spi.c revision 1.27 1 1.27 thorpej /* $NetBSD: spi.c,v 1.27 2025/09/10 03:16:57 thorpej Exp $ */
2 1.1 gdamore
3 1.1 gdamore /*-
4 1.1 gdamore * Copyright (c) 2006 Urbana-Champaign Independent Media Center.
5 1.1 gdamore * Copyright (c) 2006 Garrett D'Amore.
6 1.1 gdamore * All rights reserved.
7 1.1 gdamore *
8 1.1 gdamore * Portions of this code were written by Garrett D'Amore for the
9 1.1 gdamore * Champaign-Urbana Community Wireless Network Project.
10 1.1 gdamore *
11 1.1 gdamore * Redistribution and use in source and binary forms, with or
12 1.1 gdamore * without modification, are permitted provided that the following
13 1.1 gdamore * conditions are met:
14 1.1 gdamore * 1. Redistributions of source code must retain the above copyright
15 1.1 gdamore * notice, this list of conditions and the following disclaimer.
16 1.1 gdamore * 2. Redistributions in binary form must reproduce the above
17 1.1 gdamore * copyright notice, this list of conditions and the following
18 1.1 gdamore * disclaimer in the documentation and/or other materials provided
19 1.1 gdamore * with the distribution.
20 1.1 gdamore * 3. All advertising materials mentioning features or use of this
21 1.1 gdamore * software must display the following acknowledgements:
22 1.1 gdamore * This product includes software developed by the Urbana-Champaign
23 1.1 gdamore * Independent Media Center.
24 1.1 gdamore * This product includes software developed by Garrett D'Amore.
25 1.1 gdamore * 4. Urbana-Champaign Independent Media Center's name and Garrett
26 1.1 gdamore * D'Amore's name may not be used to endorse or promote products
27 1.1 gdamore * derived from this software without specific prior written permission.
28 1.1 gdamore *
29 1.1 gdamore * THIS SOFTWARE IS PROVIDED BY THE URBANA-CHAMPAIGN INDEPENDENT
30 1.1 gdamore * MEDIA CENTER AND GARRETT D'AMORE ``AS IS'' AND ANY EXPRESS OR
31 1.1 gdamore * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED
32 1.1 gdamore * WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
33 1.1 gdamore * ARE DISCLAIMED. IN NO EVENT SHALL THE URBANA-CHAMPAIGN INDEPENDENT
34 1.1 gdamore * MEDIA CENTER OR GARRETT D'AMORE BE LIABLE FOR ANY DIRECT, INDIRECT,
35 1.1 gdamore * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
36 1.1 gdamore * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES;
37 1.1 gdamore * LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER
38 1.1 gdamore * CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT,
39 1.1 gdamore * STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
40 1.1 gdamore * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF
41 1.1 gdamore * ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
42 1.1 gdamore */
43 1.1 gdamore
44 1.27 thorpej #include "opt_fdt.h" /* XXX */
45 1.27 thorpej
46 1.1 gdamore #include <sys/cdefs.h>
47 1.27 thorpej __KERNEL_RCSID(0, "$NetBSD: spi.c,v 1.27 2025/09/10 03:16:57 thorpej Exp $");
48 1.1 gdamore
49 1.1 gdamore #include "locators.h"
50 1.1 gdamore
51 1.1 gdamore #include <sys/param.h>
52 1.1 gdamore #include <sys/systm.h>
53 1.1 gdamore #include <sys/device.h>
54 1.10 mlelstv #include <sys/conf.h>
55 1.1 gdamore #include <sys/malloc.h>
56 1.5 rmind #include <sys/mutex.h>
57 1.5 rmind #include <sys/condvar.h>
58 1.1 gdamore #include <sys/errno.h>
59 1.1 gdamore
60 1.1 gdamore #include <dev/spi/spivar.h>
61 1.10 mlelstv #include <dev/spi/spi_io.h>
62 1.10 mlelstv
63 1.27 thorpej #ifdef FDT
64 1.27 thorpej #include <dev/fdt/fdt_spi.h> /* XXX */
65 1.27 thorpej #endif
66 1.27 thorpej
67 1.10 mlelstv #include "ioconf.h"
68 1.10 mlelstv #include "locators.h"
69 1.1 gdamore
70 1.1 gdamore struct spi_softc {
71 1.22 thorpej device_t sc_dev;
