haltwo.c revision 1.1 1 1.1 lonewolf /* $NetBSD: haltwo.c,v 1.1 2003/09/25 16:35:50 lonewolf Exp $ */
2 1.1 lonewolf
3 1.1 lonewolf /*
4 1.1 lonewolf * Copyright (c) 2003 Ilpo Ruotsalainen
5 1.1 lonewolf * All rights reserved.
6 1.1 lonewolf *
7 1.1 lonewolf * Redistribution and use in source and binary forms, with or without
8 1.1 lonewolf * modification, are permitted provided that the following conditions
9 1.1 lonewolf * are met:
10 1.1 lonewolf * 1. Redistributions of source code must retain the above copyright
11 1.1 lonewolf * notice, this list of conditions and the following disclaimer.
12 1.1 lonewolf * 2. Redistributions in binary form must reproduce the above copyright
13 1.1 lonewolf * notice, this list of conditions and the following disclaimer in the
14 1.1 lonewolf * documentation and/or other materials provided with the distribution.
15 1.1 lonewolf * 3. The name of the author may not be used to endorse or promote products
16 1.1 lonewolf * derived from this software without specific prior written permission.
17 1.1 lonewolf *
18 1.1 lonewolf * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
19 1.1 lonewolf * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
20 1.1 lonewolf * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
21 1.1 lonewolf * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
22 1.1 lonewolf * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
23 1.1 lonewolf * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
24 1.1 lonewolf * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
25 1.1 lonewolf * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
26 1.1 lonewolf * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
27 1.1 lonewolf * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
28 1.1 lonewolf *
29 1.1 lonewolf * <<Id: LICENSE_GC,v 1.1 2001/10/01 23:24:05 cgd Exp>>
30 1.1 lonewolf */
31 1.1 lonewolf
32 1.1 lonewolf #include <sys/cdefs.h>
33 1.1 lonewolf __KERNEL_RCSID(0, "$NetBSD: haltwo.c,v 1.1 2003/09/25 16:35:50 lonewolf Exp $");
34 1.1 lonewolf
35 1.1 lonewolf #include <sys/param.h>
36 1.1 lonewolf #include <sys/systm.h>
37 1.1 lonewolf #include <sys/device.h>
38 1.1 lonewolf #include <sys/audioio.h>
39 1.1 lonewolf #include <sys/malloc.h>
40 1.1 lonewolf #include <dev/audio_if.h>
41 1.1 lonewolf #include <dev/auconv.h>
42 1.1 lonewolf #include <dev/mulaw.h>
43 1.1 lonewolf
44 1.1 lonewolf #include <uvm/uvm_extern.h>
45 1.1 lonewolf
46 1.1 lonewolf #include <machine/bus.h>
47 1.1 lonewolf
48 1.1 lonewolf #include <sgimips/hpc/hpcvar.h>
49 1.1 lonewolf #include <sgimips/hpc/hpcreg.h>
50 1.1 lonewolf
51 1.1 lonewolf #include <sgimips/hpc/haltworeg.h>
52 1.1 lonewolf #include <sgimips/hpc/haltwovar.h>
53 1.1 lonewolf
54 1.1 lonewolf #ifdef AUDIO_DEBUG
55 1.1 lonewolf #define DPRINTF(x) printf x
56 1.1 lonewolf #else
57 1.1 lonewolf #define DPRINTF(x)
58 1.1 lonewolf #endif
59 1.1 lonewolf
60 1.1 lonewolf static int haltwo_open(void *, int);
61 1.1 lonewolf static void haltwo_close(void *);
62 1.1 lonewolf static int haltwo_query_encoding(void *, struct audio_encoding *);
63 1.1 lonewolf static int haltwo_set_params(void *, int, int, struct audio_params *,
64 1.1 lonewolf struct audio_params *);
65 1.1 lonewolf static int haltwo_round_blocksize(void *, int);
66 1.1 lonewolf static int haltwo_halt_output(void *);
67 1.1 lonewolf static int haltwo_halt_input(void *);
68 1.1 lonewolf static int haltwo_getdev(void *, struct audio_device *);
69 1.1 lonewolf static int haltwo_set_port(void *, mixer_ctrl_t *);
70 1.1 lonewolf static int haltwo_get_port(void *, mixer_ctrl_t *);
71 1.1 lonewolf static int haltwo_query_devinfo(void *, mixer_devinfo_t *);
72 1.1 lonewolf static void *haltwo_malloc(void *, int, size_t, struct malloc_type *, int);
73 1.1 lonewolf static void haltwo_free(void *, void *, struct malloc_type *);
74 1.1 lonewolf static int haltwo_get_props(void *);
75 1.1 lonewolf static int haltwo_trigger_output(void *, void *, void *, int, void (*)(void *),
76 1.1 lonewolf void *, struct audio_params *);
