si.c revision 1.9 1 1.9 provos /* $NetBSD: si.c,v 1.9 2002/09/27 15:37:39 provos Exp $ */
2 1.1 pk
3 1.1 pk /*-
4 1.1 pk * Copyright (c) 1996,2000 The NetBSD Foundation, Inc.
5 1.1 pk * All rights reserved.
6 1.1 pk *
7 1.1 pk * This code is derived from software contributed to The NetBSD Foundation
8 1.1 pk * by Adam Glass, David Jones, Gordon W. Ross, Jason R. Thorpe and
9 1.1 pk * Paul Kranenburg.
10 1.1 pk *
11 1.1 pk * Redistribution and use in source and binary forms, with or without
12 1.1 pk * modification, are permitted provided that the following conditions
13 1.1 pk * are met:
14 1.1 pk * 1. Redistributions of source code must retain the above copyright
15 1.1 pk * notice, this list of conditions and the following disclaimer.
16 1.1 pk * 2. Redistributions in binary form must reproduce the above copyright
17 1.1 pk * notice, this list of conditions and the following disclaimer in the
18 1.1 pk * documentation and/or other materials provided with the distribution.
19 1.1 pk * 3. All advertising materials mentioning features or use of this software
20 1.1 pk * must display the following acknowledgement:
21 1.1 pk * This product includes software developed by the NetBSD
22 1.1 pk * Foundation, Inc. and its contributors.
23 1.1 pk * 4. Neither the name of The NetBSD Foundation nor the names of its
24 1.1 pk * contributors may be used to endorse or promote products derived
25 1.1 pk * from this software without specific prior written permission.
26 1.1 pk *
27 1.1 pk * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
28 1.1 pk * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
29 1.1 pk * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
30 1.1 pk * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
31 1.1 pk * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
32 1.1 pk * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
33 1.1 pk * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
34 1.1 pk * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
35 1.1 pk * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
36 1.1 pk * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
37 1.1 pk * POSSIBILITY OF SUCH DAMAGE.
38 1.1 pk */
39 1.1 pk
40 1.1 pk /*
41 1.1 pk * This file contains VME bus-dependent of the `si' SCSI adapter.
42 1.1 pk * This hardware is frequently found on Sun 3 and Sun 4 machines.
43 1.1 pk *
44 1.1 pk * The SCSI machinery on this adapter is implemented by an NCR5380,
45 1.1 pk * which is taken care of by the chipset driver in /sys/dev/ic/ncr5380sbc.c
46 1.1 pk *
47 1.1 pk * The logic has a bit to enable or disable the DMA engine,
48 1.1 pk * but that bit also gates the interrupt line from the NCR5380!
49 1.1 pk * Therefore, in order to get any interrupt from the 5380, (i.e.
50 1.1 pk * for reselect) one must clear the DMA engine transfer count and
51 1.1 pk * then enable DMA. This has the further complication that you
52 1.1 pk * CAN NOT touch the NCR5380 while the DMA enable bit is set, so
53 1.1 pk * we have to turn DMA back off before we even look at the 5380.
54 1.1 pk *
55 1.1 pk * What wonderfully whacky hardware this is!
56 1.1 pk *
57 1.1 pk */
58 1.1 pk
59 1.1 pk /*
60 1.1 pk * This driver originated as an MD implementation for the sun3 and sun4
61 1.1 pk * ports. The notes pertaining to that history are included below.
62 1.1 pk *
63 1.1 pk * David Jones wrote the initial version of this module for NetBSD/sun3,
64 1.1 pk * which included support for the VME adapter only. (no reselection).
65 1.1 pk *
66 1.1 pk * Gordon Ross added support for the Sun 3 OBIO adapter, and re-worked
67 1.1 pk * both the VME and OBIO code to support disconnect/reselect.
68 1.1 pk * (Required figuring out the hardware "features" noted above.)
69 1.1 pk *
70 1.1 pk * The autoconfiguration boilerplate came from Adam Glass.
71 1.1 pk *
72 1.1 pk * Jason R. Thorpe ported the autoconfiguration and VME portions to
73 1.1 pk * NetBSD/sparc, and added initial support for the 4/100 "SCSI Weird",
74 1.1 pk * a wacky OBIO variant of the VME SCSI-3. Many thanks to Chuck Cranor
75 1.1 pk * for lots of helpful tips and suggestions. Thanks also to Paul Kranenburg
76 1.1 pk * and Chris Torek for bits of insight needed along the way. Thanks to
77 1.1 pk * David Gilbert and Andrew Gillham who risked filesystem life-and-limb
78 1.1 pk * for the sake of testing. Andrew Gillham helped work out the bugs
79 1.1 pk * the 4/100 DMA code.
80 1.1 pk */
81 1.6 lukem
82 1.6 lukem #include <sys/cdefs.h>
83 1.9 provos __KERNEL_RCSID(0, "$NetBSD: si.c,v 1.9 2002/09/27 15:37:39 provos Exp $");
84 1.1 pk
85 1.1 pk #include "opt_ddb.h"
86 1.1 pk
87 1.1 pk #include <sys/param.h>
88 1.1 pk #include <sys/systm.h>
89 1.1 pk #include <sys/kernel.h>
90 1.1 pk #include <sys/malloc.h>
91 1.1 pk #include <sys/errno.h>
92 1.1 pk #include <sys/device.h>
93 1.1 pk #include <sys/buf.h>
94 1.1 pk
95 1.1 pk #include <machine/bus.h>
96 1.1 pk #include <machine/intr.h>
97 1.1 pk
98 1.1 pk #include <dev/vme/vmereg.h>
99 1.1 pk #include <dev/vme/vmevar.h>
100 1.1 pk
101 1.1 pk #include <dev/scsipi/scsi_all.h>
102 1.1 pk #include <dev/scsipi/scsipi_all.h>
103 1.1 pk #include <dev/scsipi/scsipi_debug.h>
104 1.1 pk #include <dev/scsipi/scsiconf.h>
105 1.1 pk
106 1.8 fredette #ifndef Debugger
107 1.1 pk #define Debugger()
108 1.1 pk #endif
109 1.1 pk
110 1.1 pk #ifndef DEBUG
111 1.1 pk #define DEBUG XXX
112 1.1 pk #endif
113 1.1 pk
114 1.1 pk #include <dev/ic/ncr5380reg.h>
115 1.1 pk #include <dev/ic/ncr5380var.h>
116 1.1 pk
117 1.2 thorpej #include <dev/vme/sireg.h>
118 1.1 pk
119 1.1 pk /*
120 1.1 pk * Transfers smaller than this are done using PIO
121 1.1 pk * (on assumption they're not worth DMA overhead)
122 1.1 pk */
123 1.1 pk #define MIN_DMA_LEN 128
124 1.1 pk
125 1.1 pk #ifdef DEBUG
126 1.1 pk int si_debug = 0;
127 1.1 pk #endif
128 1.1 pk
129 1.1 pk /*
130 1.1 pk * This structure is used to keep track of mapped DMA requests.