72 1.1 gdamore struct spi_controller sc_controller;
73 1.1 gdamore int sc_mode;
74 1.1 gdamore int sc_speed;
75 1.10 mlelstv int sc_slave;
76 1.1 gdamore int sc_nslaves;
77 1.1 gdamore struct spi_handle *sc_slaves;
78 1.10 mlelstv kmutex_t sc_lock;
79 1.10 mlelstv kcondvar_t sc_cv;
80 1.18 mlelstv kmutex_t sc_dev_lock;
81 1.10 mlelstv int sc_flags;
82 1.10 mlelstv #define SPIC_BUSY 1
83 1.10 mlelstv };
84 1.10 mlelstv
85 1.10 mlelstv static dev_type_open(spi_open);
86 1.10 mlelstv static dev_type_close(spi_close);
87 1.10 mlelstv static dev_type_ioctl(spi_ioctl);
88 1.10 mlelstv
89 1.10 mlelstv const struct cdevsw spi_cdevsw = {
90 1.10 mlelstv .d_open = spi_open,
91 1.10 mlelstv .d_close = spi_close,
92 1.10 mlelstv .d_read = noread,
93 1.10 mlelstv .d_write = nowrite,
94 1.10 mlelstv .d_ioctl = spi_ioctl,
95 1.10 mlelstv .d_stop = nostop,
96 1.10 mlelstv .d_tty = notty,
97 1.10 mlelstv .d_poll = nopoll,
98 1.10 mlelstv .d_mmap = nommap,
99 1.10 mlelstv .d_kqfilter = nokqfilter,
100 1.10 mlelstv .d_discard = nodiscard,
101 1.18 mlelstv .d_flag = D_OTHER | D_MPSAFE
102 1.1 gdamore };
103 1.1 gdamore
104 1.1 gdamore /*
105 1.1 gdamore * SPI slave device. We have one of these per slave.
106 1.1 gdamore */
107 1.1 gdamore struct spi_handle {
108 1.1 gdamore struct spi_softc *sh_sc;
109 1.1 gdamore struct spi_controller *sh_controller;
110 1.1 gdamore int sh_slave;
111 1.10 mlelstv int sh_mode;
112 1.10 mlelstv int sh_speed;
113 1.12 tnn int sh_flags;
114 1.12 tnn #define SPIH_ATTACHED 1
115 1.1 gdamore };
116 1.1 gdamore
117 1.10 mlelstv #define SPI_MAXDATA 4096
118 1.10 mlelstv
119 1.1 gdamore /*
120 1.1 gdamore * API for bus drivers.
121 1.1 gdamore */
122 1.1 gdamore
123 1.1 gdamore int
124 1.1 gdamore spibus_print(void *aux, const char *pnp)
125 1.1 gdamore {
126 1.1 gdamore
127 1.1 gdamore if (pnp != NULL)
128 1.1 gdamore aprint_normal("spi at %s", pnp);
129 1.1 gdamore
130 1.1 gdamore return (UNCONF);
131 1.1 gdamore }
132 1.1 gdamore
133 1.1 gdamore
134 1.1 gdamore static int
135 1.3 xtraeme spi_match(device_t parent, cfdata_t cf, void *aux)
136 1.1 gdamore {
137 1.5 rmind
138 1.1 gdamore return 1;
139 1.1 gdamore }
140 1.1 gdamore
141 1.1 gdamore static int
142 1.1 gdamore spi_print(void *aux, const char *pnp)
143 1.1 gdamore {
144 1.1 gdamore struct spi_attach_args *sa = aux;
145 1.1 gdamore
146 1.1 gdamore if (sa->sa_handle->sh_slave != -1)
147 1.1 gdamore aprint_normal(" slave %d", sa->sa_handle->sh_slave);
148 1.1 gdamore
149 1.1 gdamore return (UNCONF);
150 1.1 gdamore }
151 1.1 gdamore
152 1.1 gdamore static int
153 1.3 xtraeme spi_search(device_t parent, cfdata_t cf, const int *ldesc, void *aux)
154 1.1 gdamore {
155 1.3 xtraeme struct spi_softc *sc = device_private(parent);
156 1.1 gdamore struct spi_attach_args sa;
157 1.1 gdamore int addr;
158 1.1 gdamore
159 1.1 gdamore addr = cf->cf_loc[SPICF_SLAVE];
160 1.1 gdamore if ((addr < 0) || (addr >= sc->sc_controller.sct_nslaves)) {
161 1.1 gdamore return -1;
162 1.1 gdamore }
163 1.1 gdamore
164 1.12 tnn memset(&sa, 0, sizeof sa);
165 1.1 gdamore sa.sa_handle = &sc->sc_slaves[addr];
166 1.12 tnn if (ISSET(sa.sa_handle->sh_flags, SPIH_ATTACHED))
167 1.12 tnn return -1;
168 1.1 gdamore
169 1.17 thorpej if (config_probe(parent, cf, &sa)) {
170 1.12 tnn SET(sa.sa_handle->sh_flags, SPIH_ATTACHED);
171 1.19 thorpej config_attach(parent, cf, &sa, spi_print, CFARGS_NONE);
172 1.12 tnn }
173 1.1 gdamore
174 1.1 gdamore return 0;
175 1.1 gdamore }
176 1.1 gdamore
177 1.1 gdamore /*
178 1.12 tnn * XXX this is the same as i2c_fill_compat. It could be refactored into a
179 1.12 tnn * common fill_compat function with pointers to compat & ncompat instead
180 1.12 tnn * of attach_args as the first parameter.