77 1.1 lonewolf static int haltwo_trigger_input(void *, void *, void *, int, void (*)(void *),
78 1.1 lonewolf void *, struct audio_params *);
79 1.1 lonewolf
80 1.1 lonewolf static struct audio_hw_if haltwo_hw_if = {
81 1.1 lonewolf haltwo_open,
82 1.1 lonewolf haltwo_close,
83 1.1 lonewolf NULL, /* drain */
84 1.1 lonewolf haltwo_query_encoding,
85 1.1 lonewolf haltwo_set_params,
86 1.1 lonewolf haltwo_round_blocksize,
87 1.1 lonewolf NULL, /* commit_settings */
88 1.1 lonewolf NULL, /* init_output */
89 1.1 lonewolf NULL, /* init_input */
90 1.1 lonewolf NULL, /* start_output */
91 1.1 lonewolf NULL, /* start_input */
92 1.1 lonewolf haltwo_halt_output,
93 1.1 lonewolf haltwo_halt_input,
94 1.1 lonewolf NULL, /* speaker_ctl */
95 1.1 lonewolf haltwo_getdev,
96 1.1 lonewolf NULL, /* setfd */
97 1.1 lonewolf haltwo_set_port,
98 1.1 lonewolf haltwo_get_port,
99 1.1 lonewolf haltwo_query_devinfo,
100 1.1 lonewolf haltwo_malloc,
101 1.1 lonewolf haltwo_free,
102 1.1 lonewolf NULL, /* round_buffersize */
103 1.1 lonewolf NULL, /* mappage */
104 1.1 lonewolf haltwo_get_props,
105 1.1 lonewolf haltwo_trigger_output,
106 1.1 lonewolf haltwo_trigger_input,
107 1.1 lonewolf NULL /* dev_ioctl */
108 1.1 lonewolf };
109 1.1 lonewolf
110 1.1 lonewolf static const struct audio_device haltwo_device = {
111 1.1 lonewolf "HAL2",
112 1.1 lonewolf "",
113 1.1 lonewolf "haltwo"
114 1.1 lonewolf };
115 1.1 lonewolf
116 1.1 lonewolf static int haltwo_match(struct device *, struct cfdata *, void *);
117 1.1 lonewolf static void haltwo_attach(struct device *, struct device *, void *);
118 1.1 lonewolf static int haltwo_intr(void *);
119 1.1 lonewolf
120 1.1 lonewolf CFATTACH_DECL(haltwo, sizeof(struct haltwo_softc),
121 1.1 lonewolf haltwo_match, haltwo_attach, NULL, NULL);
122 1.1 lonewolf
123 1.1 lonewolf #define haltwo_write(sc,type,off,val) \
124 1.1 lonewolf bus_space_write_4(sc->sc_st, sc->sc_##type##_sh, off, val)
125 1.1 lonewolf
126 1.1 lonewolf #define haltwo_read(sc,type,off) \
127 1.1 lonewolf bus_space_read_4(sc->sc_st, sc->sc_##type##_sh, off)
128 1.1 lonewolf
129 1.1 lonewolf static void
130 1.1 lonewolf haltwo_write_indirect(struct haltwo_softc *sc, uint32_t ireg, uint16_t low,
131 1.1 lonewolf uint16_t high)
132 1.1 lonewolf {
133 1.1 lonewolf haltwo_write(sc, ctl, HAL2_REG_CTL_IDR0, low);
134 1.1 lonewolf haltwo_write(sc, ctl, HAL2_REG_CTL_IDR1, high);
135 1.1 lonewolf haltwo_write(sc, ctl, HAL2_REG_CTL_IDR2, 0);
136 1.1 lonewolf haltwo_write(sc, ctl, HAL2_REG_CTL_IDR3, 0);
137 1.1 lonewolf haltwo_write(sc, ctl, HAL2_REG_CTL_IAR, ireg);
138 1.1 lonewolf
139 1.1 lonewolf while (haltwo_read(sc, ctl, HAL2_REG_CTL_ISR) & HAL2_ISR_TSTATUS)
140 1.1 lonewolf ;
141 1.1 lonewolf }
142 1.1 lonewolf
143 1.1 lonewolf static void
144 1.1 lonewolf haltwo_read_indirect(struct haltwo_softc *sc, uint32_t ireg, uint16_t *low,
145 1.1 lonewolf uint16_t *high)
146 1.1 lonewolf {
147 1.1 lonewolf haltwo_write(sc, ctl, HAL2_REG_CTL_IAR,
148 1.1 lonewolf ireg | HAL2_IAR_READ);
149 1.1 lonewolf
150 1.1 lonewolf while (haltwo_read(sc, ctl, HAL2_REG_CTL_ISR) & HAL2_ISR_TSTATUS)
151 1.1 lonewolf ;
152 1.1 lonewolf
153 1.1 lonewolf if (low)
154 1.1 lonewolf *low = haltwo_read(sc, ctl, HAL2_REG_CTL_IDR0);
155 1.1 lonewolf
156 1.1 lonewolf if (high)
157 1.1 lonewolf *high = haltwo_read(sc, ctl, HAL2_REG_CTL_IDR1);
158 1.1 lonewolf }
159 1.1 lonewolf
160 1.1 lonewolf static int
161 1.1 lonewolf haltwo_init_codec(struct haltwo_softc *sc, struct haltwo_codec *codec)
162 1.1 lonewolf {
163 1.1 lonewolf int err;
164 1.1 lonewolf int rseg;
165 1.1 lonewolf size_t allocsz = sizeof(struct hpc_dma_desc) * HALTWO_MAX_DMASEGS;
166 1.1 lonewolf
167 1.1 lonewolf KASSERT(allocsz <= PAGE_SIZE);
168 1.1 lonewolf
169 1.1 lonewolf err = bus_dmamem_alloc(sc->sc_dma_tag, allocsz, 0, 0, &codec->dma_seg,
170 1.1 lonewolf 1, &rseg, BUS_DMA_NOWAIT);
171 1.1 lonewolf if (err)
172 1.1 lonewolf goto out;
173 1.1 lonewolf
174 1.1 lonewolf err = bus_dmamem_map(sc->sc_dma_tag, &codec->dma_seg, rseg, allocsz,
175 1.1 lonewolf (caddr_t *)&codec->dma_descs, BUS_DMA_NOWAIT);