131 1.1 pk */
132 1.1 pk struct si_dma_handle {
133 1.1 pk int dh_flags;
134 1.1 pk #define SIDH_BUSY 0x01 /* This DH is in use */
135 1.1 pk #define SIDH_OUT 0x02 /* DMA does data out (write) */
136 1.1 pk int dh_maplen; /* Original data length */
137 1.1 pk bus_dmamap_t dh_dmamap;
138 1.1 pk #define dh_dvma dh_dmamap->dm_segs[0].ds_addr /* VA of buffer in DVMA space */
139 1.1 pk };
140 1.1 pk
141 1.1 pk /*
142 1.1 pk * The first structure member has to be the ncr5380_softc
143 1.1 pk * so we can just cast to go back and fourth between them.
144 1.1 pk */
145 1.1 pk struct si_softc {
146 1.1 pk struct ncr5380_softc ncr_sc;
147 1.1 pk bus_space_tag_t sc_bustag; /* bus tags */
148 1.1 pk bus_dma_tag_t sc_dmatag;
149 1.1 pk vme_chipset_tag_t sc_vctag;
150 1.1 pk
151 1.1 pk int sc_adapter_iv_am; /* int. vec + address modifier */
152 1.1 pk struct si_dma_handle *sc_dma;
153 1.1 pk int sc_xlen; /* length of current DMA segment. */
154 1.1 pk int sc_options; /* options for this instance. */
155 1.1 pk };
156 1.1 pk
157 1.1 pk /*
158 1.1 pk * Options. By default, DMA is enabled and DMA completion interrupts
159 1.1 pk * and reselect are disabled. You may enable additional features
160 1.1 pk * the `flags' directive in your kernel's configuration file.
161 1.1 pk *
162 1.1 pk * Alternatively, you can patch your kernel with DDB or some other
163 1.1 pk * mechanism. The sc_options member of the softc is OR'd with
164 1.1 pk * the value in si_options.
165 1.1 pk *
166 1.1 pk * Note, there's a separate sw_options to make life easier.
167 1.1 pk */
168 1.1 pk #define SI_ENABLE_DMA 0x01 /* Use DMA (maybe polled) */
169 1.1 pk #define SI_DMA_INTR 0x02 /* DMA completion interrupts */
170 1.1 pk #define SI_DO_RESELECT 0x04 /* Allow disconnect/reselect */
171 1.1 pk #define SI_OPTIONS_MASK (SI_ENABLE_DMA|SI_DMA_INTR|SI_DO_RESELECT)
172 1.1 pk #define SI_OPTIONS_BITS "\10\3RESELECT\2DMA_INTR\1DMA"
173 1.1 pk int si_options = SI_ENABLE_DMA|SI_DMA_INTR|SI_DO_RESELECT;
174 1.1 pk
175 1.1 pk static int si_match __P((struct device *, struct cfdata *, void *));
176 1.1 pk static void si_attach __P((struct device *, struct device *, void *));
177 1.1 pk static int si_intr __P((void *));
178 1.1 pk static void si_reset_adapter __P((struct ncr5380_softc *));
179 1.1 pk
180 1.1 pk void si_dma_alloc __P((struct ncr5380_softc *));
181 1.1 pk void si_dma_free __P((struct ncr5380_softc *));
182 1.1 pk void si_dma_poll __P((struct ncr5380_softc *));
183 1.1 pk
184 1.1 pk void si_dma_setup __P((struct ncr5380_softc *));
185 1.1 pk void si_dma_start __P((struct ncr5380_softc *));
186 1.1 pk void si_dma_eop __P((struct ncr5380_softc *));
187 1.1 pk void si_dma_stop __P((struct ncr5380_softc *));
188 1.1 pk
189 1.1 pk void si_intr_on __P((struct ncr5380_softc *));
190 1.1 pk void si_intr_off __P((struct ncr5380_softc *));
191 1.1 pk
192 1.1 pk /*
193 1.1 pk * Shorthand bus space access
194 1.1 pk * XXX - must look into endian issues here.
195 1.1 pk */
196 1.1 pk #define SIREG_READ(sc, index) \
197 1.1 pk bus_space_read_2((sc)->sc_regt, (sc)->sc_regh, index)
198 1.1 pk #define SIREG_WRITE(sc, index, v) \
199 1.1 pk bus_space_write_2((sc)->sc_regt, (sc)->sc_regh, index, v)
200 1.1 pk
201 1.1 pk
202 1.1 pk /* Auto-configuration glue. */
203 1.1 pk struct cfattach si_ca = {
204 1.1 pk sizeof(struct si_softc), si_match, si_attach
205 1.1 pk };
206 1.1 pk
207 1.1 pk static int
208 1.1 pk si_match(parent, cf, aux)
209 1.1 pk struct device *parent;
210 1.1 pk struct cfdata *cf;
211 1.1 pk void *aux;
212 1.1 pk {
213 1.1 pk struct vme_attach_args *va = aux;
214 1.1 pk vme_chipset_tag_t ct = va->va_vct;
215 1.1 pk vme_am_t mod;
216 1.1 pk vme_addr_t vme_addr;
217 1.1 pk
218 1.1 pk /* Make sure there is something there... */
219 1.1 pk mod = VME_AM_A24 | VME_AM_MBO | VME_AM_SUPER | VME_AM_DATA;
220 1.1 pk vme_addr = va->r[0].offset;
221 1.1 pk
222 1.1 pk if (vme_probe(ct, vme_addr, 1, mod, VME_D8, NULL, 0) != 0)
223 1.1 pk return (0);
224 1.1 pk
225 1.1 pk /*
226 1.1 pk * If this is a VME SCSI board, we have to determine whether
227 1.1 pk * it is an "sc" (Sun2) or "si" (Sun3) SCSI board. This can
228 1.1 pk * be determined using the fact that the "sc" board occupies
229 1.1 pk * 4K bytes in VME space but the "si" board occupies 2K bytes.