181 1.12 tnn */
182 1.12 tnn static void
183 1.12 tnn spi_fill_compat(struct spi_attach_args *sa, const char *compat, size_t len,
184 1.12 tnn char **buffer)
185 1.12 tnn {
186 1.12 tnn int count, i;
187 1.12 tnn const char *c, *start, **ptr;
188 1.12 tnn
189 1.12 tnn *buffer = NULL;
190 1.12 tnn for (i = count = 0, c = compat; i < len; i++, c++)
191 1.12 tnn if (*c == 0)
192 1.12 tnn count++;
193 1.12 tnn count += 2;
194 1.12 tnn ptr = malloc(sizeof(char*)*count, M_TEMP, M_WAITOK);
195 1.12 tnn if (!ptr)
196 1.12 tnn return;
197 1.12 tnn
198 1.12 tnn for (i = count = 0, start = c = compat; i < len; i++, c++) {
199 1.12 tnn if (*c == 0) {
200 1.12 tnn ptr[count++] = start;
201 1.12 tnn start = c + 1;
202 1.12 tnn }
203 1.12 tnn }
204 1.12 tnn if (start < compat + len) {
205 1.12 tnn /* last string not 0 terminated */
206 1.12 tnn size_t l = c - start;
207 1.12 tnn *buffer = malloc(l + 1, M_TEMP, M_WAITOK);
208 1.12 tnn memcpy(*buffer, start, l);
209 1.12 tnn (*buffer)[l] = 0;
210 1.12 tnn ptr[count++] = *buffer;
211 1.12 tnn }
212 1.12 tnn ptr[count] = NULL;
213 1.12 tnn
214 1.12 tnn sa->sa_compat = ptr;
215 1.12 tnn sa->sa_ncompat = count;
216 1.12 tnn }
217 1.12 tnn
218 1.12 tnn static void
219 1.12 tnn spi_direct_attach_child_devices(device_t parent, struct spi_softc *sc,
220 1.12 tnn prop_array_t child_devices)
221 1.12 tnn {
222 1.12 tnn unsigned int count;
223 1.12 tnn prop_dictionary_t child;
224 1.12 tnn prop_data_t cdata;
225 1.12 tnn uint32_t slave;
226 1.12 tnn uint64_t cookie;
227 1.12 tnn struct spi_attach_args sa;
228 1.12 tnn int loc[SPICF_NLOCS];
229 1.12 tnn char *buf;
230 1.12 tnn int i;
231 1.12 tnn
232 1.12 tnn memset(loc, 0, sizeof loc);
233 1.12 tnn count = prop_array_count(child_devices);
234 1.12 tnn for (i = 0; i < count; i++) {
235 1.12 tnn child = prop_array_get(child_devices, i);
236 1.12 tnn if (!child)
237 1.12 tnn continue;
238 1.12 tnn if (!prop_dictionary_get_uint32(child, "slave", &slave))
239 1.12 tnn continue;
240 1.12 tnn if(slave >= sc->sc_controller.sct_nslaves)
241 1.12 tnn continue;
242 1.12 tnn if (!prop_dictionary_get_uint64(child, "cookie", &cookie))
243 1.12 tnn continue;
244 1.12 tnn if (!(cdata = prop_dictionary_get(child, "compatible")))
245 1.12 tnn continue;
246 1.12 tnn loc[SPICF_SLAVE] = slave;
247 1.12 tnn
248 1.12 tnn memset(&sa, 0, sizeof sa);
249 1.12 tnn sa.sa_handle = &sc->sc_slaves[i];
250 1.13 hkenken sa.sa_prop = child;
251 1.13 hkenken sa.sa_cookie = cookie;
252 1.12 tnn if (ISSET(sa.sa_handle->sh_flags, SPIH_ATTACHED))
253 1.12 tnn continue;
254 1.12 tnn SET(sa.sa_handle->sh_flags, SPIH_ATTACHED);
255 1.12 tnn
256 1.12 tnn buf = NULL;
257 1.12 tnn spi_fill_compat(&sa,
258 1.14 thorpej prop_data_value(cdata),
259 1.12 tnn prop_data_size(cdata), &buf);
260 1.17 thorpej config_found(parent, &sa, spi_print,
261 1.19 thorpej CFARGS(.locators = loc));
262 1.12 tnn
263 1.12 tnn if (sa.sa_compat)
264 1.12 tnn free(sa.sa_compat, M_TEMP);
265 1.12 tnn if (buf)
266 1.12 tnn free(buf, M_TEMP);
267 1.12 tnn }
268 1.12 tnn }
269 1.12 tnn
270 1.12 tnn int
271 1.12 tnn spi_compatible_match(const struct spi_attach_args *sa, const cfdata_t cf,
272 1.12 tnn const struct device_compatible_entry *compats)
273 1.12 tnn {
274 1.12 tnn if (sa->sa_ncompat > 0)
275 1.12 tnn return device_compatible_match(sa->sa_compat, sa->sa_ncompat,
276 1.16 thorpej compats);
277 1.12 tnn
278 1.12 tnn return 1;
279 1.12 tnn }
280 1.12 tnn
281 1.23 thorpej const struct device_compatible_entry *
282 1.23 thorpej spi_compatible_lookup(const struct spi_attach_args *sa,
283 1.23 thorpej const struct device_compatible_entry *compats)
284 1.23 thorpej {
285 1.23 thorpej return device_compatible_lookup(sa->sa_compat, sa->sa_ncompat,
286 1.23 thorpej compats);
287 1.23 thorpej }
288 1.23 thorpej
289 1.12 tnn /*
290 1.1 gdamore * API for device drivers.
