1 /*- 2 * SPDX-License-Identifier: BSD-2-Clause-FreeBSD 3 * 4 * Copyright (c) 2006 Bernd Walter. All rights reserved. 5 * Copyright (c) 2006 M. Warner Losh. All rights reserved. 6 * Copyright (c) 2017 Marius Strobl <marius@FreeBSD.org> 7 * 8 * Redistribution and use in source and binary forms, with or without 9 * modification, are permitted provided that the following conditions 10 * are met: 11 * 1. Redistributions of source code must retain the above copyright 12 * notice, this list of conditions and the following disclaimer. 13 * 2. Redistributions in binary form must reproduce the above copyright 14 * notice, this list of conditions and the following disclaimer in the 15 * documentation and/or other materials provided with the distribution. 16 * 17 * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR 18 * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES 19 * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED. 20 * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT, 21 * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT 22 * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, 23 * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY 24 * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT 25 * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF 26 * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE. 27 * 28 * Portions of this software may have been developed with reference to 29 * the SD Simplified Specification. The following disclaimer may apply: 30 * 31 * The following conditions apply to the release of the simplified 32 * specification ("Simplified Specification") by the SD Card Association and 33 * the SD Group. The Simplified Specification is a subset of the complete SD 34 * Specification which is owned by the SD Card Association and the SD 35 * Group. This Simplified Specification is provided on a non-confidential 36 * basis subject to the disclaimers below. Any implementation of the 37 * Simplified Specification may require a license from the SD Card 38 * Association, SD Group, SD-3C LLC or other third parties. 39 * 40 * Disclaimers: 41 * 42 * The information contained in the Simplified Specification is presented only 43 * as a standard specification for SD Cards and SD Host/Ancillary products and 44 * is provided "AS-IS" without any representations or warranties of any 45 * kind. No responsibility is assumed by the SD Group, SD-3C LLC or the SD 46 * Card Association for any damages, any infringements of patents or other 47 * right of the SD Group, SD-3C LLC, the SD Card Association or any third 48 * parties, which may result from its use. No license is granted by 49 * implication, estoppel or otherwise under any patent or other rights of the 50 * SD Group, SD-3C LLC, the SD Card Association or any third party. Nothing 51 * herein shall be construed as an obligation by the SD Group, the SD-3C LLC 52 * or the SD Card Association to disclose or distribute any technical 53 * information, know-how or other confidential information to any third party. 54 */ 55 56 #include <sys/cdefs.h> 57 __FBSDID("$FreeBSD$"); 58 59 #include <sys/param.h> 60 #include <sys/systm.h> 61 #include <sys/kernel.h> 62 #include <sys/malloc.h> 63 #include <sys/lock.h> 64 #include <sys/module.h> 65 #include <sys/mutex.h> 66 #include <sys/bus.h> 67 #include <sys/endian.h> 68 #include <sys/sysctl.h> 69 #include <sys/time.h> 70 71 #include <dev/mmc/bridge.h> 72 #include <dev/mmc/mmc_private.h> 73 #include <dev/mmc/mmc_subr.h> 74 #include <dev/mmc/mmcreg.h> 75 #include <dev/mmc/mmcbrvar.h> 76 #include <dev/mmc/mmcvar.h> 77 78 #include "mmcbr_if.h" 79 #include "mmcbus_if.h" 80 81 CTASSERT(bus_timing_max <= sizeof(uint32_t) * NBBY); 82 83 /* 84 * Per-card data 85 */ 86 struct mmc_ivars { 87 uint32_t raw_cid[4]; /* Raw bits of the CID */ 88 uint32_t raw_csd[4]; /* Raw bits of the CSD */ 89 uint32_t raw_scr[2]; /* Raw bits of the SCR */ 90 uint8_t raw_ext_csd[MMC_EXTCSD_SIZE]; /* Raw bits of the EXT_CSD */ 91 uint32_t raw_sd_status[16]; /* Raw bits of the SD_STATUS */ 92 uint16_t rca; 93 u_char read_only; /* True when the device is read-only */ 94 u_char high_cap; /* High Capacity device (block addressed) */ 95 enum mmc_card_mode mode; 96 enum mmc_bus_width bus_width; /* Bus width to use */ 97 struct mmc_cid cid; /* cid decoded */ 98 struct mmc_csd csd; /* csd decoded */ 99 struct mmc_scr scr; /* scr decoded */ 100 struct mmc_sd_status sd_status; /* SD_STATUS decoded */ 101 uint32_t sec_count; /* Card capacity in 512byte blocks */ 102 uint32_t timings; /* Mask of bus timings supported */ 103 uint32_t vccq_120; /* Mask of bus timings at VCCQ of 1.2 V */ 104 uint32_t vccq_180; /* Mask of bus timings at VCCQ of 1.8 V */ 105 uint32_t tran_speed; /* Max speed in normal mode */ 106 uint32_t hs_tran_speed; /* Max speed in high speed mode */ 107 uint32_t erase_sector; /* Card native erase sector size */ 108 uint32_t cmd6_time; /* Generic switch timeout [us] */ 109 uint32_t quirks; /* Quirks as per mmc_quirk->quirks */ 110 char card_id_string[64];/* Formatted CID info (serial, MFG, etc) */ 111 char card_sn_string[16];/* Formatted serial # for disk->d_ident */ 112 }; 113 114 #define CMD_RETRIES 3 115 116 static const struct mmc_quirk mmc_quirks[] = { 117 /* 118 * For some SanDisk iNAND devices, the CMD38 argument needs to be 119 * provided in EXT_CSD[113]. 120 */ 121 { 0x2, 0x100, "SEM02G", MMC_QUIRK_INAND_CMD38 }, 122 { 0x2, 0x100, "SEM04G", MMC_QUIRK_INAND_CMD38 }, 123 { 0x2, 0x100, "SEM08G", MMC_QUIRK_INAND_CMD38 }, 124 { 0x2, 0x100, "SEM16G", MMC_QUIRK_INAND_CMD38 }, 125 { 0x2, 0x100, "SEM32G", MMC_QUIRK_INAND_CMD38 }, 126 127 /* 128 * Disable TRIM for Kingston eMMCs where a firmware bug can lead to 129 * unrecoverable data corruption. 