230 1.1 pk */
231 1.1 pk return (vme_probe(ct, vme_addr + 0x801, 1, mod, VME_D8, NULL, 0) != 0);
232 1.1 pk }
233 1.1 pk
234 1.1 pk static void
235 1.1 pk si_attach(parent, self, aux)
236 1.1 pk struct device *parent, *self;
237 1.1 pk void *aux;
238 1.1 pk {
239 1.1 pk struct si_softc *sc = (struct si_softc *) self;
240 1.1 pk struct ncr5380_softc *ncr_sc = &sc->ncr_sc;
241 1.1 pk struct vme_attach_args *va = aux;
242 1.1 pk vme_chipset_tag_t ct = va->va_vct;
243 1.1 pk bus_space_tag_t bt;
244 1.1 pk bus_space_handle_t bh;
245 1.1 pk vme_mapresc_t resc;
246 1.1 pk vme_intr_handle_t ih;
247 1.1 pk vme_am_t mod;
248 1.1 pk char bits[64];
249 1.1 pk int i;
250 1.1 pk
251 1.1 pk sc->sc_dmatag = va->va_bdt;
252 1.1 pk sc->sc_vctag = ct;
253 1.1 pk
254 1.1 pk mod = VME_AM_A24 | VME_AM_MBO | VME_AM_SUPER | VME_AM_DATA;
255 1.1 pk
256 1.1 pk if (vme_space_map(ct, va->r[0].offset, SIREG_BANK_SZ,
257 1.1 pk mod, VME_D8, 0, &bt, &bh, &resc) != 0)
258 1.1 pk panic("%s: vme_space_map", ncr_sc->sc_dev.dv_xname);
259 1.1 pk
260 1.1 pk ncr_sc->sc_regt = bt;
261 1.1 pk ncr_sc->sc_regh = bh;
262 1.1 pk
263 1.1 pk sc->sc_options = si_options;
264 1.1 pk
265 1.1 pk ncr_sc->sc_dma_setup = si_dma_setup;
266 1.1 pk ncr_sc->sc_dma_start = si_dma_start;
267 1.1 pk ncr_sc->sc_dma_eop = si_dma_stop;
268 1.1 pk ncr_sc->sc_dma_stop = si_dma_stop;
269 1.1 pk
270 1.1 pk vme_intr_map(ct, va->ilevel, va->ivector, &ih);
271 1.1 pk vme_intr_establish(ct, ih, IPL_BIO, si_intr, sc);
272 1.1 pk
273 1.1 pk printf("\n");
274 1.1 pk
275 1.1 pk sc->sc_adapter_iv_am = (mod << 8) | (va->ivector & 0xFF);
276 1.1 pk
277 1.1 pk /*
278 1.1 pk * Pull in the options flags. Allow the user to completely
279 1.1 pk * override the default values.
280 1.1 pk */
281 1.1 pk if ((ncr_sc->sc_dev.dv_cfdata->cf_flags & SI_OPTIONS_MASK) != 0)
282 1.1 pk sc->sc_options =
283 1.1 pk (ncr_sc->sc_dev.dv_cfdata->cf_flags & SI_OPTIONS_MASK);
284 1.1 pk
285 1.1 pk /*
286 1.1 pk * Initialize fields used by the MI code
287 1.1 pk */
288 1.1 pk
289 1.1 pk /* NCR5380 register bank offsets */
290 1.1 pk ncr_sc->sci_r0 = 0;
291 1.1 pk ncr_sc->sci_r1 = 1;
292 1.1 pk ncr_sc->sci_r2 = 2;
293 1.1 pk ncr_sc->sci_r3 = 3;
294 1.1 pk ncr_sc->sci_r4 = 4;
295 1.1 pk ncr_sc->sci_r5 = 5;
296 1.1 pk ncr_sc->sci_r6 = 6;
297 1.1 pk ncr_sc->sci_r7 = 7;
298 1.1 pk
299 1.1 pk ncr_sc->sc_rev = NCR_VARIANT_NCR5380;
300 1.1 pk
301 1.1 pk /*
302 1.1 pk * MD function pointers used by the MI code.
303 1.1 pk */
304 1.1 pk ncr_sc->sc_pio_out = ncr5380_pio_out;
305 1.1 pk ncr_sc->sc_pio_in = ncr5380_pio_in;
306 1.1 pk ncr_sc->sc_dma_alloc = si_dma_alloc;
307 1.1 pk ncr_sc->sc_dma_free = si_dma_free;
308 1.1 pk ncr_sc->sc_dma_poll = si_dma_poll;
309 1.1 pk
310 1.1 pk ncr_sc->sc_flags = 0;
311 1.1 pk if ((sc->sc_options & SI_DO_RESELECT) == 0)
312 1.1 pk ncr_sc->sc_no_disconnect = 0xFF;
313 1.1 pk if ((sc->sc_options & SI_DMA_INTR) == 0)
314 1.1 pk ncr_sc->sc_flags |= NCR5380_FORCE_POLLING;
315 1.1 pk ncr_sc->sc_min_dma_len = MIN_DMA_LEN;
316 1.1 pk
317 1.1 pk /*
318 1.1 pk * Allocate DMA handles.
319 1.1 pk */
320 1.1 pk i = SCI_OPENINGS * sizeof(struct si_dma_handle);
321 1.1 pk sc->sc_dma = (struct si_dma_handle *)malloc(i, M_DEVBUF, M_NOWAIT);
322 1.1 pk if (sc->sc_dma == NULL)
323 1.9 provos panic("si: dma handle malloc failed");
324 1.1 pk
325 1.1 pk for (i = 0; i < SCI_OPENINGS; i++) {
326 1.1 pk sc->sc_dma[i].dh_flags = 0;
327 1.1 pk
328 1.1 pk /* Allocate a DMA handle */
329 1.1 pk if (vme_dmamap_create(
330 1.1 pk sc->sc_vctag, /* VME chip tag */
331 1.1 pk MAXPHYS, /* size */
332 1.1 pk VME_AM_A24, /* address modifier */
333 1.1 pk VME_D16, /* data size */
334 1.1 pk 0, /* swap */
335 1.1 pk 1, /* nsegments */
336 1.1 pk MAXPHYS, /* maxsegsz */
337 1.1 pk 0, /* boundary */
338 1.1 pk BUS_DMA_NOWAIT,
339 1.1 pk &sc->sc_dma[i].dh_dmamap) != 0) {
340 1.1 pk
341 1.1 pk printf("%s: DMA buffer map create error\n",
342 1.1 pk ncr_sc->sc_dev.dv_xname);
343 1.1 pk return;
344 1.1 pk }
345 1.1 pk }
346 1.1 pk
347 1.1 pk if (sc->sc_options) {
348 1.1 pk printf("%s: options=%s\n", ncr_sc->sc_dev.dv_xname,
349 1.1 pk bitmask_snprintf(sc->sc_options, SI_OPTIONS_BITS,
350 1.1 pk bits, sizeof(bits)));
351 1.1 pk }
352 1.1 pk
353 1.3 bouyer ncr_sc->sc_channel.chan_id = 7;
354 1.3 bouyer ncr_sc->sc_adapter.adapt_minphys = minphys;
355 1.1 pk
356 1.1 pk /*
357 1.1 pk * Initialize si board itself.
