twe.c revision 1.3 1 1.3 ad /* $NetBSD: twe.c,v 1.3 2000/11/08 19:23:50 ad Exp $ */
2 1.1 ad
3 1.1 ad /*-
4 1.1 ad * Copyright (c) 2000 The NetBSD Foundation, Inc.
5 1.1 ad * All rights reserved.
6 1.1 ad *
7 1.1 ad * This code is derived from software contributed to The NetBSD Foundation
8 1.1 ad * by Andrew Doran.
9 1.1 ad *
10 1.1 ad * Redistribution and use in source and binary forms, with or without
11 1.1 ad * modification, are permitted provided that the following conditions
12 1.1 ad * are met:
13 1.1 ad * 1. Redistributions of source code must retain the above copyright
14 1.1 ad * notice, this list of conditions and the following disclaimer.
15 1.1 ad * 2. Redistributions in binary form must reproduce the above copyright
16 1.1 ad * notice, this list of conditions and the following disclaimer in the
17 1.1 ad * documentation and/or other materials provided with the distribution.
18 1.1 ad * 3. All advertising materials mentioning features or use of this software
19 1.1 ad * must display the following acknowledgement:
20 1.1 ad * This product includes software developed by the NetBSD
21 1.1 ad * Foundation, Inc. and its contributors.
22 1.1 ad * 4. Neither the name of The NetBSD Foundation nor the names of its
23 1.1 ad * contributors may be used to endorse or promote products derived
24 1.1 ad * from this software without specific prior written permission.
25 1.1 ad *
26 1.1 ad * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
27 1.1 ad * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
28 1.1 ad * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
29 1.1 ad * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
30 1.1 ad * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
31 1.1 ad * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
32 1.1 ad * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
33 1.1 ad * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
34 1.1 ad * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
35 1.1 ad * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
36 1.1 ad * POSSIBILITY OF SUCH DAMAGE.
37 1.1 ad */
38 1.1 ad
39 1.1 ad /*-
40 1.1 ad * Copyright (c) 2000 Michael Smith
41 1.1 ad * Copyright (c) 2000 BSDi
42 1.1 ad * All rights reserved.
43 1.1 ad *
44 1.1 ad * Redistribution and use in source and binary forms, with or without
45 1.1 ad * modification, are permitted provided that the following conditions
46 1.1 ad * are met:
47 1.1 ad * 1. Redistributions of source code must retain the above copyright
48 1.1 ad * notice, this list of conditions and the following disclaimer.
49 1.1 ad * 2. Redistributions in binary form must reproduce the above copyright
50 1.1 ad * notice, this list of conditions and the following disclaimer in the
51 1.1 ad * documentation and/or other materials provided with the distribution.
52 1.1 ad *
53 1.1 ad * THIS SOFTWARE IS PROVIDED BY THE AUTHOR AND CONTRIBUTORS ``AS IS'' AND
54 1.1 ad * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
55 1.1 ad * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
56 1.1 ad * ARE DISCLAIMED. IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE
57 1.1 ad * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
58 1.1 ad * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
59 1.1 ad * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
60 1.1 ad * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
61 1.1 ad * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
62 1.1 ad * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
63 1.1 ad * SUCH DAMAGE.
64 1.1 ad *
65 1.1 ad * from FreeBSD: twe.c,v 1.1 2000/05/24 23:35:23 msmith Exp
66 1.1 ad */
67 1.1 ad
68 1.1 ad /*
69 1.1 ad * Driver for the 3ware Escalade family of RAID controllers.
70 1.1 ad */
71 1.1 ad
72 1.1 ad #include "opt_twe.h"
73 1.1 ad
74 1.1 ad #include <sys/param.h>
75 1.1 ad #include <sys/systm.h>
76 1.1 ad #include <sys/kernel.h>
77 1.1 ad #include <sys/device.h>
78 1.1 ad #include <sys/queue.h>
79 1.1 ad #include <sys/proc.h>
80 1.1 ad #include <sys/buf.h>
81 1.1 ad #include <sys/endian.h>
82 1.1 ad #include <sys/malloc.h>
83 1.1 ad #include <sys/disk.h>
84 1.1 ad
85 1.1 ad #include <uvm/uvm_extern.h>
86 1.1 ad
87 1.1 ad #include <machine/bswap.h>
88 1.1 ad #include <machine/bus.h>
89 1.1 ad
90 1.1 ad #include <dev/pci/pcireg.h>
91 1.1 ad #include <dev/pci/pcivar.h>
92 1.1 ad #include <dev/pci/pcidevs.h>
93 1.1 ad #include <dev/pci/twereg.h>
94 1.1 ad #include <dev/pci/twevar.h>
95 1.1 ad
96 1.1 ad #define TWE_INL(sc, port) \
97 1.1 ad bus_space_read_4((sc)->sc_iot, (sc)->sc_ioh, port)
98 1.1 ad #define TWE_OUTL(sc, port, val) \
99 1.1 ad bus_space_write_4((sc)->sc_iot, (sc)->sc_ioh, port, val)
100 1.1 ad
101 1.3 ad #if TWE_MAX_QUEUECNT == TWE_MAX_CMDS
102 1.3 ad #define TWE_REAL_MAX_QUEUECNT TWE_MAX_CMDS
103 1.3 ad #else
104 1.3 ad #define TWE_REAL_MAX_QUEUECNT TWE_MAX_CMDS + 1
105 1.3 ad #endif
106 1.3 ad
107 1.1 ad #define PCI_CBIO 0x10
108 1.1 ad
109 1.1 ad static void twe_aen_handler(struct twe_ccb *, int);
110 1.1 ad static void twe_attach(struct device *, struct device *, void *);
111 1.1 ad static int twe_init_connection(struct twe_softc *);
112 1.1 ad static int twe_intr(void *);
113 1.1 ad static int twe_match(struct device *, struct cfdata *, void *);
114 1.1 ad static void *twe_param_get(struct twe_softc *, int, int, size_t,
115 1.1 ad void (*)(struct twe_ccb *, int));
116 1.1 ad static void twe_poll(struct twe_softc *);
117 1.1 ad static int twe_print(void *, const char *);
118 1.1 ad static int twe_reset(struct twe_softc *);
119 1.1 ad static int twe_submatch(struct device *, struct cfdata *, void *);
120 1.1 ad static int twe_status_check(struct twe_softc *, u_int);
121 1.1 ad static int twe_status_wait(struct twe_softc *, u_int, int);
122 1.1 ad
123 1.1 ad struct cfattach twe_ca = {
124 1.1 ad sizeof(struct twe_softc), twe_match, twe_attach
125 1.1 ad };
126 1.1 ad
127 1.1 ad struct {
128 1.3 ad const u_int aen; /* High byte non-zero if w/unit */
129 1.1 ad const char *desc;
130 1.1 ad } static const twe_aen_names[] = {
131 1.1 ad { 0x0000, "queue empty" },
132 1.1 ad { 0x0001, "soft reset" },
133 1.3 ad { 0x0102, "degraded mirror" },
134 1.1 ad { 0x0003, "controller error" },
135 1.3 ad { 0x0104, "rebuild fail" },
136 1.3 ad { 0x0105, "rebuild done" },
137 1.3 ad { 0x0106, "incompatible unit" },
138 1.3 ad { 0x0107, "init done" },
139 1.3 ad { 0x0108, "unclean shutdown" },
140 1.3 ad { 0x0109, "aport timeout" },
141 1.3 ad { 0x010a, "drive error" },
142 1.3 ad { 0x010b, "rebuild started" },
143 1.3 ad { 0x0015, "table undefined" },
144 1.1 ad { 0x00ff, "aen queue full" },
145 1.1 ad };
146 1.1 ad
147 1.1 ad /*
148 1.1 ad * Match a supported board.
