *mbar = (struct mba_regs *)sa->nexaddr;
123 1.3 ragge struct mba_attach_args ma;
124 1.3 ragge extern struct ivec_dsp idsptch;
125 1.3 ragge int i, j;
126 1.3 ragge
127 1.10 christos printf("\n");
128 1.3 ragge /*
129 1.3 ragge * Set up interrupt vectors for this MBA.
130 1.3 ragge */
131 1.3 ragge bcopy(&idsptch, &sc->sc_dsp, sizeof(struct ivec_dsp));
132 1.3 ragge scb->scb_nexvec[0][sa->nexnum] = scb->scb_nexvec[1][sa->nexnum] =
133 1.3 ragge scb->scb_nexvec[2][sa->nexnum] = scb->scb_nexvec[3][sa->nexnum] =
134 1.3 ragge &sc->sc_dsp;
135 1.3 ragge sc->sc_dsp.pushlarg = sc->sc_dev.dv_unit;
136 1.3 ragge sc->sc_dsp.hoppaddr = mbaintr;
137 1.3 ragge
138 1.4 ragge sc->sc_physnr = sa->nexnum - 8; /* MBA's have TR between 8 - 11... */
139 1.4 ragge #ifdef VAX750
140 1.7 ragge if (vax_cputype == VAX_750)
141 1.4 ragge sc->sc_physnr += 4; /* ...but not on 11/750 */
142 1.4 ragge #endif
143 1.3 ragge sc->sc_first = 0;
144 1.3 ragge sc->sc_last = (void *)&sc->sc_first;
145 1.3 ragge sc->sc_mbareg = (struct mba_regs *)mbar;
146 1.3 ragge mbar->mba_cr = MBACR_INIT; /* Reset adapter */
147 1.3 ragge mbar->mba_cr = MBACR_IE; /* Enable interrupts */
148 1.3 ragge
149 1.3 ragge for (i = 0; i < MAXMBADEV; i++) {
150 1.3 ragge sc->sc_state = SC_AUTOCONF;
151 1.3 ragge if ((mbar->mba_md[i].md_ds & MBADS_DPR) == 0)
152 1.3 ragge continue;
153 1.3 ragge /* We have a drive, ok. */
154 1.3 ragge ma.unit = i;
155 1.3 ragge ma.type = mbar->mba_md[i].md_dt & 0777;
156 1.3 ragge j = 0;
157 1.3 ragge while (mbaunit[j++].nr)
158 1.3 ragge if (mbaunit[j].nr == ma.type)
159 1.3 ragge break;
160 1.3 ragge ma.devtyp = mbaunit[j].devtyp;
161 1.3 ragge ma.name = mbaunit[j].name;
162 1.3 ragge config_found(&sc->sc_dev, (void *)&ma, mbaprint);
163 1.1 ragge }
164 1.1 ragge }
165 1.1 ragge
166 1.1 ragge /*
167 1.3 ragge * We got an interrupt. Check type of interrupt and call the specific
168 1.3 ragge * device interrupt handling routine.
169 1.1 ragge */
170 1.3 ragge void
171 1.3 ragge mbaintr(mba)
172 1.3 ragge int mba;
173 1.3 ragge {
174 1.5 ragge struct mba_softc *sc = mba_cd.cd_devs[mba];
175 1.3 ragge volatile struct mba_regs *mr = sc->sc_mbareg;
176 1.3 ragge struct mba_device *md;
177 1.3 ragge struct buf *bp;
178 1.6 ragge int itype, attn, anr;
179 1.3 ragge
180 1.3 ragge itype = mr->mba_sr;
181 1.3 ragge mr->mba_sr = itype; /* Write back to clear bits */
182 1.3 ragge
183 1.3 ragge attn = mr->mba_md[0].md_as & 0xff;
184 1.3 ragge mr->mba_md[0].md_as = attn;
185 1.3 ragge
186 1.3 ragge if (sc->sc_state == SC_AUTOCONF)
187 1.3 ragge return; /* During autoconfig */
188 1.3 ragge
189 1.3 ragge md = sc->sc_first;
190 1.3 ragge bp = md->md_q.b_actf;
191 1.3 ragge /*
192 1.3 ragge * A data-transfer interrupt. Current operation is finished,
193 1.3 ragge * call that device's finish routine to see what to do next.
194 1.3 ragge */
195 1.3 ragge if (sc->sc_state == SC_ACTIVE) {
196 1.3 ragge
197 1.3 ragge sc->sc_state = SC_IDLE;
198 1.3 ragge switch ((*md->md_finish)(md, itype, &attn)) {
199 1.3 ragge
200 1.3 ragge case XFER_FINISH:
201 1.3 ragge /*
202 1.3 ragge * Transfer is finished. Take buffer of drive
203 1.3 ragge * queue, and take drive of adapter queue.
