1 /*- 2 * SPDX-License-Identifier: BSD-2-Clause 3 * 4 * Copyright (c) 1999 Seigo Tanimura 5 * All rights reserved. 6 * 7 * Portions of this source are based on cwcealdr.cpp and dhwiface.cpp in 8 * cwcealdr1.zip, the sample sources by Crystal Semiconductor. 9 * Copyright (c) 1996-1998 Crystal Semiconductor Corp. 10 * 11 * Redistribution and use in source and binary forms, with or without 12 * modification, are permitted provided that the following conditions 13 * are met: 14 * 1. Redistributions of source code must retain the above copyright 15 * notice, this list of conditions and the following disclaimer. 16 * 2. Redistributions in binary form must reproduce the above copyright 17 * notice, this list of conditions and the following disclaimer in the 18 * documentation and/or other materials provided with the distribution. 19 * 20 * THIS SOFTWARE IS PROVIDED BY THE AUTHOR AND CONTRIBUTORS ``AS IS'' AND 21 * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE 22 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE 23 * ARE DISCLAIMED. IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE 24 * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL 25 * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS 26 * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) 27 * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT 28 * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY 29 * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF 30 * SUCH DAMAGE. 31 */ 32 33 #ifdef HAVE_KERNEL_OPTION_HEADERS 34 #include "opt_snd.h" 35 #endif 36 37 #include <dev/sound/pcm/sound.h> 38 #include <dev/sound/pcm/ac97.h> 39 #include <dev/sound/pci/csareg.h> 40 #include <dev/sound/pci/csavar.h> 41 42 #include <dev/pci/pcireg.h> 43 #include <dev/pci/pcivar.h> 44 45 /* Buffer size on dma transfer. Fixed for CS416x. */ 46 #define CS461x_BUFFSIZE (4 * 1024) 47 48 #define GOF_PER_SEC 200 49 50 /* device private data */ 51 struct csa_info; 52 53 struct csa_chinfo { 54 struct csa_info *parent; 55 struct pcm_channel *channel; 56 struct snd_dbuf *buffer; 57 int dir; 58 u_int32_t fmt, spd; 59 int dma; 60 }; 61 62 struct csa_info { 63 csa_res res; /* resource */ 64 void *ih; /* Interrupt cookie */ 65 bus_dma_tag_t parent_dmat; /* DMA tag */ 66 struct csa_bridgeinfo *binfo; /* The state of the parent. */ 67 struct csa_card *card; 68 69 int active; 70 /* Contents of board's registers */ 71 u_long pfie; 72 u_long pctl; 73 u_long cctl; 74 struct csa_chinfo pch, rch; 75 u_int32_t ac97[CS461x_AC97_NUMBER_RESTORE_REGS]; 76 u_int32_t ac97_powerdown; 77 u_int32_t ac97_general_purpose; 78 }; 79 80 /* -------------------------------------------------------------------- */ 81 82 /* prototypes */ 83 static int csa_init(struct csa_info *); 84 static void csa_intr(void *); 85 static void csa_setplaysamplerate(csa_res *resp, u_long ulInRate); 86 static void csa_setcapturesamplerate(csa_res *resp, u_long ulOutRate); 87 static void csa_startplaydma(struct csa_info *csa); 88 static void csa_startcapturedma(struct csa_info *csa); 89 static void csa_stopplaydma(struct csa_info *csa); 90 static void csa_stopcapturedma(struct csa_info *csa); 91 static int csa_startdsp(csa_res *resp); 92 static int csa_stopdsp(csa_res *resp); 93 static int csa_allocres(struct csa_info *scp, device_t dev); 94 static void csa_releaseres(struct csa_info *scp, device_t dev); 95 static void csa_ac97_suspend(struct csa_info *csa); 96 static void csa_ac97_resume(struct csa_info *csa); 97 98 static u_int32_t csa_playfmt[] = { 99 SND_FORMAT(AFMT_U8, 1, 0), 100 SND_FORMAT(AFMT_U8, 2, 0), 101 SND_FORMAT(AFMT_S8, 1, 0), 102 SND_FORMAT(AFMT_S8, 2, 0), 103 