esa.c revision 1.6 1 1.6 jmcneill /* $NetBSD: esa.c,v 1.6 2002/01/13 15:07:28 jmcneill Exp $ */
2 1.1 jmcneill
3 1.1 jmcneill /*
4 1.1 jmcneill * Copyright (c) 2001, 2002 Jared D. McNeill <jmcneill (at) invisible.yi.org>
5 1.1 jmcneill * All rights reserved.
6 1.1 jmcneill *
7 1.1 jmcneill * Redistribution and use in source and binary forms, with or without
8 1.1 jmcneill * modification, are permitted provided that the following conditions
9 1.1 jmcneill * are met:
10 1.1 jmcneill * 1. Redistributions of source code must retain the above copyright
11 1.1 jmcneill * notice, this list of conditions and the following disclaimer.
12 1.1 jmcneill * 2. The name of the author may not be used to endorse or promote products
13 1.1 jmcneill * derived from this software without specific prior written permission.
14 1.1 jmcneill *
15 1.1 jmcneill * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
16 1.1 jmcneill * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
17 1.1 jmcneill * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
18 1.1 jmcneill * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
19 1.1 jmcneill * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING,
20 1.1 jmcneill * BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES;
21 1.1 jmcneill * LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED
22 1.1 jmcneill * AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY,
23 1.1 jmcneill * OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
24 1.1 jmcneill * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
25 1.1 jmcneill * SUCH DAMAGE.
26 1.1 jmcneill */
27 1.1 jmcneill
28 1.1 jmcneill /*
29 1.1 jmcneill * ESS Allegro-1 / Maestro3 Audio Driver
30 1.1 jmcneill *
31 1.1 jmcneill * Based on the FreeBSD maestro3 driver and the NetBSD eap driver.
32 1.2 augustss * Original driver by Don Kim.
33 1.1 jmcneill */
34 1.1 jmcneill
35 1.1 jmcneill #include <sys/types.h>
36 1.1 jmcneill #include <sys/errno.h>
37 1.1 jmcneill #include <sys/null.h>
38 1.1 jmcneill #include <sys/param.h>
39 1.1 jmcneill #include <sys/systm.h>
40 1.1 jmcneill #include <sys/malloc.h>
41 1.1 jmcneill #include <sys/device.h>
42 1.1 jmcneill #include <sys/conf.h>
43 1.1 jmcneill #include <sys/exec.h>
44 1.1 jmcneill #include <sys/select.h>
45 1.1 jmcneill #include <sys/audioio.h>
46 1.1 jmcneill
47 1.1 jmcneill #include <machine/bus.h>
48 1.1 jmcneill #include <machine/intr.h>
49 1.1 jmcneill
50 1.1 jmcneill #include <dev/pci/pcidevs.h>
51 1.1 jmcneill #include <dev/pci/pcivar.h>
52 1.1 jmcneill
53 1.1 jmcneill #include <dev/audio_if.h>
54 1.1 jmcneill #include <dev/mulaw.h>
55 1.1 jmcneill #include <dev/auconv.h>
56 1.1 jmcneill #include <dev/ic/ac97var.h>
57 1.1 jmcneill #include <dev/ic/ac97reg.h>
58 1.1 jmcneill
59 1.1 jmcneill
60 1.1 jmcneill #include <dev/pci/esareg.h>
61 1.1 jmcneill #include <dev/pci/esadsp.h>
62 1.1 jmcneill #include <dev/pci/esavar.h>
63 1.1 jmcneill
64 1.1 jmcneill #define PCI_CBIO 0x10
65 1.1 jmcneill
66 1.1 jmcneill #define ESA_DAC_DATA 0x1100
67 1.1 jmcneill
68 1.1 jmcneill enum {
69 1.1 jmcneill ESS_ALLEGRO1,
70 1.1 jmcneill ESS_MAESTRO3
71 1.1 jmcneill };
72 1.1 jmcneill
73 1.1 jmcneill static struct esa_card_type {
74 1.1 jmcneill u_int16_t pci_vendor_id;
75 1.1 jmcneill u_int16_t pci_product_id;
76 1.1 jmcneill int type;
77 1.1 jmcneill int delay1, delay2;
78 1.1 jmcneill } esa_card_types[] = {
79 1.1 jmcneill { PCI_VENDOR_ESSTECH, PCI_PRODUCT_ESSTECH_ALLEGRO1,
80 1.1 jmcneill ESS_ALLEGRO1, 50, 800 },
81 1.1 jmcneill { PCI_VENDOR_ESSTECH, PCI_PRODUCT_ESSTECH_MAESTRO3,
82 1.1 jmcneill ESS_MAESTRO3, 20, 500 },
83 1.1 jmcneill { PCI_VENDOR_ESSTECH, PCI_PRODUCT_ESSTECH_MAESTRO3_2,
84 1.1 jmcneill ESS_MAESTRO3, 20, 500 },
85 1.1 jmcneill { 0, 0, 0, 0, 0 }
86 1.1 jmcneill };
87 1.1 jmcneill
88 1.1 jmcneill struct audio_device esa_device = {
89 1.1 jmcneill "ESS Allegro",
90 1.1 jmcneill "",
91 1.1 jmcneill "esa"
92 1.1 jmcneill };
93 1.1 jmcneill
94 1.1 jmcneill int esa_match(struct device *, struct cfdata *, void *);
95 1.1 jmcneill void esa_attach(struct device *, struct device *, void *);
96 1.1 jmcneill int esa_detach(struct device *, int);
97 1.1 jmcneill
98 1.1 jmcneill /* audio(9) functions */
99 1.1 jmcneill int esa_open(void *, int);
100 1.1 jmcneill void esa_close(void *);
101 1.1 jmcneill int esa_query_encoding(void *, struct audio_encoding *);
102 1.1 jmcneill int esa_set_params(void *, int, int, struct audio_params *,
103 1.1 jmcneill struct audio_params *);
104 1.1 jmcneill int esa_round_blocksize(void *, int);
105 1.1 jmcneill int esa_init_output(void *, void *, int);
106 1.1 jmcneill int esa_halt_output(void *);
107 1.1 jmcneill int esa_halt_input(void *);
108 1.1 jmcneill int esa_set_port(void *, mixer_ctrl_t *);
109 1.1 jmcneill int esa_get_port(void *, mixer_ctrl_t *);
110 1.1 jmcneill int esa_query_devinfo(void *, mixer_devinfo_t *);
111 1.1 jmcneill void * esa_malloc(void *, int, size_t, int, int);
112 1.1 jmcneill void esa_free(void *, void *, int);
113 1.1 jmcneill int esa_getdev(void *, struct audio_device *);
114 1.1 jmcneill size_t esa_round_buffersize(void *, int, size_t);
115 1.1 jmcneill int esa_get_props(void *);
116 1.1 jmcneill int esa_trigger_output(void *, void *, void *, int,
117 1.1 jmcneill void (*)(void *), void *,
118 1.1 jmcneill struct audio_params *);
119 1.1 jmcneill int esa_trigger_input(void *, void *, void *, int,
120 1.1 jmcneill void (*)(void *), void *,
121 1.1 jmcneill struct audio_params *);
122 1.1 jmcneill
123 1.1 jmcneill int esa_intr(void *);
124 1.1 jmcneill int esa_allocmem(struct esa_softc *, size_t, size_t,
125 1.1 jmcneill struct esa_dma *);
126 1.1 jmcneill int esa_freemem(struct esa_softc *, struct esa_dma *);
127 1.1 jmcneill paddr_t esa_mappage(void *addr, void *mem, off_t off, int prot);
128 1.1 jmcneill
129 1.1 jmcneill /* Supporting subroutines */
130 1.1 jmcneill u_int16_t esa_read_assp(struct esa_softc *, u_int16_t, u_int16_t);
131 1.1 jmcneill void esa_write_assp(struct esa_softc *, u_int16_t, u_int16_t,
132 1.1 jmcneill u_int16_t);
133 1.1 jmcneill int esa_init_codec(struct esa_softc *);
134 1.1 jmcneill int esa_attach_codec(void *, struct ac97_codec_if *);
135 1.1 jmcneill int esa_read_codec(void *, u_int8_t, u_int16_t *);
136 1.1 jmcneill int esa_write_codec(void *, u_int8_t, u_int16_t);
137 1.1 jmcneill void esa_reset_codec(void *);
138 1.1 jmcneill enum ac97_host_flags esa_flags_codec(void *);
139 1.1 jmcneill int esa_wait(struct esa_softc *);
140 1.1 jmcneill int esa_init(struct esa_softc *);
141 1.1 jmcneill void esa_config(struct esa_softc *);
142 1.1 jmcneill u_int8_t esa_assp_halt(struct esa_softc *);
143 1.1 jmcneill void esa_codec_reset(struct esa_softc *);
144 1.1 jmcneill int esa_amp_enable(struct esa_softc *);
145 1.1 jmcneill void esa_enable_interrupts(struct esa_softc *);
146 1.4 pooka u_int32_t esa_get_pointer(struct esa_softc *, struct esa_channel *);
147 1.4 pooka
148 1.4 pooka /* power management */
149 1.1 jmcneill int esa_power(struct esa_softc *, int);
150 1.4 pooka void esa_powerhook(int, void *);
151 1.4 pooka int esa_suspend(struct esa_softc *);
152 1.4 pooka int esa_resume(struct esa_softc *);
153 1.1 jmcneill
154 1.1 jmcneill struct device * audio_attach_mi_lkm(struct audio_hw_if *, void *,
155 1.1 jmcneill struct device *);
156 1.1 jmcneill
157 1.1 jmcneill static audio_encoding_t esa_encoding[] = {
158 1.1 jmcneill { 0, AudioEulinear, AUDIO_ENCODING_ULINEAR, 8, 0 },
159 1.1 jmcneill { 1, AudioEmulaw, AUDIO_ENCODING_ULAW, 8,
160 1.1 jmcneill AUDIO_ENCODINGFLAG_EMULATED },
161 1.1 jmcneill { 2, AudioEalaw, AUDIO_ENCODING_ALAW, 8, AUDIO_ENCODINGFLAG_EMULATED },
162 1.1 jmcneill { 3, AudioEslinear, AUDIO_ENCODING_SLINEAR, 8,
163 1.1 jmcneill AUDIO_ENCODINGFLAG_EMULATED }, /* XXX: Are you sure? */
164 1.1 jmcneill { 4, AudioEslinear_le, AUDIO_ENCODING_SLINEAR_LE, 16, 0 },
165 1.1 jmcneill { 5, AudioEulinear_le, AUDIO_ENCODING_ULINEAR_LE, 16,
166 1.1 jmcneill AUDIO_ENCODINGFLAG_EMULATED },
167 1.1 jmcneill { 6, AudioEslinear_be, AUDIO_ENCODING_SLINEAR_BE, 16,
168 1.1 jmcneill AUDIO_ENCODINGFLAG_EMULATED },
169 1.1 jmcneill { 7, AudioEulinear_be, AUDIO_ENCODING_ULINEAR_BE, 16,
170 1.1 jmcneill AUDIO_ENCODINGFLAG_EMULATED }
171 1.1 jmcneill };
172 1.1 jmcneill
173 1.1 jmcneill #define ESA_NENCODINGS 8
174 1.1 jmcneill
175 1.1 jmcneill struct audio_hw_if esa_hw_if = {
176 1.1 jmcneill esa_open,
