hdc9224.c revision 1.51 1 1.51 matt /* $NetBSD: hdc9224.c,v 1.51 2010/12/14 23:31:16 matt Exp $ */
2 1.1 ragge /*
3 1.1 ragge * Copyright (c) 1996 Ludd, University of Lule}, Sweden.
4 1.1 ragge * All rights reserved.
5 1.1 ragge *
6 1.1 ragge * This code is derived from software contributed to Ludd by Bertram Barth.
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 at Ludd, University of
19 1.1 ragge * Lule}, Sweden and its contributors.
20 1.1 ragge * 4. The name of the author may not be used to endorse or promote products
21 1.1 ragge * derived from this software without specific prior written permission
22 1.1 ragge *
23 1.1 ragge * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
24 1.1 ragge * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
25 1.1 ragge * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
26 1.1 ragge * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
27 1.1 ragge * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
28 1.1 ragge * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
29 1.1 ragge * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
30 1.1 ragge * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
31 1.1 ragge * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
32 1.1 ragge * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
33 1.1 ragge */
34 1.1 ragge
35 1.1 ragge /*
36 1.1 ragge * with much help from (in alphabetical order):
37 1.1 ragge * Jeremy
38 1.1 ragge * Roger Ivie
39 1.1 ragge * Rick Macklem
40 1.1 ragge * Mike Young
41 1.10 ragge *
42 1.10 ragge * Rewritten by Ragge 25 Jun 2000. New features:
43 1.10 ragge * - Uses interrupts instead of polling to signal ready.
44 1.10 ragge * - Can cooperate with the SCSI routines WRT. the DMA area.
45 1.10 ragge *
46 1.10 ragge * TODO:
47 1.10 ragge * - Floppy support missing.
48 1.10 ragge * - Bad block forwarding missing.
49 1.10 ragge * - Statistics collection.
50 1.1 ragge */
51 1.10 ragge #undef RDDEBUG
52 1.30 lukem
53 1.30 lukem #include <sys/cdefs.h>
54 1.51 matt __KERNEL_RCSID(0, "$NetBSD: hdc9224.c,v 1.51 2010/12/14 23:31:16 matt Exp $");
55 1.1 ragge
56 1.1 ragge #include <sys/param.h>
57 1.1 ragge #include <sys/systm.h>
58 1.1 ragge #include <sys/buf.h>
59 1.31 yamt #include <sys/bufq.h>
60 1.51 matt #include <sys/cpu.h>
61 1.51 matt #include <sys/conf.h>
62 1.1 ragge #include <sys/device.h>
63 1.1 ragge #include <sys/disklabel.h>
64 1.1 ragge #include <sys/disk.h>
65 1.51 matt #include <sys/file.h>
66 1.51 matt #include <sys/ioctl.h>
67 1.51 matt #include <sys/proc.h>
68 1.51 matt #include <sys/stat.h>
69 1.1 ragge #include <sys/syslog.h>
70 1.1 ragge
71 1.13 mrg #include <uvm/uvm_extern.h>
72 1.10 ragge
73 1.10 ragge #include <ufs/ufs/dinode.h> /* For BBSIZE */
74 1.10 ragge #include <ufs/ffs/fs.h>
75 1.10 ragge
76 1.1 ragge #include <machine/sid.h>
77 1.1 ragge #include <machine/ka410.h>
78 1.1 ragge #include <machine/vsbus.h>
79 1.6 ragge #include <machine/rpb.h>
80 1.10 ragge #include <machine/scb.h>
81 1.10 ragge
82 1.10 ragge #include <dev/mscp/mscp.h> /* For DEC disk encoding */
83 1.1 ragge
84 1.1 ragge #include <vax/vsa/hdc9224.h>
85 1.1 ragge
86 1.10 ragge #include "ioconf.h"
87 1.10 ragge #include "locators.h"
88 1.1 ragge
89 1.1 ragge
90 1.1 ragge /*
91 1.1 ragge * on-disk geometry block
92 1.1 ragge */
93 1.1 ragge #define _aP __attribute__ ((packed)) /* force byte-alignment */
94 1.1 ragge struct rdgeom {
95 1.10 ragge char mbz[10]; /* 10 bytes of zero */
96 1.10 ragge long xbn_count _aP; /* number of XBNs */
97 1.10 ragge long dbn_count _aP; /* number of DBNs */
98 1.10 ragge long lbn_count _aP; /* number of LBNs (Logical-Block-Numbers) */
99 1.10 ragge long rbn_count _aP; /* number of RBNs (Replacement-Block-Numbers) */
100 1.10 ragge short nspt; /* number of sectors per track */
101 1.10 ragge short ntracks; /* number of tracks */
102 1.10 ragge short ncylinders; /* number of cylinders */
103 1.10 ragge short precomp; /* first cylinder for write precompensation */
104 1.10 ragge short reduced; /* first cylinder for reduced write current */
105 1.10 ragge short seek_rate; /* seek rate or zero for buffered seeks */
106 1.10 ragge short crc_eec; /* 0 if CRC, 1 if ECC is being used */
107 1.10 ragge short rct; /* "replacement control table" (RCT) */
108 1.10 ragge short rct_ncopies; /* number of copies of the RCT */
109 1.10 ragge long media_id _aP; /* media identifier */
110 1.10 ragge short interleave; /* sector-to-sector interleave */
111 1.10 ragge short headskew; /* head-to-head skew */
112 1.10 ragge short cylskew; /* cylinder-to-cylinder skew */
113 1.10 ragge short gap0_size; /* size of GAP 0 in the MFM format */
114 1.10 ragge short gap1_size; /* size of GAP 1 in the MFM format */
115 1.10 ragge short gap2_size; /* size of GAP 2 in the MFM format */
116 1.10 ragge short gap3_size; /* size of GAP 3 in the MFM format */
117 1.10 ragge short sync_value; /* sync value used when formatting */
118 1.10 ragge char reserved[32]; /* reserved for use by the RQDX formatter */