358 1.1 pk */
359 1.1 pk si_reset_adapter(ncr_sc);
360 1.1 pk ncr5380_attach(ncr_sc);
361 1.1 pk
362 1.1 pk if (sc->sc_options & SI_DO_RESELECT) {
363 1.1 pk /*
364 1.1 pk * Need to enable interrupts (and DMA!)
365 1.1 pk * on this H/W for reselect to work.
366 1.1 pk */
367 1.1 pk ncr_sc->sc_intr_on = si_intr_on;
368 1.1 pk ncr_sc->sc_intr_off = si_intr_off;
369 1.1 pk }
370 1.1 pk }
371 1.1 pk
372 1.1 pk #define CSR_WANT (SI_CSR_SBC_IP | SI_CSR_DMA_IP | \
373 1.1 pk SI_CSR_DMA_CONFLICT | SI_CSR_DMA_BUS_ERR )
374 1.1 pk
375 1.1 pk static int
376 1.1 pk si_intr(void *arg)
377 1.1 pk {
378 1.1 pk struct si_softc *sc = arg;
379 1.1 pk struct ncr5380_softc *ncr_sc = (struct ncr5380_softc *)arg;
380 1.1 pk int dma_error, claimed;
381 1.1 pk u_short csr;
382 1.1 pk
383 1.1 pk claimed = 0;
384 1.1 pk dma_error = 0;
385 1.1 pk
386 1.1 pk /* SBC interrupt? DMA interrupt? */
387 1.1 pk csr = SIREG_READ(ncr_sc, SIREG_CSR);
388 1.1 pk
389 1.1 pk NCR_TRACE("si_intr: csr=0x%x\n", csr);
390 1.1 pk
391 1.1 pk if (csr & SI_CSR_DMA_CONFLICT) {
392 1.1 pk dma_error |= SI_CSR_DMA_CONFLICT;
393 1.1 pk printf("si_intr: DMA conflict\n");
394 1.1 pk }
395 1.1 pk if (csr & SI_CSR_DMA_BUS_ERR) {
396 1.1 pk dma_error |= SI_CSR_DMA_BUS_ERR;
397 1.1 pk printf("si_intr: DMA bus error\n");
398 1.1 pk }
399 1.1 pk if (dma_error) {
400 1.1 pk if (sc->ncr_sc.sc_state & NCR_DOINGDMA)
401 1.1 pk sc->ncr_sc.sc_state |= NCR_ABORTING;
402 1.1 pk /* Make sure we will call the main isr. */
403 1.1 pk csr |= SI_CSR_DMA_IP;
404 1.1 pk }
405 1.1 pk
406 1.1 pk if (csr & (SI_CSR_SBC_IP | SI_CSR_DMA_IP)) {
407 1.1 pk claimed = ncr5380_intr(&sc->ncr_sc);
408 1.1 pk #ifdef DEBUG
409 1.1 pk if (!claimed) {
410 1.1 pk printf("si_intr: spurious from SBC\n");
411 1.1 pk if (si_debug & 4) {
412 1.1 pk Debugger(); /* XXX */
413 1.1 pk }
414 1.1 pk }
415 1.1 pk #endif
416 1.1 pk }
417 1.1 pk
418 1.1 pk return (claimed);
419 1.1 pk }
420 1.1 pk
421 1.1 pk
422 1.1 pk static void
423 1.1 pk si_reset_adapter(struct ncr5380_softc *ncr_sc)
424 1.1 pk {
425 1.1 pk struct si_softc *sc = (struct si_softc *)ncr_sc;
426 1.1 pk
427 1.1 pk #ifdef DEBUG
428 1.1 pk if (si_debug) {
429 1.1 pk printf("si_reset_adapter\n");
430 1.1 pk }
431 1.1 pk #endif
432 1.1 pk
433 1.1 pk /*
434 1.1 pk * The SCSI3 controller has an 8K FIFO to buffer data between the
435 1.1 pk * 5380 and the DMA. Make sure it starts out empty.
436 1.1 pk *
437 1.1 pk * The reset bits in the CSR are active low.
438 1.1 pk */
439 1.1 pk SIREG_WRITE(ncr_sc, SIREG_CSR, 0);
440 1.1 pk delay(10);
441 1.1 pk SIREG_WRITE(ncr_sc, SIREG_CSR,
442 1.1 pk SI_CSR_FIFO_RES | SI_CSR_SCSI_RES | SI_CSR_INTR_EN);
443 1.1 pk delay(10);
444 1.1 pk
445 1.1 pk SIREG_WRITE(ncr_sc, SIREG_FIFO_CNT, 0);
446 1.1 pk SIREG_WRITE(ncr_sc, SIREG_DMA_ADDRH, 0);
447 1.1 pk SIREG_WRITE(ncr_sc, SIREG_DMA_ADDRL, 0);
448 1.1 pk SIREG_WRITE(ncr_sc, SIREG_DMA_CNTH, 0);
449 1.1 pk SIREG_WRITE(ncr_sc, SIREG_DMA_CNTL, 0);
450 1.1 pk SIREG_WRITE(ncr_sc, SIREG_IV_AM, sc->sc_adapter_iv_am);
451 1.1 pk SIREG_WRITE(ncr_sc, SIREG_FIFO_CNTH, 0);
452 1.1 pk
453 1.1 pk SCI_CLR_INTR(ncr_sc);
454 1.1 pk }
455 1.1 pk
456 1.1 pk /*****************************************************************
457 1.1 pk * Common functions for DMA
458 1.1 pk ****************************************************************/
459 1.1 pk
460 1.1 pk /*
461 1.1 pk * Allocate a DMA handle and put it in sc->sc_dma. Prepare
462 1.1 pk * for DMA transfer.