149 1.1 ad */
150 1.1 ad static int
151 1.1 ad twe_match(struct device *parent, struct cfdata *cfdata, void *aux)
152 1.1 ad {
153 1.1 ad struct pci_attach_args *pa;
154 1.1 ad
155 1.1 ad pa = aux;
156 1.1 ad
157 1.1 ad return (PCI_VENDOR(pa->pa_id) == PCI_VENDOR_3WARE &&
158 1.1 ad PCI_PRODUCT(pa->pa_id) == PCI_PRODUCT_3WARE_ESCALADE);
159 1.1 ad }
160 1.1 ad
161 1.1 ad /*
162 1.1 ad * Attach a supported board.
163 1.1 ad *
164 1.1 ad * XXX This doesn't fail gracefully.
165 1.1 ad */
166 1.1 ad static void
167 1.1 ad twe_attach(struct device *parent, struct device *self, void *aux)
168 1.1 ad {
169 1.1 ad struct pci_attach_args *pa;
170 1.1 ad struct twe_softc *sc;
171 1.1 ad pci_chipset_tag_t pc;
172 1.1 ad pci_intr_handle_t ih;
173 1.1 ad pcireg_t csr;
174 1.1 ad const char *intrstr;
175 1.1 ad int size, i, rv, rseg;
176 1.1 ad struct twe_param *dtp, *ctp;
177 1.1 ad bus_dma_segment_t seg;
178 1.1 ad struct twe_cmd *tc;
179 1.1 ad struct twe_attach_args twea;
180 1.1 ad struct twe_ccb *ccb;
181 1.1 ad
182 1.1 ad sc = (struct twe_softc *)self;
183 1.1 ad pa = aux;
184 1.1 ad pc = pa->pa_pc;
185 1.1 ad sc->sc_dmat = pa->pa_dmat;
186 1.1 ad SIMPLEQ_INIT(&sc->sc_ccb_queue);
187 1.1 ad SLIST_INIT(&sc->sc_ccb_freelist);
188 1.1 ad
189 1.3 ad printf(": 3ware Escalade\n");
190 1.1 ad
191 1.1 ad if (pci_mapreg_map(pa, PCI_CBIO, PCI_MAPREG_TYPE_IO, 0,
192 1.1 ad &sc->sc_iot, &sc->sc_ioh, NULL, NULL)) {
193 1.1 ad printf("%s: can't map i/o space\n", sc->sc_dv.dv_xname);
194 1.1 ad return;
195 1.1 ad }
196 1.1 ad
197 1.1 ad /* Enable the device. */
198 1.1 ad csr = pci_conf_read(pa->pa_pc, pa->pa_tag, PCI_COMMAND_STATUS_REG);
199 1.1 ad pci_conf_write(pa->pa_pc, pa->pa_tag, PCI_COMMAND_STATUS_REG,
200 1.1 ad csr | PCI_COMMAND_MASTER_ENABLE);
201 1.1 ad
202 1.1 ad /* Map and establish the interrupt. */
203 1.1 ad if (pci_intr_map(pc, pa->pa_intrtag, pa->pa_intrpin,
204 1.1 ad pa->pa_intrline, &ih)) {
205 1.1 ad printf("%s: can't map interrupt\n", sc->sc_dv.dv_xname);
206 1.1 ad return;
207 1.1 ad }
208 1.1 ad intrstr = pci_intr_string(pc, ih);
209 1.1 ad sc->sc_ih = pci_intr_establish(pc, ih, IPL_BIO, twe_intr, sc);
210 1.1 ad if (sc->sc_ih == NULL) {
211 1.1 ad printf("%s: can't establish interrupt", sc->sc_dv.dv_xname);
212 1.1 ad if (intrstr != NULL)
213 1.1 ad printf(" at %s", intrstr);
214 1.1 ad printf("\n");
215 1.1 ad return;
216 1.1 ad }
217 1.1 ad if (intrstr != NULL)
218 1.1 ad printf("%s: interrupting at %s\n", sc->sc_dv.dv_xname, intrstr);
219 1.1 ad
220 1.1 ad /*
221 1.1 ad * Allocate and initialise the command blocks and CCBs.