119 1.10 ragge short serial_number; /* serial number */
120 1.1 ragge #if 0 /* we don't need these 412 useless bytes ... */
121 1.10 ragge char fill[412-2]; /* Filler bytes to the end of the block */
122 1.10 ragge short checksum; /* checksum over the XBN */
123 1.1 ragge #endif
124 1.1 ragge };
125 1.1 ragge
126 1.1 ragge /*
127 1.1 ragge * Software status
128 1.1 ragge */
129 1.1 ragge struct rdsoftc {
130 1.44 matt device_t sc_dev; /* must be here! (pseudo-OOP:) */
131 1.44 matt struct hdcsoftc *sc_hdc;
132 1.10 ragge struct disk sc_disk; /* disklabel etc. */
133 1.10 ragge struct rdgeom sc_xbn; /* on-disk geometry information */
134 1.10 ragge int sc_drive; /* physical unit number */
135 1.1 ragge };
136 1.1 ragge
137 1.1 ragge struct hdcsoftc {
138 1.44 matt device_t sc_dev; /* must be here (pseudo-OOP:) */
139 1.10 ragge struct evcnt sc_intrcnt;
140 1.10 ragge struct vsbus_dma sc_vd;
141 1.10 ragge vaddr_t sc_regs; /* register addresses */
142 1.32 yamt struct bufq_state *sc_q;
143 1.10 ragge struct buf *sc_active;
144 1.1 ragge struct hdc9224_UDCreg sc_creg; /* (command) registers to be written */
145 1.1 ragge struct hdc9224_UDCreg sc_sreg; /* (status) registers being read */
146 1.38 christos void * sc_dmabase; /* */
147 1.10 ragge int sc_dmasize;
148 1.38 christos void *sc_bufaddr; /* Current in-core address */
149 1.10 ragge int sc_diskblk; /* Current block on disk */
150 1.10 ragge int sc_bytecnt; /* How much left to transfer */
151 1.10 ragge int sc_xfer; /* Current transfer size */
152 1.12 ragge int sc_retries;
153 1.10 ragge volatile u_char sc_status; /* last status from interrupt */
154 1.12 ragge char sc_intbit;
155 1.10 ragge };
156 1.10 ragge
157 1.10 ragge struct hdc_attach_args {
158 1.10 ragge int ha_drive;
159 1.1 ragge };
160 1.1 ragge
161 1.1 ragge /*
162 1.10 ragge * prototypes for (almost) all the internal routines
163 1.1 ragge */
164 1.43 matt static int hdcmatch(device_t, cfdata_t, void *);
165 1.43 matt static void hdcattach(device_t, device_t, void *);
166 1.10 ragge static int hdcprint(void *, const char *);
167 1.43 matt static int rdmatch(device_t, cfdata_t, void *);
168 1.43 matt static void rdattach(device_t, device_t, void *);
169 1.10 ragge static void hdcintr(void *);
170 1.10 ragge static int hdc_command(struct hdcsoftc *, int);
171 1.10 ragge static void rd_readgeom(struct hdcsoftc *, struct rdsoftc *);
172 1.10 ragge #ifdef RDDEBUG
173 1.10 ragge static void hdc_printgeom( struct rdgeom *);
174 1.10 ragge #endif
175 1.10 ragge static void hdc_writeregs(struct hdcsoftc *);
176 1.10 ragge static void hdcstart(struct hdcsoftc *, struct buf *);
177 1.10 ragge static int hdc_rdselect(struct hdcsoftc *, int);
178 1.10 ragge static void rdmakelabel(struct disklabel *, struct rdgeom *);
179 1.10 ragge static void hdc_writeregs(struct hdcsoftc *);
180 1.10 ragge static void hdc_readregs(struct hdcsoftc *);
181 1.10 ragge static void hdc_qstart(void *);
182 1.10 ragge
183 1.44 matt CFATTACH_DECL_NEW(hdc, sizeof(struct hdcsoftc),
184 1.23 thorpej hdcmatch, hdcattach, NULL, NULL);
185 1.1 ragge
186 1.44 matt CFATTACH_DECL_NEW(rd, sizeof(struct rdsoftc),
187 1.23 thorpej rdmatch, rdattach, NULL, NULL);
188 1.7 thorpej
189 1.43 matt static dev_type_open(rdopen);
190 1.43 matt static dev_type_close(rdclose);
191 1.43 matt static dev_type_read(rdread);
192 1.43 matt static dev_type_write(rdwrite);
193 1.43 matt static dev_type_ioctl(rdioctl);
194 1.43 matt static dev_type_strategy(rdstrategy);
195 1.43 matt static dev_type_size(rdpsize);
196 1.19 gehenna
197 1.19 gehenna const struct bdevsw rd_bdevsw = {
198 1.43 matt .d_open = rdopen,
199 1.43 matt .d_close = rdclose,
200 1.43 matt .d_strategy = rdstrategy,
201 1.43 matt .d_ioctl = rdioctl,
202 1.43 matt .d_dump = nulldump,
203 1.43 matt .d_psize = rdpsize,
204 1.43 matt .d_flag = D_DISK
205 1.19 gehenna };
206 1.19 gehenna
207 1.19 gehenna const struct cdevsw rd_cdevsw = {
208 1.43 matt .d_open = rdopen,
209 1.43 matt .d_close = rdclose,
210 1.43 matt .d_read = rdread,
211 1.43 matt .d_write = rdwrite,
212 1.43 matt .d_ioctl = rdioctl,
213 1.43 matt .d_stop = nostop,
214 1.43 matt .d_tty = notty,
215 1.43 matt .d_poll = nopoll,
216 1.43 matt .d_mmap = nommap,
217 1.43 matt .d_kqfilter = nokqfilter,
218 1.43 matt .d_flag = D_DISK
219 1.19 gehenna };
220 1.1 ragge
221 1.10 ragge /* At least 0.7 uS between register accesses */
222 1.10 ragge static int rd_dmasize, inq = 0;
223 1.44 matt static volatile int u;
224 1.34 perry #define WAIT __asm("movl %0,%0;movl %0,%0;movl %0,%0; movl %0,%0" :: "m"(u))
225 1.10 ragge
226 1.10 ragge #define HDC_WREG(x) *(volatile char *)(sc->sc_regs) = (x)
227 1.10 ragge #define HDC_RREG *(volatile char *)(sc->sc_regs)
228 1.10 ragge #define HDC_WCMD(x) *(volatile char *)(sc->sc_regs + 4) = (x)
229 1.10 ragge #define HDC_RSTAT *(volatile char *)(sc->sc_regs + 4)
230 1.1 ragge
231 1.1 ragge /*
232 1.1 ragge * new-config's hdcmatch() is similiar to old-config's hdcprobe(),
233 1.1 ragge * thus we probe for the existence of the controller and reset it.