SND_FORMAT(AFMT_S16_LE, 1, 0), 104 SND_FORMAT(AFMT_S16_LE, 2, 0), 105 SND_FORMAT(AFMT_S16_BE, 1, 0), 106 SND_FORMAT(AFMT_S16_BE, 2, 0), 107 0 108 }; 109 static struct pcmchan_caps csa_playcaps = {8000, 48000, csa_playfmt, 0}; 110 111 static u_int32_t csa_recfmt[] = { 112 SND_FORMAT(AFMT_S16_LE, 1, 0), 113 SND_FORMAT(AFMT_S16_LE, 2, 0), 114 0 115 }; 116 static struct pcmchan_caps csa_reccaps = {11025, 48000, csa_recfmt, 0}; 117 118 /* -------------------------------------------------------------------- */ 119 120 static int 121 csa_active(struct csa_info *csa, int run) 122 { 123 int old; 124 125 old = csa->active; 126 csa->active += run; 127 128 if ((csa->active > 1) || (csa->active < -1)) 129 csa->active = 0; 130 if (csa->card->active) 131 return (csa->card->active(!(csa->active && old))); 132 133 return 0; 134 } 135 136 /* -------------------------------------------------------------------- */ 137 /* ac97 codec */ 138 139 static int 140 csa_rdcd(kobj_t obj, void *devinfo, int regno) 141 { 142 u_int32_t data; 143 struct csa_info *csa = (struct csa_info *)devinfo; 144 145 csa_active(csa, 1); 146 if (csa_readcodec(&csa->res, regno + BA0_AC97_RESET, &data)) 147 data = 0; 148 csa_active(csa, -1); 149 150 return data; 151 } 152 153 static int 154 csa_wrcd(kobj_t obj, void *devinfo, int regno, u_int32_t data) 155 { 156 struct csa_info *csa = (struct csa_info *)devinfo; 157 158 csa_active(csa, 1); 159 csa_writecodec(&csa->res, regno + BA0_AC97_RESET, data); 160 csa_active(csa, -1); 161 162 return 0; 163 } 164 165 static kobj_method_t csa_ac97_methods[] = { 166 KOBJMETHOD(ac97_read, csa_rdcd), 167 KOBJMETHOD(ac97_write, csa_wrcd), 168 KOBJMETHOD_END 169 }; 170 AC97_DECLARE(csa_ac97); 171 172 static void 173 csa_setplaysamplerate(csa_res *resp, u_long ulInRate) 174 { 175 u_long ulTemp1, ulTemp2; 176 u_long ulPhiIncr; 177 u_long ulCorrectionPerGOF, ulCorrectionPerSec; 178 u_long ulOutRate; 179 180 ulOutRate = 48000; 181 182 /* 183 * Compute the values used to drive the actual sample rate conversion. 184 * The following formulas are being computed, using inline assembly 185 * since we need to use 64 bit arithmetic to compute the values: 186 * 187 * ulPhiIncr = floor((Fs,in * 2^26) / Fs,out) 188 * ulCorrectionPerGOF = floor((Fs,in * 2^26 - Fs,out * ulPhiIncr) / 189 * GOF_PER_SEC) 190 * ulCorrectionPerSec = Fs,in * 2^26 - Fs,out * phiIncr - 191 * GOF_PER_SEC * ulCorrectionPerGOF 192 * 193 * i.e. 194 * 195 * ulPhiIncr:ulOther = dividend:remainder((Fs,in * 2^26) / Fs,out) 196 * ulCorrectionPerGOF:ulCorrectionPerSec = 197 * dividend:remainder(ulOther / GOF_PER_SEC) 198 */ 199 ulTemp1 = ulInRate << 16; 200 ulPhiIncr = ulTemp1 / ulOutRate; 201 ulTemp1 -= ulPhiIncr * ulOutRate; 202 ulTemp1 <<= 10; 203 ulPhiIncr <<= 10; 204 ulTemp2 = ulTemp1 / ulOutRate; 205 ulPhiIncr += ulTemp2; 206 ulTemp1 -= ulTemp2 * ulOutRate; 207 ulCorrectionPerGOF = ulTemp1 / GOF_PER_SEC; 208 ulTemp1 -= ulCorrectionPerGOF * GOF_PER_SEC; 209 ulCorrectionPerSec = ulTemp1; 210 211 /* 212 * Fill in the SampleRateConverter control block. 213 */ 214 csa_writemem(resp, BA1_PSRC, ((ulCorrectionPerSec << 16) & 0xFFFF0000) | (ulCorrectionPerGOF & 0xFFFF)); 215 csa_writemem(resp, BA1_PPI, ulPhiIncr); 216 } 217 218 static void 219 csa_setcapturesamplerate(csa_res *resp, u_long ulOutRate) 220 { 221 u_long ulPhiIncr, ulCoeffIncr, ulTemp1, ulTemp2; 222 u_long ulCorrectionPerGOF, ulCorrectionPerSec, ulInitialDelay; 223 u_long dwFrameGroupLength, dwCnt; 224 u_long ulInRate; 225 226 ulInRate = 48000; 227 228 /* 229 * We can only decimate by up to a factor of 1/9th the hardware rate. 230 * Return an error if an attempt is made to stray outside that limit. 