222 1.1 ad */
223 1.3 ad size = sizeof(struct twe_cmd) * TWE_REAL_MAX_QUEUECNT;
224 1.1 ad
225 1.1 ad if ((rv = bus_dmamem_alloc(sc->sc_dmat, size, NBPG, 0, &seg, 1,
226 1.1 ad &rseg, BUS_DMA_NOWAIT)) != 0) {
227 1.1 ad printf("%s: unable to allocate commands, rv = %d\n",
228 1.1 ad sc->sc_dv.dv_xname, rv);
229 1.1 ad return;
230 1.1 ad }
231 1.1 ad
232 1.1 ad if ((rv = bus_dmamem_map(sc->sc_dmat, &seg, rseg, size,
233 1.1 ad (caddr_t *)&sc->sc_cmds,
234 1.1 ad BUS_DMA_NOWAIT | BUS_DMA_COHERENT)) != 0) {
235 1.1 ad printf("%s: unable to map commands, rv = %d\n",
236 1.1 ad sc->sc_dv.dv_xname, rv);
237 1.1 ad return;
238 1.1 ad }
239 1.1 ad
240 1.1 ad if ((rv = bus_dmamap_create(sc->sc_dmat, size, size, 1, 0,
241 1.1 ad BUS_DMA_NOWAIT, &sc->sc_dmamap)) != 0) {
242 1.1 ad printf("%s: unable to create command DMA map, rv = %d\n",
243 1.1 ad sc->sc_dv.dv_xname, rv);
244 1.1 ad return;
245 1.1 ad }
246 1.1 ad
247 1.1 ad if ((rv = bus_dmamap_load(sc->sc_dmat, sc->sc_dmamap, sc->sc_cmds,
248 1.1 ad size, NULL, BUS_DMA_NOWAIT)) != 0) {
249 1.1 ad printf("%s: unable to load command DMA map, rv = %d\n",
250 1.1 ad sc->sc_dv.dv_xname, rv);
251 1.1 ad return;
252 1.1 ad }
253 1.1 ad
254 1.1 ad sc->sc_cmds_paddr = sc->sc_dmamap->dm_segs[0].ds_addr;
255 1.1 ad memset(sc->sc_cmds, 0, size);
256 1.1 ad
257 1.3 ad ccb = malloc(sizeof(*ccb) * TWE_REAL_MAX_QUEUECNT, M_DEVBUF, M_WAITOK);
258 1.1 ad if (ccb == NULL) {
259 1.1 ad printf("%s: unable to allocate CCBs\n", sc->sc_dv.dv_xname);
260 1.1 ad return;
261 1.1 ad }
262 1.1 ad
263 1.1 ad sc->sc_ccbs = ccb;
264 1.1 ad tc = (struct twe_cmd *)sc->sc_cmds;
265 1.1 ad
266 1.3 ad for (i = 0; i < TWE_REAL_MAX_QUEUECNT; i++, tc++, ccb++) {
267 1.1 ad ccb->ccb_cmd = tc;
268 1.1 ad ccb->ccb_cmdid = i;
269 1.1 ad ccb->ccb_flags = 0;
270 1.1 ad rv = bus_dmamap_create(sc->sc_dmat, TWE_MAX_XFER,
271 1.1 ad TWE_MAX_SEGS, NBPG, 0, BUS_DMA_NOWAIT | BUS_DMA_ALLOCNOW,
272 1.1 ad &ccb->ccb_dmamap_xfer);
273 1.1 ad if (rv != 0)
274 1.1 ad break;
275 1.3 ad /* Save one CCB for parameter retrieval. */
276 1.3 ad if (i != 0)
277 1.3 ad SLIST_INSERT_HEAD(&sc->sc_ccb_freelist, ccb,
278 1.3 ad ccb_chain.slist);
279 1.3 ad }
280 1.3 ad if ((sc->sc_nccbs = i) <= TWE_MIN_QUEUECNT) {
281 1.3 ad printf("%s: too few CCBs available\n", sc->sc_dv.dv_xname);
282 1.3 ad return;
283 1.1 ad }
284 1.3 ad if (sc->sc_nccbs != TWE_REAL_MAX_QUEUECNT)
285 1.3 ad printf("%s: %d/%d CCBs usable\n", sc->sc_dv.dv_xname,
286 1.3 ad sc->sc_nccbs, TWE_REAL_MAX_QUEUECNT);
287 1.1 ad
288 1.1 ad /* Wait for the controller to become ready. */
289 1.1 ad if (twe_status_wait(sc, TWE_STS_MICROCONTROLLER_READY, 6)) {
290 1.1 ad printf("%s: microcontroller not ready\n", sc->sc_dv.dv_xname);
291 1.1 ad return;
292 1.1 ad }
293 1.1 ad
294 1.1 ad TWE_OUTL(sc, TWE_REG_CTL, TWE_CTL_DISABLE_INTRS);
295 1.1 ad
296 1.1 ad /* Reset the controller. */
297 1.1 ad if (twe_reset(sc)) {
298 1.1 ad printf("%s: reset failed\n", sc->sc_dv.dv_xname);
299 1.1 ad return;
300 1.1 ad }
301 1.1 ad
302 1.3 ad /* Find attached units. */
303 1.3 ad dtp = twe_param_get(sc, TWE_PARAM_UNITSUMMARY,
304 1.3 ad TWE_PARAM_UNITSUMMARY_Status, TWE_MAX_UNITS, NULL);
305 1.3 ad if (dtp == NULL) {
306 1.1 ad printf("%s: can't detect attached units\n",
307 1.1 ad sc->sc_dv.dv_xname);
308 1.1 ad return;
309 1.1 ad }
310 1.1 ad
311 1.1 ad /* For each detected unit, collect size and store in an array. */
312 1.3 ad for (i = 0, sc->sc_nunits = 0; i < TWE_MAX_UNITS; i++) {
313 1.1 ad /* Unit present? */
314 1.3 ad if ((dtp->tp_data[i] & TWE_PARAM_UNITSTATUS_Online) == 0) {
315 1.1 ad sc->sc_dsize[i] = 0;
316 1.1 ad continue;
317 1.1 ad }
318 1.1 ad
319 1.3 ad ctp = twe_param_get(sc, TWE_PARAM_UNITINFO + i,
320 1.3 ad TWE_PARAM_UNITINFO_Capacity, 4, NULL);
321 1.1 ad if (ctp == NULL) {
322 1.1 ad printf("%s: error fetching capacity for unit %d\n",
323 1.1 ad sc->sc_dv.dv_xname, i);
324 1.1 ad continue;
325 1.1 ad }
326 1.1 ad
327 1.1 ad sc->sc_dsize[i] = le32toh(*(u_int32_t *)ctp->tp_data);
328 1.1 ad free(ctp, M_DEVBUF);
329 1.3 ad sc->sc_nunits++;
330 1.1 ad }
331 1.1 ad free(dtp, M_DEVBUF);
332 1.1 ad
333 1.1 ad /* Initialise connection with controller and enable interrupts. */
334 1.1 ad twe_init_connection(sc);
335 1.1 ad TWE_OUTL(sc, TWE_REG_CTL, TWE_CTL_CLEAR_ATTN_INTR |
336 1.1 ad TWE_CTL_UNMASK_RESP_INTR |
337 1.1 ad TWE_CTL_ENABLE_INTRS);
338 1.1 ad
339 1.1 ad /* Attach sub-devices. */
340 1.1 ad for (i = 0; i < TWE_MAX_UNITS; i++) {
341 1.1 ad if (sc->sc_dsize[i] == 0)
342 1.1 ad continue;
343 1.1 ad twea.twea_unit = i;
344 1.1 ad config_found_sm(&sc->sc_dv, &twea, twe_print, twe_submatch);
345 1.1 ad }
346 1.1 ad }
347 1.1 ad
348 1.1 ad /*
349 1.1 ad * Reset the controller. Currently only useful at attach time; must be
350 1.1 ad * called with interrupts blocked.