234 1.1 ragge * NB: we can't initialize the controller yet, since space for hdcsoftc
235 1.1 ragge * is not yet allocated. Thus we do this in hdcattach()...
236 1.1 ragge */
237 1.1 ragge int
238 1.43 matt hdcmatch(device_t parent, cfdata_t cf, void *aux)
239 1.1 ragge {
240 1.43 matt struct vsbus_attach_args * const va = aux;
241 1.43 matt volatile char * const hdc_csr = (volatile char *)va->va_addr;
242 1.10 ragge int i;
243 1.1 ragge
244 1.10 ragge u = 8; /* !!! - GCC */
245 1.1 ragge
246 1.10 ragge if (vax_boardtype == VAX_BTYP_49 || vax_boardtype == VAX_BTYP_46
247 1.14 ragge || vax_boardtype == VAX_BTYP_48 || vax_boardtype == VAX_BTYP_53)
248 1.10 ragge return 0;
249 1.10 ragge
250 1.10 ragge hdc_csr[4] = DKC_CMD_RESET; /* reset chip */
251 1.10 ragge for (i = 0; i < 1000; i++) {
252 1.10 ragge DELAY(1000);
253 1.10 ragge if (hdc_csr[4] & DKC_ST_DONE)
254 1.10 ragge break;
255 1.1 ragge }
256 1.10 ragge if (i == 100)
257 1.10 ragge return 0; /* No response to reset */
258 1.1 ragge
259 1.10 ragge hdc_csr[4] = DKC_CMD_SETREGPTR|UDC_TERM;
260 1.10 ragge WAIT;
261 1.10 ragge hdc_csr[0] = UDC_TC_CRCPRE|UDC_TC_INTDONE;
262 1.10 ragge WAIT;
263 1.10 ragge hdc_csr[4] = DKC_CMD_DRDESELECT; /* Should be harmless */
264 1.10 ragge DELAY(1000);
265 1.1 ragge return (1);
266 1.1 ragge }
267 1.1 ragge
268 1.1 ragge int
269 1.10 ragge hdcprint(void *aux, const char *name)
270 1.1 ragge {
271 1.43 matt struct hdc_attach_args * const ha = aux;
272 1.1 ragge
273 1.10 ragge if (name)
274 1.25 thorpej aprint_normal ("RD?? at %s drive %d", name, ha->ha_drive);
275 1.10 ragge return UNCONF;
276 1.1 ragge }
277 1.1 ragge
278 1.1 ragge /*
279 1.1 ragge * hdc_attach() probes for all possible devices
280 1.1 ragge */
281 1.1 ragge void
282 1.43 matt hdcattach(device_t parent, device_t self, void *aux)
283 1.1 ragge {
284 1.43 matt struct vsbus_attach_args * const va = aux;
285 1.43 matt struct hdcsoftc * const sc = device_private(self);
286 1.1 ragge struct hdc_attach_args ha;
287 1.10 ragge int status, i;
288 1.1 ragge
289 1.43 matt aprint_normal("\n");
290 1.44 matt
291 1.44 matt sc->sc_dev = self;
292 1.44 matt
293 1.1 ragge /*
294 1.10 ragge * Get interrupt vector, enable instrumentation.
295 1.1 ragge */
296 1.10 ragge scb_vecalloc(va->va_cvec, hdcintr, sc, SCB_ISTACK, &sc->sc_intrcnt);
297 1.10 ragge evcnt_attach_dynamic(&sc->sc_intrcnt, EVCNT_TYPE_INTR, NULL,
298 1.43 matt device_xname(self), "intr");
299 1.10 ragge
300 1.10 ragge sc->sc_regs = vax_map_physmem(va->va_paddr, 1);
301 1.38 christos sc->sc_dmabase = (void *)va->va_dmaaddr;
302 1.10 ragge sc->sc_dmasize = va->va_dmasize;
303 1.12 ragge sc->sc_intbit = va->va_maskno;
304 1.10 ragge rd_dmasize = min(MAXPHYS, sc->sc_dmasize); /* Used in rd_minphys */
305 1.10 ragge
306 1.10 ragge sc->sc_vd.vd_go = hdc_qstart;
307 1.10 ragge sc->sc_vd.vd_arg = sc;
308 1.10 ragge /*
309 1.10 ragge * Reset controller.