176 1.1 lonewolf if (err)
177 1.1 lonewolf goto out_free;
178 1.1 lonewolf
179 1.1 lonewolf err = bus_dmamap_create(sc->sc_dma_tag, allocsz, 1, PAGE_SIZE, 0,
180 1.1 lonewolf BUS_DMA_NOWAIT, &codec->dma_map);
181 1.1 lonewolf if (err)
182 1.1 lonewolf goto out_free;
183 1.1 lonewolf
184 1.1 lonewolf err = bus_dmamap_load(sc->sc_dma_tag, codec->dma_map, codec->dma_descs,
185 1.1 lonewolf allocsz, NULL, BUS_DMA_NOWAIT);
186 1.1 lonewolf if (err)
187 1.1 lonewolf goto out_destroy;
188 1.1 lonewolf
189 1.1 lonewolf DPRINTF(("haltwo_init_codec: allocated %d descriptors (%d bytes)"
190 1.1 lonewolf " at %p\n", HALTWO_MAX_DMASEGS, allocsz, codec->dma_descs));
191 1.1 lonewolf
192 1.1 lonewolf memset(codec->dma_descs, 0, allocsz);
193 1.1 lonewolf
194 1.1 lonewolf return (0);
195 1.1 lonewolf
196 1.1 lonewolf out_destroy:
197 1.1 lonewolf bus_dmamap_destroy(sc->sc_dma_tag, codec->dma_map);
198 1.1 lonewolf out_free:
199 1.1 lonewolf bus_dmamem_free(sc->sc_dma_tag, &codec->dma_seg, rseg);
200 1.1 lonewolf out:
201 1.1 lonewolf DPRINTF(("haltwo_init_codec failed: %d\n",err));
202 1.1 lonewolf
203 1.1 lonewolf return (err);
204 1.1 lonewolf }
205 1.1 lonewolf
206 1.1 lonewolf static void
207 1.1 lonewolf haltwo_setup_dma(struct haltwo_softc *sc, struct haltwo_codec *codec,
208 1.1 lonewolf struct haltwo_dmabuf *dmabuf, size_t len, int blksize,
209 1.1 lonewolf void (*intr)(void *), void *intrarg)
210 1.1 lonewolf {
211 1.1 lonewolf int i;
212 1.1 lonewolf bus_dma_segment_t *segp;
213 1.1 lonewolf struct hpc_dma_desc *descp;
214 1.1 lonewolf int next_intr = blksize;
215 1.1 lonewolf
216 1.1 lonewolf KASSERT(len % blksize == 0);
217 1.1 lonewolf
218 1.1 lonewolf codec->intr = intr;
219 1.1 lonewolf codec->intr_arg = intrarg;
220 1.1 lonewolf
221 1.1 lonewolf segp = dmabuf->dma_map->dm_segs;
222 1.1 lonewolf descp = codec->dma_descs;
223 1.1 lonewolf
224 1.1 lonewolf /* Build descriptor chain for looping DMA, triggering interrupt every
225 1.1 lonewolf * blksize bytes */
226 1.1 lonewolf for (i = 0; i < dmabuf->dma_map->dm_nsegs; i++) {
227 1.1 lonewolf descp->hdd_bufptr = segp->ds_addr;
228 1.1 lonewolf descp->hdd_ctl = segp->ds_len;
229 1.1 lonewolf
230 1.1 lonewolf KASSERT(next_intr >= segp->ds_len);
231 1.1 lonewolf
232 1.1 lonewolf if (next_intr == segp->ds_len) {
233 1.1 lonewolf /* Generate intr after this DMA buffer */
234 1.1 lonewolf descp->hdd_ctl |= HDD_CTL_INTR;
235 1.1 lonewolf next_intr = blksize;
236 1.1 lonewolf }
237 1.1 lonewolf else
238 1.1 lonewolf next_intr -= segp->ds_len;
239 1.1 lonewolf
240 1.1 lonewolf if (i < dmabuf->dma_map->dm_nsegs - 1)
241 1.1 lonewolf descp->hdd_descptr = codec->dma_seg.ds_addr +
242 1.1 lonewolf sizeof(struct hpc_dma_desc) * (i + 1);
243 1.1 lonewolf else
244 1.1 lonewolf descp->hdd_descptr = codec->dma_seg.ds_addr;
245 1.1 lonewolf
246 1.1 lonewolf DPRINTF(("haltwo_setup_dma: hdd_bufptr = %x hdd_ctl = %x"
247 1.1 lonewolf " hdd_descptr = %x\n", descp->hdd_bufptr, descp->hdd_ctl,
248 1.1 lonewolf descp->hdd_descptr));
249 1.1 lonewolf
250 1.1 lonewolf segp++;
251 1.1 lonewolf descp++;
252 1.1 lonewolf }
253 1.1 lonewolf
254 1.1 lonewolf bus_dmamap_sync(sc->sc_dma_tag, codec->dma_map, 0,
255 1.1 lonewolf codec->dma_map->dm_mapsize, BUS_DMASYNC_PREWRITE);
256 1.1 lonewolf }
257 1.1 lonewolf
258 1.1 lonewolf static int
259 1.1 lonewolf haltwo_match(struct device *parent, struct cfdata *cf, void *aux)
260 1.1 lonewolf {
261 1.1 lonewolf struct hpc_attach_args *haa = aux;
262 1.1 lonewolf
263 1.1 lonewolf if (strcmp(haa->ha_name, cf->cf_name) == 0)
264 1.1 lonewolf return (1);
265 1.1 lonewolf
266 1.1 lonewolf return (0);
267 1.1 lonewolf }
268 1.1 lonewolf
269 1.1 lonewolf static void
270 1.1 lonewolf haltwo_attach(struct device *parent, struct device *self, void *aux)
271 1.1 lonewolf {
272 1.1 lonewolf struct haltwo_softc *sc = (void *)self;
273 1.1 lonewolf struct hpc_attach_args *haa = aux;
274 1.1 lonewolf uint32_t rev;
275 1.1 lonewolf
276 1.1 lonewolf sc->sc_st = haa->ha_st;
277 1.1 lonewolf sc->sc_dma_tag = haa->ha_dmat;
278 1.1 lonewolf