351 1.1 ad */
352 1.1 ad static int
353 1.1 ad twe_reset(struct twe_softc *sc)
354 1.1 ad {
355 1.1 ad struct twe_param *tp;
356 1.1 ad u_int aen, status;
357 1.1 ad volatile u_int32_t junk;
358 1.1 ad int got;
359 1.1 ad
360 1.1 ad /* Issue a soft reset. */
361 1.1 ad TWE_OUTL(sc, TWE_REG_CTL, TWE_CTL_ISSUE_SOFT_RESET |
362 1.1 ad TWE_CTL_CLEAR_HOST_INTR |
363 1.1 ad TWE_CTL_CLEAR_ATTN_INTR |
364 1.1 ad TWE_CTL_MASK_CMD_INTR |
365 1.1 ad TWE_CTL_MASK_RESP_INTR |
366 1.1 ad TWE_CTL_CLEAR_ERROR_STS |
367 1.1 ad TWE_CTL_DISABLE_INTRS);
368 1.1 ad
369 1.1 ad if (twe_status_wait(sc, TWE_STS_ATTN_INTR, 15)) {
370 1.1 ad printf("%s: no attention interrupt\n",
371 1.1 ad sc->sc_dv.dv_xname);
372 1.1 ad return (-1);
373 1.1 ad }
374 1.1 ad
375 1.1 ad /* Pull AENs out of the controller; look for a soft reset AEN. */
376 1.1 ad for (got = 0;;) {
377 1.3 ad tp = twe_param_get(sc, TWE_PARAM_AEN, TWE_PARAM_AEN_UnitCode,
378 1.3 ad 2, NULL);
379 1.3 ad if (tp == NULL)
380 1.1 ad return (-1);
381 1.3 ad aen = TWE_AEN_CODE(le16toh(*(u_int16_t *)tp->tp_data));
382 1.1 ad free(tp, M_DEVBUF);
383 1.1 ad if (aen == TWE_AEN_QUEUE_EMPTY)
384 1.1 ad break;
385 1.1 ad if (aen == TWE_AEN_SOFT_RESET)
386 1.1 ad got = 1;
387 1.1 ad }
388 1.1 ad if (!got) {
389 1.1 ad printf("%s: reset not reported\n", sc->sc_dv.dv_xname);
390 1.1 ad return (-1);
391 1.1 ad }
392 1.1 ad
393 1.1 ad /* Check controller status. */
394 1.1 ad status = TWE_INL(sc, TWE_REG_STS);
395 1.1 ad if (twe_status_check(sc, status)) {
396 1.1 ad printf("%s: controller errors detected\n",
397 1.1 ad sc->sc_dv.dv_xname);
398 1.1 ad return (-1);
399 1.1 ad }
400 1.1 ad
401 1.1 ad /* Drain the response queue. */
402 1.1 ad for (;;) {
403 1.1 ad status = TWE_INL(sc, TWE_REG_STS);
404 1.1 ad if (twe_status_check(sc, status) != 0) {
405 1.1 ad printf("%s: can't drain response queue\n",
406 1.1 ad sc->sc_dv.dv_xname);
407 1.1 ad return (-1);
408 1.1 ad }
409 1.1 ad if ((status & TWE_STS_RESP_QUEUE_EMPTY) != 0)
410 1.1 ad break;
411 1.1 ad junk = TWE_INL(sc, TWE_REG_RESP_QUEUE);
412 1.1 ad }
413 1.1 ad
414 1.1 ad return (0);
415 1.1 ad }
416 1.1 ad
417 1.1 ad /*
418 1.1 ad * Print autoconfiguration message for a sub-device.
419 1.1 ad */
420 1.1 ad static int
421 1.1 ad twe_print(void *aux, const char *pnp)
422 1.1 ad {
423 1.1 ad struct twe_attach_args *twea;
424 1.1 ad
425 1.1 ad twea = aux;
426 1.1 ad
427 1.1 ad if (pnp != NULL)
428 1.1 ad printf("block device at %s", pnp);
429 1.1 ad printf(" unit %d", twea->twea_unit);
430 1.1 ad return (UNCONF);
431 1.1 ad }
432 1.1 ad
433 1.1 ad /*
434 1.1 ad * Match a sub-device.
435 1.1 ad */
436 1.1 ad static int
437 1.1 ad twe_submatch(struct device *parent, struct cfdata *cf, void *aux)
438 1.1 ad {
439 1.1 ad struct twe_attach_args *twea;
440 1.1 ad
441 1.1 ad twea = aux;
442 1.1 ad
443 1.1 ad if (cf->tweacf_unit != TWECF_UNIT_DEFAULT &&
444 1.1 ad cf->tweacf_unit != twea->twea_unit)
445 1.1 ad return (0);
446 1.1 ad
447 1.1 ad return ((*cf->cf_attach->ca_match)(parent, cf, aux));
448 1.1 ad }
449 1.1 ad
450 1.1 ad /*
451 1.1 ad * Interrupt service routine.
452 1.1 ad */
453 1.1 ad static int
454 1.1 ad twe_intr(void *arg)
455 1.1 ad {
456 1.1 ad struct twe_softc *sc;
457 1.1 ad u_int status;
458 1.1 ad int caught;
459 1.1 ad
460 1.1 ad sc = arg;
461 1.1 ad caught = 0;
462 1.1 ad status = TWE_INL(sc, TWE_REG_STS);
463 1.1 ad twe_status_check(sc, status);
464 1.1 ad
465 1.1 ad /* Host interrupts - purpose unknown. */
466 1.1 ad if ((status & TWE_STS_HOST_INTR) != 0) {
467 1.1 ad #ifdef DIAGNOSTIC
468 1.1 ad printf("%s: host interrupt\n", sc->sc_dv.dv_xname);
469 1.1 ad #endif
470 1.1 ad TWE_OUTL(sc, TWE_REG_CTL, TWE_CTL_CLEAR_HOST_INTR);
471 1.1 ad caught = 1;
472 1.1 ad }
473 1.1 ad
474 1.1 ad /*
475 1.1 ad * Attention interrupts, signalled when a controller or child device
476 1.1 ad * state change has occured.
477 1.1 ad */
478 1.1 ad if ((status & TWE_STS_ATTN_INTR) != 0) {
479 1.3 ad twe_param_get(sc, TWE_PARAM_AEN, TWE_PARAM_AEN_UnitCode, 2,
480 1.3 ad twe_aen_handler);
481 1.1 ad TWE_OUTL(sc, TWE_REG_CTL, TWE_CTL_CLEAR_ATTN_INTR);
482 1.1 ad caught = 1;
483 1.1 ad }
484 1.1 ad
485 1.1 ad /*
486 1.1 ad * Command interrupts, signalled when the controller can accept more
487 1.1 ad * commands. We don't use this; instead, we try to submit commands
488 1.1 ad * when we receive them, and when other commands have completed.