310 1.10 ragge */
311 1.10 ragge HDC_WCMD(DKC_CMD_RESET);
312 1.10 ragge DELAY(1000);
313 1.10 ragge status = HDC_RSTAT;
314 1.10 ragge if (status != (DKC_ST_DONE|DKC_TC_SUCCESS)) {
315 1.43 matt aprint_error_dev(self, "RESET failed, status 0x%x\n", status);
316 1.10 ragge return;
317 1.10 ragge }
318 1.32 yamt bufq_alloc(&sc->sc_q, "disksort", BUFQ_SORT_CYLINDER);
319 1.10 ragge
320 1.10 ragge /*
321 1.10 ragge * now probe for all possible hard drives
322 1.10 ragge */
323 1.10 ragge for (i = 0; i < 4; i++) {
324 1.10 ragge if (i == 2) /* Floppy, needs special handling */
325 1.10 ragge continue;
326 1.10 ragge HDC_WCMD(DKC_CMD_DRSELECT | i);
327 1.10 ragge DELAY(1000);
328 1.10 ragge status = HDC_RSTAT;
329 1.10 ragge ha.ha_drive = i;
330 1.10 ragge if ((status & DKC_ST_TERMCOD) == DKC_TC_SUCCESS)
331 1.10 ragge config_found(self, (void *)&ha, hdcprint);
332 1.1 ragge }
333 1.1 ragge }
334 1.1 ragge
335 1.1 ragge /*
336 1.1 ragge * rdmatch() probes for the existence of a RD-type disk/floppy
337 1.1 ragge */
338 1.1 ragge int
339 1.43 matt rdmatch(device_t parent, cfdata_t cf, void *aux)
340 1.1 ragge {
341 1.43 matt struct hdc_attach_args * const ha = aux;
342 1.1 ragge
343 1.10 ragge if (cf->cf_loc[HDCCF_DRIVE] != HDCCF_DRIVE_DEFAULT &&
344 1.10 ragge cf->cf_loc[HDCCF_DRIVE] != ha->ha_drive)
345 1.10 ragge return 0;
346 1.1 ragge
347 1.10 ragge if (ha->ha_drive == 2) /* Always floppy, not supported */
348 1.10 ragge return 0;
349 1.1 ragge
350 1.10 ragge return 1;
351 1.10 ragge }
352 1.1 ragge
353 1.1 ragge void
354 1.43 matt rdattach(device_t parent, device_t self, void *aux)
355 1.1 ragge {
356 1.43 matt struct hdcsoftc * const sc = device_private(parent);
357 1.43 matt struct rdsoftc * const rd = device_private(self);
358 1.43 matt struct hdc_attach_args * const ha = aux;
359 1.10 ragge struct disklabel *dl;
360 1.27 dsl const char *msg;
361 1.1 ragge
362 1.44 matt rd->sc_dev = self;
363 1.1 ragge rd->sc_drive = ha->ha_drive;
364 1.44 matt rd->sc_hdc = sc;
365 1.1 ragge /*
366 1.1 ragge * Initialize and attach the disk structure.
367 1.1 ragge */
368 1.44 matt disk_init(&rd->sc_disk, device_xname(rd->sc_dev), NULL);
369 1.10 ragge disk_attach(&rd->sc_disk);
370 1.10 ragge
371 1.1 ragge /*
372 1.1 ragge * if it's not a floppy then evaluate the on-disk geometry.
373 1.16 wiz * if necessary correct the label...
374 1.1 ragge */
375 1.10 ragge rd_readgeom(sc, rd);
376 1.10 ragge disk_printtype(rd->sc_drive, rd->sc_xbn.media_id);
377 1.10 ragge dl = rd->sc_disk.dk_label;
378 1.10 ragge rdmakelabel(dl, &rd->sc_xbn);
379 1.19 gehenna msg = readdisklabel(MAKEDISKDEV(cdevsw_lookup_major(&rd_cdevsw),
380 1.44 matt device_unit(rd->sc_dev), RAW_PART),
381 1.19 gehenna rdstrategy, dl, NULL);
382 1.10 ragge if (msg)
383 1.43 matt aprint_normal_dev(self, "%s: size %u sectors",
384 1.43 matt msg, dl->d_secperunit);
385 1.43 matt else
386 1.43 matt aprint_normal_dev(self, "size %u sectors\n", dl->d_secperunit);
387 1.10 ragge #ifdef RDDEBUG
388 1.10 ragge hdc_printgeom(&rd->sc_xbn);
389 1.10 ragge #endif
390 1.10 ragge }
391 1.10 ragge
392 1.10 ragge void
393 1.10 ragge hdcintr(void *arg)
394 1.10 ragge {
395 1.43 matt struct hdcsoftc * const sc = arg;
396 1.10 ragge struct buf *bp;
397 1.10 ragge
398 1.10 ragge sc->sc_status = HDC_RSTAT;
399 1.10 ragge if (sc->sc_active == 0)
400 1.10 ragge return; /* Complain? */
401 1.10 ragge
402 1.10 ragge if ((sc->sc_status & (DKC_ST_INTPEND|DKC_ST_DONE)) !=
403 1.10 ragge (DKC_ST_INTPEND|DKC_ST_DONE))
404 1.10 ragge return; /* Why spurious ints sometimes??? */
405 1.10 ragge
406 1.10 ragge bp = sc->sc_active;
407 1.10 ragge sc->sc_active = 0;
408 1.10 ragge if ((sc->sc_status & DKC_ST_TERMCOD) != DKC_TC_SUCCESS) {
409 1.10 ragge int i;
410 1.10 ragge u_char *g = (u_char *)&sc->sc_sreg;
411 1.12 ragge
412 1.12 ragge if (sc->sc_retries++ < 3) { /* Allow 3 retries */
413 1.12 ragge hdcstart(sc, bp);
414 1.12 ragge return;
415 1.12 ragge }
416 1.44 matt aprint_error_dev(sc->sc_dev, "failed, status 0x%x\n",
417 1.43 matt sc->sc_status);
418 1.10 ragge hdc_readregs(sc);
419 1.10 ragge for (i = 0; i < 10; i++)
420 1.43 matt aprint_error("%i: %x\n", i, g[i]);