177 1.1 jmcneill esa_close,
178 1.1 jmcneill NULL, /* drain */
179 1.1 jmcneill esa_query_encoding,
180 1.1 jmcneill esa_set_params,
181 1.1 jmcneill esa_round_blocksize,
182 1.1 jmcneill NULL, /* commit_settings */
183 1.1 jmcneill esa_init_output,
184 1.1 jmcneill NULL, /* esa_init_input */
185 1.1 jmcneill NULL, /* start_output */
186 1.1 jmcneill NULL, /* start_input */
187 1.1 jmcneill esa_halt_output,
188 1.1 jmcneill esa_halt_input,
189 1.1 jmcneill NULL, /* speaker_ctl */
190 1.1 jmcneill esa_getdev,
191 1.1 jmcneill NULL, /* getfd */
192 1.1 jmcneill esa_set_port,
193 1.1 jmcneill esa_get_port,
194 1.1 jmcneill esa_query_devinfo,
195 1.1 jmcneill esa_malloc,
196 1.1 jmcneill esa_free,
197 1.1 jmcneill esa_round_buffersize,
198 1.1 jmcneill esa_mappage,
199 1.1 jmcneill esa_get_props,
200 1.1 jmcneill esa_trigger_output,
201 1.1 jmcneill esa_trigger_input
202 1.1 jmcneill };
203 1.1 jmcneill
204 1.1 jmcneill struct cfattach esa_ca = {
205 1.1 jmcneill sizeof(struct esa_softc), esa_match, esa_attach,
206 1.1 jmcneill esa_detach, /*esa_activate*/ NULL
207 1.1 jmcneill };
208 1.1 jmcneill
209 1.1 jmcneill /*
210 1.1 jmcneill * audio(9) functions
211 1.1 jmcneill */
212 1.1 jmcneill
213 1.1 jmcneill int
214 1.1 jmcneill esa_open(void *hdl, int flags)
215 1.1 jmcneill {
216 1.1 jmcneill
217 1.1 jmcneill return (0);
218 1.1 jmcneill }
219 1.1 jmcneill
220 1.1 jmcneill void
221 1.1 jmcneill esa_close(void *hdl)
222 1.1 jmcneill {
223 1.1 jmcneill
224 1.1 jmcneill return;
225 1.1 jmcneill }
226 1.1 jmcneill
227 1.1 jmcneill int
228 1.1 jmcneill esa_query_encoding(void *hdl, struct audio_encoding *ae)
229 1.1 jmcneill {
230 1.1 jmcneill
231 1.1 jmcneill if (ae->index < 0 || ae->index >= ESA_NENCODINGS)
232 1.1 jmcneill return (EINVAL);
233 1.1 jmcneill *ae = esa_encoding[ae->index];
234 1.1 jmcneill
235 1.1 jmcneill return (0);
236 1.1 jmcneill }
237 1.1 jmcneill
238 1.1 jmcneill int
239 1.1 jmcneill esa_set_params(void *hdl, int setmode, int usemode, struct audio_params *play,
240 1.1 jmcneill struct audio_params *rec)
241 1.1 jmcneill {
242 1.1 jmcneill struct esa_softc *sc = hdl;
243 1.3 jmcneill struct esa_channel *ch;
244 1.3 jmcneill struct audio_params *p;
245 1.1 jmcneill u_int32_t data;
246 1.1 jmcneill u_int32_t freq;
247 1.3 jmcneill int mode;
248 1.1 jmcneill
249 1.3 jmcneill for (mode = AUMODE_RECORD; mode != -1;
250 1.3 jmcneill mode = (mode == AUMODE_RECORD) ? AUMODE_PLAY : -1) {
251 1.3 jmcneill if ((setmode & mode) == 0)
252 1.3 jmcneill continue;
253 1.3 jmcneill
254 1.3 jmcneill switch (mode) {
255 1.3 jmcneill case AUMODE_PLAY:
256 1.3 jmcneill p = play;
257 1.3 jmcneill ch = &sc->play;
258 1.3 jmcneill break;
259 1.3 jmcneill case AUMODE_RECORD:
260 1.3 jmcneill p = rec;
261 1.3 jmcneill ch = &sc->rec;
262 1.3 jmcneill break;
263 1.3 jmcneill }
264 1.1 jmcneill
265 1.3 jmcneill if (p->sample_rate < ESA_MINRATE ||
266 1.3 jmcneill p->sample_rate > ESA_MAXRATE ||
267 1.3 jmcneill (p->precision != 8 && p->precision != 16) ||
268 1.3 jmcneill (p->channels < 1 && p->channels > 2))
269 1.3 jmcneill return (EINVAL);
270 1.3 jmcneill
271 1.3 jmcneill p->factor = 1;
272 1.3 jmcneill p->sw_code = 0;
273 1.3 jmcneill
274 1.3 jmcneill switch(p->encoding) {
275 1.3 jmcneill case AUDIO_ENCODING_SLINEAR_BE:
276 1.3 jmcneill if (p->precision == 16)
277 1.3 jmcneill p->sw_code = swap_bytes;
278 1.3 jmcneill else
279 1.3 jmcneill p->sw_code = change_sign8;
280 1.3 jmcneill break;
281 1.3 jmcneill case AUDIO_ENCODING_SLINEAR_LE:
282 1.3 jmcneill if (p->precision != 16)
283 1.3 jmcneill p->sw_code = change_sign8;
284 1.3 jmcneill break;
285 1.3 jmcneill case AUDIO_ENCODING_ULINEAR_BE:
286 1.3 jmcneill if (p->precision == 16) {
287 1.3 jmcneill if (mode == AUMODE_PLAY)
288 1.3 jmcneill p->sw_code =
289 1.3 jmcneill swap_bytes_change_sign16_le;
290 1.3 jmcneill else
291 1.3 jmcneill p->sw_code =
292 1.3 jmcneill change_sign16_swap_bytes_le;
293 1.3 jmcneill }
294 1.3 jmcneill break;
295 1.3 jmcneill case AUDIO_ENCODING_ULINEAR_LE:
296 1.3 jmcneill if (p->precision == 16)
297 1.3 jmcneill p->sw_code = change_sign16_le;
298 1.3 jmcneill break;
299 1.3 jmcneill case AUDIO_ENCODING_ULAW:
300 1.3 jmcneill if (mode == AUMODE_PLAY) {
301 1.3 jmcneill p->factor = 2;
302 1.3 jmcneill p->sw_code = mulaw_to_slinear16_le;
303 1.3 jmcneill } else
304 1.3 jmcneill p->sw_code = ulinear8_to_mulaw;
305 1.3 jmcneill break;
306 1.3 jmcneill case AUDIO_ENCODING_ALAW:
307 1.3 jmcneill if (mode == AUMODE_PLAY) {
308 1.3 jmcneill p->factor = 2;
309 1.3 jmcneill p->sw_code = alaw_to_slinear16_le;
310 1.3 jmcneill } else
311 1.3 jmcneill p->sw_code = ulinear8_to_alaw;
312 1.3 jmcneill break;
313 1.3 jmcneill default:
314 1.3 jmcneill return (EINVAL);
315 1.3 jmcneill }
316 1.3 jmcneill
317 1.3 jmcneill if (p->channels == 1)
318 1.3 jmcneill data = 1;
319 1.3 jmcneill else
320 1.3 jmcneill data = 0;
321 1.3 jmcneill esa_write_assp(sc, ESA_MEMTYPE_INTERNAL_DATA,
322 1.3 jmcneill ch->data_offset + ESA_SRC3_MODE_OFFSET,
323 1.3 jmcneill data);
324 1.3 jmcneill
325 1.3 jmcneill if (play->precision * play->factor == 8)
326 1.3 jmcneill data = 1;
327 1.3 jmcneill else
328 1.3 jmcneill data = 0;
329 1.3 jmcneill esa_write_assp(sc, ESA_MEMTYPE_INTERNAL_DATA,
330 1.3 jmcneill ch->data_offset + ESA_SRC3_WORD_LENGTH_OFFSET,
331 1.3 jmcneill data);
332 1.1 jmcneill
333 1.3 jmcneill if ((freq = ((p->sample_rate << 15) + 24000) / 48000) != 0) {
334 1.3 jmcneill freq--;
335 1.3 jmcneill }
336 1.3 jmcneill esa_write_assp(sc, ESA_MEMTYPE_INTERNAL_DATA,
337 1.3 jmcneill ch->data_offset + ESA_CDATA_FREQUENCY, freq);
338 1.1 jmcneill }
339 1.1 jmcneill
340 1.1 jmcneill return (0);
341 1.1 jmcneill }
342 1.1 jmcneill
343 1.1 jmcneill int
344 1.1 jmcneill esa_round_blocksize(void *hdl, int bs)
345 1.1 jmcneill {
346 1.1 jmcneill struct esa_softc *sc = hdl;
347 1.1 jmcneill
348 1.3 jmcneill sc->play.blksize = sc->rec.blksize = 4096;
349 1.1 jmcneill
350 1.1 jmcneill return (sc->play.blksize);
351 1.1 jmcneill }
352 1.1 jmcneill
353 1.1 jmcneill int
354 1.1 jmcneill esa_init_output(void *hdl, void *buffer, int size)
355 1.1 jmcneill {
356 1.1 jmcneill
357 1.1 jmcneill return (0);
358 1.1 jmcneill }
359 1.1 jmcneill
360 1.1 jmcneill int
361 1.1 jmcneill esa_halt_output(void *hdl)
362 1.1 jmcneill {
363 1.1 jmcneill struct esa_softc *sc = hdl;
364 1.1 jmcneill
365 1.1 jmcneill if (sc->play.active == 0)
366 1.1 jmcneill return (0);
367 1.1 jmcneill
368 1.1 jmcneill sc->play.active = 0;
369 1.1 jmcneill
370 1.1 jmcneill esa_write_assp(sc, ESA_MEMTYPE_INTERNAL_DATA,
371 1.1 jmcneill ESA_KDATA_INSTANCE0_MINISRC, 0);
372 1.1 jmcneill esa_write_assp(sc, ESA_MEMTYPE_INTERNAL_DATA, ESA_KDATA_DMA_XFER0, 0);
373 1.1 jmcneill esa_write_assp(sc, ESA_MEMTYPE_INTERNAL_DATA, ESA_KDATA_MIXER_XFER0, 0);
374 1.1 jmcneill
375 1.1 jmcneill return (0);
376 1.1 jmcneill }
377 1.1 jmcneill
378 1.1 jmcneill int
379 1.1 jmcneill esa_halt_input(void *hdl)
380 1.1 jmcneill {
381 1.3 jmcneill struct esa_softc *sc = hdl;
382 1.3 jmcneill bus_space_tag_t iot = sc->sc_iot;
383 1.3 jmcneill bus_space_handle_t ioh = sc->sc_ioh;
384 1.3 jmcneill u_int32_t data;
385 1.3 jmcneill
386 1.3 jmcneill if (sc->rec.active == 0)
387 1.3 jmcneill return (0);
388 1.3 jmcneill
389 1.3 jmcneill sc->rec.active = 0;
390 1.3 jmcneill
391 1.3 jmcneill esa_write_assp(sc, ESA_MEMTYPE_INTERNAL_DATA,
392 1.3 jmcneill ESA_KDATA_TIMER_COUNT_RELOAD, 0);
393 1.3 jmcneill esa_write_assp(sc, ESA_MEMTYPE_INTERNAL_DATA, ESA_KDATA_TIMER_COUNT_CURRENT, 0);
394 1.3 jmcneill data = bus_space_read_2(iot, ioh, ESA_HOST_INT_CTRL);
395 1.3 jmcneill bus_space_write_2(iot, ioh, ESA_HOST_INT_CTRL, data & ~ESA_CLKRUN_GEN_ENABLE);
396 1.3 jmcneill
397 1.3 jmcneill esa_write_assp(sc, ESA_MEMTYPE_INTERNAL_DATA, sc->rec.data_offset +
398 1.3 jmcneill ESA_CDATA_INSTANCE_READY, 0);
399 1.3 jmcneill esa_write_assp(sc, ESA_MEMTYPE_INTERNAL_DATA, ESA_KDATA_ADC1_REQUEST, 0);
400 1.1 jmcneill
401 1.3 jmcneill return (0);
402 1.1 jmcneill }
403 1.1 jmcneill
404 1.1 jmcneill void *
405 1.1 jmcneill esa_malloc(void *hdl, int direction, size_t size, int type, int flags)
406 1.1 jmcneill {
407 1.1 jmcneill struct esa_softc *sc = hdl;
408 1.1 jmcneill struct esa_dma *p;
409 1.1 jmcneill int error;
410 1.1 jmcneill
411 1.1 jmcneill p = malloc(sizeof(*p), type, flags);
412 1.1 jmcneill if (!p)
413 1.1 jmcneill return (0);