231 */ 232 if((ulOutRate * 9) < ulInRate) 233 return; 234 235 /* 236 * We can not capture at at rate greater than the Input Rate (48000). 237 * Return an error if an attempt is made to stray outside that limit. 238 */ 239 if(ulOutRate > ulInRate) 240 return; 241 242 /* 243 * Compute the values used to drive the actual sample rate conversion. 244 * The following formulas are being computed, using inline assembly 245 * since we need to use 64 bit arithmetic to compute the values: 246 * 247 * ulCoeffIncr = -floor((Fs,out * 2^23) / Fs,in) 248 * ulPhiIncr = floor((Fs,in * 2^26) / Fs,out) 249 * ulCorrectionPerGOF = floor((Fs,in * 2^26 - Fs,out * ulPhiIncr) / 250 * GOF_PER_SEC) 251 * ulCorrectionPerSec = Fs,in * 2^26 - Fs,out * phiIncr - 252 * GOF_PER_SEC * ulCorrectionPerGOF 253 * ulInitialDelay = ceil((24 * Fs,in) / Fs,out) 254 * 255 * i.e. 256 * 257 * ulCoeffIncr = neg(dividend((Fs,out * 2^23) / Fs,in)) 258 * ulPhiIncr:ulOther = dividend:remainder((Fs,in * 2^26) / Fs,out) 259 * ulCorrectionPerGOF:ulCorrectionPerSec = 260 * dividend:remainder(ulOther / GOF_PER_SEC) 261 * ulInitialDelay = dividend(((24 * Fs,in) + Fs,out - 1) / Fs,out) 262 */ 263 ulTemp1 = ulOutRate << 16; 264 ulCoeffIncr = ulTemp1 / ulInRate; 265 ulTemp1 -= ulCoeffIncr * ulInRate; 266 ulTemp1 <<= 7; 267 ulCoeffIncr <<= 7; 268 ulCoeffIncr += ulTemp1 / ulInRate; 269 ulCoeffIncr ^= 0xFFFFFFFF; 270 ulCoeffIncr++; 271 ulTemp1 = ulInRate << 16; 272 ulPhiIncr = ulTemp1 / ulOutRate; 273 ulTemp1 -= ulPhiIncr * ulOutRate; 274 ulTemp1 <<= 10; 275 ulPhiIncr <<= 10; 276 ulTemp2 = ulTemp1 / ulOutRate; 277 ulPhiIncr += ulTemp2; 278 ulTemp1 -= ulTemp2 * ulOutRate; 279 ulCorrectionPerGOF = ulTemp1 / GOF_PER_SEC; 280 ulTemp1 -= ulCorrectionPerGOF * GOF_PER_SEC; 281 ulCorrectionPerSec = ulTemp1; 282 ulInitialDelay = ((ulInRate * 24) + ulOutRate - 1) / ulOutRate; 283 284 /* 285 * Fill in the VariDecimate control block. 286 */ 287 csa_writemem(resp, BA1_CSRC, 288 ((ulCorrectionPerSec << 16) & 0xFFFF0000) | (ulCorrectionPerGOF & 0xFFFF)); 289 csa_writemem(resp, BA1_CCI, ulCoeffIncr); 290 csa_writemem(resp, BA1_CD, 291 (((BA1_VARIDEC_BUF_1 + (ulInitialDelay << 2)) << 16) & 0xFFFF0000) | 0x80); 292 csa_writemem(resp, BA1_CPI, ulPhiIncr); 293 294 /* 295 * Figure out the frame group length for the write back task. Basically, 296 * this is just the factors of 24000 (2^6*3*5^3) that are not present in 297 * the output sample rate. 298 */ 299 dwFrameGroupLength = 1; 300 for(dwCnt = 2; dwCnt <= 64; dwCnt *= 2) 301 { 302 if(((ulOutRate / dwCnt) * dwCnt) != 303 ulOutRate) 304 { 305 dwFrameGroupLength *= 2; 306 } 307 } 308 if(((ulOutRate / 3) * 3) != 309 ulOutRate) 310 { 311 dwFrameGroupLength *= 3; 312 } 313 for(dwCnt = 5; dwCnt <= 125; dwCnt *= 5) 314 { 315 if(((ulOutRate / dwCnt) * dwCnt) != 316 ulOutRate) 317 { 318 dwFrameGroupLength *= 5; 319 } 320 } 321 322 /* 323 * Fill in the WriteBack control block. 324 */ 325 csa_writemem(resp, BA1_CFG1, dwFrameGroupLength); 326 csa_writemem(resp, BA1_CFG2, (0x00800000 | dwFrameGroupLength)); 327 csa_writemem(resp, BA1_CCST, 0x0000FFFF); 328 csa_writemem(resp, BA1_CSPB, ((65536 * ulOutRate) / 24000)); 329 csa_writemem(resp, (BA1_CSPB + 4), 0x0000FFFF); 330 } 331 332 static void 333 csa_startplaydma(struct csa_info *csa) 334 { 335 csa_res *resp; 336 u_long ul; 337 338 if (!csa->pch.dma) { 339 resp = &csa->res; 340 ul = csa_readmem(resp, BA1_PCTL); 341 ul &= 0x0000ffff; 342 csa_writemem(resp, BA1_PCTL, ul | csa->pctl); 343 csa_writemem(resp, BA1_PVOL, 0x80008000); 344 csa->pch.dma = 1; 345 } 346 } 347 348 static void 349 csa_startcapturedma(struct csa_info *csa) 350 { 351 csa_res *resp; 352 u_long ul; 