463 1.1 pk */
464 1.1 pk void
465 1.1 pk si_dma_alloc(ncr_sc)
466 1.1 pk struct ncr5380_softc *ncr_sc;
467 1.1 pk {
468 1.1 pk struct si_softc *sc = (struct si_softc *)ncr_sc;
469 1.1 pk struct sci_req *sr = ncr_sc->sc_current;
470 1.1 pk struct scsipi_xfer *xs = sr->sr_xs;
471 1.1 pk struct si_dma_handle *dh;
472 1.1 pk int i, xlen;
473 1.1 pk u_long addr;
474 1.1 pk
475 1.1 pk #ifdef DIAGNOSTIC
476 1.1 pk if (sr->sr_dma_hand != NULL)
477 1.1 pk panic("si_dma_alloc: already have DMA handle");
478 1.1 pk #endif
479 1.1 pk
480 1.1 pk #if 1 /* XXX - Temporary */
481 1.1 pk /* XXX - In case we think DMA is completely broken... */
482 1.1 pk if ((sc->sc_options & SI_ENABLE_DMA) == 0)
483 1.1 pk return;
484 1.1 pk #endif
485 1.1 pk
486 1.1 pk addr = (u_long) ncr_sc->sc_dataptr;
487 1.1 pk xlen = ncr_sc->sc_datalen;
488 1.1 pk
489 1.1 pk /* If the DMA start addr is misaligned then do PIO */
490 1.1 pk if ((addr & 1) || (xlen & 1)) {
491 1.1 pk printf("si_dma_alloc: misaligned.\n");
492 1.1 pk return;
493 1.1 pk }
494 1.1 pk
495 1.1 pk /* Make sure our caller checked sc_min_dma_len. */
496 1.1 pk if (xlen < MIN_DMA_LEN)
497 1.9 provos panic("si_dma_alloc: xlen=0x%x", xlen);
498 1.1 pk
499 1.1 pk /* Find free DMA handle. Guaranteed to find one since we have
500 1.1 pk as many DMA handles as the driver has processes. */
501 1.1 pk for (i = 0; i < SCI_OPENINGS; i++) {
502 1.1 pk if ((sc->sc_dma[i].dh_flags & SIDH_BUSY) == 0)
503 1.1 pk goto found;
504 1.1 pk }
505 1.1 pk panic("si: no free DMA handles.");
506 1.1 pk
507 1.1 pk found:
508 1.1 pk dh = &sc->sc_dma[i];
509 1.1 pk dh->dh_flags = SIDH_BUSY;
510 1.1 pk dh->dh_maplen = xlen;
511 1.1 pk
512 1.1 pk /* Copy the "write" flag for convenience. */
513 1.1 pk if ((xs->xs_control & XS_CTL_DATA_OUT) != 0)
514 1.1 pk dh->dh_flags |= SIDH_OUT;
515 1.1 pk
516 1.1 pk /*
517 1.1 pk * Double-map the buffer into DVMA space. If we can't re-map
518 1.1 pk * the buffer, we print a warning and fall back to PIO mode.
519 1.1 pk *
520 1.1 pk * NOTE: it is not safe to sleep here!
521 1.1 pk */
522 1.1 pk if (bus_dmamap_load(sc->sc_dmatag, dh->dh_dmamap,
523 1.1 pk (caddr_t)addr, xlen, NULL, BUS_DMA_NOWAIT) != 0) {
524 1.1 pk /* Can't remap segment */
525 1.1 pk printf("si_dma_alloc: can't remap 0x%lx/0x%x, doing PIO\n",
526 1.1 pk addr, dh->dh_maplen);
527 1.1 pk dh->dh_flags = 0;
528 1.1 pk return;
529 1.1 pk }
530 1.1 pk bus_dmamap_sync(sc->sc_dmatag, dh->dh_dmamap, addr, xlen,
531 1.1 pk (dh->dh_flags & SIDH_OUT)
532 1.1 pk ? BUS_DMASYNC_PREWRITE
533 1.1 pk : BUS_DMASYNC_PREREAD);
534 1.1 pk
535 1.1 pk /* success */
536 1.1 pk sr->sr_dma_hand = dh;
537 1.1 pk
538 1.1 pk return;
539 1.1 pk }
540 1.1 pk
541 1.1 pk
542 1.1 pk void
543 1.1 pk si_dma_free(ncr_sc)
544 1.1 pk struct ncr5380_softc *ncr_sc;
545 1.1 pk {
546 1.1 pk struct si_softc *sc = (struct si_softc *)ncr_sc;
547 1.1 pk struct sci_req *sr = ncr_sc->sc_current;
548 1.1 pk struct si_dma_handle *dh = sr->sr_dma_hand;
549 1.1 pk
550 1.1 pk #ifdef DIAGNOSTIC
551 1.1 pk if (dh == NULL)
552 1.1 pk panic("si_dma_free: no DMA handle");
553 1.1 pk #endif
554 1.1 pk
555 1.1 pk if (ncr_sc->sc_state & NCR_DOINGDMA)
556 1.1 pk panic("si_dma_free: free while in progress");
557 1.1 pk
558 1.1 pk if (dh->dh_flags & SIDH_BUSY) {
559 1.1 pk /* Give back the DVMA space. */
560 1.1 pk bus_dmamap_sync(sc->sc_dmatag, dh->dh_dmamap,
561 1.1 pk dh->dh_dvma, dh->dh_maplen,
562 1.1 pk (dh->dh_flags & SIDH_OUT)
563 1.1 pk ? BUS_DMASYNC_POSTWRITE
564 1.1 pk : BUS_DMASYNC_POSTREAD);
565 1.1 pk bus_dmamap_unload(sc->sc_dmatag, dh->dh_dmamap);
566 1.1 pk dh->dh_flags = 0;
567 1.1 pk }
568 1.1 pk sr->sr_dma_hand = NULL;
569 1.1 pk }
570 1.1 pk
571 1.1 pk
572 1.1 pk /*
573 1.1 pk * Poll (spin-wait) for DMA completion.
574 1.1 pk * Called right after xx_dma_start(), and
575 1.1 pk * xx_dma_stop() will be called next.
576 1.1 pk * Same for either VME or OBIO.