414 1.1 jmcneill error = esa_allocmem(sc, size, 16, p);
415 1.1 jmcneill if (error) {
416 1.1 jmcneill free(p, type);
417 1.1 jmcneill printf("%s: esa_malloc: not enough memory\n",
418 1.1 jmcneill sc->sc_dev.dv_xname);
419 1.1 jmcneill return (0);
420 1.1 jmcneill }
421 1.1 jmcneill p->next = sc->sc_dmas;
422 1.1 jmcneill sc->sc_dmas = p;
423 1.1 jmcneill
424 1.1 jmcneill return (KERNADDR(p));
425 1.1 jmcneill }
426 1.1 jmcneill
427 1.1 jmcneill void
428 1.1 jmcneill esa_free(void *hdl, void *addr, int type)
429 1.1 jmcneill {
430 1.1 jmcneill struct esa_softc *sc = hdl;
431 1.1 jmcneill struct esa_dma *p;
432 1.1 jmcneill struct esa_dma **pp;
433 1.1 jmcneill
434 1.1 jmcneill for (pp = &sc->sc_dmas; (p = *pp) != NULL; pp = &p->next)
435 1.1 jmcneill if (KERNADDR(p) == addr) {
436 1.1 jmcneill esa_freemem(sc, p);
437 1.1 jmcneill *pp = p->next;
438 1.1 jmcneill free(p, type);
439 1.1 jmcneill return;
440 1.1 jmcneill }
441 1.1 jmcneill }
442 1.1 jmcneill
443 1.1 jmcneill int
444 1.1 jmcneill esa_getdev(void *hdl, struct audio_device *ret)
445 1.1 jmcneill {
446 1.1 jmcneill
447 1.1 jmcneill *ret = esa_device;
448 1.1 jmcneill
449 1.1 jmcneill return (0);
450 1.1 jmcneill }
451 1.1 jmcneill
452 1.1 jmcneill int
453 1.1 jmcneill esa_set_port(void *hdl, mixer_ctrl_t *mc)
454 1.1 jmcneill {
455 1.1 jmcneill struct esa_softc *sc = hdl;
456 1.1 jmcneill
457 1.1 jmcneill return (sc->codec_if->vtbl->mixer_set_port(sc->codec_if, mc));
458 1.1 jmcneill }
459 1.1 jmcneill
460 1.1 jmcneill int
461 1.1 jmcneill esa_get_port(void *hdl, mixer_ctrl_t *mc)
462 1.1 jmcneill {
463 1.1 jmcneill struct esa_softc *sc = hdl;
464 1.1 jmcneill
465 1.1 jmcneill return (sc->codec_if->vtbl->mixer_get_port(sc->codec_if, mc));
466 1.1 jmcneill }
467 1.1 jmcneill
468 1.1 jmcneill int
469 1.1 jmcneill esa_query_devinfo(void *hdl, mixer_devinfo_t *di)
470 1.1 jmcneill {
471 1.1 jmcneill struct esa_softc *sc = hdl;
472 1.1 jmcneill
473 1.1 jmcneill return (sc->codec_if->vtbl->query_devinfo(sc->codec_if, di));
474 1.1 jmcneill }
475 1.1 jmcneill
476 1.1 jmcneill size_t
477 1.1 jmcneill esa_round_buffersize(void *hdl, int direction, size_t bufsize)
478 1.1 jmcneill {
479 1.1 jmcneill struct esa_softc *sc = hdl;
480 1.1 jmcneill
481 1.3 jmcneill sc->play.bufsize = sc->rec.bufsize = 65536;
482 1.1 jmcneill
483 1.1 jmcneill return (sc->play.bufsize);
484 1.1 jmcneill }
485 1.1 jmcneill
486 1.1 jmcneill int
487 1.1 jmcneill esa_get_props(void *hdl)
488 1.1 jmcneill {
489 1.1 jmcneill
490 1.3 jmcneill return (AUDIO_PROP_MMAP | AUDIO_PROP_INDEPENDENT | AUDIO_PROP_FULLDUPLEX);
491 1.1 jmcneill }
492 1.1 jmcneill
493 1.1 jmcneill int
494 1.1 jmcneill esa_trigger_output(void *hdl, void *start, void *end, int blksize,
495 1.1 jmcneill void (*intr)(void *), void *intrarg,
496 1.1 jmcneill struct audio_params *param)
497 1.1 jmcneill {
498 1.1 jmcneill struct esa_softc *sc = hdl;
499 1.1 jmcneill struct esa_dma *p;
500 1.1 jmcneill bus_space_tag_t iot = sc->sc_iot;
501 1.1 jmcneill bus_space_handle_t ioh = sc->sc_ioh;
502 1.1 jmcneill u_int32_t data;
503 1.1 jmcneill u_int32_t bufaddr;
504 1.1 jmcneill u_int32_t i;
505 1.1 jmcneill size_t size;
506 1.3 jmcneill int data_bytes = (((ESA_MINISRC_TMP_BUFFER_SIZE & ~1) +
507 1.3 jmcneill (ESA_MINISRC_IN_BUFFER_SIZE & ~1) +
508 1.3 jmcneill (ESA_MINISRC_OUT_BUFFER_SIZE & ~1) + 4) + 255)
509 1.3 jmcneill &~ 255;
510 1.3 jmcneill int dac_data = ESA_DAC_DATA + data_bytes;
511 1.1 jmcneill int dsp_in_size = ESA_MINISRC_IN_BUFFER_SIZE - (0x20 * 2);
512 1.1 jmcneill int dsp_out_size = ESA_MINISRC_OUT_BUFFER_SIZE - (0x20 * 2);
513 1.3 jmcneill int dsp_in_buf = dac_data + (ESA_MINISRC_TMP_BUFFER_SIZE / 2);
514 1.1 jmcneill int dsp_out_buf = dsp_in_buf + (dsp_in_size / 2) + 1;
515 1.3 jmcneill sc->play.data_offset = dac_data;
516 1.1 jmcneill
517 1.1 jmcneill if (sc->play.active)
518 1.1 jmcneill return (EINVAL);
519 1.1 jmcneill
520 1.1 jmcneill for (p = sc->sc_dmas; p && KERNADDR(p) != start; p = p->next)
521 1.1 jmcneill ;
522 1.1 jmcneill if (!p) {
523 1.1 jmcneill printf("%s: esa_trigger_output: bad addr %p\n",
524 1.1 jmcneill sc->sc_dev.dv_xname, start);
525 1.1 jmcneill return (EINVAL);
526 1.1 jmcneill }
527 1.1 jmcneill
528 1.1 jmcneill sc->play.active = 1;
529 1.3 jmcneill sc->play.intr = intr;
530 1.3 jmcneill sc->play.arg = intrarg;
531 1.1 jmcneill sc->play.pos = 0;
532 1.1 jmcneill sc->play.count = 0;
533 1.1 jmcneill sc->play.buf = start;
534 1.1 jmcneill size = (size_t)(((caddr_t)end - (caddr_t)start));
535 1.1 jmcneill bufaddr = DMAADDR(p);
536 1.1 jmcneill sc->play.start = bufaddr;
537 1.1 jmcneill
538 1.1 jmcneill #define LO(x) ((x) & 0x0000ffff)
539 1.1 jmcneill #define HI(x) ((x) >> 16)
540 1.1 jmcneill
541 1.3 jmcneill esa_write_assp(sc, ESA_MEMTYPE_INTERNAL_DATA, dac_data +
542 1.1 jmcneill ESA_CDATA_HOST_SRC_ADDRL, LO(bufaddr));
543 1.3 jmcneill esa_write_assp(sc, ESA_MEMTYPE_INTERNAL_DATA, dac_data +
544 1.1 jmcneill ESA_CDATA_HOST_SRC_ADDRH, HI(bufaddr));
545 1.3 jmcneill esa_write_assp(sc, ESA_MEMTYPE_INTERNAL_DATA, dac_data +
546 1.1 jmcneill ESA_CDATA_HOST_SRC_END_PLUS_1L, LO(bufaddr + size));
547 1.3 jmcneill esa_write_assp(sc, ESA_MEMTYPE_INTERNAL_DATA, dac_data +
548 1.1 jmcneill ESA_CDATA_HOST_SRC_END_PLUS_1H, HI(bufaddr + size));
549 1.3 jmcneill esa_write_assp(sc, ESA_MEMTYPE_INTERNAL_DATA, dac_data +
550 1.1 jmcneill ESA_CDATA_HOST_SRC_CURRENTL, LO(bufaddr));
551 1.3 jmcneill esa_write_assp(sc, ESA_MEMTYPE_INTERNAL_DATA, dac_data +
552 1.1 jmcneill ESA_CDATA_HOST_SRC_CURRENTH, HI(bufaddr));
553 1.1 jmcneill
554 1.1 jmcneill /* DSP buffers */
555 1.3 jmcneill esa_write_assp(sc, ESA_MEMTYPE_INTERNAL_DATA, dac_data +
556 1.1 jmcneill ESA_CDATA_IN_BUF_BEGIN, dsp_in_buf);
557 1.3 jmcneill esa_write_assp(sc, ESA_MEMTYPE_INTERNAL_DATA, dac_data +
558 1.1 jmcneill ESA_CDATA_IN_BUF_END_PLUS_1, dsp_in_buf + (dsp_in_size / 2));
559 1.3 jmcneill esa_write_assp(sc, ESA_MEMTYPE_INTERNAL_DATA, dac_data +
560 1.1 jmcneill ESA_CDATA_IN_BUF_HEAD, dsp_in_buf);
561 1.3 jmcneill esa_write_assp(sc, ESA_MEMTYPE_INTERNAL_DATA, dac_data +
562 1.1 jmcneill ESA_CDATA_IN_BUF_TAIL, dsp_in_buf);
563 1.3 jmcneill esa_write_assp(sc, ESA_MEMTYPE_INTERNAL_DATA, dac_data +
564 1.1 jmcneill ESA_CDATA_OUT_BUF_BEGIN, dsp_out_buf);
565 1.3 jmcneill esa_write_assp(sc, ESA_MEMTYPE_INTERNAL_DATA, dac_data +
566 1.1 jmcneill ESA_CDATA_OUT_BUF_END_PLUS_1, dsp_out_buf + (dsp_out_size / 2));
567 1.3 jmcneill esa_write_assp(sc, ESA_MEMTYPE_INTERNAL_DATA, dac_data +
568 1.1 jmcneill ESA_CDATA_OUT_BUF_HEAD, dsp_out_buf);
569 1.3 jmcneill esa_write_assp(sc, ESA_MEMTYPE_INTERNAL_DATA, dac_data +
570 1.1 jmcneill ESA_CDATA_OUT_BUF_TAIL, dsp_out_buf);
571 1.1 jmcneill
572 1.1 jmcneill /* Some per-client initializers */
573 1.3 jmcneill esa_write_assp(sc, ESA_MEMTYPE_INTERNAL_DATA, dac_data +
574 1.3 jmcneill ESA_SRC3_DIRECTION_OFFSET + 12, dac_data + 40 + 8);
575 1.3 jmcneill esa_write_assp(sc, ESA_MEMTYPE_INTERNAL_DATA, dac_data +
576 1.1 jmcneill ESA_SRC3_DIRECTION_OFFSET + 19, 0x400 + ESA_MINISRC_COEF_LOC);
577 1.1 jmcneill /* Enable or disable low-pass filter? (0xff if rate > 45000) */
578 1.3 jmcneill esa_write_assp(sc, ESA_MEMTYPE_INTERNAL_DATA, dac_data +
579 1.1 jmcneill ESA_SRC3_DIRECTION_OFFSET + 22, 0);
580 1.1 jmcneill /* Tell it which way DMA is going */
581 1.3 jmcneill esa_write_assp(sc, ESA_MEMTYPE_INTERNAL_DATA, dac_data +
582 1.1 jmcneill ESA_CDATA_DMA_CONTROL,
583 1.1 jmcneill ESA_DMACONTROL_AUTOREPEAT + ESA_DMAC_PAGE3_SELECTOR +
584 1.1 jmcneill ESA_DMAC_BLOCKF_SELECTOR);
585 1.1 jmcneill
586 1.1 jmcneill /* Set an armload of static initializers */
587 1.1 jmcneill for (i = 0; i < (sizeof(esa_playvals) / sizeof(esa_playvals[0])); i++)
588 1.3 jmcneill esa_write_assp(sc, ESA_MEMTYPE_INTERNAL_DATA, dac_data +
589 1.1 jmcneill esa_playvals[i].addr, esa_playvals[i].val);
590 1.1 jmcneill
591 1.1 jmcneill /* Put us in the packed task lists */
592 1.1 jmcneill esa_write_assp(sc, ESA_MEMTYPE_INTERNAL_DATA,
593 1.1 jmcneill ESA_KDATA_INSTANCE0_MINISRC,
594 1.3 jmcneill dac_data >> ESA_DP_SHIFT_COUNT);
595 1.1 jmcneill esa_write_assp(sc, ESA_MEMTYPE_INTERNAL_DATA, ESA_KDATA_DMA_XFER0,
596 1.3 jmcneill dac_data >> ESA_DP_SHIFT_COUNT);
597 1.1 jmcneill esa_write_assp(sc, ESA_MEMTYPE_INTERNAL_DATA, ESA_KDATA_MIXER_XFER0,
598 1.3 jmcneill dac_data >> ESA_DP_SHIFT_COUNT);
599 1.1 jmcneill #undef LO
600 1.1 jmcneill #undef HI