291 1.1 gdamore *
292 1.1 gdamore * We provide wrapper routines to decouple the ABI for the SPI
293 1.1 gdamore * device drivers from the ABI for the SPI bus drivers.
294 1.1 gdamore */
295 1.1 gdamore static void
296 1.3 xtraeme spi_attach(device_t parent, device_t self, void *aux)
297 1.1 gdamore {
298 1.1 gdamore struct spi_softc *sc = device_private(self);
299 1.1 gdamore struct spibus_attach_args *sba = aux;
300 1.1 gdamore int i;
301 1.1 gdamore
302 1.1 gdamore aprint_naive(": SPI bus\n");
303 1.1 gdamore aprint_normal(": SPI bus\n");
304 1.1 gdamore
305 1.18 mlelstv mutex_init(&sc->sc_dev_lock, MUTEX_DEFAULT, IPL_NONE);
306 1.15 kardel mutex_init(&sc->sc_lock, MUTEX_DEFAULT, IPL_VM);
307 1.10 mlelstv cv_init(&sc->sc_cv, "spictl");
308 1.10 mlelstv
309 1.22 thorpej sc->sc_dev = self;
310 1.27 thorpej sc->sc_controller = *sba->sba_controller; /* XXX copied??? */
311 1.8 rkujawa sc->sc_nslaves = sba->sba_controller->sct_nslaves;
312 1.1 gdamore /* allocate slave structures */
313 1.1 gdamore sc->sc_slaves = malloc(sizeof (struct spi_handle) * sc->sc_nslaves,
314 1.1 gdamore M_DEVBUF, M_WAITOK | M_ZERO);
315 1.1 gdamore
316 1.1 gdamore sc->sc_speed = 0;
317 1.2 gdamore sc->sc_mode = -1;
318 1.10 mlelstv sc->sc_slave = -1;
319 1.1 gdamore
320 1.1 gdamore /*
321 1.1 gdamore * Initialize slave handles
322 1.1 gdamore */
323 1.1 gdamore for (i = 0; i < sc->sc_nslaves; i++) {
324 1.1 gdamore sc->sc_slaves[i].sh_slave = i;
325 1.1 gdamore sc->sc_slaves[i].sh_sc = sc;
326 1.1 gdamore sc->sc_slaves[i].sh_controller = &sc->sc_controller;
327 1.1 gdamore }
328 1.1 gdamore
329 1.27 thorpej #ifdef FDT /* XXX */
330 1.27 thorpej fdtbus_register_spi_controller(self, &sc->sc_controller);
331 1.27 thorpej #endif /* FDT */
332 1.27 thorpej
333 1.12 tnn /* First attach devices known to be present via fdt */
334 1.12 tnn if (sba->sba_child_devices) {
335 1.12 tnn spi_direct_attach_child_devices(self, sc, sba->sba_child_devices);
336 1.12 tnn }
337 1.12 tnn /* Then do any other devices the user may have manually wired */
338 1.17 thorpej config_search(self, NULL,
339 1.19 thorpej CFARGS(.search = spi_search));
340 1.1 gdamore }
341 1.1 gdamore
342 1.10 mlelstv static int
343 1.10 mlelstv spi_open(dev_t dev, int flag, int fmt, lwp_t *l)
344 1.10 mlelstv {
345 1.10 mlelstv struct spi_softc *sc = device_lookup_private(&spi_cd, minor(dev));
346 1.10 mlelstv
347 1.10 mlelstv if (sc == NULL)
348 1.10 mlelstv return ENXIO;
349 1.10 mlelstv
350 1.10 mlelstv return 0;
351 1.10 mlelstv }
352 1.10 mlelstv
353 1.10 mlelstv static int
354 1.10 mlelstv spi_close(dev_t dev, int flag, int fmt, lwp_t *l)
355 1.10 mlelstv {
356 1.10 mlelstv
357 1.10 mlelstv return 0;
358 1.10 mlelstv }
359 1.10 mlelstv
360 1.10 mlelstv static int
361 1.10 mlelstv spi_ioctl(dev_t dev, u_long cmd, void *data, int flag, lwp_t *l)
362 1.10 mlelstv {
363 1.10 mlelstv struct spi_softc *sc = device_lookup_private(&spi_cd, minor(dev));
364 1.10 mlelstv struct spi_handle *sh;
365 1.10 mlelstv spi_ioctl_configure_t *sic;
366 1.10 mlelstv spi_ioctl_transfer_t *sit;
367 1.10 mlelstv uint8_t *sbuf, *rbuf;
368 1.10 mlelstv int error;
369 1.10 mlelstv
370 1.10 mlelstv if (sc == NULL)
371 1.10 mlelstv return ENXIO;