130 */ 131 { 0x70, MMC_QUIRK_OID_ANY, "V10008", MMC_QUIRK_BROKEN_TRIM }, 132 { 0x70, MMC_QUIRK_OID_ANY, "V10016", MMC_QUIRK_BROKEN_TRIM }, 133 134 { 0x0, 0x0, NULL, 0x0 } 135 }; 136 137 static SYSCTL_NODE(_hw, OID_AUTO, mmc, CTLFLAG_RD, NULL, "mmc driver"); 138 139 static int mmc_debug; 140 SYSCTL_INT(_hw_mmc, OID_AUTO, debug, CTLFLAG_RWTUN, &mmc_debug, 0, 141 "Debug level"); 142 143 /* bus entry points */ 144 static int mmc_acquire_bus(device_t busdev, device_t dev); 145 static int mmc_attach(device_t dev); 146 static int mmc_child_location_str(device_t dev, device_t child, char *buf, 147 size_t buflen); 148 static int mmc_detach(device_t dev); 149 static int mmc_probe(device_t dev); 150 static int mmc_read_ivar(device_t bus, device_t child, int which, 151 uintptr_t *result); 152 static int mmc_release_bus(device_t busdev, device_t dev); 153 static int mmc_resume(device_t dev); 154 static void mmc_retune_pause(device_t busdev, device_t dev, bool retune); 155 static void mmc_retune_unpause(device_t busdev, device_t dev); 156 static int mmc_suspend(device_t dev); 157 static int mmc_wait_for_request(device_t busdev, device_t dev, 158 struct mmc_request *req); 159 static int mmc_write_ivar(device_t bus, device_t child, int which, 160 uintptr_t value); 161 162 #define MMC_LOCK(_sc) mtx_lock(&(_sc)->sc_mtx) 163 #define MMC_UNLOCK(_sc) mtx_unlock(&(_sc)->sc_mtx) 164 #define MMC_LOCK_INIT(_sc) \ 165 mtx_init(&(_sc)->sc_mtx, device_get_nameunit((_sc)->dev), \ 166 "mmc", MTX_DEF) 167 #define MMC_LOCK_DESTROY(_sc) mtx_destroy(&(_sc)->sc_mtx); 168 #define MMC_ASSERT_LOCKED(_sc) mtx_assert(&(_sc)->sc_mtx, MA_OWNED); 169 #define MMC_ASSERT_UNLOCKED(_sc) mtx_assert(&(_sc)->sc_mtx, MA_NOTOWNED); 170 171 static int mmc_all_send_cid(struct mmc_softc *sc, uint32_t *rawcid); 172 static void mmc_app_decode_scr(uint32_t *raw_scr, struct mmc_scr *scr); 173 static void mmc_app_decode_sd_status(uint32_t *raw_sd_status, 174 struct mmc_sd_status *sd_status); 175 static int mmc_app_sd_status(struct mmc_softc *sc, uint16_t rca, 176 uint32_t *rawsdstatus); 177 static int mmc_app_send_scr(struct mmc_softc *sc, uint16_t rca, 178 uint32_t *rawscr); 179 static int mmc_calculate_clock(struct mmc_softc *sc); 180 static void mmc_decode_cid_mmc(uint32_t *raw_cid, struct mmc_cid *cid, 181 bool is_4_41p); 182 static void mmc_decode_cid_sd(uint32_t *raw_cid, struct mmc_cid *cid); 183 static void mmc_decode_csd_mmc(uint32_t *raw_csd, struct mmc_csd *csd); 184 static int mmc_decode_csd_sd(uint32_t *raw_csd, struct mmc_csd *csd); 185 static void mmc_delayed_attach(void *xsc); 186 static int mmc_delete_cards(struct mmc_softc *sc, bool final); 187 static void mmc_discover_cards(struct mmc_softc *sc); 188 static void mmc_format_card_id_string(struct mmc_ivars *ivar); 189 static void mmc_go_discovery(struct mmc_softc *sc); 190 static uint32_t mmc_get_bits(uint32_t *bits, int bit_len, int start, 191 int size); 192 static int mmc_highest_voltage(uint32_t ocr); 193 static bool mmc_host_timing(device_t dev, enum mmc_bus_timing timing); 194 static void mmc_idle_cards(struct mmc_softc *sc); 195 static void mmc_ms_delay(int ms); 196 static void mmc_log_card(device_t dev, struct mmc_ivars *ivar, int newcard); 197 static void mmc_power_down(struct mmc_softc *sc); 198 static void mmc_power_up(struct mmc_softc *sc); 199 static void mmc_rescan_cards(struct mmc_softc *sc); 200 static int mmc_retune(device_t busdev, device_t dev, bool reset); 201 static void mmc_scan(struct mmc_softc *sc); 202 static int mmc_sd_switch(struct mmc_softc *sc, uint8_t mode, uint8_t grp, 203 uint8_t value, uint8_t *res); 204 static int mmc_select_card(struct mmc_softc *sc, uint16_t rca); 205 static uint32_t mmc_select_vdd(struct mmc_softc *sc, uint32_t ocr); 206 static int mmc_send_app_op_cond(struct mmc_softc *sc, uint32_t ocr, 207 uint32_t *rocr); 208 static int mmc_send_csd(struct mmc_softc *sc, uint16_t rca, uint32_t *rawcsd); 209 static int mmc_send_if_cond(struct mmc_softc *sc, uint8_t vhs); 210 static int mmc_send_op_cond(struct mmc_softc *sc, uint32_t ocr, 211 uint32_t *rocr); 212 static int mmc_send_relative_addr(struct mmc_softc *sc, uint32_t *resp); 213 static int mmc_set_blocklen(struct mmc_softc *sc, uint32_t len); 214 static int mmc_set_card_bus_width(struct mmc_softc *sc, struct mmc_ivars *ivar, 215 enum mmc_bus_timing timing); 216 static int mmc_set_power_class(struct mmc_softc *sc, struct mmc_ivars *ivar); 217 static int mmc_set_relative_addr(struct mmc_softc *sc, uint16_t resp); 218 static int mmc_set_timing(struct mmc_softc *sc, struct mmc_ivars *ivar, 219 enum mmc_bus_timing timing); 220 static int mmc_set_vccq(struct mmc_softc *sc, struct mmc_ivars *ivar, 221 enum mmc_bus_timing timing); 222 static int mmc_switch_to_hs200(struct mmc_softc *sc, struct mmc_ivars *ivar, 223 uint32_t clock); 224 static int mmc_switch_to_hs400(struct mmc_softc *sc, struct mmc_ivars *ivar, 225 uint32_t max_dtr, enum mmc_bus_timing max_timing); 226 static int mmc_test_bus_width(struct mmc_softc *sc); 227 static uint32_t mmc_timing_to_dtr(struct mmc_ivars *ivar, 228 enum mmc_bus_timing timing); 229 static const char *mmc_timing_to_string(enum mmc_bus_timing timing); 230 static void mmc_update_child_list(struct mmc_softc *sc); 231 static int mmc_wait_for_command(struct mmc_softc *sc, uint32_t opcode, 232 uint32_t arg, uint32_t flags, uint32_t *resp, int retries); 233 static int mmc_wait_for_req(struct mmc_softc *sc, struct mmc_request *req); 234 static void mmc_wakeup(struct mmc_request *req); 235 236 static void 237 mmc_ms_delay(int ms) 238 { 239 240 DELAY(1000 * ms); /* XXX BAD */ 241 } 242 243 static int 244 mmc_probe(device_t dev) 245 { 246 247 device_set_desc(dev, "MMC/SD bus"); 248 return (0); 249 } 250 251 static int 252 mmc_attach(device_t dev) 253 { 254 struct mmc_softc *sc; 255 256 sc = device_get_softc(dev); 257 sc->dev = dev; 258 MMC_LOCK_INIT(sc); 259 260 /* We'll probe and attach our children later, but before / mount */ 261 sc->config_intrhook.ich_func = mmc_delayed_attach; 262 sc->config_intrhook.ich_arg = sc; 263 if (config_intrhook_establish(&sc->config_intrhook) != 0) 264 device_printf(dev, "config_intrhook_establish failed\n"); 265 return (0); 266 } 267 268 static int 269 mmc_detach(device_t dev) 270 { 271 struct mmc_softc *sc = device_get_softc(dev); 272 int err; 273 274 err = mmc_delete_cards(sc, true); 275 if (err != 0) 276 return (err); 277 mmc_power_down(sc); 278 MMC_LOCK_DESTROY(sc); 279 280 return (0); 281 } 282 283 static int 284 mmc_suspend(device_t dev) 285 { 286 struct mmc_softc *sc = device_get_softc(dev); 287 int err; 288 289 err = bus_generic_suspend(dev); 290 if (err != 0) 291 return (err); 292 /* 293 * We power down with the bus acquired here, mainly so that no device 294 * is selected any longer and sc->last_rca gets set to 0. Otherwise, 295 * the deselect as part of the bus acquisition in mmc_scan() may fail 296 * during resume, as the bus isn't powered up again before later in 297 * mmc_go_discovery(). 298 */ 299 err = mmc_acquire_bus(dev, dev); 300 if (err != 0) 301 return (err); 302 mmc_power_down(sc); 303 err = mmc_release_bus(dev, dev); 304 return (err); 305 } 306 307 static int 308 mmc_resume(device_t dev) 309 { 310 struct mmc_softc *sc = device_get_softc(dev); 311 312 mmc_scan(sc); 313 return (bus_generic_resume(dev)); 314 } 315 316 static int 317 mmc_acquire_bus(device_t busdev, device_t dev) 318 { 319 struct mmc_softc *sc; 320 struct mmc_ivars *ivar; 321 int err; 322 uint16_t rca; 323 enum mmc_bus_timing timing; 324 325 err = MMCBR_ACQUIRE_HOST(device_get_parent(busdev), busdev); 326 if (err) 327 return (err); 328 sc = device_get_softc(busdev); 329 MMC_LOCK(sc); 330 if (sc->owner) 331 panic("mmc: host bridge didn't serialize us."); 332 sc->owner = dev; 333 MMC_UNLOCK(sc); 334 335 if (busdev != dev) { 336 /* 337 * Keep track of the last rca that we've selected. If 338 * we're asked to do it again, don't. We never 339 * unselect unless the bus code itself wants the mmc 340 * bus, and constantly reselecting causes problems. 