601 1.1 jmcneill
602 1.1 jmcneill esa_write_assp(sc, ESA_MEMTYPE_INTERNAL_DATA,
603 1.1 jmcneill ESA_KDATA_TIMER_COUNT_RELOAD, 240);
604 1.1 jmcneill esa_write_assp(sc, ESA_MEMTYPE_INTERNAL_DATA,
605 1.1 jmcneill ESA_KDATA_TIMER_COUNT_CURRENT, 240);
606 1.1 jmcneill data = bus_space_read_2(iot, ioh, ESA_HOST_INT_CTRL);
607 1.1 jmcneill bus_space_write_2(iot, ioh, ESA_HOST_INT_CTRL,
608 1.1 jmcneill data | ESA_CLKRUN_GEN_ENABLE);
609 1.1 jmcneill
610 1.3 jmcneill esa_write_assp(sc, ESA_MEMTYPE_INTERNAL_DATA, dac_data +
611 1.1 jmcneill ESA_CDATA_INSTANCE_READY, 1);
612 1.1 jmcneill esa_write_assp(sc, ESA_MEMTYPE_INTERNAL_DATA,
613 1.1 jmcneill ESA_KDATA_MIXER_TASK_NUMBER, 1);
614 1.1 jmcneill
615 1.1 jmcneill return (0);
616 1.1 jmcneill }
617 1.1 jmcneill
618 1.1 jmcneill int
619 1.1 jmcneill esa_trigger_input(void *hdl, void *start, void *end, int blksize,
620 1.1 jmcneill void (*intr)(void *), void *intrarg,
621 1.1 jmcneill struct audio_params *param)
622 1.1 jmcneill {
623 1.3 jmcneill struct esa_softc *sc = hdl;
624 1.3 jmcneill struct esa_dma *p;
625 1.3 jmcneill bus_space_tag_t iot = sc->sc_iot;
626 1.3 jmcneill bus_space_handle_t ioh = sc->sc_ioh;
627 1.3 jmcneill u_int32_t data;
628 1.3 jmcneill u_int32_t bufaddr;
629 1.3 jmcneill u_int32_t i;
630 1.3 jmcneill size_t size;
631 1.3 jmcneill int data_bytes = (((ESA_MINISRC_TMP_BUFFER_SIZE & ~1) +
632 1.3 jmcneill (ESA_MINISRC_IN_BUFFER_SIZE & ~1) +
633 1.3 jmcneill (ESA_MINISRC_OUT_BUFFER_SIZE & ~1) + 4) + 255)
634 1.3 jmcneill &~ 255;
635 1.3 jmcneill int adc_data = ESA_DAC_DATA + data_bytes + (data_bytes / 2);
636 1.3 jmcneill int dsp_in_size = ESA_MINISRC_IN_BUFFER_SIZE - (0x10 * 2);
637 1.3 jmcneill int dsp_out_size = ESA_MINISRC_OUT_BUFFER_SIZE - (0x10 * 2);
638 1.3 jmcneill int dsp_in_buf = adc_data + (ESA_MINISRC_TMP_BUFFER_SIZE / 2);
639 1.3 jmcneill int dsp_out_buf = dsp_in_buf + (dsp_in_size / 2) + 1;
640 1.3 jmcneill sc->rec.data_offset = adc_data;
641 1.3 jmcneill
642 1.3 jmcneill if (sc->rec.active)
643 1.3 jmcneill return (EINVAL);
644 1.3 jmcneill
645 1.3 jmcneill for (p = sc->sc_dmas; p && KERNADDR(p) != start; p = p->next)
646 1.3 jmcneill ;
647 1.3 jmcneill if (!p) {
648 1.3 jmcneill printf("%s: esa_trigger_input: bad addr %p\n",
649 1.3 jmcneill sc->sc_dev.dv_xname, start);
650 1.3 jmcneill return (EINVAL);
651 1.3 jmcneill }
652 1.3 jmcneill
653 1.3 jmcneill sc->rec.active = 1;
654 1.3 jmcneill sc->rec.intr = intr;
655 1.3 jmcneill sc->rec.arg = intrarg;
656 1.3 jmcneill sc->rec.pos = 0;
657 1.3 jmcneill sc->rec.count = 0;
658 1.3 jmcneill sc->rec.buf = start;
659 1.3 jmcneill size = (size_t)(((caddr_t)end - (caddr_t)start));
660 1.3 jmcneill bufaddr = DMAADDR(p);
661 1.3 jmcneill sc->rec.start = bufaddr;
662 1.3 jmcneill
663 1.3 jmcneill #define LO(x) ((x) & 0x0000ffff)
664 1.3 jmcneill #define HI(x) ((x) >> 16)
665 1.3 jmcneill
666 1.3 jmcneill esa_write_assp(sc, ESA_MEMTYPE_INTERNAL_DATA, adc_data +
667 1.3 jmcneill ESA_CDATA_HOST_SRC_ADDRL, LO(bufaddr));
668 1.3 jmcneill esa_write_assp(sc, ESA_MEMTYPE_INTERNAL_DATA, adc_data +
669 1.3 jmcneill ESA_CDATA_HOST_SRC_ADDRH, HI(bufaddr));
670 1.3 jmcneill esa_write_assp(sc, ESA_MEMTYPE_INTERNAL_DATA, adc_data +
671 1.3 jmcneill ESA_CDATA_HOST_SRC_END_PLUS_1L, LO(bufaddr + size));
672 1.3 jmcneill esa_write_assp(sc, ESA_MEMTYPE_INTERNAL_DATA, adc_data +
673 1.3 jmcneill ESA_CDATA_HOST_SRC_END_PLUS_1H, HI(bufaddr + size));
674 1.3 jmcneill esa_write_assp(sc, ESA_MEMTYPE_INTERNAL_DATA, adc_data +
675 1.3 jmcneill ESA_CDATA_HOST_SRC_CURRENTL, LO(bufaddr));
676 1.3 jmcneill esa_write_assp(sc, ESA_MEMTYPE_INTERNAL_DATA, adc_data +
677 1.3 jmcneill ESA_CDATA_HOST_SRC_CURRENTH, HI(bufaddr));
678 1.3 jmcneill
679 1.3 jmcneill /* DSP buffers */
680 1.3 jmcneill esa_write_assp(sc, ESA_MEMTYPE_INTERNAL_DATA, adc_data +
681 1.3 jmcneill ESA_CDATA_IN_BUF_BEGIN, dsp_in_buf);
682 1.3 jmcneill esa_write_assp(sc, ESA_MEMTYPE_INTERNAL_DATA, adc_data +
683 1.3 jmcneill ESA_CDATA_IN_BUF_END_PLUS_1, dsp_in_buf + (dsp_in_size / 2));
684 1.3 jmcneill esa_write_assp(sc, ESA_MEMTYPE_INTERNAL_DATA, adc_data +
685 1.3 jmcneill ESA_CDATA_IN_BUF_HEAD, dsp_in_buf);
686 1.3 jmcneill esa_write_assp(sc, ESA_MEMTYPE_INTERNAL_DATA, adc_data +
687 1.3 jmcneill ESA_CDATA_IN_BUF_TAIL, dsp_in_buf);
688 1.3 jmcneill esa_write_assp(sc, ESA_MEMTYPE_INTERNAL_DATA, adc_data +
689 1.3 jmcneill ESA_CDATA_OUT_BUF_BEGIN, dsp_out_buf);
690 1.3 jmcneill esa_write_assp(sc, ESA_MEMTYPE_INTERNAL_DATA, adc_data +
691 1.3 jmcneill ESA_CDATA_OUT_BUF_END_PLUS_1, dsp_out_buf + (dsp_out_size / 2));
692 1.3 jmcneill esa_write_assp(sc, ESA_MEMTYPE_INTERNAL_DATA, adc_data +
693 1.3 jmcneill ESA_CDATA_OUT_BUF_HEAD, dsp_out_buf);
694 1.3 jmcneill esa_write_assp(sc, ESA_MEMTYPE_INTERNAL_DATA, adc_data +
695 1.3 jmcneill ESA_CDATA_OUT_BUF_TAIL, dsp_out_buf);
696 1.3 jmcneill
697 1.3 jmcneill /* Some per-client initializers */
698 1.3 jmcneill esa_write_assp(sc, ESA_MEMTYPE_INTERNAL_DATA, adc_data +
699 1.3 jmcneill ESA_SRC3_DIRECTION_OFFSET + 12, adc_data + 40 + 8);
700 1.3 jmcneill /* Tell it which way DMA is going */
701 1.3 jmcneill esa_write_assp(sc, ESA_MEMTYPE_INTERNAL_DATA, adc_data +
702 1.3 jmcneill ESA_CDATA_DMA_CONTROL,
703 1.3 jmcneill ESA_DMACONTROL_DIRECTION + ESA_DMACONTROL_AUTOREPEAT +
704 1.3 jmcneill ESA_DMAC_PAGE3_SELECTOR + ESA_DMAC_BLOCKF_SELECTOR);
705 1.3 jmcneill
706 1.3 jmcneill /* Set an armload of static initializers */
707 1.3 jmcneill for (i = 0; i < (sizeof(esa_recvals) / sizeof(esa_recvals[0])); i++)
708 1.3 jmcneill esa_write_assp(sc, ESA_MEMTYPE_INTERNAL_DATA, adc_data +
709 1.3 jmcneill esa_recvals[i].addr, esa_recvals[i].val);
710 1.3 jmcneill
711 1.3 jmcneill /* Put us in the packed task lists */
712 1.3 jmcneill esa_write_assp(sc, ESA_MEMTYPE_INTERNAL_DATA,
713 1.3 jmcneill ESA_KDATA_INSTANCE0_MINISRC,
714 1.3 jmcneill adc_data >> ESA_DP_SHIFT_COUNT);
715 1.3 jmcneill esa_write_assp(sc, ESA_MEMTYPE_INTERNAL_DATA, ESA_KDATA_DMA_XFER0,
716 1.3 jmcneill adc_data >> ESA_DP_SHIFT_COUNT);
717 1.3 jmcneill esa_write_assp(sc, ESA_MEMTYPE_INTERNAL_DATA, ESA_KDATA_ADC1_XFER0,
718 1.3 jmcneill adc_data >> ESA_DP_SHIFT_COUNT);
719 1.3 jmcneill #undef LO
720 1.3 jmcneill #undef HI
721 1.1 jmcneill
722 1.3 jmcneill esa_write_assp(sc, ESA_MEMTYPE_INTERNAL_DATA,
723 1.3 jmcneill ESA_KDATA_TIMER_COUNT_RELOAD, 240);
724 1.3 jmcneill esa_write_assp(sc, ESA_MEMTYPE_INTERNAL_DATA,
725 1.3 jmcneill ESA_KDATA_TIMER_COUNT_CURRENT, 240);
726 1.3 jmcneill data = bus_space_read_2(iot, ioh, ESA_HOST_INT_CTRL);
727 1.3 jmcneill bus_space_write_2(iot, ioh, ESA_HOST_INT_CTRL,
728 1.3 jmcneill data | ESA_CLKRUN_GEN_ENABLE);
729 1.3 jmcneill
730 1.3 jmcneill esa_write_assp(sc, ESA_MEMTYPE_INTERNAL_DATA, ESA_KDATA_ADC1_REQUEST, 1);
731 1.3 jmcneill esa_write_assp(sc, ESA_MEMTYPE_INTERNAL_DATA, adc_data +
732 1.3 jmcneill ESA_CDATA_INSTANCE_READY, 1);
733 1.3 jmcneill
734 1.3 jmcneill return (0);
735 1.1 jmcneill }
736 1.1 jmcneill
737 1.1 jmcneill /* Interrupt handler */
738 1.1 jmcneill
739 1.1 jmcneill int
740 1.1 jmcneill esa_intr(void *hdl)
741 1.1 jmcneill {
742 1.1 jmcneill struct esa_softc *sc = hdl;
743 1.1 jmcneill bus_space_tag_t iot = sc->sc_iot;
744 1.1 jmcneill bus_space_handle_t ioh = sc->sc_ioh;
745 1.1 jmcneill u_int32_t status, ctl;
746 1.1 jmcneill u_int32_t pos;
747 1.1 jmcneill u_int32_t diff;
748 1.3 jmcneill u_int32_t play_blksize = sc->play.blksize;
749 1.3 jmcneill u_int32_t play_bufsize = sc->play.bufsize;
750 1.3 jmcneill u_int32_t rec_blksize = sc->rec.blksize;
751 1.3 jmcneill u_int32_t rec_bufsize = sc->rec.bufsize;
752 1.1 jmcneill
753 1.1 jmcneill status = bus_space_read_1(iot, ioh, ESA_HOST_INT_STATUS);
754 1.1 jmcneill if (!status)
755 1.1 jmcneill return (0);
756 1.1 jmcneill
757 1.1 jmcneill /* ack the interrupt */
758 1.1 jmcneill bus_space_write_1(iot, ioh, ESA_HOST_INT_STATUS, 0xff);
759 1.1 jmcneill
760 1.1 jmcneill if (status & ESA_HV_INT_PENDING) {
761 1.1 jmcneill u_int8_t event;
762 1.1 jmcneill
763 1.1 jmcneill printf("%s: hardware volume interrupt\n", sc->sc_dev.dv_xname);
764 1.1 jmcneill event = bus_space_read_1(iot, ioh, ESA_HW_VOL_COUNTER_MASTER);
765 1.1 jmcneill switch(event) {
766 1.1 jmcneill case 0x99:
767 1.1 jmcneill case 0xaa:
768 1.1 jmcneill case 0x66:
769 1.1 jmcneill case 0x88:
770 1.1 jmcneill printf("%s: esa_intr: FIXME\n", sc->sc_dev.dv_xname);
771 1.1 jmcneill break;