353 354 if (!csa->rch.dma) { 355 resp = &csa->res; 356 ul = csa_readmem(resp, BA1_CCTL); 357 ul &= 0xffff0000; 358 csa_writemem(resp, BA1_CCTL, ul | csa->cctl); 359 csa_writemem(resp, BA1_CVOL, 0x80008000); 360 csa->rch.dma = 1; 361 } 362 } 363 364 static void 365 csa_stopplaydma(struct csa_info *csa) 366 { 367 csa_res *resp; 368 u_long ul; 369 370 if (csa->pch.dma) { 371 resp = &csa->res; 372 ul = csa_readmem(resp, BA1_PCTL); 373 csa->pctl = ul & 0xffff0000; 374 csa_writemem(resp, BA1_PCTL, ul & 0x0000ffff); 375 csa_writemem(resp, BA1_PVOL, 0xffffffff); 376 csa->pch.dma = 0; 377 378 /* 379 * The bitwise pointer of the serial FIFO in the DSP 380 * seems to make an error upon starting or stopping the 381 * DSP. Clear the FIFO and correct the pointer if we 382 * are not capturing. 383 */ 384 if (!csa->rch.dma) { 385 csa_clearserialfifos(resp); 386 csa_writeio(resp, BA0_SERBSP, 0); 387 } 388 } 389 } 390 391 static void 392 csa_stopcapturedma(struct csa_info *csa) 393 { 394 csa_res *resp; 395 u_long ul; 396 397 if (csa->rch.dma) { 398 resp = &csa->res; 399 ul = csa_readmem(resp, BA1_CCTL); 400 csa->cctl = ul & 0x0000ffff; 401 csa_writemem(resp, BA1_CCTL, ul & 0xffff0000); 402 csa_writemem(resp, BA1_CVOL, 0xffffffff); 403 csa->rch.dma = 0; 404 405 /* 406 * The bitwise pointer of the serial FIFO in the DSP 407 * seems to make an error upon starting or stopping the 408 * DSP. Clear the FIFO and correct the pointer if we 409 * are not playing. 410 */ 411 if (!csa->pch.dma) { 412 csa_clearserialfifos(resp); 413 csa_writeio(resp, BA0_SERBSP, 0); 414 } 415 } 416 } 417 418 static int 419 csa_startdsp(csa_res *resp) 420 { 421 int i; 422 u_long ul; 423 424 /* 425 * Set the frame timer to reflect the number of cycles per frame. 426 */ 427 csa_writemem(resp, BA1_FRMT, 0xadf); 428 429 /* 430 * Turn on the run, run at frame, and DMA enable bits in the local copy of 431 * the SP control register. 432 */ 433 csa_writemem(resp, BA1_SPCR, SPCR_RUN | SPCR_RUNFR | SPCR_DRQEN); 434 435 /* 436 * Wait until the run at frame bit resets itself in the SP control 437 * register. 438 */ 439 ul = 0; 440 for (i = 0 ; i < 25 ; i++) { 441 /* 442 * Wait a little bit, so we don't issue PCI reads too frequently. 443 */ 444 DELAY(50); 445 /* 446 * Fetch the current value of the SP status register. 447 */ 448 ul = csa_readmem(resp, BA1_SPCR); 449 450 /* 451 * If the run at frame bit has reset, then stop waiting. 452 */ 453 if((ul & SPCR_RUNFR) == 0) 454 break; 455 } 456 /* 457 * If the run at frame bit never reset, then return an error. 458 */ 459 if((ul & SPCR_RUNFR) != 0) 460 return (EAGAIN); 461 462 return (0); 463 } 464 465 static int 466 csa_stopdsp(csa_res *resp) 467 { 468 /* 469 * Turn off the run, run at frame, and DMA enable bits in 470 * the local copy of the SP control register. 471 */ 472 csa_writemem(resp, BA1_SPCR, 0); 473 474 return (0); 475 } 476 477 static int 478 csa_setupchan(struct csa_chinfo *ch) 479 { 480 struct csa_info *csa = ch->parent; 481 csa_res *resp = &csa->res; 482 u_long pdtc, tmp; 483 484 if (ch->dir == PCMDIR_PLAY) { 485 /* direction */ 486 csa_writemem(resp, BA1_PBA, sndbuf_getbufaddr(ch->buffer)); 487 488 /* format */ 489 csa->pfie = csa_readmem(resp, BA1_PFIE) & ~0x0000f03f; 490 if (!