341 */ 342 ivar = device_get_ivars(dev); 343 rca = ivar->rca; 344 if (sc->last_rca != rca) { 345 if (mmc_select_card(sc, rca) != MMC_ERR_NONE) { 346 device_printf(busdev, "Card at relative " 347 "address %d failed to select\n", rca); 348 return (ENXIO); 349 } 350 sc->last_rca = rca; 351 timing = mmcbr_get_timing(busdev); 352 /* 353 * For eMMC modes, setting/updating bus width and VCCQ 354 * only really is necessary if there actually is more 355 * than one device on the bus as generally that already 356 * had to be done by mmc_calculate_clock() or one of 357 * its calees. Moreover, setting the bus width anew 358 * can trigger re-tuning (via a CRC error on the next 359 * CMD), even if not switching between devices an the 360 * previously selected one is still tuned. Obviously, 361 * we need to re-tune the host controller if devices 362 * are actually switched, though. 363 */ 364 if (timing >= bus_timing_mmc_ddr52 && 365 sc->child_count == 1) 366 return (0); 367 /* Prepare bus width for the new card. */ 368 if (bootverbose || mmc_debug) { 369 device_printf(busdev, 370 "setting bus width to %d bits %s timing\n", 371 (ivar->bus_width == bus_width_4) ? 4 : 372 (ivar->bus_width == bus_width_8) ? 8 : 1, 373 mmc_timing_to_string(timing)); 374 } 375 if (mmc_set_card_bus_width(sc, ivar, timing) != 376 MMC_ERR_NONE) { 377 device_printf(busdev, "Card at relative " 378 "address %d failed to set bus width\n", 379 rca); 380 return (ENXIO); 381 } 382 mmcbr_set_bus_width(busdev, ivar->bus_width); 383 mmcbr_update_ios(busdev); 384 if (mmc_set_vccq(sc, ivar, timing) != MMC_ERR_NONE) { 385 device_printf(busdev, "Failed to set VCCQ " 386 "for card at relative address %d\n", rca); 387 return (ENXIO); 388 } 389 if (timing >= bus_timing_mmc_hs200 && 390 mmc_retune(busdev, dev, true) != 0) { 391 device_printf(busdev, "Card at relative " 392 "address %d failed to re-tune\n", rca); 393 return (ENXIO); 394 } 395 } 396 } else { 397 /* 398 * If there's a card selected, stand down. 399 */ 400 if (sc->last_rca != 0) { 401 if (mmc_select_card(sc, 0) != MMC_ERR_NONE) 402 return (ENXIO); 403 sc->last_rca = 0; 404 } 405 } 406 407 return (0); 408 } 409 410 static int 411 mmc_release_bus(device_t busdev, device_t dev) 412 { 413 struct mmc_softc *sc; 414 int err; 415 416 sc = device_get_softc(busdev); 417 418 MMC_LOCK(sc); 419 if (!sc->owner) 420 panic("mmc: releasing unowned bus."); 421 if (sc->owner != dev) 422 panic("mmc: you don't own the bus. game over."); 423 MMC_UNLOCK(sc); 424 err = MMCBR_RELEASE_HOST(device_get_parent(busdev), busdev); 425 if (err) 426 return (err); 427 MMC_LOCK(sc); 428 sc->owner = NULL; 429 MMC_UNLOCK(sc); 430 return (0); 431 } 432 433 static uint32_t 434 mmc_select_vdd(struct mmc_softc *sc, uint32_t ocr) 435 { 436 437 return (ocr & MMC_OCR_VOLTAGE); 438 } 439 440 static int 441 mmc_highest_voltage(uint32_t ocr) 442 { 443 int i; 444 445 for (i = MMC_OCR_MAX_VOLTAGE_SHIFT; 446 i >= MMC_OCR_MIN_VOLTAGE_SHIFT; i--) 447 if (ocr & (1 << i)) 448 return (i); 449 return (-1); 450 } 451 452 static void 453 mmc_wakeup(struct mmc_request *req) 454 { 455 struct mmc_softc *sc; 456 457 sc = (struct mmc_softc *)req->done_data; 458 MMC_LOCK(sc); 459 req->flags |= MMC_REQ_DONE; 460 MMC_UNLOCK(sc); 461 wakeup(req); 462 } 463 464 static int 465 mmc_wait_for_req(struct mmc_softc *sc, struct mmc_request *req) 466 { 467 468 req->done = mmc_wakeup; 469 req->done_data = sc; 470 if (__predict_false(mmc_debug > 1)) { 471 device_printf(sc->dev, "REQUEST: CMD%d arg %#x flags %#x", 472 req->cmd->opcode, req->cmd->arg, req->cmd->flags); 473 if (req->cmd->data) { 474 printf(" data %d\n", (int)req->cmd->data->len); 475 } else 476 printf("\n"); 477 } 478 MMCBR_REQUEST(device_get_parent(sc->dev), sc->dev, req); 479 MMC_LOCK(sc); 480 while ((req->flags & MMC_REQ_DONE) == 0) 481 msleep(req, &sc->sc_mtx, 0, "mmcreq", 0); 482 MMC_UNLOCK(sc); 483 if (__predict_false(mmc_debug > 2 || (mmc_debug > 0 && 484 req->cmd->error != MMC_ERR_NONE))) 485 device_printf(sc->dev, "CMD%d RESULT: %d\n", 486 req->cmd->opcode, req->cmd->error); 487 return (0); 488 } 489 490 static int 491 mmc_wait_for_request(device_t busdev, device_t dev, struct mmc_request *req) 492 { 493 struct mmc_softc *sc; 494 struct mmc_ivars *ivar; 495 int err, i; 496 enum mmc_retune_req retune_req; 497 498 sc = device_get_softc(busdev); 499 KASSERT(sc->owner != NULL, 500 ("%s: Request from %s without bus being acquired.", __func__, 501 device_get_nameunit(dev))); 502 503 /* 504 * Unless no device is selected or re-tuning is already ongoing, 505 * execute re-tuning if a) the bridge is requesting to do so and 506 * re-tuning hasn't been otherwise paused, or b) if a child asked 507 * to be re-tuned prior to pausing (see also mmc_retune_pause()). 508 */ 509 if (__predict_false(sc->last_rca != 0 && sc->retune_ongoing == 0 && 510 (((retune_req = mmcbr_get_retune_req(busdev)) != retune_req_none && 511 sc->retune_paused == 0) || sc->retune_needed == 1))) { 512 if (__predict_false(mmc_debug > 1)) { 513 device_printf(busdev, 514 "Re-tuning with%s circuit reset required\n", 515 retune_req == retune_req_reset ? "" : "out"); 516 } 517 if (device_get_parent(dev) == busdev) 518 ivar = device_get_ivars(dev); 519 else { 520 for (i = 0; i < sc->child_count; i++) { 521 ivar = device_get_ivars(sc->child_list[i]); 522 if (ivar->rca == sc->last_rca) 523 break; 524 } 525 if (ivar->rca != sc->last_rca) 526 return (EINVAL); 527 } 528 sc->retune_ongoing = 1; 529 err = mmc_retune(busdev, dev, retune_req == retune_req_reset); 530 sc->retune_ongoing = 0; 531 switch (err) { 532 case MMC_ERR_NONE: 533 case MMC_ERR_FAILED: /* Re-tune error but still might work */ 534 break; 535 case MMC_ERR_BADCRC: /* Switch failure on HS400 recovery */ 536 return (ENXIO); 537 case MMC_ERR_INVALID: /* Driver implementation b0rken */ 538 default: /* Unknown error, should not happen */ 539 return (EINVAL); 540 } 541 sc->retune_needed = 0; 542 } 543 return (mmc_wait_for_req(sc, req)); 544 } 545 546 static int 547 mmc_wait_for_command(struct mmc_softc *sc, uint32_t opcode, 548 uint32_t arg, uint32_t flags, uint32_t *resp, int retries) 549 { 550 struct mmc_command cmd; 551 int err; 552 553 memset(&cmd, 0, sizeof(cmd)); 554 cmd.opcode = opcode; 555 cmd.arg = arg; 556 cmd.flags = flags; 557 cmd.data = NULL; 558 err = mmc_wait_for_cmd(sc->dev, sc->dev, &cmd, retries); 559 if (err) 560 return (err); 561 if (resp) { 562 if (flags & MMC_RSP_136) 563 memcpy(resp, cmd.resp, 4 * sizeof(uint32_t)); 