772 1.1 jmcneill default:
773 1.1 jmcneill printf("%s: unknown hwvol event 0x%02x\n",
774 1.1 jmcneill sc->sc_dev.dv_xname, event);
775 1.1 jmcneill break;
776 1.1 jmcneill }
777 1.1 jmcneill bus_space_write_1(iot, ioh, ESA_HW_VOL_COUNTER_MASTER, 0x88);
778 1.1 jmcneill }
779 1.1 jmcneill
780 1.1 jmcneill if (status & ESA_ASSP_INT_PENDING) {
781 1.1 jmcneill ctl = bus_space_read_1(iot, ioh, ESA_ASSP_CONTROL_B);
782 1.1 jmcneill if (!(ctl & ESA_STOP_ASSP_CLOCK)) {
783 1.1 jmcneill ctl = bus_space_read_1(iot, ioh,
784 1.1 jmcneill ESA_ASSP_HOST_INT_STATUS);
785 1.1 jmcneill if (ctl & ESA_DSP2HOST_REQ_TIMER) {
786 1.1 jmcneill bus_space_write_1(iot, ioh,
787 1.1 jmcneill ESA_ASSP_HOST_INT_STATUS,
788 1.1 jmcneill ESA_DSP2HOST_REQ_TIMER);
789 1.1 jmcneill if (sc->play.active) {
790 1.3 jmcneill pos = esa_get_pointer(sc, &sc->play)
791 1.3 jmcneill % play_bufsize;
792 1.3 jmcneill diff = (play_bufsize + pos - sc->play.pos)
793 1.3 jmcneill % play_bufsize;
794 1.1 jmcneill sc->play.pos = pos;
795 1.1 jmcneill sc->play.count += diff;
796 1.3 jmcneill while(sc->play.count >= play_blksize) {
797 1.3 jmcneill sc->play.count -= play_blksize;
798 1.3 jmcneill (*sc->play.intr)(sc->play.arg);
799 1.3 jmcneill }
800 1.3 jmcneill }
801 1.3 jmcneill if (sc->rec.active) {
802 1.3 jmcneill pos = esa_get_pointer(sc, &sc->rec)
803 1.3 jmcneill % rec_bufsize;
804 1.3 jmcneill diff = (rec_bufsize + pos - sc->rec.pos)
805 1.3 jmcneill % rec_bufsize;
806 1.3 jmcneill sc->rec.pos = pos;
807 1.3 jmcneill sc->rec.count += diff;
808 1.3 jmcneill while(sc->rec.count >= rec_blksize) {
809 1.3 jmcneill sc->rec.count -= rec_blksize;
810 1.3 jmcneill (*sc->rec.intr)(sc->rec.arg);
811 1.1 jmcneill }
812 1.1 jmcneill }
813 1.1 jmcneill }
814 1.1 jmcneill }
815 1.1 jmcneill }
816 1.1 jmcneill
817 1.1 jmcneill return (1);
818 1.1 jmcneill }
819 1.1 jmcneill
820 1.1 jmcneill int
821 1.1 jmcneill esa_allocmem(struct esa_softc *sc, size_t size, size_t align,
822 1.1 jmcneill struct esa_dma *p)
823 1.1 jmcneill {
824 1.1 jmcneill int error;
825 1.1 jmcneill
826 1.1 jmcneill p->size = size;
827 1.1 jmcneill error = bus_dmamem_alloc(sc->sc_dmat, p->size, align, 0,
828 1.1 jmcneill p->segs, sizeof(p->segs) / sizeof(p->segs[0]),
829 1.1 jmcneill &p->nsegs, BUS_DMA_NOWAIT);
830 1.1 jmcneill if (error)
831 1.1 jmcneill return (error);
832 1.1 jmcneill
833 1.1 jmcneill error = bus_dmamem_map(sc->sc_dmat, p->segs, p->nsegs, p->size,
834 1.1 jmcneill &p->addr, BUS_DMA_NOWAIT | BUS_DMA_COHERENT);
835 1.1 jmcneill if (error)
836 1.1 jmcneill goto free;
837 1.1 jmcneill
838 1.1 jmcneill error = bus_dmamap_create(sc->sc_dmat, p->size, 1, p->size, 0,
839 1.1 jmcneill BUS_DMA_NOWAIT, &p->map);
840 1.1 jmcneill if (error)
841 1.1 jmcneill goto unmap;
842 1.1 jmcneill
843 1.1 jmcneill error = bus_dmamap_load(sc->sc_dmat, p->map, p->addr, p->size, NULL,
844 1.1 jmcneill BUS_DMA_NOWAIT);
845 1.1 jmcneill if (error)
846 1.1 jmcneill goto destroy;
847 1.1 jmcneill
848 1.1 jmcneill return (0);
849 1.1 jmcneill
850 1.1 jmcneill destroy:
851 1.1 jmcneill bus_dmamap_destroy(sc->sc_dmat, p->map);
852 1.1 jmcneill unmap:
853 1.1 jmcneill bus_dmamem_unmap(sc->sc_dmat, p->addr, p->size);
854 1.1 jmcneill free:
855 1.1 jmcneill bus_dmamem_free(sc->sc_dmat, p->segs, p->nsegs);
856 1.1 jmcneill
857 1.1 jmcneill return (error);
858 1.1 jmcneill }
859 1.1 jmcneill
860 1.1 jmcneill int
861 1.1 jmcneill esa_freemem(struct esa_softc *sc, struct esa_dma *p)
862 1.1 jmcneill {
863 1.1 jmcneill
864 1.1 jmcneill bus_dmamap_unload(sc->sc_dmat, p->map);
865 1.1 jmcneill bus_dmamap_destroy(sc->sc_dmat, p->map);
866 1.1 jmcneill bus_dmamem_unmap(sc->sc_dmat, p->addr, p->size);
867 1.1 jmcneill bus_dmamem_free(sc->sc_dmat, p->segs, p->nsegs);
868 1.1 jmcneill
869 1.1 jmcneill return (0);
870 1.1 jmcneill }
871 1.1 jmcneill
872 1.1 jmcneill /*
873 1.1 jmcneill * Supporting Subroutines
874 1.1 jmcneill */
875 1.1 jmcneill
876 1.1 jmcneill int
877 1.1 jmcneill esa_match(struct device *dev, struct cfdata *match, void *aux)
878 1.1 jmcneill {
879 1.1 jmcneill struct pci_attach_args *pa = (struct pci_attach_args *)aux;
880 1.1 jmcneill
881 1.1 jmcneill switch(PCI_VENDOR(pa->pa_id)) {
882 1.1 jmcneill case PCI_VENDOR_ESSTECH:
883 1.1 jmcneill switch(PCI_PRODUCT(pa->pa_id)) {
884 1.1 jmcneill case PCI_PRODUCT_ESSTECH_ALLEGRO1:
885 1.1 jmcneill case PCI_PRODUCT_ESSTECH_MAESTRO3:
886 1.1 jmcneill case PCI_PRODUCT_ESSTECH_MAESTRO3_2:
887 1.1 jmcneill return (1);
888 1.1 jmcneill }
889 1.1 jmcneill }
890 1.1 jmcneill
891 1.1 jmcneill return (0);
892 1.1 jmcneill }
893 1.1 jmcneill
894 1.1 jmcneill void
895 1.1 jmcneill esa_attach(struct device *parent, struct device *self, void *aux)
896 1.1 jmcneill {
897 1.1 jmcneill struct esa_softc *sc = (struct esa_softc *)self;
898 1.1 jmcneill struct pci_attach_args *pa = (struct pci_attach_args *)aux;
899 1.1 jmcneill pcitag_t tag = pa->pa_tag;
900 1.1 jmcneill pci_chipset_tag_t pc = pa->pa_pc;
901 1.1 jmcneill pci_intr_handle_t ih;
902 1.1 jmcneill struct esa_card_type *card;
903 1.1 jmcneill const char *intrstr;
904 1.1 jmcneill u_int32_t data;
905 1.1 jmcneill char devinfo[256];
906 1.4 pooka int revision, len;
907 1.1 jmcneill
908 1.1 jmcneill pci_devinfo(pa->pa_id, pa->pa_class, 0, devinfo);
909 1.1 jmcneill revision = PCI_REVISION(pa->pa_class);
910 1.1 jmcneill printf(": %s (rev. 0x%02x)\n", devinfo, revision);
911 1.1 jmcneill
912 1.1 jmcneill for (card = esa_card_types; card->pci_vendor_id; card++)
913 1.1 jmcneill if (PCI_VENDOR(pa->pa_id) == card->pci_vendor_id &&
914 1.1 jmcneill PCI_PRODUCT(pa->pa_id) == card->pci_product_id) {
915 1.1 jmcneill sc->type = card->type;
916 1.1 jmcneill sc->delay1 = card->delay1;
917 1.1 jmcneill sc->delay2 = card->delay2;
918 1.1 jmcneill break;
919 1.1 jmcneill }
920 1.1 jmcneill
921 1.1 jmcneill data = pci_conf_read(pc, tag, PCI_COMMAND_STATUS_REG);
922 1.1 jmcneill data |= (PCI_COMMAND_IO_ENABLE | PCI_COMMAND_MEM_ENABLE
923 1.1 jmcneill | PCI_COMMAND_MASTER_ENABLE);
924 1.1 jmcneill pci_conf_write(pc, tag, PCI_COMMAND_STATUS_REG, data);
925 1.1 jmcneill
926 1.1 jmcneill /* Map I/O register */
927 1.1 jmcneill if (pci_mapreg_map(pa, PCI_CBIO, PCI_MAPREG_TYPE_IO, 0,
928 1.1 jmcneill &sc->sc_iot, &sc->sc_ioh, &sc->sc_iob, &sc->sc_ios)) {
929 1.1 jmcneill printf("%s: can't map i/o space\n", sc->sc_dev.dv_xname);
930 1.1 jmcneill return;
931 1.1 jmcneill }
932 1.1 jmcneill
933 1.1 jmcneill /* Initialize softc */
934 1.1 jmcneill sc->sc_tag = tag;
935 1.1 jmcneill sc->sc_pct = pc;
936 1.1 jmcneill sc->sc_dmat = pa->pa_dmat;
937 1.1 jmcneill
938 1.1 jmcneill /* Map and establish an interrupt */
939 1.1 jmcneill if (pci_intr_map(pa, &ih)) {
940 1.1 jmcneill printf("%s: can't map interrupt\n", sc->sc_dev.dv_xname);
941 1.1 jmcneill return;
942 1.1 jmcneill }
943 1.1 jmcneill intrstr = pci_intr_string(pc, ih);
944 1.1 jmcneill sc->sc_ih = pci_intr_establish(pc, ih, IPL_AUDIO, esa_intr, self);
945 1.1 jmcneill if (sc->sc_ih == NULL) {
946 1.1 jmcneill printf("%s: can't establish interrupt", sc->sc_dev.dv_xname);
947 1.1 jmcneill if (intrstr != NULL)
948 1.1 jmcneill printf(" at %s", intrstr);
949 1.1 jmcneill printf("\n");
950 1.1 jmcneill return;
951 1.1 jmcneill }
952 1.1 jmcneill printf("%s: interrupting at %s\n", sc->sc_dev.dv_xname, intrstr);
953 1.1 jmcneill
954 1.1 jmcneill /* Power up chip */
955 1.4 pooka esa_power(sc, ESA_PPMI_D0);
956 1.1 jmcneill
957 1.1 jmcneill /* Init chip */
958 1.1 jmcneill if (esa_init(sc) == -1) {
959 1.1 jmcneill printf("%s: esa_attach: unable to initialize the card\n",
960 1.1 jmcneill sc->sc_dev.dv_xname);
961 1.1 jmcneill return;
962 1.1 jmcneill }
963 1.1 jmcneill
964 1.4 pooka /* create suspend save area */
965 1.4 pooka len = sizeof(u_int16_t) * (ESA_REV_B_CODE_MEMORY_LENGTH
966 1.4 pooka + ESA_REV_B_DATA_MEMORY_LENGTH + 1);
967 1.5 jmcneill sc->savemem = (u_int16_t *)malloc(len, M_DEVBUF, M_NOWAIT | M_ZERO);
968 1.4 pooka if (sc->savemem == NULL) {
969 1.4 pooka printf("%s: unable to allocate suspend buffer\n",
970 1.4 pooka sc->sc_dev.dv_xname);
971 1.4 pooka return;
972 1.4 pooka }
973 1.6 jmcneill
974 1.6 jmcneill /*
975 1.6 jmcneill * Every card I've seen has had their channels swapped with respect
976 1.6 jmcneill * to the mixer. Ie:
977 1.6 jmcneill * $ mixerctl -w outputs.master=0,191
978 1.6 jmcneill * Would result in the _right_ speaker being turned off.