204 1.3 ragge * If more to transfer, start the adapter again
205 1.3 ragge * by calling mbastart().
206 1.3 ragge */
207 1.3 ragge md->md_q.b_actf = bp->b_actf;
208 1.3 ragge sc->sc_first = md->md_back;
209 1.3 ragge md->md_back = 0;
210 1.3 ragge if (sc->sc_first == 0)
211 1.3 ragge sc->sc_last = (void *)&sc->sc_first;
212 1.3 ragge
213 1.3 ragge if (md->md_q.b_actf) {
214 1.3 ragge sc->sc_last->md_back = md;
215 1.3 ragge sc->sc_last = md;
216 1.3 ragge }
217 1.3 ragge
218 1.3 ragge bp->b_resid = 0;
219 1.3 ragge biodone(bp);
220 1.3 ragge if (sc->sc_first)
221 1.3 ragge mbastart(sc);
222 1.3 ragge break;
223 1.3 ragge
224 1.3 ragge case XFER_RESTART:
225 1.3 ragge /*
226 1.3 ragge * Something went wrong with the transfer. Try again.
227 1.3 ragge */
228 1.3 ragge mbastart(sc);
229 1.3 ragge break;
230 1.3 ragge }
231 1.3 ragge }
232 1.1 ragge
233 1.3 ragge while (attn) {
234 1.3 ragge anr = ffs(attn) - 1;
235 1.3 ragge attn &= ~(1 << anr);
236 1.3 ragge if (sc->sc_md[anr]->md_attn == 0)
237 1.3 ragge panic("Should check for new MBA device %d", anr);
238 1.3 ragge (*sc->sc_md[anr]->md_attn)(sc->sc_md[anr]);
239 1.3 ragge }
240 1.3 ragge }
241 1.3 ragge
242 1.3 ragge int
243 1.3 ragge mbaprint(aux, mbaname)
244 1.3 ragge void *aux;
245 1.8 cgd const char *mbaname;
246 1.3 ragge {
247 1.3 ragge struct mba_attach_args *ma = aux;
248 1.3 ragge
249 1.3 ragge if (mbaname) {
250 1.3 ragge if (ma->name)
251 1.10 christos printf("%s", ma->name);
252 1.3 ragge else
253 1.10 christos printf("device type %o", ma->type);
254 1.10 christos printf(" at %s", mbaname);
255 1.3 ragge }
256 1.10 christos printf(" drive %d", ma->unit);
257 1.3 ragge return (ma->name ? UNCONF : UNSUPP);
258 1.3 ragge }
259 1.1 ragge
260 1.1 ragge /*
261 1.3 ragge * A device calls mbaqueue() when it wants to get on the adapter queue.
262 1.3 ragge * Called at splbio(). If the adapter is inactive, start it.
263 1.1 ragge */
264 1.3 ragge void
265 1.3 ragge mbaqueue(md)
266 1.3 ragge struct mba_device *md;
267 1.3 ragge {
268 1.3 ragge struct mba_softc *sc = md->md_mba;
269 1.3 ragge int i = (int)sc->sc_first;
270 1.3 ragge
271 1.3 ragge sc->sc_last->md_back = md;
272 1.3 ragge sc->sc_last = md;
273 1.3 ragge
274 1.3 ragge if (i == 0)
275 1.3 ragge mbastart(sc);
276 1.3 ragge }
277 1.3 ragge
278 1.1 ragge /*
279 1.3 ragge * Start activity on (idling) adapter. Calls mbamapregs() to setup
280 1.3 ragge * for dma transfer, then the unit-specific start routine.
281 1.1 ragge */
282 1.3 ragge void
283 1.3 ragge mbastart(sc)
284 1.3 ragge struct mba_softc *sc;
285 1.3 ragge {
286 1.3 ragge struct mba_device *md = sc->sc_first;
287 1.3 ragge volatile struct mba_regs *mr = sc->sc_mbareg;
288 1.3 ragge struct buf *bp = md->md_q.b_actf;
289 1.3 ragge
290 1.7 ragge disk_reallymapin(md->md_q.b_actf, sc->sc_mbareg->mba_map, 0, PG_V);
291 1.3 ragge
292 1.3 ragge sc->sc_state = SC_ACTIVE;
293 1.3 ragge mr->mba_var = ((u_int)bp->b_un.b_addr & PGOFSET);
294 1.3 ragge mr->mba_bc = (~bp->b_bcount) + 1;
295 1.3 ragge (*md->md_start)(md); /* machine-dependent start */
296 1.3 ragge }
297