564 else 565 *resp = cmd.resp[0]; 566 } 567 return (0); 568 } 569 570 static void 571 mmc_idle_cards(struct mmc_softc *sc) 572 { 573 device_t dev; 574 struct mmc_command cmd; 575 576 dev = sc->dev; 577 mmcbr_set_chip_select(dev, cs_high); 578 mmcbr_update_ios(dev); 579 mmc_ms_delay(1); 580 581 memset(&cmd, 0, sizeof(cmd)); 582 cmd.opcode = MMC_GO_IDLE_STATE; 583 cmd.arg = 0; 584 cmd.flags = MMC_RSP_NONE | MMC_CMD_BC; 585 cmd.data = NULL; 586 mmc_wait_for_cmd(sc->dev, sc->dev, &cmd, CMD_RETRIES); 587 mmc_ms_delay(1); 588 589 mmcbr_set_chip_select(dev, cs_dontcare); 590 mmcbr_update_ios(dev); 591 mmc_ms_delay(1); 592 } 593 594 static int 595 mmc_send_app_op_cond(struct mmc_softc *sc, uint32_t ocr, uint32_t *rocr) 596 { 597 struct mmc_command cmd; 598 int err = MMC_ERR_NONE, i; 599 600 memset(&cmd, 0, sizeof(cmd)); 601 cmd.opcode = ACMD_SD_SEND_OP_COND; 602 cmd.arg = ocr; 603 cmd.flags = MMC_RSP_R3 | MMC_CMD_BCR; 604 cmd.data = NULL; 605 606 for (i = 0; i < 1000; i++) { 607 err = mmc_wait_for_app_cmd(sc->dev, sc->dev, 0, &cmd, 608 CMD_RETRIES); 609 if (err != MMC_ERR_NONE) 610 break; 611 if ((cmd.resp[0] & MMC_OCR_CARD_BUSY) || 612 (ocr & MMC_OCR_VOLTAGE) == 0) 613 break; 614 err = MMC_ERR_TIMEOUT; 615 mmc_ms_delay(10); 616 } 617 if (rocr && err == MMC_ERR_NONE) 618 *rocr = cmd.resp[0]; 619 return (err); 620 } 621 622 static int 623 mmc_send_op_cond(struct mmc_softc *sc, uint32_t ocr, uint32_t *rocr) 624 { 625 struct mmc_command cmd; 626 int err = MMC_ERR_NONE, i; 627 628 memset(&cmd, 0, sizeof(cmd)); 629 cmd.opcode = MMC_SEND_OP_COND; 630 cmd.arg = ocr; 631 cmd.flags = MMC_RSP_R3 | MMC_CMD_BCR; 632 cmd.data = NULL; 633 634 for (i = 0; i < 1000; i++) { 635 err = mmc_wait_for_cmd(sc->dev, sc->dev, &cmd, CMD_RETRIES); 636 if (err != MMC_ERR_NONE) 637 break; 638 if ((cmd.resp[0] & MMC_OCR_CARD_BUSY) || 639 (ocr & MMC_OCR_VOLTAGE) == 0) 640 break; 641 err = MMC_ERR_TIMEOUT; 642 mmc_ms_delay(10); 643 } 644 if (rocr && err == MMC_ERR_NONE) 645 *rocr = cmd.resp[0]; 646 return (err); 647 } 648 649 static int 650 mmc_send_if_cond(struct mmc_softc *sc, uint8_t vhs) 651 { 652 struct mmc_command cmd; 653 int err; 654 655 memset(&cmd, 0, sizeof(cmd)); 656 cmd.opcode = SD_SEND_IF_COND; 657 cmd.arg = (vhs << 8) + 0xAA; 658 cmd.flags = MMC_RSP_R7 | MMC_CMD_BCR; 659 cmd.data = NULL; 660 661 err = mmc_wait_for_cmd(sc->dev, sc->dev, &cmd, CMD_RETRIES); 662 return (err); 663 } 664 665 static void 666 mmc_power_up(struct mmc_softc *sc) 667 { 668 device_t dev; 669 enum mmc_vccq vccq; 670 671 dev = sc->dev; 672 mmcbr_set_vdd(dev, mmc_highest_voltage(mmcbr_get_host_ocr(dev))); 673 mmcbr_set_bus_mode(dev, opendrain); 674 mmcbr_set_chip_select(dev, cs_dontcare); 675 mmcbr_set_bus_width(dev, bus_width_1); 676 mmcbr_set_power_mode(dev, power_up); 677 mmcbr_set_clock(dev, 0); 678 mmcbr_update_ios(dev); 679 for (vccq = vccq_330; ; vccq--) { 680 mmcbr_set_vccq(dev, vccq); 681 if (mmcbr_switch_vccq(dev) == 0 || vccq == vccq_120) 682 break; 683 } 684 mmc_ms_delay(1); 685 686 mmcbr_set_clock(dev, SD_MMC_CARD_ID_FREQUENCY); 687 mmcbr_set_timing(dev, bus_timing_normal); 688 mmcbr_set_power_mode(dev, power_on); 689 mmcbr_update_ios(dev); 690 mmc_ms_delay(2); 691 } 692 693 static void 694 mmc_power_down(struct mmc_softc *sc) 695 { 696 device_t dev = sc->dev; 697 698 mmcbr_set_bus_mode(dev, opendrain); 699 mmcbr_set_chip_select(dev, cs_dontcare); 700 mmcbr_set_bus_width(dev, bus_width_1); 701 mmcbr_set_power_mode(dev, power_off); 702 mmcbr_set_clock(dev, 0); 703 mmcbr_set_timing(dev, bus_timing_normal); 704 mmcbr_update_ios(dev); 705 } 706 707 static int 708 mmc_select_card(struct mmc_softc *sc, uint16_t rca) 709 { 710 int err, flags; 711 712 flags = (rca ? MMC_RSP_R1B : MMC_RSP_NONE) | MMC_CMD_AC; 713 sc->retune_paused++; 714 err = mmc_wait_for_command(sc, MMC_SELECT_CARD, (uint32_t)rca << 16, 715 flags, NULL, CMD_RETRIES); 716 sc->retune_paused--; 717 return (err); 718 } 719 720 static int 721 mmc_sd_switch(struct mmc_softc *sc, uint8_t mode, uint8_t grp, uint8_t value, 722 uint8_t *res) 723 { 724 int err; 725 struct mmc_command cmd; 726 struct mmc_data data; 727 728 memset(&cmd, 0, sizeof(cmd)); 729 memset(&data, 0, sizeof(data)); 730 memset(res, 0, 64); 731 732 cmd.opcode = SD_SWITCH_FUNC; 733 cmd.flags = MMC_RSP_R1 | MMC_CMD_ADTC; 734 cmd.arg = mode << 31; /* 0 - check, 1 - set */ 735 cmd.arg |= 0x00FFFFFF; 736 cmd.arg &= ~(0xF << (grp * 4)); 737 cmd.arg |= value << (grp * 4); 738 cmd.data = &data; 739 740 data.data = res; 741 data.len = 64; 742 data.flags = MMC_DATA_READ; 743 744 err = mmc_wait_for_cmd(sc->dev, sc->dev, &cmd, CMD_RETRIES); 745 return (err); 746 } 747 748 static int 749 mmc_set_card_bus_width(struct mmc_softc *sc, struct mmc_ivars *ivar, 750 enum mmc_bus_timing timing) 751 { 752 struct mmc_command cmd; 753 int err; 754 uint8_t value; 755 756 if (mmcbr_get_mode(sc->dev) == mode_sd) { 757 memset(&cmd, 0, sizeof(cmd)); 758 cmd.opcode = ACMD_SET_CLR_CARD_DETECT; 759 cmd.flags = MMC_RSP_R1 | MMC_CMD_AC; 760 cmd.arg = SD_CLR_CARD_DETECT; 761 err = mmc_wait_for_app_cmd(sc->dev, sc->dev, ivar->rca, &cmd, 762 CMD_RETRIES); 763 if (err != 0) 764 return (err); 765 memset(&cmd, 0, sizeof(cmd)); 766 cmd.opcode = ACMD_SET_BUS_WIDTH; 767 cmd.flags = MMC_RSP_R1 | MMC_CMD_AC; 768 switch (ivar->bus_width) { 769 case bus_width_1: 770 cmd.arg = SD_BUS_WIDTH_1; 771 break; 772 case bus_width_4: 773 cmd.arg = SD_BUS_WIDTH_4; 774 break; 775 default: 776 return (MMC_ERR_INVALID); 777 } 778 err = mmc_wait_for_app_cmd(sc->dev, sc->dev, ivar->rca, &cmd, 779 CMD_RETRIES); 780 } else { 781 switch (ivar->bus_width) { 782 case bus_width_1: 783 if (timing == bus_timing_mmc_hs400 || 784 timing == bus_timing_mmc_hs400es) 785 return (MMC_ERR_INVALID); 786 value = EXT_CSD_BUS_WIDTH_1; 787 break; 788 case bus_width_4: 789 switch (timing) { 790 case bus_timing_mmc_ddr52: 791 value = EXT_CSD_BUS_WIDTH_4_DDR; 792 break; 793 case bus_timing_mmc_hs400: 794 case bus_timing_mmc_hs400es: 795 return (MMC_ERR_INVALID); 796 default: 797 value = EXT_CSD_BUS_WIDTH_4; 798 break; 799 } 800 break; 801 case bus_width_8: 802 value = 0; 803 switch (timing) { 804 case bus_timing_mmc_hs400es: 805 value = EXT_CSD_BUS_WIDTH_ES; 806 /* FALLTHROUGH */ 807 case bus_timing_mmc_ddr52: 808 case bus_timing_mmc_hs400: 809 value |= EXT_CSD_BUS_WIDTH_8_DDR; 810 break; 811 default: 812 value = EXT_CSD_BUS_WIDTH_8; 813 break; 814 } 815 break; 816 default: 817 return (MMC_ERR_INVALID); 818 } 819 err = mmc_switch(sc->dev, sc->dev, ivar->rca, 820 EXT_CSD_CMD_SET_NORMAL, EXT_CSD_BUS_WIDTH, value, 821 ivar->cmd6_time, true); 822 } 823 return (err); 824 } 825 826 static int 827 mmc_set_power_class(struct mmc_softc *sc, struct mmc_ivars *ivar) 828 { 829 device_t dev; 830 const uint8_t *ext_csd; 831 uint32_t clock; 832 