489 1.1 ad * Mask it so we don't get another one.
490 1.1 ad */
491 1.1 ad if ((status & TWE_STS_CMD_INTR) != 0) {
492 1.1 ad #ifdef DIAGNOSTIC
493 1.1 ad printf("%s: command interrupt\n", sc->sc_dv.dv_xname);
494 1.1 ad #endif
495 1.1 ad TWE_OUTL(sc, TWE_REG_CTL, TWE_CTL_MASK_CMD_INTR);
496 1.1 ad caught = 1;
497 1.1 ad }
498 1.1 ad
499 1.1 ad if ((status & TWE_STS_RESP_INTR) != 0) {
500 1.1 ad twe_poll(sc);
501 1.1 ad caught = 1;
502 1.1 ad }
503 1.1 ad
504 1.1 ad return (caught);
505 1.1 ad }
506 1.1 ad
507 1.1 ad /*
508 1.1 ad * Handle an AEN returned by the controller.
509 1.1 ad */
510 1.1 ad static void
511 1.1 ad twe_aen_handler(struct twe_ccb *ccb, int error)
512 1.1 ad {
513 1.1 ad struct twe_softc *sc;
514 1.1 ad struct twe_param *tp;
515 1.1 ad const char *str;
516 1.1 ad u_int aen;
517 1.3 ad int i, hu;
518 1.1 ad
519 1.1 ad sc = (struct twe_softc *)ccb->ccb_tx.tx_dv;
520 1.1 ad tp = ccb->ccb_tx.tx_context;
521 1.1 ad twe_ccb_unmap(sc, ccb);
522 1.1 ad
523 1.3 ad if (error) {
524 1.1 ad printf("%s: error retrieving AEN\n", sc->sc_dv.dv_xname);
525 1.3 ad aen = TWE_AEN_QUEUE_EMPTY;
526 1.3 ad } else
527 1.1 ad aen = le16toh(*(u_int16_t *)tp->tp_data);
528 1.3 ad free(tp, M_DEVBUF);
529 1.3 ad twe_ccb_free(sc, ccb);
530 1.3 ad
531 1.3 ad if (TWE_AEN_CODE(aen) != TWE_AEN_QUEUE_EMPTY) {
532 1.1 ad str = "<unknown>";
533 1.1 ad i = 0;
534 1.3 ad hu = 0;
535 1.3 ad
536 1.1 ad while (i < sizeof(twe_aen_names) / sizeof(twe_aen_names[0])) {
537 1.3 ad if (TWE_AEN_CODE(twe_aen_names[i].aen) ==
538 1.3 ad TWE_AEN_CODE(aen)) {
539 1.1 ad str = twe_aen_names[i].desc;
540 1.3 ad hu = (TWE_AEN_UNIT(twe_aen_names[i].aen) != 0);
541 1.1 ad break;
542 1.1 ad }
543 1.3 ad i++;
544 1.1 ad }
545 1.3 ad printf("%s: AEN 0x%04x (%s) received", sc->sc_dv.dv_xname,
546 1.3 ad TWE_AEN_CODE(aen), str);
547 1.3 ad if (hu != 0)
548 1.3 ad printf(" for unit %d", TWE_AEN_UNIT(aen));
549 1.3 ad printf("\n");
550 1.3 ad
551 1.3 ad /*
552 1.3 ad * Chain another retrieval in case interrupts have been
553 1.3 ad * coalesced.
554 1.3 ad */
555 1.3 ad twe_param_get(sc, TWE_PARAM_AEN, TWE_PARAM_AEN_UnitCode, 2,
556 1.3 ad twe_aen_handler);
557 1.1 ad }
558 1.1 ad }
559 1.1 ad
560 1.1 ad /*
561 1.1 ad * Execute a TWE_OP_GET_PARAM command. If a callback function is provided,
562 1.1 ad * it will be called with generated context when the command has completed.
563 1.1 ad * If no callback is provided, the command will be executed synchronously
564 1.3 ad * and a pointer to a buffer containing the data returned.
565 1.1 ad *
566 1.3 ad * The caller or callback is responsible for freeing the buffer.
567 1.1 ad */
568 1.1 ad static void *
569 1.1 ad twe_param_get(struct twe_softc *sc, int table_id, int param_id, size_t size,
570 1.1 ad void (*func)(struct twe_ccb *, int))
571 1.1 ad {
572 1.1 ad struct twe_ccb *ccb;
573 1.1 ad struct twe_cmd *tc;
574 1.1 ad struct twe_param *tp;
575 1.1 ad int rv, s;
576 1.1 ad
577 1.3 ad if (twe_ccb_alloc(sc, &ccb, TWE_CCB_PARAM | TWE_CCB_DATA_IN |
578 1.3 ad TWE_CCB_DATA_OUT) != 0)
579 1.1 ad return (NULL);
580 1.1 ad tp = malloc(TWE_SECTOR_SIZE, M_DEVBUF, M_NOWAIT);
581 1.1 ad
582 1.1 ad ccb->ccb_data = tp;
583 1.1 ad ccb->ccb_datasize = TWE_SECTOR_SIZE;
584 1.1 ad ccb->ccb_tx.tx_handler = func;
585 1.1 ad ccb->ccb_tx.tx_context = tp;
586 1.1 ad ccb->ccb_tx.tx_dv = &sc->sc_dv;
587 1.1 ad
588 1.1 ad tc = ccb->ccb_cmd;
589 1.1 ad tc->tc_size = 2;
590 1.1 ad tc->tc_opcode = TWE_OP_GET_PARAM | (tc->tc_size << 5);
591 1.1 ad tc->tc_unit = 0;
592 1.1 ad tc->tc_count = htole16(1);
593 1.1 ad
594 1.1 ad /* Fill in the outbound parameter data. */
595 1.1 ad tp->tp_table_id = htole16(table_id);
596 1.1 ad tp->tp_param_id = param_id;
597 1.1 ad tp->tp_param_size = size;
598 1.1 ad
599 1.1 ad /* Map the transfer. */
600 1.1 ad if (twe_ccb_map(sc, ccb) != 0) {
601 1.2 ad twe_ccb_free(sc, ccb);
602 1.1 ad free(tp, M_DEVBUF);
603 1.1 ad return (NULL);
604 1.1 ad }
605 1.1 ad
606 1.1 ad /* Submit the command and either wait or let the callback handle it. */
607 1.1 ad if (func == NULL) {
608 1.1 ad s = splbio();
609 1.1 ad if ((rv = twe_ccb_submit(sc, ccb)) == 0)
610 1.1 ad rv = twe_ccb_poll(sc, ccb, 5);
611 1.1 ad twe_ccb_unmap(sc, ccb);
612 1.2 ad twe_ccb_free(sc, ccb);
613 1.1 ad splx(s);
614 1.1 ad if (rv != 0) {
615 1.1 ad free(tp, M_DEVBUF);
616 1.1 ad tp = NULL;
617 1.1 ad }
618 1.1 ad } else {
619 1.1 ad twe_ccb_enqueue(sc, ccb);
620 1.1 ad tp = NULL;
621 1.1 ad }
622 1.1 ad
623 1.1 ad return (tp);
624 1.1 ad }
625 1.1 ad
626 1.1 ad /*
627 1.1 ad * Execute a TWE_OP_INIT_CONNECTION command. Return non-zero on error.