279 1.1 lonewolf if (bus_space_subregion(haa->ha_st, haa->ha_sh, haa->ha_devoff,
280 1.1 lonewolf HPC_PBUS_CH0_DEVREGS_SIZE, &sc->sc_ctl_sh)) {
281 1.1 lonewolf aprint_error(": unable to map control registers\n");
282 1.1 lonewolf return;
283 1.1 lonewolf }
284 1.1 lonewolf
285 1.1 lonewolf if (bus_space_subregion(haa->ha_st, haa->ha_sh, HPC_PBUS_CH2_DEVREGS,
286 1.1 lonewolf HPC_PBUS_CH2_DEVREGS_SIZE, &sc->sc_vol_sh)) {
287 1.1 lonewolf aprint_error(": unable to map volume registers\n");
288 1.1 lonewolf return;
289 1.1 lonewolf }
290 1.1 lonewolf
291 1.1 lonewolf if (bus_space_subregion(haa->ha_st, haa->ha_sh, haa->ha_dmaoff,
292 1.1 lonewolf HPC_PBUS_DMAREGS_SIZE, &sc->sc_dma_sh)) {
293 1.1 lonewolf aprint_error(": unable to map DMA registers\n");
294 1.1 lonewolf return;
295 1.1 lonewolf }
296 1.1 lonewolf
297 1.1 lonewolf haltwo_write(sc, ctl, HAL2_REG_CTL_ISR, 0);
298 1.1 lonewolf haltwo_write(sc, ctl, HAL2_REG_CTL_ISR,
299 1.1 lonewolf HAL2_ISR_GLOBAL_RESET_N | HAL2_ISR_CODEC_RESET_N);
300 1.1 lonewolf haltwo_write_indirect(sc, HAL2_IREG_RELAY_C, HAL2_RELAY_C_STATE, 0);
301 1.1 lonewolf
302 1.1 lonewolf rev = haltwo_read(sc, ctl, HAL2_REG_CTL_REV);
303 1.1 lonewolf
304 1.1 lonewolf /* This bit is inverted, the test is correct */
305 1.1 lonewolf if (rev & HAL2_REV_AUDIO_PRESENT_N) {
306 1.1 lonewolf aprint_error(": Audio hardware not present (revision %x)\n",
307 1.1 lonewolf rev);
308 1.1 lonewolf return;
309 1.1 lonewolf }
310 1.1 lonewolf
311 1.1 lonewolf if (cpu_intr_establish(haa->ha_irq, IPL_AUDIO, haltwo_intr, sc)
312 1.1 lonewolf == NULL) {
313 1.1 lonewolf aprint_error(": unable to establish interrupt\n");
314 1.1 lonewolf return;
315 1.1 lonewolf }
316 1.1 lonewolf
317 1.1 lonewolf aprint_naive(": Audio controller\n");
318 1.1 lonewolf
319 1.1 lonewolf aprint_normal(": HAL2 revision %d.%d.%d\n", (rev & 0x7000) >> 12,
320 1.1 lonewolf (rev & 0x00F0) >> 4, rev & 0x000F);
321 1.1 lonewolf
322 1.1 lonewolf if (haltwo_init_codec(sc, &sc->sc_dac)) {
323 1.1 lonewolf aprint_error(
324 1.1 lonewolf "haltwo_attach: unable to create DMA descriptor list\n");
325 1.1 lonewolf return;
326 1.1 lonewolf }
327 1.1 lonewolf
328 1.1 lonewolf /* XXX Magic PBUS CFGDMA values from Linux HAL2 driver XXX */
329 1.1 lonewolf bus_space_write_4(haa->ha_st, haa->ha_sh, HPC_PBUS_CH0_CFGDMA,
330 1.1 lonewolf 0x8208844);
331 1.1 lonewolf bus_space_write_4(haa->ha_st, haa->ha_sh, HPC_PBUS_CH1_CFGDMA,
332 1.1 lonewolf 0x8208844);
333 1.1 lonewolf
334 1.1 lonewolf /* Unmute output */
335 1.1 lonewolf /* XXX Add mute/unmute support to mixer ops? XXX */
336 1.1 lonewolf haltwo_write_indirect(sc, HAL2_IREG_DAC_C2, 0, 0);
337 1.1 lonewolf
338 1.1 lonewolf /* Set master volume to zero */
339 1.1 lonewolf sc->sc_vol_left = sc->sc_vol_right = 0;
340 1.1 lonewolf haltwo_write(sc, vol, HAL2_REG_VOL_LEFT, sc->sc_vol_left);
341 1.1 lonewolf haltwo_write(sc, vol, HAL2_REG_VOL_RIGHT, sc->sc_vol_right);
342 1.1 lonewolf
343 1.1 lonewolf audio_attach_mi(&haltwo_hw_if, sc, &sc->sc_dev);
344 1.1 lonewolf }
345 1.1 lonewolf
346 1.1 lonewolf static int
347 1.1 lonewolf haltwo_intr(void *v)
348 1.1 lonewolf {
349 1.1 lonewolf struct haltwo_softc *sc = v;
350 1.1 lonewolf int ret = 0;
351 1.1 lonewolf
352 1.1 lonewolf if (bus_space_read_4(sc->sc_st, sc->sc_dma_sh, HPC_PBUS_CH0_CTL)
353 1.1 lonewolf & HPC_PBUS_DMACTL_IRQ) {
354 1.1 lonewolf sc->sc_dac.intr(sc->sc_dac.intr_arg);
355 1.1 lonewolf
356 1.1 lonewolf ret = 1;
357 1.1 lonewolf }
358 1.1 lonewolf else
359 1.1 lonewolf DPRINTF(("haltwo_intr: Huh?\n"));
360 1.1 lonewolf
361 1.1 lonewolf return (ret);
362 1.1 lonewolf }
363 1.1 lonewolf
364 1.1 lonewolf static int
365 1.1 lonewolf haltwo_open(void *v, int flags)
366 1.1 lonewolf {
367 1.1 lonewolf DPRINTF(("haltwo_open flags = %x\n", flags));
368 1.1 lonewolf
369 1.1 lonewolf return (0);
370 1.1 lonewolf }
371 1.1 lonewolf
372 1.1 lonewolf static void
373 1.1 lonewolf haltwo_close(void *v)
374 1.1 lonewolf {
375 1.1 lonewolf }
376 1.1 lonewolf
377 1.1 lonewolf static int
378 1.1 lonewolf haltwo_query_encoding(void *v, struct audio_encoding *e)