577 1.1 pk */
578 1.1 pk void
579 1.1 pk si_dma_poll(ncr_sc)
580 1.1 pk struct ncr5380_softc *ncr_sc;
581 1.1 pk {
582 1.1 pk struct sci_req *sr = ncr_sc->sc_current;
583 1.1 pk int tmo, csr_mask, csr;
584 1.1 pk
585 1.1 pk /* Make sure DMA started successfully. */
586 1.1 pk if (ncr_sc->sc_state & NCR_ABORTING)
587 1.1 pk return;
588 1.1 pk
589 1.1 pk csr_mask = SI_CSR_SBC_IP | SI_CSR_DMA_IP |
590 1.1 pk SI_CSR_DMA_CONFLICT | SI_CSR_DMA_BUS_ERR;
591 1.1 pk
592 1.1 pk tmo = 50000; /* X100 = 5 sec. */
593 1.1 pk for (;;) {
594 1.1 pk csr = SIREG_READ(ncr_sc, SIREG_CSR);
595 1.1 pk if (csr & csr_mask)
596 1.1 pk break;
597 1.1 pk if (--tmo <= 0) {
598 1.1 pk printf("%s: DMA timeout (while polling)\n",
599 1.1 pk ncr_sc->sc_dev.dv_xname);
600 1.1 pk /* Indicate timeout as MI code would. */
601 1.1 pk sr->sr_flags |= SR_OVERDUE;
602 1.1 pk break;
603 1.1 pk }
604 1.1 pk delay(100);
605 1.1 pk }
606 1.1 pk
607 1.1 pk #ifdef DEBUG
608 1.1 pk if (si_debug) {
609 1.1 pk printf("si_dma_poll: done, csr=0x%x\n", csr);
610 1.1 pk }
611 1.1 pk #endif
612 1.1 pk }
613 1.1 pk
614 1.1 pk
615 1.1 pk /*****************************************************************
616 1.1 pk * VME functions for DMA
617 1.1 pk ****************************************************************/
618 1.1 pk
619 1.1 pk
620 1.1 pk /*
621 1.1 pk * This is called when the bus is going idle,
622 1.1 pk * so we want to enable the SBC interrupts.
623 1.1 pk * That is controlled by the DMA enable!
624 1.1 pk * Who would have guessed!
625 1.1 pk * What a NASTY trick!
626 1.1 pk */
627 1.1 pk void
628 1.1 pk si_intr_on(ncr_sc)
629 1.1 pk struct ncr5380_softc *ncr_sc;
630 1.1 pk {
631 1.1 pk u_int16_t csr;
632 1.1 pk
633 1.5 pk /* Clear DMA start address and counters */
634 1.5 pk SIREG_WRITE(ncr_sc, SIREG_DMA_ADDRH, 0);
635 1.5 pk SIREG_WRITE(ncr_sc, SIREG_DMA_ADDRL, 0);
636 1.5 pk SIREG_WRITE(ncr_sc, SIREG_DMA_CNTH, 0);
637 1.5 pk SIREG_WRITE(ncr_sc, SIREG_DMA_CNTL, 0);
638 1.5 pk
639 1.5 pk /* Enter receive mode (for safety) and enable DMA engine */
640 1.1 pk csr = SIREG_READ(ncr_sc, SIREG_CSR);
641 1.5 pk csr &= ~SI_CSR_SEND;
642 1.1 pk csr |= SI_CSR_DMA_EN;
643 1.1 pk SIREG_WRITE(ncr_sc, SIREG_CSR, csr);
644 1.1 pk }
645 1.1 pk
646 1.1 pk /*
647 1.1 pk * This is called when the bus is idle and we are
648 1.1 pk * about to start playing with the SBC chip.
649 1.1 pk */
650 1.1 pk void
651 1.1 pk si_intr_off(ncr_sc)
652 1.1 pk struct ncr5380_softc *ncr_sc;
653 1.1 pk {
654 1.1 pk u_int16_t csr;
655 1.1 pk
656 1.1 pk csr = SIREG_READ(ncr_sc, SIREG_CSR);
657 1.1 pk csr &= ~SI_CSR_DMA_EN;
658 1.1 pk SIREG_WRITE(ncr_sc, SIREG_CSR, csr);
659 1.1 pk }
660 1.1 pk
661 1.1 pk /*
662 1.1 pk * This function is called during the COMMAND or MSG_IN phase
663 1.4 wiz * that precedes a DATA_IN or DATA_OUT phase, in case we need
664 1.1 pk * to setup the DMA engine before the bus enters a DATA phase.
665 1.1 pk *
666 1.1 pk * XXX: The VME adapter appears to suppress SBC interrupts
667 1.1 pk * when the FIFO is not empty or the FIFO count is non-zero!
668 1.1 pk *
669 1.1 pk * On the VME version we just clear the DMA count and address
670 1.1 pk * here (to make sure it stays idle) and do the real setup
671 1.1 pk * later, in dma_start.
672 1.1 pk */
673 1.1 pk void
674 1.1 pk si_dma_setup(ncr_sc)
675 1.1 pk struct ncr5380_softc *ncr_sc;
676 1.1 pk {
677 1.5 pk struct si_softc *sc = (struct si_softc *)ncr_sc;
678 1.5 pk struct sci_req *sr = ncr_sc->sc_current;
679 1.5 pk struct si_dma_handle *dh = sr->sr_dma_hand;
680 1.1 pk u_int16_t csr;
681 1.5 pk u_long dva;
682 1.5 pk int xlen;
683 1.5 pk
684 1.5 pk /*
685 1.5 pk * Set up the DMA controller.
686 1.5 pk * Note that (dh->dh_len < sc_datalen)
687 1.5 pk */
688 1.1 pk
689 1.1 pk csr = SIREG_READ(ncr_sc, SIREG_CSR);
690 1.1 pk
691 1.5 pk /* Disable DMA while we're setting up the transfer */
692 1.5 pk csr &= ~SI_CSR_DMA_EN;
693 1.5 pk
694 1.1 pk /* Reset the FIFO */
695 1.1 pk csr &= ~SI_CSR_FIFO_RES; /* active low */
696 1.1 pk SIREG_WRITE(ncr_sc, SIREG_CSR, csr);
697 1.1 pk csr |= SI_CSR_FIFO_RES;
698 1.1 pk SIREG_WRITE(ncr_sc, SIREG_CSR, csr);
699 1.1 pk
700 1.1 pk /*
701 1.1 pk * Get the DVMA mapping for this segment.