372 1.10 mlelstv
373 1.18 mlelstv mutex_enter(&sc->sc_dev_lock);
374 1.18 mlelstv
375 1.10 mlelstv switch (cmd) {
376 1.10 mlelstv case SPI_IOCTL_CONFIGURE:
377 1.10 mlelstv sic = (spi_ioctl_configure_t *)data;
378 1.10 mlelstv if (sic->sic_addr < 0 || sic->sic_addr >= sc->sc_nslaves) {
379 1.10 mlelstv error = EINVAL;
380 1.10 mlelstv break;
381 1.10 mlelstv }
382 1.10 mlelstv sh = &sc->sc_slaves[sic->sic_addr];
383 1.22 thorpej error = spi_configure(sc->sc_dev, sh, sic->sic_mode,
384 1.22 thorpej sic->sic_speed);
385 1.10 mlelstv break;
386 1.10 mlelstv case SPI_IOCTL_TRANSFER:
387 1.10 mlelstv sit = (spi_ioctl_transfer_t *)data;
388 1.10 mlelstv if (sit->sit_addr < 0 || sit->sit_addr >= sc->sc_nslaves) {
389 1.10 mlelstv error = EINVAL;
390 1.10 mlelstv break;
391 1.10 mlelstv }
392 1.11 mlelstv if ((sit->sit_send && sit->sit_sendlen == 0)
393 1.24 mlelstv || (sit->sit_recv && sit->sit_recvlen == 0)) {
394 1.11 mlelstv error = EINVAL;
395 1.11 mlelstv break;
396 1.11 mlelstv }
397 1.10 mlelstv sh = &sc->sc_slaves[sit->sit_addr];
398 1.10 mlelstv sbuf = rbuf = NULL;
399 1.10 mlelstv error = 0;
400 1.11 mlelstv if (sit->sit_send && sit->sit_sendlen <= SPI_MAXDATA) {
401 1.10 mlelstv sbuf = malloc(sit->sit_sendlen, M_DEVBUF, M_WAITOK);
402 1.10 mlelstv error = copyin(sit->sit_send, sbuf, sit->sit_sendlen);
403 1.10 mlelstv }
404 1.11 mlelstv if (sit->sit_recv && sit->sit_recvlen <= SPI_MAXDATA) {
405 1.10 mlelstv rbuf = malloc(sit->sit_recvlen, M_DEVBUF, M_WAITOK);
406 1.10 mlelstv }
407 1.10 mlelstv if (error == 0) {
408 1.10 mlelstv if (sbuf && rbuf)
409 1.10 mlelstv error = spi_send_recv(sh,
410 1.10 mlelstv sit->sit_sendlen, sbuf,
411 1.10 mlelstv sit->sit_recvlen, rbuf);
412 1.10 mlelstv else if (sbuf)
413 1.10 mlelstv error = spi_send(sh,
414 1.10 mlelstv sit->sit_sendlen, sbuf);
415 1.10 mlelstv else if (rbuf)
416 1.10 mlelstv error = spi_recv(sh,
417 1.10 mlelstv sit->sit_recvlen, rbuf);
418 1.10 mlelstv }
419 1.10 mlelstv if (rbuf) {
420 1.10 mlelstv if (error == 0)
421 1.10 mlelstv error = copyout(rbuf, sit->sit_recv,
422 1.10 mlelstv sit->sit_recvlen);
423 1.10 mlelstv free(rbuf, M_DEVBUF);
424 1.10 mlelstv }
425 1.10 mlelstv if (sbuf) {
426 1.10 mlelstv free(sbuf, M_DEVBUF);
427 1.10 mlelstv }
428 1.10 mlelstv break;
429 1.10 mlelstv default:
430 1.10 mlelstv error = ENODEV;
431 1.10 mlelstv break;
432 1.10 mlelstv }
433 1.10 mlelstv
434 1.18 mlelstv mutex_exit(&sc->sc_dev_lock);
435 1.18 mlelstv
436 1.10 mlelstv return error;
437 1.10 mlelstv }
438 1.10 mlelstv
439 1.3 xtraeme CFATTACH_DECL_NEW(spi, sizeof(struct spi_softc),
440 1.1 gdamore spi_match, spi_attach, NULL, NULL);
441 1.1 gdamore
442 1.1 gdamore /*
443 1.1 gdamore * Configure. This should be the first thing that the SPI driver
444 1.1 gdamore * should do, to configure which mode (e.g. SPI_MODE_0, which is the
445 1.1 gdamore * same as Philips Microwire mode), and speed. If the bus driver
446 1.1 gdamore * cannot run fast enough, then it should just configure the fastest
447 1.1 gdamore * mode that it can support. If the bus driver cannot run slow
448 1.1 gdamore * enough, then the device is incompatible and an error should be
449 1.1 gdamore * returned.