379 1.1 lonewolf {
380 1.1 lonewolf switch (e->index) {
381 1.1 lonewolf case 0:
382 1.1 lonewolf strcpy(e->name, AudioEslinear_le);
383 1.1 lonewolf e->encoding = AUDIO_ENCODING_SLINEAR_LE;
384 1.1 lonewolf e->precision = 16;
385 1.1 lonewolf e->flags = 0;
386 1.1 lonewolf break;
387 1.1 lonewolf
388 1.1 lonewolf case 1:
389 1.1 lonewolf strcpy(e->name, AudioEslinear_be);
390 1.1 lonewolf e->encoding = AUDIO_ENCODING_SLINEAR_BE;
391 1.1 lonewolf e->precision = 16;
392 1.1 lonewolf e->flags = 0;
393 1.1 lonewolf break;
394 1.1 lonewolf
395 1.1 lonewolf case 2:
396 1.1 lonewolf strcpy(e->name, AudioEmulaw);
397 1.1 lonewolf e->encoding = AUDIO_ENCODING_ULAW;
398 1.1 lonewolf e->precision = 8;
399 1.1 lonewolf e->flags = AUDIO_ENCODINGFLAG_EMULATED;
400 1.1 lonewolf break;
401 1.1 lonewolf
402 1.1 lonewolf default:
403 1.1 lonewolf return (EINVAL);
404 1.1 lonewolf }
405 1.1 lonewolf
406 1.1 lonewolf return (0);
407 1.1 lonewolf }
408 1.1 lonewolf
409 1.1 lonewolf static int
410 1.1 lonewolf haltwo_set_params(void *v, int setmode, int usemode, struct audio_params *play,
411 1.1 lonewolf struct audio_params *rec)
412 1.1 lonewolf {
413 1.1 lonewolf struct haltwo_softc *sc = v;
414 1.1 lonewolf int master, inc, mod;
415 1.1 lonewolf uint16_t tmp;
416 1.1 lonewolf
417 1.1 lonewolf if (play->hw_sample_rate < 4000)
418 1.1 lonewolf play->hw_sample_rate = 4000;
419 1.1 lonewolf if (play->hw_sample_rate > 48000)
420 1.1 lonewolf play->hw_sample_rate = 48000;
421 1.1 lonewolf
422 1.1 lonewolf play->sw_code = NULL;
423 1.1 lonewolf play->factor = 1;
424 1.1 lonewolf play->factor_denom = 1;
425 1.1 lonewolf
426 1.1 lonewolf switch (play->encoding) {
427 1.1 lonewolf case AUDIO_ENCODING_ULAW:
428 1.1 lonewolf if (play->precision != 8)
429 1.1 lonewolf return (EINVAL);
430 1.1 lonewolf
431 1.1 lonewolf play->sw_code = mulaw_to_slinear16_le;
432 1.1 lonewolf play->factor = 2;
433 1.1 lonewolf play->hw_encoding = AUDIO_ENCODING_SLINEAR_LE;
434 1.1 lonewolf break;
435 1.1 lonewolf case AUDIO_ENCODING_SLINEAR_BE:
436 1.1 lonewolf case AUDIO_ENCODING_SLINEAR_LE:
437 1.1 lonewolf break;
438 1.1 lonewolf
439 1.1 lonewolf default:
440 1.1 lonewolf return (EINVAL);
441 1.1 lonewolf }
442 1.1 lonewolf
443 1.1 lonewolf if (44100 % play->hw_sample_rate < 48000 % play->hw_sample_rate)
444 1.1 lonewolf master = 44100;
445 1.1 lonewolf else
446 1.1 lonewolf master = 48000;
447 1.1 lonewolf
448 1.1 lonewolf /* HAL2 specification 3.1.2.21: Codecs should be driven with INC/MOD
449 1.1 lonewolf * fractions equivalent to 4/N, where N is a positive integer. */
450 1.1 lonewolf inc = 4;
451 1.1 lonewolf mod = master * inc / play->hw_sample_rate;
452 1.1 lonewolf
453 1.1 lonewolf /* Fixup upper layers idea of HW sample rate to the actual final rate */
454 1.1 lonewolf play->hw_sample_rate = master * inc / mod;
455 1.1 lonewolf
456 1.1 lonewolf DPRINTF(("haltwo_set_params: master = %d inc = %d mod = %d"
457 1.1 lonewolf " hw_sample_rate = %ld\n", master, inc, mod,
458 1.1 lonewolf play->hw_sample_rate));
459 1.1 lonewolf
460 1.1 lonewolf /* Setup samplerate to HW */
461 1.1 lonewolf haltwo_write_indirect(sc, HAL2_IREG_BRES1_C1,
462 1.1 lonewolf master == 44100 ? 1 : 0, 0);
463 1.1 lonewolf /* XXX Documentation disagrees but this seems to work XXX */
464 1.1 lonewolf haltwo_write_indirect(sc, HAL2_IREG_BRES1_C2,
465 1.1 lonewolf inc, 0xFFFF & (inc - mod - 1));
466 1.1 lonewolf
467 1.1 lonewolf /* Setup endianness to HW */
468 1.1 lonewolf haltwo_read_indirect(sc, HAL2_IREG_DMA_END, &tmp, NULL);
469 1.1 lonewolf if (play->hw_encoding == AUDIO_ENCODING_SLINEAR_LE)
470 1.1 lonewolf tmp |= HAL2_DMA_END_CODECTX;
471 1.1 lonewolf else
472 1.1 lonewolf tmp &= ~HAL2_DMA_END_CODECTX;
473 1.1 lonewolf haltwo_write_indirect(sc, HAL2_IREG_DMA_END, tmp, 0);
474 1.1 lonewolf
475 1.1 lonewolf /* Set PBUS channel, Bresenham clock source, number of channels to HW */
476 1.1 lonewolf haltwo_write_indirect(sc, HAL2_IREG_DAC_C1,
477 1.1 lonewolf (0 << HAL2_C1_DMA_SHIFT) |
478 1.1 lonewolf (1 << HAL2_C1_CLKID_SHIFT) |