628 1.1 ad * Must be called with interrupts blocked.
629 1.1 ad */
630 1.1 ad static int
631 1.1 ad twe_init_connection(struct twe_softc *sc)
632 1.1 ad {
633 1.1 ad struct twe_ccb *ccb;
634 1.1 ad struct twe_cmd *tc;
635 1.1 ad int rv;
636 1.1 ad
637 1.3 ad if ((rv = twe_ccb_alloc(sc, &ccb, 0)) != 0)
638 1.1 ad return (rv);
639 1.1 ad
640 1.1 ad /* Build the command. */
641 1.1 ad tc = ccb->ccb_cmd;
642 1.1 ad tc->tc_size = 3;
643 1.1 ad tc->tc_opcode = TWE_OP_INIT_CONNECTION;
644 1.1 ad tc->tc_unit = 0;
645 1.3 ad tc->tc_count = htole16(TWE_MAX_CMDS);
646 1.1 ad tc->tc_args.init_connection.response_queue_pointer = 0;
647 1.1 ad
648 1.1 ad /* Submit the command for immediate execution. */
649 1.1 ad if ((rv = twe_ccb_submit(sc, ccb)) == 0)
650 1.1 ad rv = twe_ccb_poll(sc, ccb, 5);
651 1.2 ad twe_ccb_free(sc, ccb);
652 1.1 ad return (rv);
653 1.1 ad }
654 1.1 ad
655 1.1 ad /*
656 1.1 ad * Poll the controller for completed commands. Must be called with
657 1.1 ad * interrupts blocked.
658 1.1 ad */
659 1.1 ad static void
660 1.1 ad twe_poll(struct twe_softc *sc)
661 1.1 ad {
662 1.1 ad struct twe_ccb *ccb;
663 1.1 ad int found;
664 1.1 ad u_int status, cmdid;
665 1.1 ad
666 1.1 ad found = 0;
667 1.1 ad
668 1.1 ad for (;;) {
669 1.1 ad status = TWE_INL(sc, TWE_REG_STS);
670 1.1 ad twe_status_check(sc, status);
671 1.1 ad
672 1.1 ad if ((status & TWE_STS_RESP_QUEUE_EMPTY))
673 1.1 ad break;
674 1.1 ad
675 1.1 ad found = 1;
676 1.1 ad cmdid = TWE_INL(sc, TWE_REG_RESP_QUEUE);
677 1.1 ad cmdid = (cmdid & TWE_RESP_MASK) >> TWE_RESP_SHIFT;
678 1.3 ad if (cmdid >= TWE_REAL_MAX_QUEUECNT) {
679 1.1 ad printf("%s: bad completion\n", sc->sc_dv.dv_xname);
680 1.1 ad continue;
681 1.1 ad }
682 1.1 ad
683 1.1 ad ccb = sc->sc_ccbs + cmdid;
684 1.1 ad if ((ccb->ccb_flags & TWE_CCB_ACTIVE) == 0) {
685 1.1 ad printf("%s: bad completion (not active)\n",
686 1.1 ad sc->sc_dv.dv_xname);
687 1.1 ad continue;
688 1.1 ad }
689 1.1 ad ccb->ccb_flags ^= TWE_CCB_COMPLETE | TWE_CCB_ACTIVE;
690 1.1 ad
691 1.1 ad bus_dmamap_sync(sc->sc_dmat, sc->sc_dmamap,
692 1.1 ad (caddr_t)ccb->ccb_cmd - sc->sc_cmds,
693 1.1 ad sizeof(struct twe_cmd),
694 1.1 ad BUS_DMASYNC_POSTREAD | BUS_DMASYNC_POSTWRITE);
695 1.1 ad
696 1.1 ad /* Pass notification to upper layers. */
697 1.1 ad if (ccb->ccb_tx.tx_handler != NULL)
698 1.1 ad (*ccb->ccb_tx.tx_handler)(ccb,
699 1.1 ad ccb->ccb_cmd->tc_status != 0 ? EIO : 0);
700 1.1 ad }
701 1.1 ad
702 1.1 ad /* If any commands have completed, run the software queue. */
703 1.1 ad if (found)
704 1.1 ad twe_ccb_enqueue(sc, NULL);
705 1.1 ad }
706 1.1 ad
707 1.1 ad /*
708 1.1 ad * Wait for `status' to be set in the controller status register. Return
709 1.1 ad * zero if found, non-zero if the operation timed out.
710 1.1 ad */
711 1.1 ad static int
712 1.1 ad twe_status_wait(struct twe_softc *sc, u_int32_t status, int timo)
713 1.1 ad {
714 1.1 ad
715 1.1 ad for (; timo != 0; timo--) {
716 1.1 ad if ((TWE_INL(sc, TWE_REG_STS) & status) == status)
717 1.1 ad break;
718 1.1 ad delay(100000);
719 1.1 ad }
720 1.1 ad
721 1.1 ad return (timo == 0);
722 1.1 ad }
723 1.1 ad
724 1.1 ad /*
725 1.1 ad * Complain if the status bits aren't what we expect.
726 1.1 ad */
727 1.1 ad static int
728 1.1 ad twe_status_check(struct twe_softc *sc, u_int status)
729 1.1 ad {
730 1.1 ad int rv;
731 1.1 ad
732 1.1 ad rv = 0;
733 1.1 ad
734 1.1 ad if ((status & TWE_STS_EXPECTED_BITS) != TWE_STS_EXPECTED_BITS) {
735 1.1 ad printf("%s: missing status bits: 0x%08x\n", sc->sc_dv.dv_xname,
736 1.1 ad status & ~TWE_STS_EXPECTED_BITS);
737 1.1 ad rv = -1;
738 1.1 ad }
739 1.1 ad
740 1.1 ad if ((status & TWE_STS_UNEXPECTED_BITS) != 0) {
741 1.1 ad printf("%s: unexpected status bits: 0x%08x\n",
742 1.1 ad sc->sc_dv.dv_xname, status & TWE_STS_UNEXPECTED_BITS);
743 1.1 ad rv = -1;
744 1.1 ad }
745 1.1 ad
746 1.1 ad return (rv);
747 1.1 ad }
748 1.1 ad
749 1.1 ad /*
750 1.1 ad * Allocate and initialise a CCB.