(ch->fmt & AFMT_SIGNED)) 491 csa->pfie |= 0x8000; 492 if (ch->fmt & AFMT_BIGENDIAN) 493 csa->pfie |= 0x4000; 494 if (AFMT_CHANNEL(ch->fmt) < 2) 495 csa->pfie |= 0x2000; 496 if (ch->fmt & AFMT_8BIT) 497 csa->pfie |= 0x1000; 498 csa_writemem(resp, BA1_PFIE, csa->pfie); 499 500 tmp = 4; 501 if (ch->fmt & AFMT_16BIT) 502 tmp <<= 1; 503 if (AFMT_CHANNEL(ch->fmt) > 1) 504 tmp <<= 1; 505 tmp--; 506 507 pdtc = csa_readmem(resp, BA1_PDTC) & ~0x000001ff; 508 pdtc |= tmp; 509 csa_writemem(resp, BA1_PDTC, pdtc); 510 511 /* rate */ 512 csa_setplaysamplerate(resp, ch->spd); 513 } else if (ch->dir == PCMDIR_REC) { 514 /* direction */ 515 csa_writemem(resp, BA1_CBA, sndbuf_getbufaddr(ch->buffer)); 516 517 /* format */ 518 csa_writemem(resp, BA1_CIE, (csa_readmem(resp, BA1_CIE) & ~0x0000003f) | 0x00000001); 519 520 /* rate */ 521 csa_setcapturesamplerate(resp, ch->spd); 522 } 523 return 0; 524 } 525 526 /* -------------------------------------------------------------------- */ 527 /* channel interface */ 528 529 static void * 530 csachan_init(kobj_t obj, void *devinfo, struct snd_dbuf *b, struct pcm_channel *c, int dir) 531 { 532 struct csa_info *csa = devinfo; 533 struct csa_chinfo *ch = (dir == PCMDIR_PLAY)? &csa->pch : &csa->rch; 534 535 ch->parent = csa; 536 ch->channel = c; 537 ch->buffer = b; 538 ch->dir = dir; 539 if (sndbuf_alloc(ch->buffer, csa->parent_dmat, 0, CS461x_BUFFSIZE) != 0) 540 return NULL; 541 return ch; 542 } 543 544 static int 545 csachan_setformat(kobj_t obj, void *data, u_int32_t format) 546 { 547 struct csa_chinfo *ch = data; 548 549 ch->fmt = format; 550 return 0; 551 } 552 553 static u_int32_t 554 csachan_setspeed(kobj_t obj, void *data, u_int32_t speed) 555 { 556 struct csa_chinfo *ch = data; 557 558 ch->spd = speed; 559 return ch->spd; /* XXX calc real speed */ 560 } 561 562 static u_int32_t 563 csachan_setblocksize(kobj_t obj, void *data, u_int32_t blocksize) 564 { 565 return CS461x_BUFFSIZE / 2; 566 } 567 568 static int 569 csachan_trigger(kobj_t obj, void *data, int go) 570 { 571 struct csa_chinfo *ch = data; 572 struct csa_info *csa = ch->parent; 573 574 if (!PCMTRIG_COMMON(go)) 575 return 0; 576 577 if (go == PCMTRIG_START) { 578 csa_active(csa, 1); 579 csa_setupchan(ch); 580 if (ch->dir == PCMDIR_PLAY) 581 csa_startplaydma(csa); 582 else 583 csa_startcapturedma(csa); 584 } else { 585 if (ch->dir == PCMDIR_PLAY) 586 csa_stopplaydma(csa); 587 else 588 csa_stopcapturedma(csa); 589 csa_active(csa, -1); 590 } 591 return 0; 592 } 593 594 static u_int32_t 595 csachan_getptr(kobj_t obj, void *data) 596 { 597 struct csa_chinfo *ch = data; 598 struct csa_info *csa = ch->parent; 599 csa_res *resp; 600 u_int32_t ptr; 601 602 resp = &csa->res; 603 604 if (ch->dir == PCMDIR_PLAY) { 605 ptr = csa_readmem(resp, BA1_PBA) - sndbuf_getbufaddr(ch->buffer); 606 if ((ch->fmt & AFMT_U8) != 0 || (ch->fmt & AFMT_S8) != 0) 607 ptr >>= 1; 608 } else { 609 ptr = csa_readmem(resp, BA1_CBA) - sndbuf_getbufaddr(ch->buffer); 610 if ((ch->fmt & AFMT_U8) != 0 || (ch->fmt & AFMT_S8) != 0) 611 ptr >>= 1; 612 } 613 614 return (ptr); 615 } 616 617 static struct pcmchan_caps * 618 csachan_getcaps(kobj_t obj, void *data) 619 { 620 struct csa_chinfo *ch = data; 621 return (ch->dir == PCMDIR_PLAY)? &csa_playcaps : &csa_reccaps; 622 } 623 624 static kobj_method_t csachan_methods[] = { 625 KOBJMETHOD(channel_init, csachan_init), 626 KOBJMETHOD(channel_setformat, csachan_setformat), 627 KOBJMETHOD(channel_setspeed, csachan_setspeed), 628 KOBJMETHOD(channel_setblocksize, csachan_setblocksize), 629 KOBJMETHOD(channel_trigger, csachan_trigger), 630 KOBJMETHOD(channel_getptr, csachan_getptr), 631 KOBJMETHOD(channel_getcaps, csachan_getcaps), 632 KOBJMETHOD_END 633 }; 634 CHANNEL_DECLARE(csachan); 635 636 /* -------------------------------------------------------------------- */ 637 /* The interrupt handler */ 638 static void 639 csa_intr(void *p) 640 { 641 struct csa_info *csa = p; 642 643 if ((csa->binfo->hisr & HISR_VC0) != 0) 644 chn_intr(csa->pch.channel); 645 if ((csa->binfo->hisr & HISR_VC1) != 0) 646 