421 1.10 ragge bp->b_error = ENXIO;
422 1.10 ragge bp->b_resid = bp->b_bcount;
423 1.10 ragge biodone(bp);
424 1.10 ragge vsbus_dma_intr();
425 1.10 ragge return;
426 1.10 ragge }
427 1.10 ragge
428 1.10 ragge if (bp->b_flags & B_READ) {
429 1.10 ragge vsbus_copytoproc(bp->b_proc, sc->sc_dmabase, sc->sc_bufaddr,
430 1.10 ragge sc->sc_xfer);
431 1.10 ragge }
432 1.12 ragge sc->sc_diskblk += (sc->sc_xfer/DEV_BSIZE);
433 1.12 ragge sc->sc_bytecnt -= sc->sc_xfer;
434 1.39 christos sc->sc_bufaddr = (char *)sc->sc_bufaddr + sc->sc_xfer;
435 1.10 ragge
436 1.10 ragge if (sc->sc_bytecnt == 0) { /* Finished transfer */
437 1.10 ragge biodone(bp);
438 1.10 ragge vsbus_dma_intr();
439 1.10 ragge } else
440 1.10 ragge hdcstart(sc, bp);
441 1.1 ragge }
442 1.1 ragge
443 1.1 ragge /*
444 1.10 ragge *
445 1.1 ragge */
446 1.1 ragge void
447 1.10 ragge rdstrategy(struct buf *bp)
448 1.1 ragge {
449 1.10 ragge struct rdsoftc *rd;
450 1.10 ragge struct hdcsoftc *sc;
451 1.10 ragge struct disklabel *lp;
452 1.43 matt int s;
453 1.1 ragge
454 1.43 matt if ((rd = device_lookup_private(&rd_cd, DISKUNIT(bp->b_dev))) == NULL) {
455 1.10 ragge bp->b_error = ENXIO;
456 1.10 ragge goto done;
457 1.10 ragge }
458 1.44 matt sc = rd->sc_hdc;
459 1.1 ragge
460 1.10 ragge lp = rd->sc_disk.dk_label;
461 1.28 thorpej if ((bounds_check_with_label(&rd->sc_disk, bp, 1)) <= 0)
462 1.10 ragge goto done;
463 1.1 ragge
464 1.1 ragge if (bp->b_bcount == 0)
465 1.1 ragge goto done;
466 1.10 ragge
467 1.10 ragge bp->b_rawblkno =
468 1.10 ragge bp->b_blkno + lp->d_partitions[DISKPART(bp->b_dev)].p_offset;
469 1.10 ragge bp->b_cylinder = bp->b_rawblkno / lp->d_secpercyl;
470 1.10 ragge
471 1.15 thorpej s = splbio();
472 1.45 yamt bufq_put(sc->sc_q, bp);
473 1.10 ragge if (inq == 0) {
474 1.10 ragge inq = 1;
475 1.10 ragge vsbus_dma_start(&sc->sc_vd);
476 1.10 ragge }
477 1.10 ragge splx(s);
478 1.10 ragge return;
479 1.10 ragge
480 1.10 ragge done: biodone(bp);
481 1.1 ragge }
482 1.1 ragge
483 1.10 ragge void
484 1.10 ragge hdc_qstart(void *arg)
485 1.1 ragge {
486 1.43 matt struct hdcsoftc * const sc = arg;
487 1.1 ragge
488 1.10 ragge inq = 0;
489 1.1 ragge
490 1.10 ragge hdcstart(sc, 0);
491 1.45 yamt if (bufq_peek(sc->sc_q)) {
492 1.10 ragge vsbus_dma_start(&sc->sc_vd); /* More to go */
493 1.10 ragge inq = 1;
494 1.10 ragge }
495 1.10 ragge }
496 1.1 ragge
497 1.10 ragge void
498 1.10 ragge hdcstart(struct hdcsoftc *sc, struct buf *ob)
499 1.10 ragge {
500 1.43 matt struct hdc9224_UDCreg * const p = &sc->sc_creg;
501 1.10 ragge struct disklabel *lp;
502 1.10 ragge struct rdsoftc *rd;
503 1.10 ragge struct buf *bp;
504 1.10 ragge int cn, sn, tn, bn, blks;
505 1.12 ragge volatile char ch;
506 1.1 ragge
507 1.10 ragge if (sc->sc_active)
508 1.10 ragge return; /* Already doing something */
509 1.1 ragge
510 1.10 ragge if (ob == 0) {
511 1.45 yamt bp = bufq_get(sc->sc_q);
512 1.10 ragge if (bp == NULL)
513 1.10 ragge return; /* Nothing to do */
514 1.10 ragge sc->sc_bufaddr = bp->b_data;
515 1.10 ragge sc->sc_diskblk = bp->b_rawblkno;
516 1.10 ragge sc->sc_bytecnt = bp->b_bcount;
517 1.12 ragge sc->sc_retries = 0;
518 1.10 ragge bp->b_resid = 0;
519 1.10 ragge } else
520 1.10 ragge bp = ob;
521 1.10 ragge
522 1.43 matt rd = device_lookup_private(&rd_cd, DISKUNIT(bp->b_dev));
523 1.10 ragge hdc_rdselect(sc, rd->sc_drive);
524 1.10 ragge sc->sc_active = bp;
525 1.10 ragge
526 1.10 ragge bn = sc->sc_diskblk;
527 1.10 ragge lp = rd->sc_disk.dk_label;
528 1.10 ragge if (bn) {
529 1.10 ragge cn = bn / lp->d_secpercyl;
530 1.10 ragge sn = bn % lp->d_secpercyl;
531 1.10 ragge tn = sn / lp->d_nsectors;
532 1.10 ragge sn = sn % lp->d_nsectors;
533 1.10 ragge } else
534 1.10 ragge cn = sn = tn = 0;
535 1.10 ragge
536 1.10 ragge cn++; /* first cylinder is reserved */
537 1.10 ragge
538 1.47 cegger memset(p, 0, sizeof(struct hdc9224_UDCreg));
539 1.10 ragge
540 1.10 ragge /*
541 1.10 ragge * Tricky thing: the controller do itself only increase the sector
542 1.10 ragge * number, not the track or cylinder number. Therefore the driver
543 1.10 ragge * is not allowed to have transfers that crosses track boundaries.