751 1.1 ad */
752 1.1 ad int
753 1.3 ad twe_ccb_alloc(struct twe_softc *sc, struct twe_ccb **ccbp, int flags)
754 1.1 ad {
755 1.1 ad struct twe_cmd *tc;
756 1.1 ad struct twe_ccb *ccb;
757 1.1 ad int s;
758 1.1 ad
759 1.3 ad if ((flags & TWE_CCB_PARAM) != 0)
760 1.3 ad ccb = sc->sc_ccbs;
761 1.3 ad else {
762 1.3 ad s = splbio();
763 1.3 ad /* Allocate a CCB and command block. */
764 1.3 ad if (SLIST_FIRST(&sc->sc_ccb_freelist) == NULL) {
765 1.1 ad splx(s);
766 1.1 ad return (EAGAIN);
767 1.1 ad }
768 1.3 ad ccb = SLIST_FIRST(&sc->sc_ccb_freelist);
769 1.3 ad SLIST_REMOVE_HEAD(&sc->sc_ccb_freelist, ccb_chain.slist);
770 1.3 ad splx(s);
771 1.1 ad }
772 1.3 ad
773 1.3 ad #ifdef DIAGNOSTIC
774 1.3 ad if ((ccb->ccb_flags & TWE_CCB_ALLOCED) != 0)
775 1.3 ad panic("twe_ccb_alloc: CCB already allocated");
776 1.3 ad flags |= TWE_CCB_ALLOCED;
777 1.3 ad #endif
778 1.1 ad
779 1.1 ad /* Initialise some fields and return. */
780 1.1 ad ccb->ccb_tx.tx_handler = NULL;
781 1.3 ad ccb->ccb_flags = flags;
782 1.1 ad tc = ccb->ccb_cmd;
783 1.1 ad tc->tc_status = 0;
784 1.1 ad tc->tc_flags = 0;
785 1.1 ad tc->tc_cmdid = ccb->ccb_cmdid;
786 1.3 ad *ccbp = ccb;
787 1.1 ad
788 1.1 ad return (0);
789 1.1 ad }
790 1.1 ad
791 1.1 ad /*
792 1.3 ad * Free a CCB.
793 1.1 ad */
794 1.1 ad void
795 1.2 ad twe_ccb_free(struct twe_softc *sc, struct twe_ccb *ccb)
796 1.1 ad {
797 1.1 ad int s;
798 1.1 ad
799 1.3 ad s = splbio();
800 1.3 ad if ((ccb->ccb_flags & TWE_CCB_PARAM) == 0)
801 1.3 ad SLIST_INSERT_HEAD(&sc->sc_ccb_freelist, ccb, ccb_chain.slist);
802 1.1 ad ccb->ccb_flags = 0;
803 1.1 ad splx(s);
804 1.1 ad }
805 1.1 ad
806 1.1 ad /*
807 1.1 ad * Map the specified CCB's command block and data buffer (if any) into
808 1.1 ad * controller visible space. Perform DMA synchronisation.
809 1.1 ad */
810 1.1 ad int
811 1.1 ad twe_ccb_map(struct twe_softc *sc, struct twe_ccb *ccb)
812 1.1 ad {
813 1.1 ad struct twe_cmd *tc;
814 1.1 ad int flags, nsegs, i, s;
815 1.1 ad void *data;
816 1.1 ad
817 1.1 ad /* The data as a whole must be 512-byte aligned. */
818 1.1 ad if (((u_long)ccb->ccb_data & (TWE_ALIGNMENT - 1)) != 0) {
819 1.1 ad s = splimp();
820 1.1 ad /* XXX */
821 1.1 ad ccb->ccb_abuf = uvm_km_kmemalloc(kmem_map, uvmexp.kmem_object,
822 1.1 ad ccb->ccb_datasize, UVM_KMF_NOWAIT);
823 1.1 ad splx(s);
824 1.1 ad data = (void *)ccb->ccb_abuf;
825 1.2 ad if ((ccb->ccb_flags & TWE_CCB_DATA_OUT) != 0)
826 1.2 ad memcpy(data, ccb->ccb_data, ccb->ccb_datasize);
827 1.1 ad } else {
828 1.1 ad ccb->ccb_abuf = (vaddr_t)0;
829 1.1 ad data = ccb->ccb_data;
830 1.1 ad }
831 1.1 ad
832 1.1 ad /* Map the data buffer into bus space and build the S/G list. */
833 1.1 ad bus_dmamap_load(sc->sc_dmat, ccb->ccb_dmamap_xfer, data,
834 1.1 ad ccb->ccb_datasize, NULL, BUS_DMA_NOWAIT);
835 1.1 ad
836 1.1 ad nsegs = ccb->ccb_dmamap_xfer->dm_nsegs;
837 1.1 ad tc = ccb->ccb_cmd;
838 1.1 ad tc->tc_size += 2 * nsegs;
839 1.1 ad
840 1.1 ad /* The location of the S/G list is dependant upon command type. */
841 1.1 ad switch (tc->tc_opcode >> 5) {
842 1.1 ad case 2:
843 1.1 ad for (i = 0; i < nsegs; i++) {
844 1.1 ad tc->tc_args.param.sgl[i].tsg_address =
845 1.1 ad htole32(ccb->ccb_dmamap_xfer->dm_segs[i].ds_addr);
846 1.1 ad tc->tc_args.param.sgl[i].tsg_length =
847 1.1 ad htole32(ccb->ccb_dmamap_xfer->dm_segs[i].ds_len);
848 1.1 ad }
849 1.1 ad /* XXX Needed? */
850 1.1 ad for (; i < TWE_SG_SIZE; i++) {
851 1.1 ad tc->tc_args.param.sgl[i].tsg_address = 0;
852 1.1 ad tc->tc_args.param.sgl[i].tsg_length = 0;
853 1.1 ad }
854 1.1 ad break;
855 1.1 ad case 3:
856 1.1 ad for (i = 0; i < nsegs; i++) {
857 1.1 ad tc->tc_args.io.sgl[i].tsg_address =
858 1.1 ad htole32(ccb->ccb_dmamap_xfer->dm_segs[i].ds_addr);
859 1.1 ad tc->tc_args.io.sgl[i].tsg_length =
860 1.1 ad htole32(ccb->ccb_dmamap_xfer->dm_segs[i].ds_len);
861 1.1 ad }
862 1.1 ad /* XXX Needed? */
863 1.1 ad for (; i < TWE_SG_SIZE; i++) {
864 1.1 ad tc->tc_args.io.sgl[i].tsg_address = 0;
865 1.1 ad tc->tc_args.io.sgl[i].tsg_length = 0;
866 1.1 ad }
867 1.1 ad break;
868 1.1 ad #ifdef DEBUG
869 1.1 ad default:
870 1.1 ad panic("twe_ccb_map: oops");
871 1.1 ad #endif
872 1.1 ad }
873 1.1 ad
874 1.1 ad if ((ccb->ccb_flags & TWE_CCB_DATA_IN) != 0)
875 1.1 ad flags = BUS_DMASYNC_PREREAD;
876 1.1 ad else
877 1.1 ad flags = 0;
878 1.1 ad if ((ccb->ccb_flags & TWE_CCB_DATA_OUT) != 0)
879 1.1 ad flags |= BUS_DMASYNC_PREWRITE;
880 1.1 ad
881 1.1 ad bus_dmamap_sync(sc->sc_dmat, ccb->ccb_dmamap_xfer, 0,
882 1.1 ad ccb->ccb_datasize, flags);
883 1.1 ad return (0);
884 1.1 ad }
885 1.1 ad
886 1.1 ad /*
887 1.1 ad * Unmap the specified CCB's command block and data buffer (if any) and
888 1.1 ad * perform DMA synchronisation.