chn_intr(csa->rch.channel); 647 } 648 649 /* -------------------------------------------------------------------- */ 650 651 /* 652 * Probe and attach the card 653 */ 654 655 static int 656 csa_init(struct csa_info *csa) 657 { 658 csa_res *resp; 659 660 resp = &csa->res; 661 662 csa->pfie = 0; 663 csa_stopplaydma(csa); 664 csa_stopcapturedma(csa); 665 666 if (csa_startdsp(resp)) 667 return (1); 668 669 /* Crank up the power on the DAC and ADC. */ 670 csa_setplaysamplerate(resp, 8000); 671 csa_setcapturesamplerate(resp, 8000); 672 /* Set defaults */ 673 csa_writeio(resp, BA0_EGPIODR, EGPIODR_GPOE0); 674 csa_writeio(resp, BA0_EGPIOPTR, EGPIOPTR_GPPT0); 675 /* Power up amplifier */ 676 csa_writeio(resp, BA0_EGPIODR, csa_readio(resp, BA0_EGPIODR) | 677 EGPIODR_GPOE2); 678 csa_writeio(resp, BA0_EGPIOPTR, csa_readio(resp, BA0_EGPIOPTR) | 679 EGPIOPTR_GPPT2); 680 681 return 0; 682 } 683 684 /* Allocates resources. */ 685 static int 686 csa_allocres(struct csa_info *csa, device_t dev) 687 { 688 csa_res *resp; 689 690 resp = &csa->res; 691 if (resp->io == NULL) { 692 resp->io = bus_alloc_resource_any(dev, SYS_RES_MEMORY, 693 &resp->io_rid, RF_ACTIVE); 694 if (resp->io == NULL) 695 return (1); 696 } 697 if (resp->mem == NULL) { 698 resp->mem = bus_alloc_resource_any(dev, SYS_RES_MEMORY, 699 &resp->mem_rid, RF_ACTIVE); 700 if (resp->mem == NULL) 701 return (1); 702 } 703 if (resp->irq == NULL) { 704 resp->irq = bus_alloc_resource_any(dev, SYS_RES_IRQ, 705 &resp->irq_rid, RF_ACTIVE | RF_SHAREABLE); 706 if (resp->irq == NULL) 707 return (1); 708 } 709 if (bus_dma_tag_create(/*parent*/bus_get_dma_tag(dev), 710 /*alignment*/CS461x_BUFFSIZE, 711 /*boundary*/CS461x_BUFFSIZE, 712 /*lowaddr*/BUS_SPACE_MAXADDR_32BIT, 713 /*highaddr*/BUS_SPACE_MAXADDR, 714 /*filter*/NULL, /*filterarg*/NULL, 715 /*maxsize*/CS461x_BUFFSIZE, /*nsegments*/1, /*maxsegz*/0x3ffff, 716 /*flags*/0, /*lockfunc*/NULL, /*lockarg*/NULL, 717 &csa->parent_dmat) != 0) 718 return (1); 719 720 return (0); 721 } 722 723 /* Releases resources. */ 724 static void 725 csa_releaseres(struct csa_info *csa, device_t dev) 726 { 727 csa_res *resp; 728 729 KASSERT(csa != NULL, ("called with bogus resource structure")); 730 731 resp = &csa->res; 732 if (resp->irq != NULL) { 733 if (csa->ih) 734 bus_teardown_intr(dev, resp->irq, csa->ih); 735 bus_release_resource(dev, SYS_RES_IRQ, resp->irq_rid, resp->irq); 736 resp->irq = NULL; 737 } 738 if (resp->io != NULL) { 739 bus_release_resource(dev, SYS_RES_MEMORY, resp->io_rid, resp->io); 740 resp->io = NULL; 741 } 742 if (resp->mem != NULL) { 743 bus_release_resource(dev, SYS_RES_MEMORY, resp->mem_rid, resp->mem); 744 resp->mem = NULL; 745 } 746 if (csa->parent_dmat != NULL) { 747 bus_dma_tag_destroy(csa->parent_dmat); 748 csa->parent_dmat = NULL; 749 } 750 751 free(csa, M_DEVBUF); 752 } 753 754 static int 755 pcmcsa_probe(device_t dev) 756 { 757 char *s; 758 struct sndcard_func *func; 759 760 /* The parent device has already been probed. */ 761 762 func = device_get_ivars(dev); 763 if (func == NULL || func->func != SCF_PCM) 764 return (ENXIO); 765 766 s = "CS461x PCM Audio"; 767 768 device_set_desc(dev, s); 769 return (0); 770 } 771 772 static int 773 pcmcsa_attach(device_t dev) 774 { 775 struct csa_info *csa; 776 csa_res *resp; 777 char status[SND_STATUSLEN]; 778 struct ac97_info *codec; 779 struct sndcard_func *func; 780 781 csa = malloc(sizeof(*csa), M_DEVBUF, M_WAITOK | M_ZERO); 782 func = device_get_ivars(dev); 783 csa->binfo = func->varinfo; 784 /* 785 * Fake the status of DMA so that the initial value of 786 * PCTL and CCTL can be stored into csa->pctl and csa->cctl, 787 * respectively. 