uint8_t value; 833 834 dev = sc->dev; 835 if (mmcbr_get_mode(dev) != mode_mmc || ivar->csd.spec_vers < 4) 836 return (MMC_ERR_NONE); 837 838 value = 0; 839 ext_csd = ivar->raw_ext_csd; 840 clock = mmcbr_get_clock(dev); 841 switch (1 << mmcbr_get_vdd(dev)) { 842 case MMC_OCR_LOW_VOLTAGE: 843 if (clock <= MMC_TYPE_HS_26_MAX) 844 value = ext_csd[EXT_CSD_PWR_CL_26_195]; 845 else if (clock <= MMC_TYPE_HS_52_MAX) { 846 if (mmcbr_get_timing(dev) >= bus_timing_mmc_ddr52 && 847 ivar->bus_width >= bus_width_4) 848 value = ext_csd[EXT_CSD_PWR_CL_52_195_DDR]; 849 else 850 value = ext_csd[EXT_CSD_PWR_CL_52_195]; 851 } else if (clock <= MMC_TYPE_HS200_HS400ES_MAX) 852 value = ext_csd[EXT_CSD_PWR_CL_200_195]; 853 break; 854 case MMC_OCR_270_280: 855 case MMC_OCR_280_290: 856 case MMC_OCR_290_300: 857 case MMC_OCR_300_310: 858 case MMC_OCR_310_320: 859 case MMC_OCR_320_330: 860 case MMC_OCR_330_340: 861 case MMC_OCR_340_350: 862 case MMC_OCR_350_360: 863 if (clock <= MMC_TYPE_HS_26_MAX) 864 value = ext_csd[EXT_CSD_PWR_CL_26_360]; 865 else if (clock <= MMC_TYPE_HS_52_MAX) { 866 if (mmcbr_get_timing(dev) == bus_timing_mmc_ddr52 && 867 ivar->bus_width >= bus_width_4) 868 value = ext_csd[EXT_CSD_PWR_CL_52_360_DDR]; 869 else 870 value = ext_csd[EXT_CSD_PWR_CL_52_360]; 871 } else if (clock <= MMC_TYPE_HS200_HS400ES_MAX) { 872 if (ivar->bus_width == bus_width_8) 873 value = ext_csd[EXT_CSD_PWR_CL_200_360_DDR]; 874 else 875 value = ext_csd[EXT_CSD_PWR_CL_200_360]; 876 } 877 break; 878 default: 879 device_printf(dev, "No power class support for VDD 0x%x\n", 880 1 << mmcbr_get_vdd(dev)); 881 return (MMC_ERR_INVALID); 882 } 883 884 if (ivar->bus_width == bus_width_8) 885 value = (value & EXT_CSD_POWER_CLASS_8BIT_MASK) >> 886 EXT_CSD_POWER_CLASS_8BIT_SHIFT; 887 else 888 value = (value & EXT_CSD_POWER_CLASS_4BIT_MASK) >> 889 EXT_CSD_POWER_CLASS_4BIT_SHIFT; 890 891 if (value == 0) 892 return (MMC_ERR_NONE); 893 894 return (mmc_switch(dev, dev, ivar->rca, EXT_CSD_CMD_SET_NORMAL, 895 EXT_CSD_POWER_CLASS, value, ivar->cmd6_time, true)); 896 } 897 898 static int 899 mmc_set_timing(struct mmc_softc *sc, struct mmc_ivars *ivar, 900 enum mmc_bus_timing timing) 901 { 902 u_char switch_res[64]; 903 uint8_t value; 904 int err; 905 906 if (mmcbr_get_mode(sc->dev) == mode_sd) { 907 switch (timing) { 908 case bus_timing_normal: 909 value = SD_SWITCH_NORMAL_MODE; 910 break; 911 case bus_timing_hs: 912 value = SD_SWITCH_HS_MODE; 913 break; 914 default: 915 return (MMC_ERR_INVALID); 916 } 917 err = mmc_sd_switch(sc, SD_SWITCH_MODE_SET, SD_SWITCH_GROUP1, 918 value, switch_res); 919 if (err != MMC_ERR_NONE) 920 return (err); 921 if ((switch_res[16] & 0xf) != value) 922 return (MMC_ERR_FAILED); 923 mmcbr_set_timing(sc->dev, timing); 924 mmcbr_update_ios(sc->dev); 925 } else { 926 switch (timing) { 927 case bus_timing_normal: 928 value = EXT_CSD_HS_TIMING_BC; 929 break; 930 case bus_timing_hs: 931 case bus_timing_mmc_ddr52: 932 value = EXT_CSD_HS_TIMING_HS; 933 break; 934 case bus_timing_mmc_hs200: 935 value = EXT_CSD_HS_TIMING_HS200; 936 break; 937 case bus_timing_mmc_hs400: 938 case bus_timing_mmc_hs400es: 939 value = EXT_CSD_HS_TIMING_HS400; 940 break; 941 default: 942 return (MMC_ERR_INVALID); 943 } 944 err = mmc_switch(sc->dev, sc->dev, ivar->rca, 945 EXT_CSD_CMD_SET_NORMAL, EXT_CSD_HS_TIMING, value, 946 ivar->cmd6_time, false); 947 if (err != MMC_ERR_NONE) 948 return (err); 949 mmcbr_set_timing(sc->dev, timing); 950 mmcbr_update_ios(sc->dev); 951 err = mmc_switch_status(sc->dev, sc->dev, ivar->rca, 952 ivar->cmd6_time); 953 } 954 return (err); 955 } 956 957 static int 958 mmc_set_vccq(struct mmc_softc *sc, struct mmc_ivars *ivar, 959 enum mmc_bus_timing timing) 960 { 961 962 if (isset(&ivar->vccq_120, timing)) 963 mmcbr_set_vccq(sc->dev, vccq_120); 964 else if (isset(&ivar->vccq_180, timing)) 965 mmcbr_set_vccq(sc->dev, vccq_180); 966 else 967 mmcbr_set_vccq(sc->dev, vccq_330); 968 if (mmcbr_switch_vccq(sc->dev) != 0) 969 return (MMC_ERR_INVALID); 970 else 971 return (MMC_ERR_NONE); 972 } 973 974 static const uint8_t p8[8] = { 975 0x55, 0xAA, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00 976 }; 977 978 static const uint8_t p8ok[8] = { 979 0xAA, 0x55, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00 980 }; 981 982 static const uint8_t p4[4] = { 983 0x5A, 0x00, 0x00, 0x00 984 }; 985 986 static const uint8_t p4ok[4] = { 987 0xA5, 0x00, 0x00, 0x00 988 }; 989 990 static int 991 mmc_test_bus_width(struct mmc_softc *sc) 992 { 993 struct mmc_command cmd; 994 struct mmc_data data; 995 uint8_t buf[8]; 996 int err; 997 998 if (mmcbr_get_caps(sc->dev) & MMC_CAP_8_BIT_DATA) { 999 mmcbr_set_bus_width(sc->dev, bus_width_8); 1000 mmcbr_update_ios(sc->dev); 1001 1002 sc->squelched++; /* Errors are expected, squelch reporting. */ 1003 memset(&cmd, 0, sizeof(cmd)); 1004 memset(&data, 0, sizeof(data)); 1005 cmd.opcode = MMC_BUSTEST_W; 1006 cmd.arg = 0; 1007 cmd.flags = MMC_RSP_R1 | MMC_CMD_ADTC; 1008 cmd.data = &data; 1009 1010 data.data = __DECONST(void *, p8); 1011 data.len = 8; 1012 data.flags = MMC_DATA_WRITE; 1013 mmc_wait_for_cmd(sc->dev, sc->dev, &cmd, 0); 1014 1015 memset(&cmd, 0, sizeof(cmd)); 1016 memset(&data, 0, sizeof(data)); 1017 cmd.opcode = MMC_BUSTEST_R; 1018 cmd.arg = 0; 1019 cmd.flags = MMC_RSP_R1 | MMC_CMD_ADTC; 1020 cmd.data = &data; 1021 1022 data.data = buf; 1023 data.len = 8; 1024 data.flags = MMC_DATA_READ; 1025 err = mmc_wait_for_cmd(sc->dev, sc->dev, &cmd, 0); 1026 sc->squelched--; 1027 1028 mmcbr_set_bus_width(sc->dev, bus_width_1); 1029 mmcbr_update_ios(sc->dev); 1030 1031 if (err == MMC_ERR_NONE && memcmp(buf, p8ok, 8) == 0) 1032 return (bus_width_8); 1033 } 1034 1035 if (mmcbr_get_caps(sc->dev) & MMC_CAP_4_BIT_DATA) { 1036 mmcbr_set_bus_width(sc->dev, bus_width_4); 1037 mmcbr_update_ios(sc->dev); 1038 1039 sc->squelched++; /* Errors are expected, squelch reporting. */ 1040 memset(&cmd, 0, sizeof(cmd)); 1041 memset(&data, 0, sizeof(data)); 1042 cmd.opcode = MMC_BUSTEST_W; 1043 cmd.arg = 0; 1044 cmd.flags = MMC_RSP_R1 | MMC_CMD_ADTC; 1045 cmd.data = &data; 1046 1047 data.data = __DECONST(void *, p4); 1048 data.len = 4; 1049 data.flags = MMC_DATA_WRITE; 1050 mmc_wait_for_cmd(sc->dev, sc->dev, &cmd, 0); 1051 1052 memset(&cmd, 0, sizeof(cmd)); 1053 memset(&data, 0, sizeof(data)); 1054 cmd.opcode = MMC_BUSTEST_R; 1055 cmd.arg = 0; 1056 cmd.flags = MMC_RSP_R1 | MMC_CMD_ADTC; 1057 cmd.data = &data; 1058 1059 data.data = buf; 1060 data.len = 4; 1061 data.flags = MMC_DATA_READ; 1062 err = mmc_wait_for_cmd(sc->dev, sc->dev, &cmd, 0); 1063 sc->squelched--; 1064 1065 mmcbr_set_bus_width(sc->dev, bus_width_1); 1066 mmcbr_update_ios(sc->dev); 1067 1068 if (err == MMC_ERR_NONE && memcmp(buf, p4ok, 4) == 0) 1069 return (bus_width_4); 1070 } 1071 return (bus_width_1); 1072 } 1073 1074 static uint32_t 1075 mmc_get_bits(uint32_t *bits, int bit_len, int start, int size) 1076 { 1077 const int i = (bit_len / 32) - (start / 32) - 1; 1078 const int shift = start & 31; 1079 uint32_t retval = bits[i] >> shift; 1080 1081 if (size + shift > 32) 1082 retval |= bits[i - 1] << (32 - shift); 1083 return (retval & ((1llu << size) - 1)); 1084 } 1085 1086 static void 1087 mmc_decode_cid_sd(uint32_t *raw_cid, struct mmc_cid *cid) 1088 { 1089 int i; 1090 1091 /* There's no version info, so we take it on faith */ 1092 memset(cid, 0, sizeof(*cid)); 1093 cid->mid = mmc_get_bits(raw_cid, 128, 120, 8); 1094 cid->oid = mmc_get_bits(raw_cid, 128, 104, 16); 1095 for (i = 0; i < 5; i++) 1096 cid->pnm[i] = mmc_get_bits(raw_cid, 128, 96 - i * 8, 8); 1097 cid->pnm[5] = 0; 1098 cid->prv = mmc_get_bits(raw_cid, 128, 56, 8); 1099 cid->psn = mmc_get_bits(raw_cid, 128, 24, 32); 1100 cid->mdt_year = mmc_get_bits(raw_cid, 128, 12, 8) + 2000; 1101 cid->mdt_month = mmc_get_bits(raw_cid, 128, 8, 4); 1102 } 1103 1104 static void 1105 mmc_decode_cid_mmc(uint32_t *raw_cid, struct mmc_cid *cid, bool is_4_41p) 1106 { 1107 int i; 1108 1109 /* There's no version info, so we take it on faith */ 1110 memset(cid, 0, sizeof(*cid)); 1111 cid->mid = mmc_get_bits(raw_cid, 128, 120, 8); 1112 cid->oid = mmc_get_bits(raw_cid, 128, 104, 8); 1113 for (i = 0; i < 6; i++) 1114 cid->pnm[i] = mmc_get_bits(raw_cid, 128, 96 - i * 8, 8); 1115 cid->pnm[6] = 0; 1116 cid->prv = mmc_get_bits(raw_cid, 128, 48, 8); 1117 cid->psn = mmc_get_bits(raw_cid, 128, 16, 32); 1118 cid->mdt_month = mmc_get_bits(raw_cid, 128, 12, 4); 1119 cid->mdt_year = mmc_get_bits(raw_cid, 128, 8, 4); 1120 if (is_4_41p) 1121 cid->mdt_year += 2013; 1122 else 1123 cid->mdt_year += 1997; 1124 } 1125 1126 static void 1127 mmc_format_card_id_string(struct mmc_ivars *ivar) 1128 { 1129 char oidstr[8]; 1130 uint8_t c1; 1131 uint8_t c2; 1132 1133 /* 1134 * Format a card ID string for use by the mmcsd driver, it's what 1135 * appears between the <> in the following: 1136 * mmcsd0: 968MB <SD SD01G 8.0 SN 2686905 MFG 08/2008 by 3 TN> at mmc0 1137 * 22.5MHz/4bit/128-block 1138 * 1139 * Also format just the card serial number, which the mmcsd driver will 1140 * use as the disk->d_ident string. 1141 * 1142 * The card_id_string in mmc_ivars is currently allocated as 64 bytes, 1143 * and our max formatted length is currently 55 bytes if every field 1144 * contains the largest value. 1145 * 1146 * Sometimes the oid is two printable ascii chars; when it's not, 1147 * format it as 0xnnnn instead. 1148 */ 1149 c1 = (ivar->cid.oid >> 8) & 0x0ff; 1150 c2 = ivar->cid.oid & 0x0ff; 1151 if (c1 > 0x1f && c1 < 0x7f && c2 > 0x1f && c2 < 0x7f) 1152 snprintf(oidstr, sizeof(oidstr), "%c%c", c1, c2); 1153 else 1154 snprintf(oidstr, sizeof(oidstr), "0x%04x", ivar->cid.oid); 1155 snprintf(ivar->card_sn_string, sizeof(ivar->card_sn_string), 1156 "%08X", ivar->cid.psn); 1157 snprintf(ivar->card_id_string, sizeof(ivar->card_id_string), 1158 "%s%s %s %d.%d SN %08X MFG %02d/%04d by %d %s", 1159 ivar->mode == mode_sd ? "SD" : "MMC", ivar->high_cap ? "HC" : "", 1160 ivar->cid.pnm, ivar->cid.prv >> 4, ivar->cid.prv & 0x0f, 1161 ivar->cid.psn, ivar->cid.mdt_month, ivar->cid.mdt_year, 1162 ivar->cid.mid, oidstr); 1163 } 1164 1165 static const int exp[8] = { 1166 1, 10, 100, 1000, 10000, 100000, 1000000, 10000000 1167 }; 1168 1169 static const int mant[16] = { 1170 0, 10, 12, 13, 15, 20, 25, 30, 35, 40, 45, 50, 55, 60, 70, 80 1171 }; 1172 1173 static const int cur_min[8] = { 1174 500, 1000, 5000, 10000, 25000, 35000, 60000, 100000 1175 }; 1176 1177 static const int cur_max[8] = { 1178 1000, 5000, 10000, 25000, 35000, 45000, 800000, 200000 1179 }; 1180 1181 static int 1182 mmc_decode_csd_sd(uint32_t *raw_csd, struct mmc_csd *csd) 1183 { 1184 int v; 1185 int m; 1186 int e; 1187 1188 memset(csd, 0, sizeof(*csd)); 1189 csd->csd_structure = v = mmc_get_bits(raw_csd, 128, 126, 2); 1190 if (v == 0) { 1191 m = mmc_get_bits(raw_csd, 128, 115, 4); 1192 e = mmc_get_bits(raw_csd, 128, 112, 3); 1193 csd->tacc = (exp[e] * mant[m] + 9) / 10; 1194 csd->nsac = mmc_get_bits(raw_csd, 128, 104, 8) * 100; 1195 m = mmc_get_bits(raw_csd, 128, 99, 4); 1196 e = mmc_get_bits(raw_csd, 128, 96, 3); 1197 csd->tran_speed = exp[e] * 10000 * mant[m]; 1198 csd->ccc = mmc_get_bits(raw_csd, 128, 84, 12); 1199 csd->read_bl_len = 1 << mmc_get_bits(raw_csd, 128, 80, 4); 1200 csd->read_bl_partial = mmc_get_bits(raw_csd, 128, 79, 1); 1201 csd->write_blk_misalign = mmc_get_bits(raw_csd, 128, 78, 1); 1202 csd->read_blk_misalign = mmc_get_bits(raw_csd, 128, 77, 1); 1203 csd->dsr_imp = mmc_get_bits(raw_csd, 128, 76, 1); 1204 csd->vdd_r_curr_min = 1205 cur_min[mmc_get_bits(raw_csd, 128, 59, 3)]; 1206 csd->vdd_r_curr_max = 1207 cur_max[mmc_get_bits(raw_csd, 128, 56, 3)]; 1208 csd->vdd_w_curr_min = 1209 cur_min[mmc_get_bits(raw_csd, 128, 53, 3)]; 1210 csd->vdd_w_curr_max = 1211 cur_max[mmc_get_bits(raw_csd, 128, 50, 3)]; 1212 m = mmc_get_bits(raw_csd, 128, 62, 12); 1213 e = mmc_get_bits(raw_csd, 128, 47, 3); 1214 csd->capacity = ((1 + m) << (e + 2)) * csd->read_bl_len; 1215 csd->erase_blk_en = mmc_get_bits(raw_csd, 128, 46, 1); 1216 csd->erase_sector = mmc_get_bits(raw_csd, 128, 39, 7) + 1; 1217 csd->wp_grp_size = mmc_get_bits(raw_csd, 128, 32, 7); 1218 csd->wp_grp_enable = mmc_get_bits(raw_csd, 128, 31, 1); 1219 csd->r2w_factor = 1 << mmc_get_bits(raw_csd, 128, 26, 3); 1220 csd->write_bl_len = 1 << mmc_get_bits(raw_csd, 128, 22, 4); 1221 csd->write_bl_partial = mmc_get_bits(raw_csd, 128, 21, 1); 1222 return (MMC_ERR_NONE); 1223 } else if (v == 1) { 1224 m = mmc_get_bits(raw_csd, 128, 115, 4); 1225 e = mmc_get_bits(raw_csd, 128, 112, 3); 1226 csd->tacc = (exp[e] * mant[m] + 9) / 10; 1227 csd->nsac = mmc_get_bits(raw_csd, 128, 104, 8) * 100; 1228 m = mmc_get_bits(raw_csd, 128, 99, 4); 1229 e = mmc_get_bits(raw_csd, 128, 96, 3); 1230 csd->tran_speed = exp[e] * 10000 * mant[m]; 1231 csd->ccc = mmc_get_bits(raw_csd, 128, 84, 12); 1232 csd->read_bl_len = 1 << mmc_get_bits(raw_csd, 128, 80, 4); 1233 csd->read_bl_partial = mmc_get_bits(raw_csd, 128, 79, 1); 1234 csd->write_blk_misalign = mmc_get_bits(raw_csd, 128, 78, 1); 1235 csd->read_blk_misalign = mmc_get_bits(raw_csd, 128, 77, 1); 1236 csd->dsr_imp = mmc_get_bits(raw_csd, 128, 76, 1); 1237 csd->capacity = ((uint64_t)mmc_get_bits(raw_csd, 128, 48, 22) + 1238 1) * 512 * 1024; 1239 csd->erase_blk_en = mmc_get_bits(raw_csd, 128, 46, 1); 1240 csd->erase_sector = mmc_get_bits(raw_csd, 128, 39, 7) + 1; 1241 csd->wp_grp_size = mmc_get_bits(raw_csd, 128, 32, 7); 1242 csd->wp_grp_enable = mmc_get_bits(raw_csd, 128, 31, 1); 1243 csd->r2w_factor = 1 << mmc_get_bits(raw_csd, 128, 26, 3); 1244 csd->write_bl_len = 1 << mmc_get_bits(raw_csd, 128, 22, 4); 1245 csd->write_bl_partial = mmc_get_bits(raw_csd, 128, 21, 1); 1246 return (MMC_ERR_NONE); 1247 } 1248 return (MMC_ERR_INVALID); 1249 } 1250 1251 static void 1252 mmc_decode_csd_mmc(uint32_t *raw_csd, struct mmc_csd *csd) 1253 { 1254 int m; 1255 int e; 1256 1257 memset(csd, 0, sizeof(*csd)); 1258 csd->csd_structure = mmc_get_bits(raw_csd, 128, 126, 2); 1259 csd->spec_vers = mmc_get_bits(raw_csd, 128, 122, 4); 1260 m = mmc_get_bits(raw_csd, 128, 115, 4); 1261 e = mmc_get_bits(raw_csd, 128, 112, 3); 1262 csd->tacc = exp[e] * mant[m] + 9 / 10; 1263 csd->nsac = mmc_get_bits(raw_csd, 128, 104, 8) * 100; 1264 m = mmc_get_bits(raw_csd, 128, 99, 4); 1265 e = mmc_get_bits(raw_csd, 128, 96, 3); 1266 csd->tran_speed = exp[e] * 10000 * mant[m]; 1267 csd->ccc = mmc_get_bits(raw_csd, 128, 84, 12); 1268 csd->read_bl_len = 1 << mmc_get_bits(raw_csd, 128, 80, 4); 1269 csd->read_bl_partial = mmc_get_bits(raw_csd, 128, 79, 1); 1270 csd->write_blk_misalign = mmc_get_bits(raw_csd, 128, 78, 1); 1271 csd->read_blk_misalign = mmc_get_bits(raw_csd, 128, 77, 1); 1272 csd->dsr_imp = mmc_get_bits(raw_csd, 128, 76, 1); 1273 csd->vdd_r_curr_min = cur_min[mmc_get_bits(raw_csd, 128, 59, 3)]; 1274 csd->vdd_r_curr_max = cur_max[mmc_get_bits(raw_csd, 128, 56, 3)]; 1275 csd->vdd_w_curr_min = cur_min[mmc_get_bits(raw_csd, 128, 53, 3)]; 1276 csd->vdd_w_curr_max = cur_max[mmc_get_bits(raw_csd, 128, 50, 3)]; 1277 m = mmc_get_bits(raw_csd, 128, 62, 12); 1278 e = mmc_get_bits(raw_csd, 128, 47, 3); 1279 csd->capacity = ((1 + m) << (e + 2)) * csd->read_bl_len; 1280 csd->erase_blk_en = 0; 1281 csd->erase_sector = (mmc_get_bits(raw_csd, 128, 42, 5) + 1) * 1282 (mmc_get_bits(raw_csd, 128, 37, 5) + 1); 1283 csd->wp_grp_size = mmc_get_bits(raw_csd, 128, 32, 5); 1284 csd->wp_grp_enable = mmc_get_bits(raw_csd, 128, 31, 1); 1285 csd->r2w_factor = 1 << mmc_get_bits(raw_csd, 128, 26, 3); 1286 csd->write_bl_len = 1 << mmc_get_bits(raw_csd, 128, 22, 4); 1287 csd->write_bl_partial = mmc_get_bits(raw_csd, 128, 21, 1); 1288 } 1289 1290 static void 1291 mmc_app_decode_scr(uint32_t *raw_scr, struct mmc_scr *scr) 1292 { 1293 unsigned int scr_struct; 1294 1295 memset(scr, 0, sizeof(*scr)); 1296 1297 scr_struct = mmc_get_bits(raw_scr, 64, 60, 4); 1298 if (scr_struct != 0) { 1299 printf("Unrecognised SCR structure version %d\n", 1300 scr_struct); 1301 return; 1302 } 1303 scr->sda_vsn = mmc_get_bits(raw_scr, 64, 56, 4); 1304 scr->bus_widths = mmc_get_bits(raw_scr, 64, 48, 4); 1305 } 1306 1307 static void 1308 mmc_app_decode_sd_status(uint32_t *raw_sd_status, 1309 struct mmc_sd_status *sd_status) 1310 { 1311 1312 memset(sd_status, 0, sizeof(*sd_status)); 1313 1314 sd_status->bus_width = mmc_get_bits(raw_sd_status, 512, 510, 2); 1315 sd_status->secured_mode = mmc_get_bits(raw_sd_status, 512, 509, 1); 1316 sd_status->card_type = mmc_get_bits(raw_sd_status, 512, 480, 16); 1317 sd_status->prot_area = mmc_get_bits(raw_sd_status, 512, 448, 12); 1318 sd_status->speed_class = mmc_get_bits(raw_sd_status, 512, 440, 8); 1319 sd_status->perf_move = mmc_get_bits(raw_sd_status, 512, 432, 8); 1320 sd_status->au_size = mmc_get_bits(raw_sd_status, 512, 428, 4); 1321 sd_status->erase_size = mmc_get_bits(raw_sd_status, 512, 408, 16); 1322 sd_status->erase_timeout = mmc_get_bits(raw_sd_status, 512, 402, 6); 1323 sd_status->erase_offset = mmc_get_bits(raw_sd_status, 512, 400, 2); 1324 } 1325 1326 static int 1327 mmc_all_send_cid(struct mmc_softc *sc, uint32_t *rawcid) 1328 { 1329 struct mmc_command cmd; 1330 int err; 1331 1332 memset(&cmd, 0, sizeof(cmd)); 1333 cmd.opcode = MMC_ALL_SEND_CID; 1334 cmd.arg = 0; 1335 cmd.flags = MMC_RSP_R2 | MMC_CMD_BCR; 1336 cmd.data = NULL; 1337 err = mmc_wait_for_cmd(sc->dev, sc->dev, &cmd, CMD_RETRIES); 1338 memcpy(rawcid, cmd.resp, 4 * sizeof(uint32_t)); 1339 return (err); 1340 } 1341 1342 static int 1343 mmc_send_csd(struct mmc_softc *sc, uint16_t rca, uint32_t *rawcsd) 1344 { 1345 struct mmc_command cmd; 1346 int err; 1347 1348 memset(&cmd, 0, sizeof(cmd)); 1349 cmd.opcode = MMC_SEND_CSD; 1350 cmd.arg = rca << 16; 1351 cmd.flags = MMC_RSP_R2 | MMC_CMD_BCR; 1352 cmd.data = NULL; 1353 err = mmc_wait_for_cmd(sc->dev, sc->dev, &cmd, CMD_RETRIES); 1354 memcpy(rawcsd, cmd.resp, 4 * sizeof(uint32_t)); 1355 return (err); 1356 } 1357 1358 static int 1359 mmc_app_send_scr(struct mmc_softc *sc, uint16_t rca, uint32_t *rawscr) 1360 { 1361 int err; 1362 struct mmc_command cmd; 1363 struct mmc_data data; 1364 1365 memset(&cmd, 0, sizeof(cmd)); 1366 memset(&data, 0, sizeof(data)); 1367 1368 memset(rawscr, 0, 8); 1369 cmd.opcode = ACMD_SEND_SCR; 1370 cmd.flags = MMC_RSP_R1 | MMC_CMD_ADTC; 1371 cmd.arg = 0; 1372 cmd.data = &data; 1373 1374 data.data = rawscr; 1375 data.len = 8; 1376 data.flags = MMC_DATA_READ; 1377 1378 err = mmc_wait_for_app_cmd(sc->dev, sc->dev, rca, &cmd, CMD_RETRIES); 1379 rawscr[0] = be32toh(rawscr[0]); 1380 rawscr[1] = be32toh(rawscr[1]); 1381 return (err); 1382 } 1383 1384 static int 1385 mmc_app_sd_status(struct mmc_softc *sc, uint16_t rca, uint32_t *rawsdstatus) 1386 { 1387 struct mmc_command cmd; 1388 struct mmc_data data; 1389 int err, i; 1390 1391 memset(&cmd, 0, sizeof(cmd)); 1392 memset(&data, 0, sizeof(data)); 1393 1394 memset(rawsdstatus, 0, 64); 1395 cmd.opcode = ACMD_SD_STATUS; 1396 cmd.flags = MMC_RSP_R1 | MMC_CMD_ADTC; 1397 cmd.arg = 0; 1398 cmd.data = &data; 1399 1400 data.data = rawsdstatus; 1401 data.len = 64; 1402 data.flags = MMC_DATA_READ; 1403 1404 err = mmc_wait_for_app_cmd(sc->dev, sc->dev, rca, &cmd, CMD_RETRIES); 1405 for (i = 0; i < 16; i++) 1406 rawsdstatus[i] = be32toh(rawsdstatus[i]); 1407 return (err); 1408 } 1409 1410 static int 1411 mmc_set_relative_addr(struct mmc_softc *sc, uint16_t resp) 1412 { 1413 struct mmc_command cmd; 1414 int err; 1415 1416 memset(&cmd, 0, sizeof(cmd)); 1417 cmd.opcode = MMC_SET_RELATIVE_ADDR; 1418 cmd.arg = resp << 16; 1419 cmd.flags = MMC_RSP_R6 | MMC_CMD_BCR; 1420 cmd.data = NULL; 1421 err = mmc_wait_for_cmd(sc->dev, sc->dev, &cmd, CMD_RETRIES); 1422 return (err); 1423 } 1424 1425 static int 1426 mmc_send_relative_addr(struct mmc_softc *sc, uint32_t *resp) 1427 { 1428 struct mmc_command cmd; 1429 int err; 1430 1431 memset(&cmd, 0, sizeof(cmd)); 1432 cmd.opcode = SD_SEND_RELATIVE_ADDR; 1433 cmd.arg = 0; 1434 cmd.flags = MMC_RSP_R6 | MMC_CMD_BCR; 1435 cmd.data = NULL; 1436 err = mmc_wait_for_cmd(sc->dev, sc->dev, &cmd, CMD_RETRIES); 1437 *resp = cmd.resp[0]; 1438 return (err); 1439 } 1440 1441 static int 1442 mmc_set_blocklen(struct mmc_softc *sc, uint32_t len) 1443 { 1444 struct mmc_command cmd; 1445 int err; 1446 1447 memset(&cmd, 0, sizeof(cmd)); 1448 cmd.opcode = MMC_SET_BLOCKLEN; 1449 cmd.arg = len; 1450 cmd.flags = MMC_RSP_R1 | MMC_CMD_AC; 1451 cmd.data = NULL; 1452 