479 1.1 lonewolf (play->hw_channels << HAL2_C1_DATAT_SHIFT), 0);
480 1.1 lonewolf
481 1.1 lonewolf DPRINTF(("haltwo_set_params: hw_encoding = %d hw_channels = %d\n",
482 1.1 lonewolf play->hw_encoding, play->hw_channels));
483 1.1 lonewolf
484 1.1 lonewolf return (0);
485 1.1 lonewolf }
486 1.1 lonewolf
487 1.1 lonewolf static int
488 1.1 lonewolf haltwo_round_blocksize(void *v,int blocksize)
489 1.1 lonewolf {
490 1.1 lonewolf /* XXX Make this smarter and support DMA descriptor chaining XXX */
491 1.1 lonewolf /* XXX Rounding to nearest PAGE_SIZE might work? XXX */
492 1.1 lonewolf return PAGE_SIZE;
493 1.1 lonewolf }
494 1.1 lonewolf
495 1.1 lonewolf static int
496 1.1 lonewolf haltwo_halt_output(void *v)
497 1.1 lonewolf {
498 1.1 lonewolf struct haltwo_softc *sc = v;
499 1.1 lonewolf
500 1.1 lonewolf /* Disable PBUS DMA */
501 1.1 lonewolf bus_space_write_4(sc->sc_st, sc->sc_dma_sh, HPC_PBUS_CH0_CTL,
502 1.1 lonewolf HPC_PBUS_DMACTL_ACT_LD);
503 1.1 lonewolf
504 1.1 lonewolf return (0);
505 1.1 lonewolf }
506 1.1 lonewolf
507 1.1 lonewolf static int
508 1.1 lonewolf haltwo_halt_input(void *v)
509 1.1 lonewolf {
510 1.1 lonewolf return (ENXIO);
511 1.1 lonewolf }
512 1.1 lonewolf
513 1.1 lonewolf static int
514 1.1 lonewolf haltwo_getdev(void *v, struct audio_device *dev)
515 1.1 lonewolf {
516 1.1 lonewolf *dev = haltwo_device;
517 1.1 lonewolf
518 1.1 lonewolf return (0);
519 1.1 lonewolf }
520 1.1 lonewolf
521 1.1 lonewolf static int
522 1.1 lonewolf haltwo_set_port(void *v, mixer_ctrl_t *mc)
523 1.1 lonewolf {
524 1.1 lonewolf struct haltwo_softc *sc = v;
525 1.1 lonewolf int lval, rval;
526 1.1 lonewolf
527 1.1 lonewolf if (mc->type != AUDIO_MIXER_VALUE)
528 1.1 lonewolf return (EINVAL);
529 1.1 lonewolf
530 1.1 lonewolf if (mc->un.value.num_channels == 1)
531 1.1 lonewolf lval = rval = mc->un.value.level[AUDIO_MIXER_LEVEL_MONO];
532 1.1 lonewolf else if (mc->un.value.num_channels == 2) {
533 1.1 lonewolf lval = mc->un.value.level[AUDIO_MIXER_LEVEL_LEFT];
534 1.1 lonewolf rval = mc->un.value.level[AUDIO_MIXER_LEVEL_RIGHT];
535 1.1 lonewolf } else
536 1.1 lonewolf return (EINVAL);
537 1.1 lonewolf
538 1.1 lonewolf switch (mc->dev) {
539 1.1 lonewolf case HALTWO_MASTER_VOL:
540 1.1 lonewolf sc->sc_vol_left = lval;
541 1.1 lonewolf sc->sc_vol_right = rval;
542 1.1 lonewolf
543 1.1 lonewolf haltwo_write(sc, vol, HAL2_REG_VOL_LEFT,
544 1.1 lonewolf sc->sc_vol_left);
545 1.1 lonewolf haltwo_write(sc, vol, HAL2_REG_VOL_RIGHT,
546 1.1 lonewolf sc->sc_vol_right);
547 1.1 lonewolf break;
548 1.1 lonewolf
549 1.1 lonewolf default:
550 1.1 lonewolf return (EINVAL);
551 1.1 lonewolf }
552 1.1 lonewolf
553 1.1 lonewolf return (0);
554 1.1 lonewolf }
555 1.1 lonewolf
556 1.1 lonewolf static int
557 1.1 lonewolf haltwo_get_port(void *v, mixer_ctrl_t *mc)
558 1.1 lonewolf {
559 1.1 lonewolf struct haltwo_softc *sc = v;
560 1.1 lonewolf int l, r;
561 1.1 lonewolf
562 1.1 lonewolf switch (mc->dev) {
563 1.1 lonewolf case HALTWO_MASTER_VOL:
564 1.1 lonewolf l = sc->sc_vol_left;
565 1.1 lonewolf r = sc->sc_vol_right;
566 1.1 lonewolf break;
567 1.1 lonewolf
568 1.1 lonewolf default:
569 1.1 lonewolf return (EINVAL);
570 1.1 lonewolf }
571 1.1 lonewolf
572 1.1 lonewolf if (mc->un.value.num_channels == 1)
573 1.1 lonewolf mc->un.value.level[AUDIO_MIXER_LEVEL_MONO] = (l+r) / 2;
574 1.1 lonewolf else if (mc->un.value.num_channels == 2) {
575 1.1 lonewolf mc->un.value.level[AUDIO_MIXER_LEVEL_LEFT] = l;
576 1.1 lonewolf mc->un.value.level[AUDIO_MIXER_LEVEL_RIGHT] = r;
577 1.1 lonewolf } else
578 1.1 lonewolf return (EINVAL);
579 1.1 lonewolf
580 1.1 lonewolf return (0);
581 1.1 lonewolf }
582 1.1 lonewolf
583 1.1 lonewolf static int
584 1.1 lonewolf haltwo_query_devinfo(void *v, mixer_devinfo_t *dev)
585 1.1 lonewolf {
586 1.1 lonewolf switch (dev->index) {
587 1.1 lonewolf /* Mixer values */
588 1.1 lonewolf case HALTWO_MASTER_VOL:
589 1.1 lonewolf dev->type = AUDIO_MIXER_VALUE;
590 1.1 lonewolf dev->mixer_class = HALTWO_OUTPUT_CLASS;
591 1.1 lonewolf dev->prev = dev->next = AUDIO_MIXER_LAST;
592 1.1 lonewolf strcpy(dev->label.name, AudioNmaster);