450 1.1 gdamore */
451 1.1 gdamore int
452 1.20 thorpej spi_configure(device_t dev __unused, struct spi_handle *sh, int mode, int speed)
453 1.1 gdamore {
454 1.1 gdamore
455 1.10 mlelstv sh->sh_mode = mode;
456 1.10 mlelstv sh->sh_speed = speed;
457 1.20 thorpej
458 1.20 thorpej /* No need to report errors; no failures. */
459 1.20 thorpej
460 1.10 mlelstv return 0;
461 1.10 mlelstv }
462 1.10 mlelstv
463 1.10 mlelstv /*
464 1.10 mlelstv * Acquire controller
465 1.10 mlelstv */
466 1.10 mlelstv static void
467 1.10 mlelstv spi_acquire(struct spi_handle *sh)
468 1.10 mlelstv {
469 1.10 mlelstv struct spi_softc *sc = sh->sh_sc;
470 1.10 mlelstv
471 1.10 mlelstv mutex_enter(&sc->sc_lock);
472 1.10 mlelstv while ((sc->sc_flags & SPIC_BUSY) != 0)
473 1.10 mlelstv cv_wait(&sc->sc_cv, &sc->sc_lock);
474 1.10 mlelstv sc->sc_flags |= SPIC_BUSY;
475 1.10 mlelstv mutex_exit(&sc->sc_lock);
476 1.10 mlelstv }
477 1.10 mlelstv
478 1.10 mlelstv /*
479 1.10 mlelstv * Release controller
480 1.10 mlelstv */
481 1.10 mlelstv static void
482 1.10 mlelstv spi_release(struct spi_handle *sh)
483 1.10 mlelstv {
484 1.10 mlelstv struct spi_softc *sc = sh->sh_sc;
485 1.10 mlelstv
486 1.10 mlelstv mutex_enter(&sc->sc_lock);
487 1.10 mlelstv sc->sc_flags &= ~SPIC_BUSY;
488 1.10 mlelstv cv_broadcast(&sc->sc_cv);
489 1.10 mlelstv mutex_exit(&sc->sc_lock);
490 1.1 gdamore }
491 1.1 gdamore
492 1.1 gdamore void
493 1.1 gdamore spi_transfer_init(struct spi_transfer *st)
494 1.1 gdamore {
495 1.1 gdamore
496 1.15 kardel mutex_init(&st->st_lock, MUTEX_DEFAULT, IPL_VM);
497 1.10 mlelstv cv_init(&st->st_cv, "spixfr");
498 1.5 rmind
499 1.1 gdamore st->st_flags = 0;
500 1.1 gdamore st->st_errno = 0;
501 1.1 gdamore st->st_done = NULL;
502 1.1 gdamore st->st_chunks = NULL;
503 1.1 gdamore st->st_private = NULL;
504 1.1 gdamore st->st_slave = -1;
505 1.1 gdamore }
506 1.1 gdamore
507 1.1 gdamore void
508 1.1 gdamore spi_chunk_init(struct spi_chunk *chunk, int cnt, const uint8_t *wptr,
509 1.1 gdamore uint8_t *rptr)
510 1.1 gdamore {
511 1.1 gdamore
512 1.1 gdamore chunk->chunk_write = chunk->chunk_wptr = wptr;
513 1.6 mrg chunk->chunk_read = chunk->chunk_rptr = rptr;
514 1.1 gdamore chunk->chunk_rresid = chunk->chunk_wresid = chunk->chunk_count = cnt;
515 1.1 gdamore chunk->chunk_next = NULL;
516 1.1 gdamore }
517 1.1 gdamore
518 1.1 gdamore void
519 1.1 gdamore spi_transfer_add(struct spi_transfer *st, struct spi_chunk *chunk)
520 1.1 gdamore {
521 1.1 gdamore struct spi_chunk **cpp;
522 1.1 gdamore
523 1.1 gdamore /* this is an O(n) insert -- perhaps we should use a simpleq? */
524 1.1 gdamore for (cpp = &st->st_chunks; *cpp; cpp = &(*cpp)->chunk_next);
525 1.1 gdamore *cpp = chunk;
526 1.1 gdamore }
527 1.1 gdamore
528 1.1 gdamore int
529 1.1 gdamore spi_transfer(struct spi_handle *sh, struct spi_transfer *st)
530 1.1 gdamore {
531 1.10 mlelstv struct spi_softc *sc = sh->sh_sc;
532 1.1 gdamore struct spi_controller *tag = sh->sh_controller;
533 1.1 gdamore struct spi_chunk *chunk;
534 1.10 mlelstv int error;
535 1.1 gdamore
536 1.1 gdamore /*
537 1.1 gdamore * Initialize "resid" counters and pointers, so that callers
538 1.1 gdamore * and bus drivers don't have to.