889 1.1 ad */
890 1.1 ad void
891 1.1 ad twe_ccb_unmap(struct twe_softc *sc, struct twe_ccb *ccb)
892 1.1 ad {
893 1.1 ad int flags, s;
894 1.1 ad
895 1.1 ad if ((ccb->ccb_flags & TWE_CCB_DATA_IN) != 0)
896 1.1 ad flags = BUS_DMASYNC_POSTREAD;
897 1.1 ad else
898 1.1 ad flags = 0;
899 1.1 ad if ((ccb->ccb_flags & TWE_CCB_DATA_OUT) != 0)
900 1.1 ad flags |= BUS_DMASYNC_POSTWRITE;
901 1.1 ad
902 1.1 ad bus_dmamap_sync(sc->sc_dmat, ccb->ccb_dmamap_xfer, 0,
903 1.1 ad ccb->ccb_datasize, flags);
904 1.1 ad bus_dmamap_unload(sc->sc_dmat, ccb->ccb_dmamap_xfer);
905 1.1 ad
906 1.1 ad if (ccb->ccb_abuf != (vaddr_t)0) {
907 1.2 ad if ((ccb->ccb_flags & TWE_CCB_DATA_IN) != 0)
908 1.2 ad memcpy(ccb->ccb_data, (void *)ccb->ccb_abuf,
909 1.2 ad ccb->ccb_datasize);
910 1.1 ad s = splimp();
911 1.1 ad /* XXX */
912 1.1 ad uvm_km_free(kmem_map, ccb->ccb_abuf, ccb->ccb_datasize);
913 1.1 ad splx(s);
914 1.1 ad }
915 1.1 ad }
916 1.1 ad
917 1.1 ad /*
918 1.1 ad * Wait for the specified CCB to complete. Return non-zero on timeout (but
919 1.1 ad * don't check status, as some command types don't return status). Must be
920 1.1 ad * called with interrupts blocked.
921 1.1 ad */
922 1.1 ad int
923 1.1 ad twe_ccb_poll(struct twe_softc *sc, struct twe_ccb *ccb, int timo)
924 1.1 ad {
925 1.1 ad
926 1.1 ad for (; timo != 0; timo--) {
927 1.1 ad twe_poll(sc);
928 1.1 ad if ((ccb->ccb_flags & TWE_CCB_COMPLETE) != 0)
929 1.1 ad break;
930 1.1 ad DELAY(100000);
931 1.1 ad }
932 1.1 ad
933 1.1 ad return (timo == 0);
934 1.1 ad }
935 1.1 ad
936 1.1 ad /*
937 1.1 ad * If a CCB is specified, enqueue it. Pull CCBs off the software queue in
938 1.1 ad * the order that they were enqueued and try to submit their command blocks
939 1.1 ad * to the controller for execution.
940 1.1 ad */
941 1.1 ad void
942 1.1 ad twe_ccb_enqueue(struct twe_softc *sc, struct twe_ccb *ccb)
943 1.1 ad {
944 1.1 ad int s;
945 1.1 ad
946 1.1 ad s = splbio();
947 1.1 ad
948 1.1 ad if (ccb != NULL)
949 1.1 ad SIMPLEQ_INSERT_TAIL(&sc->sc_ccb_queue, ccb, ccb_chain.simpleq);
950 1.1 ad
951 1.1 ad while ((ccb = SIMPLEQ_FIRST(&sc->sc_ccb_queue)) != NULL) {
952 1.1 ad if (twe_ccb_submit(sc, ccb))
953 1.1 ad break;
954 1.1 ad SIMPLEQ_REMOVE_HEAD(&sc->sc_ccb_queue, ccb, ccb_chain.simpleq);
955 1.1 ad }
956 1.1 ad
957 1.1 ad splx(s);
958 1.1 ad }
959 1.1 ad
960 1.1 ad /*
961 1.1 ad * Submit the command block associated with the specified CCB to the
962 1.1 ad * controller for execution. Must be called with interrupts blocked.
963 1.1 ad */
964 1.1 ad int
965 1.1 ad twe_ccb_submit(struct twe_softc *sc, struct twe_ccb *ccb)
966 1.1 ad {
967 1.1 ad bus_addr_t pa;
968 1.1 ad int rv;
969 1.1 ad u_int status;
970 1.1 ad
971 1.1 ad /* Check to see if we can post a command. */
972 1.1 ad status = TWE_INL(sc, TWE_REG_STS);
973 1.1 ad twe_status_check(sc, status);
974 1.1 ad
975 1.1 ad if ((status & TWE_STS_CMD_QUEUE_FULL) == 0) {
976 1.1 ad bus_dmamap_sync(sc->sc_dmat, sc->sc_dmamap,
977 1.1 ad (caddr_t)ccb->ccb_cmd - sc->sc_cmds, sizeof(struct twe_cmd),
978 1.1 ad BUS_DMASYNC_PREWRITE | BUS_DMASYNC_PREREAD);
979 1.1 ad ccb->ccb_flags |= TWE_CCB_ACTIVE;
980 1.1 ad pa = sc->sc_cmds_paddr +
981 1.1 ad ccb->ccb_cmdid * sizeof(struct twe_cmd);
982 1.1 ad TWE_OUTL(sc, TWE_REG_CMD_QUEUE, (u_int32_t)pa);
983 1.1 ad rv = 0;
984 1.1 ad } else
985 1.1 ad rv = EBUSY;
986 1.1 ad
987 1.1 ad return (rv);
988 1.1 ad }
989