593 1.1 lonewolf dev->un.v.num_channels = 2;
594 1.1 lonewolf strcpy(dev->un.v.units.name, AudioNvolume);
595 1.1 lonewolf break;
596 1.1 lonewolf
597 1.1 lonewolf /* Mixer classes */
598 1.1 lonewolf case HALTWO_OUTPUT_CLASS:
599 1.1 lonewolf dev->type = AUDIO_MIXER_CLASS;
600 1.1 lonewolf dev->mixer_class = HALTWO_OUTPUT_CLASS;
601 1.1 lonewolf dev->next = dev->prev = AUDIO_MIXER_LAST;
602 1.1 lonewolf strcpy(dev->label.name, AudioCoutputs);
603 1.1 lonewolf break;
604 1.1 lonewolf
605 1.1 lonewolf default:
606 1.1 lonewolf return (EINVAL);
607 1.1 lonewolf }
608 1.1 lonewolf
609 1.1 lonewolf return (0);
610 1.1 lonewolf }
611 1.1 lonewolf
612 1.1 lonewolf static int
613 1.1 lonewolf haltwo_alloc_dmamem(struct haltwo_softc *sc, size_t size,
614 1.1 lonewolf struct haltwo_dmabuf *p)
615 1.1 lonewolf {
616 1.1 lonewolf int err;
617 1.1 lonewolf
618 1.1 lonewolf p->size = size;
619 1.1 lonewolf
620 1.1 lonewolf /* XXX Check align/boundary XXX */
621 1.1 lonewolf /* XXX Pass flags and use them instead BUS_DMA_NOWAIT? XXX */
622 1.1 lonewolf err = bus_dmamem_alloc(sc->sc_dma_tag, p->size, 0, 0, p->dma_segs,
623 1.1 lonewolf HALTWO_MAX_DMASEGS, &p->dma_segcount, BUS_DMA_NOWAIT);
624 1.1 lonewolf if (err)
625 1.1 lonewolf goto out;
626 1.1 lonewolf
627 1.1 lonewolf /* XXX BUS_DMA_COHERENT? XXX */
628 1.1 lonewolf err = bus_dmamem_map(sc->sc_dma_tag, p->dma_segs, p->dma_segcount,
629 1.1 lonewolf p->size, &p->kern_addr, BUS_DMA_NOWAIT | BUS_DMA_COHERENT);
630 1.1 lonewolf if (err)
631 1.1 lonewolf goto out_free;
632 1.1 lonewolf
633 1.1 lonewolf /* XXX Just guessing ... XXX */
634 1.1 lonewolf err = bus_dmamap_create(sc->sc_dma_tag, p->size, HALTWO_MAX_DMASEGS,
635 1.1 lonewolf PAGE_SIZE, 0, BUS_DMA_NOWAIT, &p->dma_map);
636 1.1 lonewolf if (err)
637 1.1 lonewolf goto out_free;
638 1.1 lonewolf
639 1.1 lonewolf err = bus_dmamap_load(sc->sc_dma_tag, p->dma_map, p->kern_addr,
640 1.1 lonewolf p->size, NULL, BUS_DMA_NOWAIT);
641 1.1 lonewolf if (err)
642 1.1 lonewolf goto out_destroy;
643 1.1 lonewolf
644 1.1 lonewolf return 0;
645 1.1 lonewolf
646 1.1 lonewolf out_destroy:
647 1.1 lonewolf bus_dmamap_destroy(sc->sc_dma_tag, p->dma_map);
648 1.1 lonewolf out_free:
649 1.1 lonewolf bus_dmamem_free(sc->sc_dma_tag, p->dma_segs, p->dma_segcount);
650 1.1 lonewolf out:
651 1.1 lonewolf DPRINTF(("haltwo_alloc_dmamem failed: %d\n",err));
652 1.1 lonewolf
653 1.1 lonewolf return err;
654 1.1 lonewolf }
655 1.1 lonewolf
656 1.1 lonewolf static void *
657 1.1 lonewolf haltwo_malloc(void *v, int direction, size_t size, struct malloc_type *type,
658 1.1 lonewolf int flags)
659 1.1 lonewolf {
660 1.1 lonewolf struct haltwo_softc *sc = v;
661 1.1 lonewolf struct haltwo_dmabuf *p;
662 1.1 lonewolf
663 1.1 lonewolf DPRINTF(("haltwo_malloc size = %d\n", size));
664 1.1 lonewolf
665 1.1 lonewolf p = malloc(sizeof(struct haltwo_dmabuf), type, flags);
666 1.1 lonewolf if (!p)
667 1.1 lonewolf return 0;
668 1.1 lonewolf
669 1.1 lonewolf if (haltwo_alloc_dmamem(sc, size, p)) {
670 1.1 lonewolf free(p, type);
671 1.1 lonewolf return 0;
672 1.1 lonewolf }
673 1.1 lonewolf
674 1.1 lonewolf p->next = sc->sc_dma_bufs;
675 1.1 lonewolf sc->sc_dma_bufs = p;
676 1.1 lonewolf
677 1.1 lonewolf return p->kern_addr;
678 1.1 lonewolf }
679 1.1 lonewolf
680 1.1 lonewolf static void
681 1.1 lonewolf haltwo_free(void *v, void *addr, struct malloc_type *type)
682 1.1 lonewolf {
683 1.1 lonewolf struct haltwo_softc *sc = v;
684 1.1 lonewolf struct haltwo_dmabuf *p,**pp;
685 1.1 lonewolf
686 1.1 lonewolf for (pp = &sc->sc_dma_bufs; (p = *pp) != NULL; pp = &p->next) {
687 1.1 lonewolf if (p->kern_addr == addr) {
688 1.1 lonewolf *pp = p->next;
689 1.1 lonewolf free(p, type);
690 1.1 lonewolf return;
691 1.1 lonewolf }
692 1.1 lonewolf }
693 1.1 lonewolf
694 1.1 lonewolf panic("haltwo_free: buffer not in list");
695 1.1 lonewolf }
696 1.1 lonewolf
697 1.1 lonewolf static int
698 1.1 lonewolf haltwo_get_props(void *v)
699 1.1 lonewolf {
700 1.1 lonewolf return (0);
701 1.1 lonewolf }
702 1.1 lonewolf
703 1.1 lonewolf static int