544 1.10 ragge */
545 1.10 ragge blks = sc->sc_bytecnt/DEV_BSIZE;
546 1.10 ragge if ((sn + blks) > lp->d_nsectors)
547 1.10 ragge blks = lp->d_nsectors - sn;
548 1.10 ragge
549 1.10 ragge p->udc_dsect = sn;
550 1.10 ragge p->udc_dcyl = cn & 0xff;
551 1.10 ragge p->udc_dhead = ((cn >> 4) & 0x70) | tn;
552 1.10 ragge p->udc_scnt = blks;
553 1.10 ragge
554 1.10 ragge p->udc_rtcnt = UDC_RC_RTRYCNT;
555 1.10 ragge p->udc_mode = UDC_MD_HDD;
556 1.10 ragge p->udc_term = UDC_TC_CRCPRE|UDC_TC_INTDONE|UDC_TC_TDELDAT|UDC_TC_TWRFLT;
557 1.10 ragge hdc_writeregs(sc);
558 1.10 ragge
559 1.10 ragge /* Count up vars */
560 1.10 ragge sc->sc_xfer = blks * DEV_BSIZE;
561 1.12 ragge
562 1.12 ragge ch = HDC_RSTAT; /* Avoid pending interrupts */
563 1.12 ragge WAIT;
564 1.12 ragge vsbus_clrintr(sc->sc_intbit); /* Clear pending int's */
565 1.10 ragge
566 1.10 ragge if (bp->b_flags & B_READ) {
567 1.10 ragge HDC_WCMD(DKC_CMD_READ_HDD);
568 1.10 ragge } else {
569 1.10 ragge vsbus_copyfromproc(bp->b_proc, sc->sc_bufaddr, sc->sc_dmabase,
570 1.10 ragge sc->sc_xfer);
571 1.10 ragge HDC_WCMD(DKC_CMD_WRITE_HDD);
572 1.10 ragge }
573 1.10 ragge }
574 1.1 ragge
575 1.10 ragge void
576 1.10 ragge rd_readgeom(struct hdcsoftc *sc, struct rdsoftc *rd)
577 1.10 ragge {
578 1.43 matt struct hdc9224_UDCreg * const p = &sc->sc_creg;
579 1.1 ragge
580 1.10 ragge hdc_rdselect(sc, rd->sc_drive); /* select drive right now */
581 1.1 ragge
582 1.43 matt memset(p, 0, sizeof(*p));
583 1.1 ragge
584 1.10 ragge p->udc_scnt = 1;
585 1.10 ragge p->udc_rtcnt = UDC_RC_RTRYCNT;
586 1.10 ragge p->udc_mode = UDC_MD_HDD;
587 1.10 ragge p->udc_term = UDC_TC_CRCPRE|UDC_TC_INTDONE|UDC_TC_TDELDAT|UDC_TC_TWPROT;
588 1.10 ragge hdc_writeregs(sc);
589 1.10 ragge sc->sc_status = 0;
590 1.10 ragge HDC_WCMD(DKC_CMD_READ_HDD|2);
591 1.10 ragge while ((sc->sc_status & DKC_ST_INTPEND) == 0)
592 1.10 ragge ;
593 1.49 cegger memcpy(&rd->sc_xbn, sc->sc_dmabase, sizeof(struct rdgeom));
594 1.1 ragge }
595 1.1 ragge
596 1.10 ragge #ifdef RDDEBUG
597 1.1 ragge /*
598 1.1 ragge * display the contents of the on-disk geometry structure
599 1.1 ragge */
600 1.9 ragge void
601 1.46 dsl hdc_printgeom(struct rdgeom *p)
602 1.1 ragge {
603 1.9 ragge printf ("**DiskData** XBNs: %ld, DBNs: %ld, LBNs: %ld, RBNs: %ld\n",
604 1.1 ragge p->xbn_count, p->dbn_count, p->lbn_count, p->rbn_count);
605 1.4 christos printf ("sec/track: %d, tracks: %d, cyl: %d, precomp/reduced: %d/%d\n",
606 1.1 ragge p->nspt, p->ntracks, p->ncylinders, p->precomp, p->reduced);
607 1.4 christos printf ("seek-rate: %d, crc/eec: %s, RCT: %d, RCT-copies: %d\n",
608 1.1 ragge p->seek_rate, p->crc_eec?"EEC":"CRC", p->rct, p->rct_ncopies);
609 1.10 ragge printf ("media-ID: %lx, interleave: %d, headskew: %d, cylskew: %d\n",
610 1.10 ragge p->media_id, p->interleave, p->headskew, p->cylskew);
611 1.4 christos printf ("gap0: %d, gap1: %d, gap2: %d, gap3: %d, sync-value: %d\n",
612 1.1 ragge p->gap0_size, p->gap1_size, p->gap2_size, p->gap3_size,
613 1.1 ragge p->sync_value);
614 1.1 ragge }
615 1.1 ragge #endif
616 1.1 ragge
617 1.1 ragge /*
618 1.10 ragge * Return the size of a partition, if known, or -1 if not.