979 1.6 jmcneill *
980 1.6 jmcneill * So, we will swap the left and right mixer channels to compensate
981 1.6 jmcneill * for this.
982 1.6 jmcneill */
983 1.6 jmcneill sc->codec_flags |= AC97_HOST_SWAPPED_CHANNELS;
984 1.6 jmcneill sc->codec_flags |= AC97_HOST_DONT_READ;
985 1.4 pooka
986 1.1 jmcneill /* Attach AC97 host interface */
987 1.1 jmcneill sc->host_if.arg = self;
988 1.1 jmcneill sc->host_if.attach = esa_attach_codec;
989 1.1 jmcneill sc->host_if.read = esa_read_codec;
990 1.1 jmcneill sc->host_if.write = esa_write_codec;
991 1.1 jmcneill sc->host_if.reset = esa_reset_codec;
992 1.1 jmcneill sc->host_if.flags = esa_flags_codec;
993 1.1 jmcneill
994 1.1 jmcneill if (ac97_attach(&sc->host_if) != 0)
995 1.1 jmcneill return;
996 1.1 jmcneill
997 1.1 jmcneill sc->sc_audiodev = audio_attach_mi(&esa_hw_if, self, &sc->sc_dev);
998 1.1 jmcneill
999 1.4 pooka sc->powerhook = powerhook_establish(esa_powerhook, sc);
1000 1.4 pooka if (sc->powerhook == NULL)
1001 1.4 pooka printf("%s: WARNING: unable to establish powerhook\n",
1002 1.4 pooka sc->sc_dev.dv_xname);
1003 1.4 pooka
1004 1.1 jmcneill return;
1005 1.1 jmcneill }
1006 1.1 jmcneill
1007 1.1 jmcneill int
1008 1.1 jmcneill esa_detach(struct device *self, int flags)
1009 1.1 jmcneill {
1010 1.1 jmcneill struct esa_softc *sc = (struct esa_softc *)self;
1011 1.1 jmcneill int rv = 0;
1012 1.1 jmcneill
1013 1.1 jmcneill if (sc->sc_audiodev != NULL)
1014 1.1 jmcneill rv = config_detach(sc->sc_audiodev, flags);
1015 1.1 jmcneill if (rv)
1016 1.1 jmcneill return (rv);
1017 1.1 jmcneill
1018 1.1 jmcneill if (sc->sc_ih != NULL)
1019 1.1 jmcneill pci_intr_disestablish(sc->sc_pct, sc->sc_ih);
1020 1.1 jmcneill if (sc->sc_ios)
1021 1.1 jmcneill bus_space_unmap(sc->sc_iot, sc->sc_ioh, sc->sc_ios);
1022 1.1 jmcneill
1023 1.1 jmcneill return (0);
1024 1.1 jmcneill }
1025 1.1 jmcneill
1026 1.1 jmcneill u_int16_t
1027 1.1 jmcneill esa_read_assp(struct esa_softc *sc, u_int16_t region, u_int16_t index)
1028 1.1 jmcneill {
1029 1.1 jmcneill u_int16_t data;
1030 1.1 jmcneill bus_space_tag_t iot = sc->sc_iot;
1031 1.1 jmcneill bus_space_handle_t ioh = sc->sc_ioh;
1032 1.1 jmcneill
1033 1.1 jmcneill bus_space_write_2(iot, ioh, ESA_DSP_PORT_MEMORY_TYPE,
1034 1.1 jmcneill region & ESA_MEMTYPE_MASK);
1035 1.1 jmcneill bus_space_write_2(iot, ioh, ESA_DSP_PORT_MEMORY_INDEX, index);
1036 1.1 jmcneill data = bus_space_read_2(iot, ioh, ESA_DSP_PORT_MEMORY_DATA);
1037 1.1 jmcneill
1038 1.1 jmcneill return (data);
1039 1.1 jmcneill }
1040 1.1 jmcneill
1041 1.1 jmcneill void
1042 1.1 jmcneill esa_write_assp(struct esa_softc *sc, u_int16_t region, u_int16_t index,
1043 1.1 jmcneill u_int16_t data)
1044 1.1 jmcneill {
1045 1.1 jmcneill bus_space_tag_t iot = sc->sc_iot;
1046 1.1 jmcneill bus_space_handle_t ioh = sc->sc_ioh;
1047 1.1 jmcneill
1048 1.1 jmcneill bus_space_write_2(iot, ioh, ESA_DSP_PORT_MEMORY_TYPE,
1049 1.1 jmcneill region & ESA_MEMTYPE_MASK);
1050 1.1 jmcneill bus_space_write_2(iot, ioh, ESA_DSP_PORT_MEMORY_INDEX, index);
1051 1.1 jmcneill bus_space_write_2(iot, ioh, ESA_DSP_PORT_MEMORY_DATA, data);
1052 1.1 jmcneill
1053 1.1 jmcneill return;
1054 1.1 jmcneill }
1055 1.1 jmcneill
1056 1.1 jmcneill int
1057 1.1 jmcneill esa_init_codec(struct esa_softc *sc)
1058 1.1 jmcneill {
1059 1.1 jmcneill bus_space_tag_t iot = sc->sc_iot;
1060 1.1 jmcneill bus_space_handle_t ioh = sc->sc_ioh;
1061 1.1 jmcneill u_int32_t data;
1062 1.1 jmcneill
1063 1.1 jmcneill data = bus_space_read_1(iot, ioh, ESA_CODEC_COMMAND);
1064 1.1 jmcneill
1065 1.1 jmcneill return ((data & 0x1) ? 0 : 1);
1066 1.1 jmcneill }
1067 1.1 jmcneill
1068 1.1 jmcneill int
1069 1.1 jmcneill esa_attach_codec(void *aux, struct ac97_codec_if *codec_if)
1070 1.1 jmcneill {
1071 1.1 jmcneill struct esa_softc *sc = aux;
1072 1.1 jmcneill
1073 1.1 jmcneill sc->codec_if = codec_if;
1074 1.1 jmcneill
1075 1.1 jmcneill return (0);
1076 1.1 jmcneill }
1077 1.1 jmcneill
1078 1.1 jmcneill int
1079 1.1 jmcneill esa_read_codec(void *aux, u_int8_t reg, u_int16_t *result)
1080 1.1 jmcneill {
1081 1.1 jmcneill struct esa_softc *sc = aux;
1082 1.1 jmcneill bus_space_tag_t iot = sc->sc_iot;
1083 1.1 jmcneill bus_space_handle_t ioh = sc->sc_ioh;
1084 1.1 jmcneill
1085 1.1 jmcneill if (esa_wait(sc))
1086 1.1 jmcneill printf("%s: esa_read_codec: timed out\n", sc->sc_dev.dv_xname);
1087 1.1 jmcneill bus_space_write_1(iot, ioh, ESA_CODEC_COMMAND, (reg & 0x7f) | 0x80);
1088 1.1 jmcneill delay(50);
1089 1.1 jmcneill if (esa_wait(sc))
1090 1.1 jmcneill printf("%s: esa_read_codec: timed out\n", sc->sc_dev.dv_xname);
1091 1.1 jmcneill *result = bus_space_read_2(iot, ioh, ESA_CODEC_DATA);
1092 1.1 jmcneill
1093 1.1 jmcneill return (0);
1094 1.1 jmcneill }
1095 1.1 jmcneill
1096 1.1 jmcneill int
1097 1.1 jmcneill esa_write_codec(void *aux, u_int8_t reg, u_int16_t data)
1098 1.1 jmcneill {
1099 1.1 jmcneill struct esa_softc *sc = aux;
1100 1.1 jmcneill bus_space_tag_t iot = sc->sc_iot;
1101 1.1 jmcneill bus_space_handle_t ioh = sc->sc_ioh;
1102 1.1 jmcneill
1103 1.1 jmcneill if (esa_wait(sc)) {
1104 1.1 jmcneill printf("%s: esa_write_codec: timed out\n", sc->sc_dev.dv_xname);
1105 1.1 jmcneill return (-1);
1106 1.1 jmcneill }
1107 1.1 jmcneill bus_space_write_2(iot, ioh, ESA_CODEC_DATA, data);
1108 1.1 jmcneill bus_space_write_1(iot, ioh, ESA_CODEC_COMMAND, reg & 0x7f);
1109 1.1 jmcneill delay(50);
1110 1.1 jmcneill
1111 1.1 jmcneill return (0);
1112 1.1 jmcneill }
1113 1.1 jmcneill
1114 1.1 jmcneill void
1115 1.1 jmcneill esa_reset_codec(void *aux)
1116 1.1 jmcneill {
1117 1.1 jmcneill
1118 1.1 jmcneill return;
1119 1.1 jmcneill }
1120 1.1 jmcneill
1121 1.1 jmcneill enum ac97_host_flags
1122 1.1 jmcneill esa_flags_codec(void *aux)
1123 1.1 jmcneill {
1124 1.1 jmcneill struct esa_softc *sc = aux;
1125 1.1 jmcneill
1126 1.1 jmcneill return (sc->codec_flags);
1127 1.1 jmcneill }
1128 1.1 jmcneill
1129 1.1 jmcneill int
1130 1.1 jmcneill esa_wait(struct esa_softc *sc)
1131 1.1 jmcneill {
1132 1.1 jmcneill int i, val;
1133 1.1 jmcneill bus_space_tag_t iot = sc->sc_iot;
1134 1.1 jmcneill bus_space_handle_t ioh = sc->sc_ioh;
1135 1.1 jmcneill
1136 1.1 jmcneill for (i = 0; i < 20; i++) {
1137 1.1 jmcneill val = bus_space_read_1(iot, ioh, ESA_CODEC_STATUS);
1138 1.1 jmcneill if ((val & 1) == 0)
1139 1.1 jmcneill return (0);
1140 1.1 jmcneill delay(2);
1141 1.1 jmcneill }
1142 1.1 jmcneill
1143 1.1 jmcneill return (-1);
1144 1.1 jmcneill }
1145 1.1 jmcneill
1146 1.1 jmcneill int
1147 1.1 jmcneill esa_init(struct esa_softc *sc)
1148 1.1 jmcneill {
1149 1.1 jmcneill bus_space_tag_t iot = sc->sc_iot;
1150 1.1 jmcneill bus_space_handle_t ioh = sc->sc_ioh;
1151 1.1 jmcneill pcitag_t tag = sc->sc_tag;
1152 1.1 jmcneill pci_chipset_tag_t pc = sc->sc_pct;
1153 1.1 jmcneill u_int32_t data, i, size;
1154 1.1 jmcneill u_int8_t reset_state;
1155 1.3 jmcneill int data_bytes = (((ESA_MINISRC_TMP_BUFFER_SIZE & ~1) +
1156 1.3 jmcneill (ESA_MINISRC_IN_BUFFER_SIZE & ~1) +
1157 1.3 jmcneill (ESA_MINISRC_OUT_BUFFER_SIZE & ~1) + 4) + 255)
1158 1.3 jmcneill &~ 255;
1159 1.1 jmcneill
1160 1.1 jmcneill /* Disable legacy emulation */
1161 1.1 jmcneill data = pci_conf_read(pc, tag, PCI_LEGACY_AUDIO_CTRL);
1162 1.1 jmcneill data |= DISABLE_LEGACY;
1163 1.1 jmcneill pci_conf_write(pc, tag, PCI_LEGACY_AUDIO_CTRL, data);
1164 1.1 jmcneill
1165 1.1 jmcneill esa_config(sc);
1166 1.1 jmcneill
1167 1.1 jmcneill reset_state = esa_assp_halt(sc);
1168 1.1 jmcneill
1169 1.1 jmcneill esa_init_codec(sc);
1170 1.1 jmcneill esa_codec_reset(sc);
1171 1.1 jmcneill
1172 1.1 jmcneill /* Zero kernel and mixer data */
1173 1.1 jmcneill size = ESA_REV_B_DATA_MEMORY_UNIT_LENGTH * ESA_NUM_UNITS_KERNEL_DATA;