788 */ 789 csa->pch.dma = csa->rch.dma = 1; 790 csa->active = 0; 791 csa->card = csa->binfo->card; 792 793 /* Allocate the resources. */ 794 resp = &csa->res; 795 resp->io_rid = PCIR_BAR(0); 796 resp->mem_rid = PCIR_BAR(1); 797 resp->irq_rid = 0; 798 if (csa_allocres(csa, dev)) { 799 csa_releaseres(csa, dev); 800 return (ENXIO); 801 } 802 803 csa_active(csa, 1); 804 if (csa_init(csa)) { 805 csa_releaseres(csa, dev); 806 return (ENXIO); 807 } 808 codec = AC97_CREATE(dev, csa, csa_ac97); 809 if (codec == NULL) { 810 csa_releaseres(csa, dev); 811 return (ENXIO); 812 } 813 if (csa->card->inv_eapd) 814 ac97_setflags(codec, AC97_F_EAPD_INV); 815 if (mixer_init(dev, ac97_getmixerclass(), codec) == -1) { 816 ac97_destroy(codec); 817 csa_releaseres(csa, dev); 818 return (ENXIO); 819 } 820 821 snprintf(status, SND_STATUSLEN, "irq %jd on %s", 822 rman_get_start(resp->irq), 823 device_get_nameunit(device_get_parent(dev))); 824 825 /* Enable interrupt. */ 826 if (snd_setup_intr(dev, resp->irq, 0, csa_intr, csa, &csa->ih)) { 827 ac97_destroy(codec); 828 csa_releaseres(csa, dev); 829 return (ENXIO); 830 } 831 csa_writemem(resp, BA1_PFIE, csa_readmem(resp, BA1_PFIE) & ~0x0000f03f); 832 csa_writemem(resp, BA1_CIE, (csa_readmem(resp, BA1_CIE) & ~0x0000003f) | 0x00000001); 833 csa_active(csa, -1); 834 835 if (pcm_register(dev, csa, 1, 1)) { 836 ac97_destroy(codec); 837 csa_releaseres(csa, dev); 838 return (ENXIO); 839 } 840 pcm_addchan(dev, PCMDIR_REC, &csachan_class, csa); 841 pcm_addchan(dev, PCMDIR_PLAY, &csachan_class, csa); 842 pcm_setstatus(dev, status); 843 844 return (0); 845 } 846 847 static int 848 pcmcsa_detach(device_t dev) 849 { 850 int r; 851 struct csa_info *csa; 852 853 r = pcm_unregister(dev); 854 if (r) 855 return r; 856 857 csa = pcm_getdevinfo(dev); 858 csa_releaseres(csa, dev); 859 860 return 0; 861 } 862 863 static void 864 csa_ac97_suspend(struct csa_info *csa) 865 { 866 int count, i; 867 uint32_t tmp; 868 869 for (count = 0x2, i=0; 870 (count <= CS461x_AC97_HIGHESTREGTORESTORE) && 871 (i < CS461x_AC97_NUMBER_RESTORE_REGS); 872 count += 2, i++) 873 csa_readcodec(&csa->res, BA0_AC97_RESET + count, &csa->ac97[i]); 874 875 /* mute the outputs */ 876 csa_writecodec(&csa->res, BA0_AC97_MASTER_VOLUME, 0x8000); 877 csa_writecodec(&csa->res, BA0_AC97_HEADPHONE_VOLUME, 0x8000); 878 csa_writecodec(&csa->res, BA0_AC97_MASTER_VOLUME_MONO, 0x8000); 879 csa_writecodec(&csa->res, BA0_AC97_PCM_OUT_VOLUME, 0x8000); 880 /* save the registers that cause pops */ 881 csa_readcodec(&csa->res, BA0_AC97_POWERDOWN, &csa->ac97_powerdown); 882 csa_readcodec(&csa->res, BA0_AC97_GENERAL_PURPOSE, 883 &csa->ac97_general_purpose); 884 885 /* 886 * And power down everything on the AC97 codec. Well, for now, 887 * only power down the DAC/ADC and MIXER VREFON components. 888 * trouble with removing VREF. 889 */ 890 891 /* MIXVON */ 892 csa_readcodec(&csa->res, BA0_AC97_POWERDOWN, &tmp); 893 csa_writecodec(&csa->res, BA0_AC97_POWERDOWN, 894 tmp | CS_AC97_POWER_CONTROL_MIXVON); 895 /* ADC */ 896 csa_readcodec(&csa->res, BA0_AC97_POWERDOWN, &tmp); 897 csa_writecodec(&csa->res, BA0_AC97_POWERDOWN, 898 tmp | CS_AC97_POWER_CONTROL_ADC); 899 /* DAC */ 900 csa_readcodec(&csa->res, BA0_AC97_POWERDOWN, &tmp); 901 csa_writecodec(&csa->res, BA0_AC97_POWERDOWN, 902 tmp | CS_AC97_POWER_CONTROL_DAC); 903 } 904 905 static void 906 csa_ac97_resume(struct csa_info *csa) 907 { 908 int count, i; 909 910 /* 911 * First, we restore the state of the general purpose register. This 912 * contains the mic select (mic1 or mic2) and if we restore this after 913 * we restore the mic volume/boost state and mic2 was selected at 914 * suspend time, we will end up with a brief period of time where mic1 915 * is selected with the volume/boost settings for mic2, causing 916 * acoustic feedback. So we restore the general purpose register 917 * first, thereby getting the correct mic selected before we restore 918 * the mic volume/boost. 