702 1.1 pk */
703 1.1 pk dva = (u_long)(dh->dh_dvma);
704 1.1 pk if (dva & 1)
705 1.5 pk panic("si_dma_setup: bad dmaaddr=0x%lx", dva);
706 1.1 pk xlen = ncr_sc->sc_datalen;
707 1.1 pk xlen &= ~1;
708 1.1 pk sc->sc_xlen = xlen; /* XXX: or less... */
709 1.1 pk
710 1.1 pk #ifdef DEBUG
711 1.1 pk if (si_debug & 2) {
712 1.1 pk printf("si_dma_start: dh=%p, dmaaddr=0x%lx, xlen=%d\n",
713 1.1 pk dh, dva, xlen);
714 1.1 pk }
715 1.1 pk #endif
716 1.1 pk /* Set direction (send/recv) */
717 1.1 pk if (dh->dh_flags & SIDH_OUT) {
718 1.1 pk csr |= SI_CSR_SEND;
719 1.1 pk } else {
720 1.1 pk csr &= ~SI_CSR_SEND;
721 1.1 pk }
722 1.1 pk
723 1.5 pk /* Set byte-packing control */
724 1.1 pk if (dva & 2) {
725 1.1 pk csr |= SI_CSR_BPCON;
726 1.1 pk } else {
727 1.1 pk csr &= ~SI_CSR_BPCON;
728 1.1 pk }
729 1.5 pk
730 1.1 pk SIREG_WRITE(ncr_sc, SIREG_CSR, csr);
731 1.1 pk
732 1.5 pk /* Load start address */
733 1.1 pk SIREG_WRITE(ncr_sc, SIREG_DMA_ADDRH, (u_int16_t)(dva >> 16));
734 1.1 pk SIREG_WRITE(ncr_sc, SIREG_DMA_ADDRL, (u_int16_t)(dva & 0xFFFF));
735 1.5 pk
736 1.5 pk /* Clear DMA counters; these will be set in si_dma_start() */
737 1.5 pk SIREG_WRITE(ncr_sc, SIREG_DMA_CNTH, 0);
738 1.5 pk SIREG_WRITE(ncr_sc, SIREG_DMA_CNTL, 0);
739 1.5 pk
740 1.5 pk /* Clear FIFO counter. (also hits dma_count) */
741 1.5 pk SIREG_WRITE(ncr_sc, SIREG_FIFO_CNTH, 0);
742 1.5 pk SIREG_WRITE(ncr_sc, SIREG_FIFO_CNT, 0);
743 1.5 pk }
744 1.5 pk
745 1.5 pk
746 1.5 pk void
747 1.5 pk si_dma_start(ncr_sc)
748 1.5 pk struct ncr5380_softc *ncr_sc;
749 1.5 pk {
750 1.5 pk struct si_softc *sc = (struct si_softc *)ncr_sc;
751 1.5 pk struct sci_req *sr = ncr_sc->sc_current;
752 1.5 pk struct si_dma_handle *dh = sr->sr_dma_hand;
753 1.5 pk int xlen;
754 1.5 pk u_int mode;
755 1.5 pk u_int16_t csr;
756 1.5 pk
757 1.5 pk xlen = sc->sc_xlen;
758 1.5 pk
759 1.5 pk /* Load transfer length */
760 1.1 pk SIREG_WRITE(ncr_sc, SIREG_DMA_CNTH, (u_int16_t)(xlen >> 16));
761 1.1 pk SIREG_WRITE(ncr_sc, SIREG_DMA_CNTL, (u_int16_t)(xlen & 0xFFFF));
762 1.1 pk SIREG_WRITE(ncr_sc, SIREG_FIFO_CNTH, (u_int16_t)(xlen >> 16));
763 1.1 pk SIREG_WRITE(ncr_sc, SIREG_FIFO_CNT, (u_int16_t)(xlen & 0xFFFF));
764 1.1 pk
765 1.1 pk /*
766 1.1 pk * Acknowledge the phase change. (After DMA setup!)
767 1.1 pk * Put the SBIC into DMA mode, and start the transfer.
768 1.1 pk */
769 1.1 pk if (dh->dh_flags & SIDH_OUT) {
770 1.1 pk NCR5380_WRITE(ncr_sc, sci_tcmd, PHASE_DATA_OUT);
771 1.1 pk SCI_CLR_INTR(ncr_sc);
772 1.1 pk NCR5380_WRITE(ncr_sc, sci_icmd, SCI_ICMD_DATA);
773 1.1 pk
774 1.1 pk mode = NCR5380_READ(ncr_sc, sci_mode);
775 1.1 pk mode |= (SCI_MODE_DMA | SCI_MODE_DMA_IE);
776 1.1 pk NCR5380_WRITE(ncr_sc, sci_mode, mode);
777 1.1 pk
778 1.1 pk NCR5380_WRITE(ncr_sc, sci_dma_send, 0); /* start it */
779 1.1 pk } else {
780 1.1 pk NCR5380_WRITE(ncr_sc, sci_tcmd, PHASE_DATA_IN);
781 1.1 pk SCI_CLR_INTR(ncr_sc);
782 1.1 pk NCR5380_WRITE(ncr_sc, sci_icmd, 0);
783 1.1 pk
784 1.1 pk mode = NCR5380_READ(ncr_sc, sci_mode);
785 1.1 pk mode |= (SCI_MODE_DMA | SCI_MODE_DMA_IE);
786 1.1 pk NCR5380_WRITE(ncr_sc, sci_mode, mode);
787 1.1 pk
788 1.1 pk NCR5380_WRITE(ncr_sc, sci_irecv, 0); /* start it */
789 1.1 pk }
790 1.1 pk
791 1.5 pk ncr_sc->sc_state |= NCR_DOINGDMA;
792 1.5 pk
793 1.1 pk /* Enable DMA engine */
794 1.5 pk csr = SIREG_READ(ncr_sc, SIREG_CSR);
795 1.1 pk csr |= SI_CSR_DMA_EN;
796 1.1 pk SIREG_WRITE(ncr_sc, SIREG_CSR, csr);
797 1.1 pk
798 1.1 pk #ifdef DEBUG
799 1.1 pk if (si_debug & 2) {
800 1.1 pk printf("si_dma_start: started, flags=0x%x\n",
801 1.1 pk ncr_sc->sc_state);
802 1.1 pk }
803 1.1 pk #endif
804 1.1 pk }
805 1.1 pk
806 1.1 pk
807 1.1 pk void
808 1.1 pk si_dma_eop(ncr_sc)
809 1.1 pk struct ncr5380_softc *ncr_sc;
810 1.1 pk {
811 1.1 pk
812 1.1 pk /* Not needed - DMA was stopped prior to examining sci_csr */
813 1.1 pk }
814 1.1 pk
815 1.1 pk
816 1.1 pk void
817 1.1 pk si_dma_stop(ncr_sc)
818 1.1 pk struct ncr5380_softc *ncr_sc;
819 1.1 pk {
820 1.1 pk struct si_softc *sc = (struct si_softc *)ncr_sc;
821 1.1 pk struct sci_req *sr = ncr_sc->sc_current;
822 1.1 pk struct si_dma_handle *dh = sr->sr_dma_hand;
823 1.1 pk int resid, ntrans;
824 1.1 pk u_int16_t csr;
825 1.1 pk u_int mode;
826 1.1 pk
827 1.1 pk if ((ncr_sc->sc_state & NCR_DOINGDMA) == 0) {
828 1.1 pk #ifdef DEBUG
829 1.1 pk printf("si_dma_stop: dma not running\n");
830 1.1 pk #endif
831 1.1 pk return;
832 1.1 pk }
833 1.1 pk
834 1.1 pk ncr_sc->sc_state &= ~NCR_DOINGDMA;
835 1.1 pk
836 1.1 pk csr = SIREG_READ(ncr_sc, SIREG_CSR);
837 1.1 pk
838 1.1 pk /* First, halt the DMA engine. */
839 1.1 pk csr &= ~SI_CSR_DMA_EN;
840 1.1 pk SIREG_WRITE(ncr_sc, SIREG_CSR, csr);
841 1.1 pk
842 1.1 pk if (csr & (SI_CSR_DMA_CONFLICT | SI_CSR_DMA_BUS_ERR)) {
843 1.1 pk printf("si: DMA error, csr=0x%x, reset\n", csr);
844 1.1 pk sr->sr_xs->error = XS_DRIVER_STUFFUP;
845 1.1 pk ncr_sc->sc_state |= NCR_ABORTING;
846 1.1 pk si_reset_adapter(ncr_sc);
847 1.1 pk }
848 1.1 pk
849 1.1 pk /* Note that timeout may have set the error flag. */
850 1.1 pk if (ncr_sc->sc_state & NCR_ABORTING)
851 1.1 pk goto out;
852 1.1 pk
853 1.1 pk /*
854 1.1 pk * Now try to figure out how much actually transferred
855 1.1 pk *
856 1.1 pk * The fifo_count does not reflect how many bytes were
857 1.1 pk * actually transferred for VME.