539 1.1 gdamore */
540 1.1 gdamore for (chunk = st->st_chunks; chunk; chunk = chunk->chunk_next) {
541 1.1 gdamore chunk->chunk_wresid = chunk->chunk_rresid = chunk->chunk_count;
542 1.1 gdamore chunk->chunk_wptr = chunk->chunk_write;
543 1.1 gdamore chunk->chunk_rptr = chunk->chunk_read;
544 1.1 gdamore }
545 1.1 gdamore
546 1.1 gdamore /*
547 1.10 mlelstv * Match slave and parameters to handle
548 1.1 gdamore */
549 1.1 gdamore st->st_slave = sh->sh_slave;
550 1.1 gdamore
551 1.10 mlelstv /*
552 1.10 mlelstv * Reserve controller during transaction
553 1.10 mlelstv */
554 1.10 mlelstv spi_acquire(sh);
555 1.10 mlelstv
556 1.10 mlelstv st->st_spiprivate = (void *)sh;
557 1.25 skrll
558 1.10 mlelstv /*
559 1.10 mlelstv * Reconfigure controller
560 1.10 mlelstv *
561 1.10 mlelstv * XXX backends don't configure per-slave parameters
562 1.10 mlelstv * Whenever we switch slaves or change mode or speed, we
563 1.10 mlelstv * need to tell the backend.
564 1.10 mlelstv */
565 1.10 mlelstv if (sc->sc_slave != sh->sh_slave
566 1.10 mlelstv || sc->sc_mode != sh->sh_mode
567 1.10 mlelstv || sc->sc_speed != sh->sh_speed) {
568 1.10 mlelstv error = (*tag->sct_configure)(tag->sct_cookie,
569 1.10 mlelstv sh->sh_slave, sh->sh_mode, sh->sh_speed);
570 1.10 mlelstv if (error)
571 1.10 mlelstv return error;
572 1.10 mlelstv }
573 1.10 mlelstv sc->sc_mode = sh->sh_mode;
574 1.10 mlelstv sc->sc_speed = sh->sh_speed;
575 1.10 mlelstv sc->sc_slave = sh->sh_slave;
576 1.10 mlelstv
577 1.10 mlelstv error = (*tag->sct_transfer)(tag->sct_cookie, st);
578 1.10 mlelstv
579 1.10 mlelstv return error;
580 1.1 gdamore }
581 1.1 gdamore
582 1.1 gdamore void
583 1.1 gdamore spi_wait(struct spi_transfer *st)
584 1.1 gdamore {
585 1.10 mlelstv struct spi_handle *sh = st->st_spiprivate;
586 1.1 gdamore
587 1.5 rmind mutex_enter(&st->st_lock);
588 1.4 jym while (!(st->st_flags & SPI_F_DONE)) {
589 1.5 rmind cv_wait(&st->st_cv, &st->st_lock);
590 1.1 gdamore }
591 1.5 rmind mutex_exit(&st->st_lock);
592 1.7 jakllsch cv_destroy(&st->st_cv);
593 1.7 jakllsch mutex_destroy(&st->st_lock);
594 1.10 mlelstv
595 1.10 mlelstv /*
596 1.10 mlelstv * End transaction
597 1.10 mlelstv */
598 1.10 mlelstv spi_release(sh);
599 1.1 gdamore }
600 1.1 gdamore
601 1.1 gdamore void
602 1.1 gdamore spi_done(struct spi_transfer *st, int err)
603 1.1 gdamore {
604 1.1 gdamore
605 1.5 rmind mutex_enter(&st->st_lock);
606 1.1 gdamore if ((st->st_errno = err) != 0) {
607 1.1 gdamore st->st_flags |= SPI_F_ERROR;
608 1.1 gdamore }
609 1.1 gdamore st->st_flags |= SPI_F_DONE;
610 1.1 gdamore if (st->st_done != NULL) {
611 1.1 gdamore (*st->st_done)(st);
612 1.1 gdamore } else {
613 1.5 rmind cv_broadcast(&st->st_cv);
614 1.1 gdamore }
615 1.5 rmind mutex_exit(&st->st_lock);
616 1.1 gdamore }
617 1.1 gdamore
618 1.1 gdamore /*
619 1.1 gdamore * Some convenience routines. These routines block until the work
620 1.1 gdamore * is done.