1174 1.1 jmcneill for (i = 0; i < size / 2; i++) {
1175 1.1 jmcneill esa_write_assp(sc, ESA_MEMTYPE_INTERNAL_DATA,
1176 1.1 jmcneill ESA_KDATA_BASE_ADDR + i, 0);
1177 1.1 jmcneill esa_write_assp(sc, ESA_MEMTYPE_INTERNAL_DATA,
1178 1.1 jmcneill ESA_KDATA_BASE_ADDR2 + i, 0);
1179 1.1 jmcneill }
1180 1.1 jmcneill
1181 1.1 jmcneill /* Init DMA pointer */
1182 1.1 jmcneill esa_write_assp(sc, ESA_MEMTYPE_INTERNAL_DATA, ESA_KDATA_CURRENT_DMA,
1183 1.1 jmcneill ESA_KDATA_DMA_XFER0);
1184 1.1 jmcneill
1185 1.1 jmcneill /* Write kernel code into memory */
1186 1.1 jmcneill size = sizeof(esa_assp_kernel_image);
1187 1.1 jmcneill for (i = 0; i < size / 2; i++)
1188 1.1 jmcneill esa_write_assp(sc, ESA_MEMTYPE_INTERNAL_CODE,
1189 1.1 jmcneill ESA_REV_B_CODE_MEMORY_BEGIN + i, esa_assp_kernel_image[i]);
1190 1.1 jmcneill
1191 1.1 jmcneill size = sizeof(esa_assp_minisrc_image);
1192 1.1 jmcneill for (i = 0; i < size / 2; i++)
1193 1.1 jmcneill esa_write_assp(sc, ESA_MEMTYPE_INTERNAL_CODE, 0x400 + i,
1194 1.1 jmcneill esa_assp_minisrc_image[i]);
1195 1.1 jmcneill
1196 1.1 jmcneill /* Write the coefficients for the low pass filter */
1197 1.1 jmcneill size = sizeof(esa_minisrc_lpf_image);
1198 1.1 jmcneill for (i = 0; i < size / 2; i++)
1199 1.1 jmcneill esa_write_assp(sc, ESA_MEMTYPE_INTERNAL_CODE,
1200 1.1 jmcneill 0x400 + ESA_MINISRC_COEF_LOC + i, esa_minisrc_lpf_image[i]);
1201 1.1 jmcneill esa_write_assp(sc, ESA_MEMTYPE_INTERNAL_CODE,
1202 1.1 jmcneill 0x400 + ESA_MINISRC_COEF_LOC + size, 0x8000);
1203 1.1 jmcneill esa_write_assp(sc, ESA_MEMTYPE_INTERNAL_DATA, ESA_KDATA_TASK0, 0x400);
1204 1.1 jmcneill /* Init the mixer number */
1205 1.1 jmcneill esa_write_assp(sc, ESA_MEMTYPE_INTERNAL_DATA,
1206 1.1 jmcneill ESA_KDATA_MIXER_TASK_NUMBER, 0);
1207 1.1 jmcneill /* Extreme kernel master volume */
1208 1.1 jmcneill esa_write_assp(sc, ESA_MEMTYPE_INTERNAL_DATA, ESA_KDATA_DAC_LEFT_VOLUME,
1209 1.1 jmcneill ESA_ARB_VOLUME);
1210 1.1 jmcneill esa_write_assp(sc, ESA_MEMTYPE_INTERNAL_DATA,
1211 1.1 jmcneill ESA_KDATA_DAC_RIGHT_VOLUME, ESA_ARB_VOLUME);
1212 1.1 jmcneill
1213 1.1 jmcneill if (esa_amp_enable(sc))
1214 1.1 jmcneill return (-1);
1215 1.1 jmcneill
1216 1.1 jmcneill /* Zero entire DAC/ADC area */
1217 1.1 jmcneill for (i = 0x1100; i < 0x1c00; i++)
1218 1.1 jmcneill esa_write_assp(sc, ESA_MEMTYPE_INTERNAL_DATA, i, 0);
1219 1.1 jmcneill
1220 1.3 jmcneill /* set some sane defaults */
1221 1.3 jmcneill sc->play.data_offset = ESA_DAC_DATA + data_bytes;
1222 1.3 jmcneill sc->rec.data_offset = ESA_DAC_DATA + data_bytes + (data_bytes / 2);
1223 1.3 jmcneill
1224 1.1 jmcneill esa_enable_interrupts(sc);
1225 1.1 jmcneill
1226 1.1 jmcneill bus_space_write_1(iot, ioh, ESA_DSP_PORT_CONTROL_REG_B,
1227 1.1 jmcneill reset_state | ESA_REGB_ENABLE_RESET);
1228 1.1 jmcneill
1229 1.1 jmcneill return (0);
1230 1.1 jmcneill }
1231 1.1 jmcneill
1232 1.1 jmcneill void
1233 1.1 jmcneill esa_config(struct esa_softc *sc)
1234 1.1 jmcneill {
1235 1.1 jmcneill bus_space_tag_t iot = sc->sc_iot;
1236 1.1 jmcneill bus_space_handle_t ioh = sc->sc_ioh;
1237 1.1 jmcneill pcitag_t tag = sc->sc_tag;
1238 1.1 jmcneill pci_chipset_tag_t pc = sc->sc_pct;
1239 1.1 jmcneill u_int32_t data;
1240 1.1 jmcneill
1241 1.1 jmcneill data = pci_conf_read(pc, tag, ESA_PCI_ALLEGRO_CONFIG);
1242 1.1 jmcneill data &= ESA_REDUCED_DEBOUNCE;
1243 1.1 jmcneill data |= ESA_PM_CTRL_ENABLE | ESA_CLK_DIV_BY_49 | ESA_USE_PCI_TIMING;
1244 1.1 jmcneill pci_conf_write(pc, tag, ESA_PCI_ALLEGRO_CONFIG, data);
1245 1.1 jmcneill
1246 1.1 jmcneill bus_space_write_1(iot, ioh, ESA_ASSP_CONTROL_B, ESA_RESET_ASSP);
1247 1.1 jmcneill data = pci_conf_read(pc, tag, ESA_PCI_ALLEGRO_CONFIG);
1248 1.1 jmcneill data &= ~ESA_INT_CLK_SELECT;
1249 1.1 jmcneill if (sc->type == ESS_MAESTRO3) {
1250 1.1 jmcneill data &= ~ESA_INT_CLK_MULT_ENABLE;
1251 1.1 jmcneill data |= ESA_INT_CLK_SRC_NOT_PCI;
1252 1.1 jmcneill }
1253 1.1 jmcneill data &= ~(ESA_CLK_MULT_MODE_SELECT | ESA_CLK_MULT_MODE_SELECT_2);
1254 1.1 jmcneill pci_conf_write(pc, tag, ESA_PCI_ALLEGRO_CONFIG, data);
1255 1.1 jmcneill
1256 1.1 jmcneill if (sc->type == ESS_ALLEGRO1) {
1257 1.1 jmcneill data = pci_conf_read(pc, tag, ESA_PCI_USER_CONFIG);
1258 1.1 jmcneill data |= ESA_IN_CLK_12MHZ_SELECT;
1259 1.1 jmcneill pci_conf_write(pc, tag, ESA_PCI_USER_CONFIG, data);
1260 1.1 jmcneill }
1261 1.1 jmcneill
1262 1.1 jmcneill data = bus_space_read_1(iot, ioh, ESA_ASSP_CONTROL_A);
1263 1.1 jmcneill data &= ~(ESA_DSP_CLK_36MHZ_SELECT | ESA_ASSP_CLK_49MHZ_SELECT);
1264 1.1 jmcneill data |= ESA_ASSP_CLK_49MHZ_SELECT; /* XXX: Assumes 49MHz DSP */
1265 1.1 jmcneill data |= ESA_ASSP_0_WS_ENABLE;
1266 1.1 jmcneill bus_space_write_1(iot, ioh, ESA_ASSP_CONTROL_A, data);
1267 1.1 jmcneill
1268 1.1 jmcneill bus_space_write_1(iot, ioh, ESA_ASSP_CONTROL_B, ESA_RUN_ASSP);
1269 1.1 jmcneill
1270 1.1 jmcneill return;
1271 1.1 jmcneill }
1272 1.1 jmcneill
1273 1.1 jmcneill u_int8_t
1274 1.1 jmcneill esa_assp_halt(struct esa_softc *sc)
1275 1.1 jmcneill {
1276 1.1 jmcneill bus_space_tag_t iot = sc->sc_iot;
1277 1.1 jmcneill bus_space_handle_t ioh = sc->sc_ioh;
1278 1.1 jmcneill u_int8_t data, reset_state;
1279 1.1 jmcneill
1280 1.1 jmcneill data = bus_space_read_1(iot, ioh, ESA_DSP_PORT_CONTROL_REG_B);
1281 1.1 jmcneill reset_state = data & ~ESA_REGB_STOP_CLOCK;
1282 1.1 jmcneill delay(10000); /* XXX use tsleep */
1283 1.1 jmcneill bus_space_write_1(iot, ioh, ESA_DSP_PORT_CONTROL_REG_B,
1284 1.1 jmcneill reset_state & ~ESA_REGB_ENABLE_RESET);
1285 1.1 jmcneill delay(10000); /* XXX use tsleep */
1286 1.1 jmcneill
1287 1.1 jmcneill return (reset_state);
1288 1.1 jmcneill }
1289 1.1 jmcneill
1290 1.1 jmcneill void
1291 1.1 jmcneill esa_codec_reset(struct esa_softc *sc)
1292 1.1 jmcneill {
1293 1.1 jmcneill bus_space_tag_t iot = sc->sc_iot;
1294 1.1 jmcneill bus_space_handle_t ioh = sc->sc_ioh;
1295 1.1 jmcneill u_int16_t data, dir;
1296 1.1 jmcneill int retry = 0;
1297 1.1 jmcneill
1298 1.1 jmcneill do {
1299 1.1 jmcneill data = bus_space_read_2(iot, ioh, ESA_GPIO_DIRECTION);
1300 1.1 jmcneill dir = data | 0x10; /* assuming pci bus master? */
1301 1.1 jmcneill
1302 1.1 jmcneill /* remote codec config */
1303 1.1 jmcneill data = bus_space_read_2(iot, ioh, ESA_RING_BUS_CTRL_B);
1304 1.1 jmcneill bus_space_write_2(iot, ioh, ESA_RING_BUS_CTRL_B,
1305 1.1 jmcneill data & ~ESA_SECOND_CODEC_ID_MASK);
1306 1.1 jmcneill data = bus_space_read_2(iot, ioh, ESA_SDO_OUT_DEST_CTRL);
1307 1.1 jmcneill bus_space_write_2(iot, ioh, ESA_SDO_OUT_DEST_CTRL,
1308 1.1 jmcneill data & ~ESA_COMMAND_ADDR_OUT);
1309 1.1 jmcneill data = bus_space_read_2(iot, ioh, ESA_SDO_IN_DEST_CTRL);
1310 1.1 jmcneill bus_space_write_2(iot, ioh, ESA_SDO_IN_DEST_CTRL,
1311 1.1 jmcneill data & ~ESA_STATUS_ADDR_IN);
1312 1.1 jmcneill
1313 1.1 jmcneill bus_space_write_2(iot, ioh, ESA_RING_BUS_CTRL_A,
1314 1.1 jmcneill ESA_IO_SRAM_ENABLE);
1315 1.1 jmcneill delay(20);
1316 1.1 jmcneill
1317 1.1 jmcneill bus_space_write_2(iot, ioh, ESA_GPIO_DIRECTION,
1318 1.1 jmcneill dir & ~ESA_GPO_PRIMARY_AC97);
1319 1.1 jmcneill bus_space_write_2(iot, ioh, ESA_GPIO_MASK,
1320 1.1 jmcneill ~ESA_GPO_PRIMARY_AC97);
1321 1.1 jmcneill bus_space_write_2(iot, ioh, ESA_GPIO_DATA, 0);
1322 1.1 jmcneill bus_space_write_2(iot, ioh, ESA_GPIO_DIRECTION,
1323 1.1 jmcneill dir | ESA_GPO_PRIMARY_AC97);
1324 1.1 jmcneill delay(sc->delay1 * 1000);
1325 1.1 jmcneill bus_space_write_2(iot, ioh, ESA_GPIO_DATA,
1326 1.1 jmcneill ESA_GPO_PRIMARY_AC97);
1327 1.1 jmcneill delay(5);
1328 1.1 jmcneill bus_space_write_2(iot, ioh, ESA_RING_BUS_CTRL_A,
1329 1.1 jmcneill ESA_IO_SRAM_ENABLE | ESA_SERIAL_AC_LINK_ENABLE);
1330 1.1 jmcneill bus_space_write_2(iot, ioh, ESA_GPIO_MASK, ~0);