858 1.1 pk *
859 1.1 pk * SCSI-3 VME interface is a little funny on writes:
860 1.1 pk * if we have a disconnect, the dma has overshot by
861 1.1 pk * one byte and the resid needs to be incremented.
862 1.1 pk * Only happens for partial transfers.
863 1.1 pk * (Thanks to Matt Jacob)
864 1.1 pk */
865 1.1 pk
866 1.1 pk resid = SIREG_READ(ncr_sc, SIREG_FIFO_CNTH) << 16;
867 1.1 pk resid |= SIREG_READ(ncr_sc, SIREG_FIFO_CNT) & 0xFFFF;
868 1.1 pk if (dh->dh_flags & SIDH_OUT)
869 1.1 pk if ((resid > 0) && (resid < sc->sc_xlen))
870 1.1 pk resid++;
871 1.1 pk ntrans = sc->sc_xlen - resid;
872 1.1 pk
873 1.1 pk #ifdef DEBUG
874 1.1 pk if (si_debug & 2) {
875 1.1 pk printf("si_dma_stop: resid=0x%x ntrans=0x%x\n",
876 1.1 pk resid, ntrans);
877 1.1 pk }
878 1.1 pk #endif
879 1.1 pk
880 1.1 pk if (ntrans > ncr_sc->sc_datalen)
881 1.1 pk panic("si_dma_stop: excess transfer");
882 1.1 pk
883 1.1 pk /* Adjust data pointer */
884 1.1 pk ncr_sc->sc_dataptr += ntrans;
885 1.1 pk ncr_sc->sc_datalen -= ntrans;
886 1.1 pk
887 1.1 pk #ifdef DEBUG
888 1.1 pk if (si_debug & 2) {
889 1.1 pk printf("si_dma_stop: ntrans=0x%x\n", ntrans);
890 1.1 pk }
891 1.1 pk #endif
892 1.1 pk
893 1.1 pk /*
894 1.1 pk * After a read, we may need to clean-up
895 1.1 pk * "Left-over bytes" (yuck!)
896 1.1 pk */
897 1.1 pk if (((dh->dh_flags & SIDH_OUT) == 0) &&
898 1.1 pk ((csr & SI_CSR_LOB) != 0))
899 1.1 pk {
900 1.1 pk char *cp = ncr_sc->sc_dataptr;
901 1.1 pk u_int16_t bprh, bprl;
902 1.1 pk
903 1.1 pk bprh = SIREG_READ(ncr_sc, SIREG_BPRH);
904 1.1 pk bprl = SIREG_READ(ncr_sc, SIREG_BPRL);
905 1.1 pk
906 1.1 pk #ifdef DEBUG
907 1.1 pk printf("si: got left-over bytes: bprh=%x, bprl=%x, csr=%x\n",
908 1.1 pk bprh, bprl, csr);
909 1.1 pk #endif
910 1.1 pk
911 1.1 pk if (csr & SI_CSR_BPCON) {
912 1.1 pk /* have SI_CSR_BPCON */
913 1.1 pk cp[-1] = (bprl & 0xff00) >> 8;
914 1.1 pk } else {
915 1.1 pk switch (csr & SI_CSR_LOB) {
916 1.1 pk case SI_CSR_LOB_THREE:
917 1.1 pk cp[-3] = (bprh & 0xff00) >> 8;
918 1.1 pk cp[-2] = (bprh & 0x00ff);
919 1.1 pk cp[-1] = (bprl & 0xff00) >> 8;
920 1.1 pk break;
921 1.1 pk case SI_CSR_LOB_TWO:
922 1.1 pk cp[-2] = (bprh & 0xff00) >> 8;
923 1.1 pk cp[-1] = (bprh & 0x00ff);
924 1.1 pk break;
925 1.1 pk case SI_CSR_LOB_ONE:
926 1.1 pk cp[-1] = (bprh & 0xff00) >> 8;
927 1.1 pk break;
928 1.1 pk }
929 1.1 pk }
930 1.1 pk }
931 1.1 pk
932 1.1 pk out:
933 1.1 pk SIREG_WRITE(ncr_sc, SIREG_DMA_ADDRH, 0);
934 1.1 pk SIREG_WRITE(ncr_sc, SIREG_DMA_ADDRL, 0);
935 1.1 pk
936 1.1 pk SIREG_WRITE(ncr_sc, SIREG_DMA_CNTH, 0);
937 1.1 pk SIREG_WRITE(ncr_sc, SIREG_DMA_CNTL, 0);
938 1.1 pk
939 1.1 pk SIREG_WRITE(ncr_sc, SIREG_FIFO_CNTH, 0);
940 1.1 pk SIREG_WRITE(ncr_sc, SIREG_FIFO_CNT, 0);
941 1.1 pk
942 1.1 pk mode = NCR5380_READ(ncr_sc, sci_mode);
943 1.1 pk /* Put SBIC back in PIO mode. */
944 1.1 pk mode &= ~(SCI_MODE_DMA | SCI_MODE_DMA_IE);
945 1.1 pk NCR5380_WRITE(ncr_sc, sci_mode, mode);
946 1.1 pk NCR5380_WRITE(ncr_sc, sci_icmd, 0);
947 1.1 pk }
948