619 1.1 ragge */
620 1.1 ragge int
621 1.43 matt rdpsize(dev_t dev)
622 1.1 ragge {
623 1.43 matt struct rdsoftc * const rd = device_lookup_private(&rd_cd, DISKUNIT(dev));
624 1.43 matt const int part = DISKPART(dev);
625 1.1 ragge
626 1.43 matt if (rd == NULL || part >= rd->sc_disk.dk_label->d_npartitions)
627 1.10 ragge return -1;
628 1.43 matt
629 1.43 matt return rd->sc_disk.dk_label->d_partitions[part].p_size *
630 1.10 ragge (rd->sc_disk.dk_label->d_secsize / DEV_BSIZE);
631 1.1 ragge }
632 1.1 ragge
633 1.1 ragge /*
634 1.1 ragge *
635 1.1 ragge */
636 1.1 ragge int
637 1.33 christos rdopen(dev_t dev, int flag, int fmt, struct lwp *l)
638 1.1 ragge {
639 1.43 matt struct rdsoftc * const rd = device_lookup_private(&rd_cd, DISKUNIT(dev));
640 1.43 matt const int part = DISKPART(dev);
641 1.1 ragge
642 1.43 matt if (rd == NULL || part >= rd->sc_disk.dk_label->d_npartitions)
643 1.1 ragge return ENXIO;
644 1.10 ragge
645 1.10 ragge switch (fmt) {
646 1.10 ragge case S_IFCHR:
647 1.10 ragge rd->sc_disk.dk_copenmask |= (1 << part);
648 1.10 ragge break;
649 1.10 ragge case S_IFBLK:
650 1.10 ragge rd->sc_disk.dk_bopenmask |= (1 << part);
651 1.10 ragge break;
652 1.1 ragge }
653 1.10 ragge rd->sc_disk.dk_openmask =
654 1.10 ragge rd->sc_disk.dk_copenmask | rd->sc_disk.dk_bopenmask;
655 1.1 ragge
656 1.10 ragge return 0;
657 1.1 ragge }
658 1.1 ragge
659 1.1 ragge /*
660 1.1 ragge *
661 1.1 ragge */
662 1.1 ragge int
663 1.33 christos rdclose(dev_t dev, int flag, int fmt, struct lwp *l)
664 1.1 ragge {
665 1.43 matt struct rdsoftc * const rd = device_lookup_private(&rd_cd, DISKUNIT(dev));
666 1.43 matt const int part = DISKPART(dev);
667 1.10 ragge
668 1.10 ragge switch (fmt) {
669 1.10 ragge case S_IFCHR:
670 1.10 ragge rd->sc_disk.dk_copenmask &= ~(1 << part);
671 1.10 ragge break;
672 1.10 ragge case S_IFBLK:
673 1.10 ragge rd->sc_disk.dk_bopenmask &= ~(1 << part);
674 1.10 ragge break;
675 1.10 ragge }
676 1.10 ragge rd->sc_disk.dk_openmask =
677 1.10 ragge rd->sc_disk.dk_copenmask | rd->sc_disk.dk_bopenmask;
678 1.10 ragge
679 1.1 ragge return (0);
680 1.1 ragge }
681 1.1 ragge
682 1.1 ragge /*
683 1.1 ragge *
684 1.1 ragge */
685 1.1 ragge int
686 1.38 christos rdioctl(dev_t dev, u_long cmd, void *addr, int flag, struct lwp *l)
687 1.1 ragge {
688 1.43 matt struct rdsoftc * const rd = device_lookup_private(&rd_cd, DISKUNIT(dev));
689 1.43 matt struct disklabel * const lp = rd->sc_disk.dk_label;
690 1.43 matt int error = 0;
691 1.1 ragge
692 1.1 ragge switch (cmd) {
693 1.1 ragge case DIOCGDINFO:
694 1.43 matt *(struct disklabel *)addr = *lp;
695 1.10 ragge break;
696 1.1 ragge
697 1.1 ragge case DIOCGPART:
698 1.10 ragge ((struct partinfo *)addr)->disklab = lp;
699 1.10 ragge ((struct partinfo *)addr)->part =
700 1.10 ragge &lp->d_partitions[DISKPART(dev)];
701 1.10 ragge break;
702 1.1 ragge
703 1.1 ragge case DIOCWDINFO:
704 1.1 ragge case DIOCSDINFO:
705 1.1 ragge if ((flag & FWRITE) == 0)
706 1.1 ragge return EBADF;
707 1.43 matt error = (cmd == DIOCSDINFO ?
708 1.43 matt setdisklabel(lp, (struct disklabel *)addr, 0, 0) :
709 1.43 matt writedisklabel(dev, rdstrategy, lp, 0));
710 1.10 ragge break;
711 1.1 ragge
712 1.10 ragge case DIOCGDEFLABEL:
713 1.43 matt memset(lp, 0, sizeof(*lp));
714 1.10 ragge rdmakelabel(lp, &rd->sc_xbn);
715 1.10 ragge break;
716 1.1 ragge
717 1.1 ragge case DIOCWLABEL:
718 1.1 ragge if ((flag & FWRITE) == 0)
719 1.43 matt error = EBADF;
720 1.10 ragge break;
721 1.10 ragge
722 1.1 ragge default:
723 1.43 matt error = ENOTTY;
724 1.1 ragge }
725 1.43 matt return error;
726 1.1 ragge }
727 1.1 ragge
728 1.1 ragge /*
729 1.1 ragge *
730 1.1 ragge */
731 1.1 ragge int
732 1.10 ragge rdread(dev_t dev, struct uio *uio, int flag)
733 1.1 ragge {
734 1.10 ragge return (physio (rdstrategy, NULL, dev, B_READ, minphys, uio));
735 1.1 ragge }
736 1.1 ragge
737 1.1 ragge /*
738 1.1 ragge *
739 1.1 ragge */
740 1.1 ragge int
741 1.10 ragge rdwrite(dev_t dev, struct uio *uio, int flag)
742 1.1 ragge {
743 1.10 ragge return (physio (rdstrategy, NULL, dev, B_WRITE, minphys, uio));
744 1.1 ragge }
745 1.1 ragge
746 1.1 ragge /*
747 1.1 ragge * we have to wait 0.7 usec between two accesses to any of the
748 1.1 ragge * dkc-registers, on a VS2000 with 1 MIPS, this is roughly one
749 1.1 ragge * instruction. Thus the loop-overhead will be enough...