919 */ 920 csa_writecodec(&csa->res, BA0_AC97_GENERAL_PURPOSE, 921 csa->ac97_general_purpose); 922 /* 923 * Now, while the outputs are still muted, restore the state of power 924 * on the AC97 part. 925 */ 926 csa_writecodec(&csa->res, BA0_AC97_POWERDOWN, csa->ac97_powerdown); 927 /* 928 * Restore just the first set of registers, from register number 929 * 0x02 to the register number that ulHighestRegToRestore specifies. 930 */ 931 for (count = 0x2, i=0; 932 (count <= CS461x_AC97_HIGHESTREGTORESTORE) && 933 (i < CS461x_AC97_NUMBER_RESTORE_REGS); 934 count += 2, i++) 935 csa_writecodec(&csa->res, BA0_AC97_RESET + count, csa->ac97[i]); 936 } 937 938 static int 939 pcmcsa_suspend(device_t dev) 940 { 941 struct csa_info *csa; 942 csa_res *resp; 943 944 csa = pcm_getdevinfo(dev); 945 resp = &csa->res; 946 947 csa_active(csa, 1); 948 949 /* playback interrupt disable */ 950 csa_writemem(resp, BA1_PFIE, 951 (csa_readmem(resp, BA1_PFIE) & ~0x0000f03f) | 0x00000010); 952 /* capture interrupt disable */ 953 csa_writemem(resp, BA1_CIE, 954 (csa_readmem(resp, BA1_CIE) & ~0x0000003f) | 0x00000011); 955 csa_stopplaydma(csa); 956 csa_stopcapturedma(csa); 957 958 csa_ac97_suspend(csa); 959 960 csa_resetdsp(resp); 961 962 csa_stopdsp(resp); 963 /* 964 * Power down the DAC and ADC. For now leave the other areas on. 965 */ 966 csa_writecodec(&csa->res, BA0_AC97_POWERDOWN, 0x300); 967 /* 968 * Power down the PLL. 969 */ 970 csa_writemem(resp, BA0_CLKCR1, 0); 971 /* 972 * Turn off the Processor by turning off the software clock 973 * enable flag in the clock control register. 974 */ 975 csa_writemem(resp, BA0_CLKCR1, 976 csa_readmem(resp, BA0_CLKCR1) & ~CLKCR1_SWCE); 977 978 csa_active(csa, -1); 979 980 return 0; 981 } 982 983 static int 984 pcmcsa_resume(device_t dev) 985 { 986 struct csa_info *csa; 987 csa_res *resp; 988 989 csa = pcm_getdevinfo(dev); 990 resp = &csa->res; 991 992 csa_active(csa, 1); 993 994 /* cs_hardware_init */ 995 csa_stopplaydma(csa); 996 csa_stopcapturedma(csa); 997 csa_ac97_resume(csa); 998 if (csa_startdsp(resp)) 999 return (ENXIO); 1000 /* Enable interrupts on the part. */ 1001 if ((csa_readio(resp, BA0_HISR) & HISR_INTENA) == 0) 1002 csa_writeio(resp, BA0_HICR, HICR_IEV | HICR_CHGM); 1003 /* playback interrupt enable */ 1004 csa_writemem(resp, BA1_PFIE, csa_readmem(resp, BA1_PFIE) & ~0x0000f03f); 1005 /* capture interrupt enable */ 1006 csa_writemem(resp, BA1_CIE, 1007 (csa_readmem(resp, BA1_CIE) & ~0x0000003f) | 0x00000001); 1008 /* cs_restart_part */ 1009 csa_setupchan(&csa->pch); 1010 csa_startplaydma(csa); 1011 csa_setupchan(&csa->rch); 1012 csa_startcapturedma(csa); 1013 1014 csa_active(csa, -1); 1015 1016 return 0; 1017 } 1018 1019 static device_method_t pcmcsa_methods[] = { 1020 /* Device interface */ 1021 DEVMETHOD(device_probe , pcmcsa_probe ), 1022 DEVMETHOD(device_attach, pcmcsa_attach), 1023 DEVMETHOD(device_detach, pcmcsa_detach), 1024 DEVMETHOD(device_suspend, pcmcsa_suspend), 1025 DEVMETHOD(device_resume, pcmcsa_resume), 1026 1027 { 0, 0 }, 1028 }; 1029 1030 static driver_t pcmcsa_driver = { 1031 "pcm", 1032 pcmcsa_methods, 1033 PCM_SOFTC_SIZE, 1034 }; 1035 1036 DRIVER_MODULE(snd_csapcm, csa, pcmcsa_driver, 0, 0); 1037 MODULE_DEPEND(snd_csapcm, sound, SOUND_MINVER, SOUND_PREFVER, SOUND_MAXVER); 1038 MODULE_DEPEND(snd_csapcm, snd_csa, 1, 1, 1); 1039 MODULE_VERSION(snd_csapcm, 1); 1040