621 1.1 gdamore *
622 1.1 gdamore * spi_recv - receives data from the bus
623 1.1 gdamore *
624 1.1 gdamore * spi_send - sends data to the bus
625 1.1 gdamore *
626 1.1 gdamore * spi_send_recv - sends data to the bus, and then receives. Note that this is
627 1.1 gdamore * done synchronously, i.e. send a command and get the response. This is
628 1.26 andvar * not full duplex. If you want full duplex, you can't use these convenience
629 1.1 gdamore * wrappers.
630 1.1 gdamore */
631 1.1 gdamore int
632 1.1 gdamore spi_recv(struct spi_handle *sh, int cnt, uint8_t *data)
633 1.1 gdamore {
634 1.1 gdamore struct spi_transfer trans;
635 1.1 gdamore struct spi_chunk chunk;
636 1.1 gdamore
637 1.1 gdamore spi_transfer_init(&trans);
638 1.1 gdamore spi_chunk_init(&chunk, cnt, NULL, data);
639 1.1 gdamore spi_transfer_add(&trans, &chunk);
640 1.1 gdamore
641 1.1 gdamore /* enqueue it and wait for it to complete */
642 1.1 gdamore spi_transfer(sh, &trans);
643 1.1 gdamore spi_wait(&trans);
644 1.1 gdamore
645 1.1 gdamore if (trans.st_flags & SPI_F_ERROR)
646 1.1 gdamore return trans.st_errno;
647 1.1 gdamore
648 1.1 gdamore return 0;
649 1.1 gdamore }
650 1.1 gdamore
651 1.1 gdamore int
652 1.1 gdamore spi_send(struct spi_handle *sh, int cnt, const uint8_t *data)
653 1.1 gdamore {
654 1.1 gdamore struct spi_transfer trans;
655 1.1 gdamore struct spi_chunk chunk;
656 1.1 gdamore
657 1.1 gdamore spi_transfer_init(&trans);
658 1.1 gdamore spi_chunk_init(&chunk, cnt, data, NULL);
659 1.1 gdamore spi_transfer_add(&trans, &chunk);
660 1.1 gdamore
661 1.1 gdamore /* enqueue it and wait for it to complete */
662 1.1 gdamore spi_transfer(sh, &trans);
663 1.1 gdamore spi_wait(&trans);
664 1.1 gdamore
665 1.1 gdamore if (trans.st_flags & SPI_F_ERROR)
666 1.1 gdamore return trans.st_errno;
667 1.1 gdamore
668 1.1 gdamore return 0;
669 1.1 gdamore }
670 1.1 gdamore
671 1.1 gdamore int
672 1.1 gdamore spi_send_recv(struct spi_handle *sh, int scnt, const uint8_t *snd,
673 1.1 gdamore int rcnt, uint8_t *rcv)
674 1.1 gdamore {
675 1.1 gdamore struct spi_transfer trans;
676 1.1 gdamore struct spi_chunk chunk1, chunk2;
677 1.1 gdamore
678 1.1 gdamore spi_transfer_init(&trans);
679 1.1 gdamore spi_chunk_init(&chunk1, scnt, snd, NULL);
680 1.1 gdamore spi_chunk_init(&chunk2, rcnt, NULL, rcv);
681 1.1 gdamore spi_transfer_add(&trans, &chunk1);
682 1.1 gdamore spi_transfer_add(&trans, &chunk2);
683 1.1 gdamore
684 1.1 gdamore /* enqueue it and wait for it to complete */
685 1.1 gdamore spi_transfer(sh, &trans);
686 1.1 gdamore spi_wait(&trans);
687 1.1 gdamore
688 1.1 gdamore if (trans.st_flags & SPI_F_ERROR)
689 1.1 gdamore return trans.st_errno;
690 1.1 gdamore
691 1.1 gdamore return 0;
692 1.1 gdamore }
693