1331 1.1 jmcneill delay(sc->delay2 * 1000);
1332 1.1 jmcneill
1333 1.1 jmcneill esa_read_codec(sc, 0x7c, &data);
1334 1.1 jmcneill if ((data == 0) || (data == 0xffff)) {
1335 1.1 jmcneill retry++;
1336 1.1 jmcneill if (retry > 3) {
1337 1.1 jmcneill printf("%s: esa_codec_reset: failed\n",
1338 1.1 jmcneill sc->sc_dev.dv_xname);
1339 1.1 jmcneill break;
1340 1.1 jmcneill }
1341 1.1 jmcneill printf("%s: esa_codec_reset: retrying\n",
1342 1.1 jmcneill sc->sc_dev.dv_xname);
1343 1.1 jmcneill } else
1344 1.1 jmcneill retry = 0;
1345 1.1 jmcneill } while (retry);
1346 1.1 jmcneill
1347 1.1 jmcneill return;
1348 1.1 jmcneill }
1349 1.1 jmcneill
1350 1.1 jmcneill int
1351 1.1 jmcneill esa_amp_enable(struct esa_softc *sc)
1352 1.1 jmcneill {
1353 1.1 jmcneill bus_space_tag_t iot = sc->sc_iot;
1354 1.1 jmcneill bus_space_handle_t ioh = sc->sc_ioh;
1355 1.1 jmcneill u_int32_t gpo, polarity_port, polarity;
1356 1.1 jmcneill u_int16_t data;
1357 1.1 jmcneill
1358 1.1 jmcneill switch (sc->type) {
1359 1.1 jmcneill case ESS_ALLEGRO1:
1360 1.1 jmcneill polarity_port = 0x1800;
1361 1.1 jmcneill break;
1362 1.1 jmcneill case ESS_MAESTRO3:
1363 1.1 jmcneill polarity_port = 0x1100;
1364 1.1 jmcneill break;
1365 1.1 jmcneill default:
1366 1.1 jmcneill printf("%s: esa_amp_enable: Unknown chip type!!!\n",
1367 1.1 jmcneill sc->sc_dev.dv_xname);
1368 1.1 jmcneill return (1);
1369 1.1 jmcneill }
1370 1.1 jmcneill
1371 1.1 jmcneill gpo = (polarity_port >> 8) & 0x0f;
1372 1.1 jmcneill polarity = polarity_port >> 12;
1373 1.1 jmcneill polarity = !polarity; /* Enable */
1374 1.1 jmcneill polarity = polarity << gpo;
1375 1.1 jmcneill gpo = 1 << gpo;
1376 1.1 jmcneill bus_space_write_2(iot, ioh, ESA_GPIO_MASK, ~gpo);
1377 1.1 jmcneill data = bus_space_read_2(iot, ioh, ESA_GPIO_DIRECTION);
1378 1.1 jmcneill bus_space_write_2(iot, ioh, ESA_GPIO_DIRECTION, data | gpo);
1379 1.1 jmcneill data = ESA_GPO_SECONDARY_AC97 | ESA_GPO_PRIMARY_AC97 | polarity;
1380 1.1 jmcneill bus_space_write_2(iot, ioh, ESA_GPIO_DATA, data);
1381 1.1 jmcneill bus_space_write_2(iot, ioh, ESA_GPIO_MASK, ~0);
1382 1.1 jmcneill
1383 1.1 jmcneill return (0);
1384 1.1 jmcneill }
1385 1.1 jmcneill
1386 1.1 jmcneill void
1387 1.1 jmcneill esa_enable_interrupts(struct esa_softc *sc)
1388 1.1 jmcneill {
1389 1.1 jmcneill bus_space_tag_t iot = sc->sc_iot;
1390 1.1 jmcneill bus_space_handle_t ioh = sc->sc_ioh;
1391 1.1 jmcneill u_int8_t data;
1392 1.1 jmcneill
1393 1.1 jmcneill bus_space_write_2(iot, ioh, ESA_HOST_INT_CTRL,
1394 1.1 jmcneill ESA_ASSP_INT_ENABLE | ESA_HV_INT_ENABLE);
1395 1.1 jmcneill data = bus_space_read_1(iot, ioh, ESA_ASSP_CONTROL_C);
1396 1.1 jmcneill bus_space_write_1(iot, ioh, ESA_ASSP_CONTROL_C,
1397 1.1 jmcneill data | ESA_ASSP_HOST_INT_ENABLE);
1398 1.1 jmcneill }
1399 1.1 jmcneill
1400 1.1 jmcneill int
1401 1.1 jmcneill esa_power(struct esa_softc *sc, int state)
1402 1.1 jmcneill {
1403 1.1 jmcneill pcitag_t tag = sc->sc_tag;
1404 1.1 jmcneill pci_chipset_tag_t pc = sc->sc_pct;
1405 1.1 jmcneill u_int32_t data;
1406 1.1 jmcneill
1407 1.4 pooka data = pci_conf_read(pc, tag, ESA_CONF_PM_PTR);
1408 1.1 jmcneill if (pci_conf_read(pc, tag, data) == 1)
1409 1.1 jmcneill pci_conf_write(pc, tag, data + 4, state);
1410 1.1 jmcneill
1411 1.1 jmcneill return (0);
1412 1.1 jmcneill }
1413 1.1 jmcneill
1414 1.4 pooka void
1415 1.4 pooka esa_powerhook(int why, void *hdl)
1416 1.4 pooka {
1417 1.4 pooka struct esa_softc *sc = (struct esa_softc *)hdl;
1418 1.4 pooka
1419 1.4 pooka switch (why) {
1420 1.4 pooka case PWR_SUSPEND:
1421 1.4 pooka case PWR_STANDBY:
1422 1.4 pooka esa_suspend(sc);
1423 1.4 pooka break;
1424 1.4 pooka case PWR_RESUME:
1425 1.4 pooka esa_resume(sc);
1426 1.4 pooka (sc->codec_if->vtbl->restore_ports)(sc->codec_if);
1427 1.4 pooka break;
1428 1.4 pooka }
1429 1.4 pooka }
1430 1.4 pooka
1431 1.4 pooka int
1432 1.4 pooka esa_suspend(struct esa_softc *sc)
1433 1.4 pooka {
1434 1.4 pooka bus_space_tag_t iot = sc->sc_iot;
1435 1.4 pooka bus_space_handle_t ioh = sc->sc_ioh;
1436 1.4 pooka int x, i, index;
1437 1.4 pooka
1438 1.4 pooka index = 0;
1439 1.4 pooka
1440 1.4 pooka x = splaudio();
1441 1.4 pooka esa_halt_output(sc);
1442 1.4 pooka delay(10000);
1443 1.4 pooka splx(x);
1444 1.4 pooka
1445 1.4 pooka bus_space_write_2(iot, ioh, ESA_HOST_INT_CTRL, 0);
1446 1.4 pooka bus_space_write_1(iot, ioh, ESA_ASSP_CONTROL_C, 0);
1447 1.4 pooka
1448 1.4 pooka esa_assp_halt(sc);
1449 1.4 pooka
1450 1.4 pooka /* Save ASSP state */
1451 1.4 pooka for (i = ESA_REV_B_CODE_MEMORY_BEGIN; i <= ESA_REV_B_CODE_MEMORY_END;
1452 1.4 pooka i++)
1453 1.4 pooka sc->savemem[index++] = esa_read_assp(sc,
1454 1.4 pooka ESA_MEMTYPE_INTERNAL_CODE, i);
1455 1.4 pooka for (i = ESA_REV_B_DATA_MEMORY_BEGIN; i <= ESA_REV_B_DATA_MEMORY_END;
1456 1.4 pooka i++)
1457 1.4 pooka sc->savemem[index++] = esa_read_assp(sc,
1458 1.4 pooka ESA_MEMTYPE_INTERNAL_DATA, i);
1459 1.4 pooka
1460 1.4 pooka esa_power(sc, ESA_PPMI_D3);
1461 1.4 pooka
1462 1.4 pooka return (0);
1463 1.4 pooka }
1464 1.4 pooka
1465 1.4 pooka int
1466 1.4 pooka esa_resume(struct esa_softc *sc) {
1467 1.4 pooka bus_space_tag_t iot = sc->sc_iot;
1468 1.4 pooka bus_space_handle_t ioh = sc->sc_ioh;
1469 1.4 pooka int i, index;
1470 1.4 pooka u_int8_t reset_state;
1471 1.4 pooka
1472 1.4 pooka index = 0;
1473 1.4 pooka
1474 1.4 pooka esa_power(sc, ESA_PPMI_D0);
1475 1.4 pooka delay(10000);
1476 1.4 pooka
1477 1.4 pooka esa_config(sc);
1478 1.4 pooka
1479 1.4 pooka reset_state = esa_assp_halt(sc);
1480 1.4 pooka
1481 1.4 pooka /* restore ASSP */
1482 1.4 pooka for (i = ESA_REV_B_CODE_MEMORY_BEGIN; i <= ESA_REV_B_CODE_MEMORY_END;
1483 1.4 pooka i++)
1484 1.4 pooka esa_write_assp(sc, ESA_MEMTYPE_INTERNAL_CODE, i,
1485 1.4 pooka sc->savemem[index++]);
1486 1.4 pooka for (i = ESA_REV_B_DATA_MEMORY_BEGIN; i <= ESA_REV_B_DATA_MEMORY_END;
1487 1.4 pooka i++)
1488 1.4 pooka esa_write_assp(sc, ESA_MEMTYPE_INTERNAL_DATA, i,
1489 1.4 pooka sc->savemem[index++]);
1490 1.4 pooka
1491 1.4 pooka esa_write_assp(sc, ESA_MEMTYPE_INTERNAL_DATA, ESA_KDATA_DMA_ACTIVE, 0);
1492 1.4 pooka bus_space_write_1(iot, ioh, ESA_DSP_PORT_CONTROL_REG_B,
1493 1.4 pooka reset_state | ESA_REGB_ENABLE_RESET);
1494 1.4 pooka
1495 1.4 pooka esa_enable_interrupts(sc);
1496 1.4 pooka esa_amp_enable(sc);
1497 1.4 pooka
1498 1.4 pooka return (0);
1499 1.4 pooka }
1500 1.4 pooka
1501 1.1 jmcneill u_int32_t
1502 1.3 jmcneill esa_get_pointer(struct esa_softc *sc, struct esa_channel *ch)
1503 1.1 jmcneill {
1504 1.1 jmcneill u_int16_t hi = 0, lo = 0;
1505 1.1 jmcneill u_int32_t addr;
1506 1.3 jmcneill int data_offset = ch->data_offset;
1507 1.1 jmcneill
1508 1.3 jmcneill hi = esa_read_assp(sc, ESA_MEMTYPE_INTERNAL_DATA, data_offset +
1509 1.1 jmcneill ESA_CDATA_HOST_SRC_CURRENTH);
1510 1.3 jmcneill lo = esa_read_assp(sc, ESA_MEMTYPE_INTERNAL_DATA, data_offset +
1511 1.1 jmcneill ESA_CDATA_HOST_SRC_CURRENTL);
1512 1.1 jmcneill
1513 1.1 jmcneill addr = lo | ((u_int32_t)hi << 16);
1514 1.3 jmcneill return (addr - ch->start);
1515 1.1 jmcneill }
1516 1.1 jmcneill
1517 1.1 jmcneill paddr_t
1518 1.1 jmcneill esa_mappage(void *addr, void *mem, off_t off, int prot)
1519 1.1 jmcneill {
1520 1.1 jmcneill struct esa_softc *sc = addr;
1521 1.1 jmcneill struct esa_dma *p;
1522 1.1 jmcneill
1523 1.1 jmcneill if (off < 0)
1524 1.1 jmcneill return (-1);
1525 1.1 jmcneill for (p = sc->sc_dmas; p && KERNADDR(p) != mem; p = p->next)
1526 1.1 jmcneill ;
1527 1.1 jmcneill if (!p)
1528 1.1 jmcneill return (-1);
1529 1.1 jmcneill return (bus_dmamem_mmap(sc->sc_dmat, p->segs, p->nsegs,
1530 1.1 jmcneill off, prot, BUS_DMA_WAITOK));
1531 1.1 jmcneill }
1532