750 1.1 ragge */
751 1.10 ragge static void
752 1.10 ragge hdc_readregs(struct hdcsoftc *sc)
753 1.1 ragge {
754 1.1 ragge int i;
755 1.1 ragge char *p;
756 1.1 ragge
757 1.10 ragge HDC_WCMD(DKC_CMD_SETREGPTR);
758 1.10 ragge WAIT;
759 1.1 ragge p = (void*)&sc->sc_sreg;
760 1.10 ragge for (i=0; i<10; i++) {
761 1.10 ragge *p++ = HDC_RREG; /* dkc_reg auto-increments */
762 1.10 ragge WAIT;
763 1.10 ragge }
764 1.1 ragge }
765 1.1 ragge
766 1.10 ragge static void
767 1.10 ragge hdc_writeregs(struct hdcsoftc *sc)
768 1.1 ragge {
769 1.1 ragge int i;
770 1.1 ragge char *p;
771 1.1 ragge
772 1.10 ragge HDC_WCMD(DKC_CMD_SETREGPTR);
773 1.1 ragge p = (void*)&sc->sc_creg;
774 1.10 ragge for (i=0; i<10; i++) {
775 1.10 ragge HDC_WREG(*p++); /* dkc_reg auto-increments */
776 1.10 ragge WAIT;
777 1.10 ragge }
778 1.1 ragge }
779 1.1 ragge
780 1.1 ragge /*
781 1.1 ragge * hdc_command() issues a command and polls the intreq-register
782 1.1 ragge * to find when command has completed
783 1.1 ragge */
784 1.1 ragge int
785 1.10 ragge hdc_command(struct hdcsoftc *sc, int cmd)
786 1.1 ragge {
787 1.1 ragge hdc_writeregs(sc); /* write the prepared registers */
788 1.10 ragge HDC_WCMD(cmd);
789 1.10 ragge WAIT;
790 1.1 ragge return (0);
791 1.1 ragge }
792 1.1 ragge
793 1.1 ragge int
794 1.10 ragge hdc_rdselect(struct hdcsoftc *sc, int unit)
795 1.1 ragge {
796 1.43 matt struct hdc9224_UDCreg * const p = &sc->sc_creg;
797 1.1 ragge int error;
798 1.1 ragge
799 1.1 ragge /*
800 1.1 ragge * bring "creg" in some known-to-work state and
801 1.1 ragge * select the drive with the DRIVE SELECT command.
802 1.1 ragge */
803 1.43 matt memset(p, 0, sizeof(*p));
804 1.1 ragge
805 1.1 ragge p->udc_rtcnt = UDC_RC_HDD_READ;
806 1.1 ragge p->udc_mode = UDC_MD_HDD;
807 1.1 ragge p->udc_term = UDC_TC_HDD;
808 1.1 ragge
809 1.10 ragge error = hdc_command(sc, DKC_CMD_DRSEL_HDD | unit);
810 1.10 ragge
811 1.43 matt return error;
812 1.1 ragge }
813 1.1 ragge
814 1.10 ragge void
815 1.10 ragge rdmakelabel(struct disklabel *dl, struct rdgeom *g)
816 1.1 ragge {
817 1.10 ragge int n, p = 0;
818 1.1 ragge
819 1.10 ragge dl->d_bbsize = BBSIZE;
820 1.26 he dl->d_sbsize = SBLOCKSIZE;
821 1.10 ragge dl->d_typename[p++] = MSCP_MID_CHAR(2, g->media_id);
822 1.10 ragge dl->d_typename[p++] = MSCP_MID_CHAR(1, g->media_id);
823 1.10 ragge if (MSCP_MID_ECH(0, g->media_id))
824 1.10 ragge dl->d_typename[p++] = MSCP_MID_CHAR(0, g->media_id);
825 1.10 ragge n = MSCP_MID_NUM(g->media_id);
826 1.10 ragge if (n > 99) {
827 1.10 ragge dl->d_typename[p++] = '1';
828 1.10 ragge n -= 100;
829 1.10 ragge }
830 1.10 ragge if (n > 9) {
831 1.10 ragge dl->d_typename[p++] = (n / 10) + '0';
832 1.10 ragge n %= 10;
833 1.10 ragge }
834 1.10 ragge dl->d_typename[p++] = n + '0';
835 1.10 ragge dl->d_typename[p] = 0;
836 1.10 ragge dl->d_type = DTYPE_MSCP; /* XXX - what to use here??? */
837 1.10 ragge dl->d_rpm = 3600;
838 1.10 ragge dl->d_secsize = DEV_BSIZE;
839 1.10 ragge
840 1.10 ragge dl->d_secperunit = g->lbn_count;
841 1.10 ragge dl->d_nsectors = g->nspt;
842 1.10 ragge dl->d_ntracks = g->ntracks;
843 1.10 ragge dl->d_secpercyl = dl->d_nsectors * dl->d_ntracks;
844 1.10 ragge dl->d_ncylinders = dl->d_secperunit / dl->d_secpercyl;
845 1.10 ragge
846 1.10 ragge dl->d_npartitions = MAXPARTITIONS;
847 1.10 ragge dl->d_partitions[0].p_size = dl->d_partitions[2].p_size =
848 1.10 ragge dl->d_secperunit;
849 1.10 ragge dl->d_partitions[0].p_offset = dl->d_partitions[2].p_offset = 0;
850 1.10 ragge dl->d_interleave = dl->d_headswitch = 1;
851 1.10 ragge dl->d_magic = dl->d_magic2 = DISKMAGIC;
852 1.10 ragge dl->d_checksum = dkcksum(dl);
853 1.1 ragge }
854