704 1.1 lonewolf haltwo_trigger_output(void *v, void *start, void *end, int blksize,
705 1.1 lonewolf void (*intr)(void *), void *intrarg, struct audio_params *param)
706 1.1 lonewolf {
707 1.1 lonewolf struct haltwo_softc *sc = v;
708 1.1 lonewolf struct haltwo_dmabuf *p;
709 1.1 lonewolf uint16_t tmp;
710 1.1 lonewolf uint32_t ctrl;
711 1.1 lonewolf unsigned int fifobeg, fifoend, highwater;
712 1.1 lonewolf
713 1.1 lonewolf DPRINTF(("haltwo_trigger_output start = %p end = %p blksize = %d"
714 1.1 lonewolf " param = %p\n", start, end, blksize, param));
715 1.1 lonewolf
716 1.1 lonewolf for (p = sc->sc_dma_bufs; p != NULL; p = p->next)
717 1.1 lonewolf if (p->kern_addr == start)
718 1.1 lonewolf break;
719 1.1 lonewolf
720 1.1 lonewolf if (p == NULL) {
721 1.1 lonewolf printf("haltwo_trigger_output: buffer not in list\n");
722 1.1 lonewolf
723 1.1 lonewolf return (EINVAL);
724 1.1 lonewolf }
725 1.1 lonewolf
726 1.1 lonewolf /* Disable PBUS DMA */
727 1.1 lonewolf bus_space_write_4(sc->sc_st, sc->sc_dma_sh, HPC_PBUS_CH0_CTL,
728 1.1 lonewolf HPC_PBUS_DMACTL_ACT_LD);
729 1.1 lonewolf
730 1.1 lonewolf /* Disable HAL2 codec DMA */
731 1.1 lonewolf haltwo_read_indirect(sc, HAL2_IREG_DMA_PORT_EN, &tmp, NULL);
732 1.1 lonewolf haltwo_write_indirect(sc, HAL2_IREG_DMA_PORT_EN,
733 1.1 lonewolf tmp & ~HAL2_DMA_PORT_EN_CODECTX, 0);
734 1.1 lonewolf
735 1.1 lonewolf haltwo_setup_dma(sc, &sc->sc_dac, p, (char *)end - (char *)start,
736 1.1 lonewolf blksize, intr, intrarg);
737 1.1 lonewolf
738 1.1 lonewolf highwater = (param->hw_channels * 4) >> 1;
739 1.1 lonewolf fifobeg = 0;
740 1.1 lonewolf fifoend = (param->hw_channels * 8) >> 3;
741 1.1 lonewolf
742 1.1 lonewolf DPRINTF(("haltwo_trigger_output: hw_channels = %d highwater = %d"
743 1.1 lonewolf " fifobeg = %d fifoend = %d\n", param->hw_channels, highwater,
744 1.1 lonewolf fifobeg, fifoend));
745 1.1 lonewolf
746 1.1 lonewolf ctrl = HPC_PBUS_DMACTL_RT
747 1.1 lonewolf | HPC_PBUS_DMACTL_ACT_LD
748 1.1 lonewolf | (highwater << HPC_PBUS_DMACTL_HIGHWATER_SHIFT)
749 1.1 lonewolf | (fifobeg << HPC_PBUS_DMACTL_FIFOBEG_SHIFT)
750 1.1 lonewolf | (fifoend << HPC_PBUS_DMACTL_FIFOEND_SHIFT);
751 1.1 lonewolf
752 1.1 lonewolf /* Using PBUS CH0 for DAC DMA */
753 1.1 lonewolf haltwo_write_indirect(sc, HAL2_IREG_DMA_DRV, 1, 0);
754 1.1 lonewolf
755 1.1 lonewolf /* HAL2 is ready for action, now setup PBUS for DMA transfer */
756 1.1 lonewolf bus_space_write_4(sc->sc_st, sc->sc_dma_sh, HPC_PBUS_CH0_DP,
757 1.1 lonewolf sc->sc_dac.dma_seg.ds_addr);
758 1.1 lonewolf bus_space_write_4(sc->sc_st, sc->sc_dma_sh, HPC_PBUS_CH0_CTL,
759 1.1 lonewolf ctrl | HPC_PBUS_DMACTL_ACT);
760 1.1 lonewolf
761 1.1 lonewolf /* Both HAL2 and PBUS have been setup, now start it up */
762 1.1 lonewolf haltwo_read_indirect(sc, HAL2_IREG_DMA_PORT_EN, &tmp, NULL);
763 1.1 lonewolf haltwo_write_indirect(sc, HAL2_IREG_DMA_PORT_EN,
764 1.1 lonewolf tmp | HAL2_DMA_PORT_EN_CODECTX, 0);
765 1.1 lonewolf
766 1.1 lonewolf return (0);
767 1.1 lonewolf }
768 1.1 lonewolf
769 1.1 lonewolf static int
770 1.1 lonewolf haltwo_trigger_input(void *v, void *start, void *end, int blksize,
771 1.1 lonewolf void (*intr)(void *), void *intrarg, struct audio_params *param)
772 1.1 lonewolf {
773 1.1 lonewolf struct haltwo_softc *sc = v;
774 1.1 lonewolf struct haltwo_dmabuf *p;
775 1.1 lonewolf
776 1.1 lonewolf DPRINTF(("haltwo_trigger_input start = %p end = %p blksize = %d\n",
777 1.1 lonewolf start, end, blksize));
778 1.1 lonewolf
779 1.1 lonewolf for (p = sc->sc_dma_bufs; p != NULL; p = p->next)
780 1.1 lonewolf if (p->kern_addr == start)
781 1.1 lonewolf break;
782 1.1 lonewolf
783 1.1 lonewolf if (p == NULL) {
784 1.1 lonewolf printf("haltwo_trigger_input: buffer not in list\n");
785 1.1 lonewolf
786 1.1 lonewolf return (EINVAL);
787 1.1 lonewolf }
788 1.1 lonewolf
789 1.1 lonewolf #if 0
790 1.1 lonewolf haltwo_setup_dma(sc, &sc->sc_adc, p, (char *)end - (char *)start,
791 1.1 lonewolf blksize, intr, intrarg);
792 1.1 lonewolf #endif
793 1.1 lonewolf
794 1.1 lonewolf return (ENXIO);
795 1.1 lonewolf }
796