err = mmc_wait_for_cmd(sc->dev, sc->dev, &cmd, CMD_RETRIES); 1453 return (err); 1454 } 1455 1456 static uint32_t 1457 mmc_timing_to_dtr(struct mmc_ivars *ivar, enum mmc_bus_timing timing) 1458 { 1459 1460 switch (timing) { 1461 case bus_timing_normal: 1462 return (ivar->tran_speed); 1463 case bus_timing_hs: 1464 return (ivar->hs_tran_speed); 1465 case bus_timing_uhs_sdr12: 1466 return (SD_SDR12_MAX); 1467 case bus_timing_uhs_sdr25: 1468 return (SD_SDR25_MAX); 1469 case bus_timing_uhs_ddr50: 1470 return (SD_DDR50_MAX); 1471 case bus_timing_uhs_sdr50: 1472 return (SD_SDR50_MAX); 1473 case bus_timing_uhs_sdr104: 1474 return (SD_SDR104_MAX); 1475 case bus_timing_mmc_ddr52: 1476 return (MMC_TYPE_DDR52_MAX); 1477 case bus_timing_mmc_hs200: 1478 case bus_timing_mmc_hs400: 1479 case bus_timing_mmc_hs400es: 1480 return (MMC_TYPE_HS200_HS400ES_MAX); 1481 } 1482 return (0); 1483 } 1484 1485 static const char * 1486 mmc_timing_to_string(enum mmc_bus_timing timing) 1487 { 1488 1489 switch (timing) { 1490 case bus_timing_normal: 1491 return ("normal speed"); 1492 case bus_timing_hs: 1493 return ("high speed"); 1494 case bus_timing_uhs_sdr12: 1495 case bus_timing_uhs_sdr25: 1496 case bus_timing_uhs_sdr50: 1497 case bus_timing_uhs_sdr104: 1498 return ("single data rate"); 1499 case bus_timing_uhs_ddr50: 1500 case bus_timing_mmc_ddr52: 1501 return ("dual data rate"); 1502 case bus_timing_mmc_hs200: 1503 return ("HS200"); 1504 case bus_timing_mmc_hs400: 1505 return ("HS400"); 1506 case bus_timing_mmc_hs400es: 1507 return ("HS400 with enhanced strobe"); 1508 } 1509 return (""); 1510 } 1511 1512 static bool 1513 mmc_host_timing(device_t dev, enum mmc_bus_timing timing) 1514 { 1515 int host_caps; 1516 1517 host_caps = mmcbr_get_caps(dev); 1518 1519 #define HOST_TIMING_CAP(host_caps, cap) ({ \ 1520 bool retval; \ 1521 if (((host_caps) & (cap)) == (cap)) \ 1522 retval = true; \ 1523 else \ 1524 retval = false; \ 1525 retval; \ 1526 }) 1527 1528 switch (timing) { 1529 case bus_timing_normal: 1530 return (true); 1531 case bus_timing_hs: 1532 return (HOST_TIMING_CAP(host_caps, MMC_CAP_HSPEED)); 1533 case bus_timing_uhs_sdr12: 1534 return (HOST_TIMING_CAP(host_caps, MMC_CAP_UHS_SDR12)); 1535 case bus_timing_uhs_sdr25: 1536 return (HOST_TIMING_CAP(host_caps, MMC_CAP_UHS_SDR25)); 1537 case bus_timing_uhs_ddr50: 1538 return (HOST_TIMING_CAP(host_caps, MMC_CAP_UHS_DDR50)); 1539 case bus_timing_uhs_sdr50: 1540 return (HOST_TIMING_CAP(host_caps, MMC_CAP_UHS_SDR50)); 1541 case bus_timing_uhs_sdr104: 1542 return (HOST_TIMING_CAP(host_caps, MMC_CAP_UHS_SDR104)); 1543 case bus_timing_mmc_ddr52: 1544 return (HOST_TIMING_CAP(host_caps, MMC_CAP_MMC_DDR52)); 1545 case bus_timing_mmc_hs200: 1546 return (HOST_TIMING_CAP(host_caps, MMC_CAP_MMC_HS200)); 1547 case bus_timing_mmc_hs400: 1548 return (HOST_TIMING_CAP(host_caps, MMC_CAP_MMC_HS400)); 1549 case bus_timing_mmc_hs400es: 1550 return (HOST_TIMING_CAP(host_caps, MMC_CAP_MMC_HS400 | 1551 MMC_CAP_MMC_ENH_STROBE)); 1552 } 1553 1554 #undef HOST_TIMING_CAP 1555 1556 return (false); 1557 } 1558 1559 static void 1560 mmc_log_card(device_t dev, struct mmc_ivars *ivar, int newcard) 1561 { 1562 enum mmc_bus_timing max_timing, timing; 1563 1564 device_printf(dev, "Card at relative address 0x%04x%s:\n", 1565 ivar->rca, newcard ? " added" : ""); 1566 device_printf(dev, " card: %s\n", ivar->card_id_string); 1567 max_timing = bus_timing_normal; 1568 for (timing = bus_timing_max; timing > bus_timing_normal; timing--) { 1569 if (isset(&ivar->timings, timing)) { 1570 max_timing = timing; 1571 break; 1572 } 1573 } 1574 device_printf(dev, " quirks: %b\n", ivar->quirks, MMC_QUIRKS_FMT); 1575 device_printf(dev, " bus: %ubit, %uMHz (%s timing)\n", 1576 (ivar->bus_width == bus_width_1 ? 1 : 1577 (ivar->bus_width == bus_width_4 ? 4 : 8)), 1578 mmc_timing_to_dtr(ivar, timing) / 1000000, 1579 mmc_timing_to_string(timing)); 1580 device_printf(dev, " memory: %u blocks, erase sector %u blocks%s\n", 1581 ivar->sec_count, ivar->erase_sector, 1582 ivar->read_only ? ", read-only" : ""); 1583 } 1584 1585 static void 1586 mmc_discover_cards(struct mmc_softc *sc) 1587 { 1588 u_char switch_res[64]; 1589 uint32_t raw_cid[4]; 1590 struct mmc_ivars *ivar = NULL; 1591 const struct mmc_quirk *quirk; 1592 device_t child; 1593 int err, host_caps, i, newcard; 1594 uint32_t resp, sec_count, status; 1595 uint16_t rca = 2; 1596 1597 host_caps = mmcbr_get_caps(sc->dev); 1598 if (bootverbose || mmc_debug) 1599 device_printf(sc->dev, "Probing cards\n"); 1600 while (1) { 1601 child = NULL; 1602 sc->squelched++; /* Errors are expected, squelch reporting. */ 1603 err = mmc_all_send_cid(sc, raw_cid); 1604 sc->squelched--; 1605 if (err == MMC_ERR_TIMEOUT) 1606 break; 1607 if (err != MMC_ERR_NONE) { 1608 device_printf(sc->dev, "Error reading CID %d\n", err); 1609 break; 1610 } 1611 newcard = 1; 1612 for (i = 0; i < sc->child_count; i++) { 1613 ivar = device_get_ivars(sc->child_list[i]); 1614 if (memcmp(ivar->raw_cid, raw_cid, sizeof(raw_cid)) == 1615 0) { 1616 newcard = 0; 1617 break; 1618 } 1619 } 1620 if (bootverbose || mmc_debug) { 1621 device_printf(sc->dev, 1622 "%sard detected (CID %08x%08x%08x%08x)\n", 1623 newcard ? "New c" : "C", 1624 raw_cid[0], raw_cid[1], raw_cid[2], raw_cid[3]); 1625 } 1626 if (newcard) { 1627 ivar = malloc(sizeof(struct mmc_ivars), M_DEVBUF, 1628 M_WAITOK | M_ZERO); 1629 memcpy(ivar->raw_cid, raw_cid, sizeof(raw_cid)); 1630 } 1631 if (mmcbr_get_ro(sc->dev)) 1632 ivar->read_only = 1; 1633 ivar->bus_width = bus_width_1; 1634 setbit(&ivar->timings, bus_timing_normal); 1635 ivar->mode = mmcbr_get_mode(sc->dev); 1636 if (ivar->mode == mode_sd) { 1637 mmc_decode_cid_sd(ivar->raw_cid, &ivar->cid); 1638 err = mmc_send_relative_addr(sc, &resp); 1639 if (err != MMC_ERR_NONE) { 1640 device_printf(sc->dev, 1641 "Error getting RCA %d\n", err); 1642 goto free_ivar; 1643 } 1644 ivar->rca = resp >> 16; 1645 /* Get card CSD. */ 1646 err = mmc_send_csd(sc, ivar->rca, ivar->raw_csd); 1647 if (err != MMC_ERR_NONE) { 1648 device_printf(sc->dev, 1649 "Error getting CSD %d\n", err); 1650 goto free_ivar; 1651 } 1652 if (bootverbose || mmc_debug) 1653 device_printf(sc->dev, 1654 "%sard detected (CSD %08x%08x%08x%08x)\n", 1655 newcard ? "New c" : "C", ivar->raw_csd[0], 1656 ivar->raw_csd[1], ivar->raw_csd[2], 1657 ivar->raw_csd[3]); 1658 err = mmc_decode_csd_sd(ivar->raw_csd, &ivar->csd); 1659 if (err != MMC_ERR_NONE) { 1660 device_printf(sc->dev, "Error decoding CSD\n"); 1661 goto free_ivar; 1662 } 1663 ivar->sec_count = ivar->csd.capacity / MMC_SECTOR_SIZE; 1664 if (ivar->csd.csd_structure > 0) 1665 ivar->high_cap = 1; 1666 ivar->tran_speed = ivar->csd.tran_speed; 1667 ivar->erase_sector = ivar->csd.erase_sector * 1668 ivar->csd.write_bl_len / MMC_SECTOR_SIZE; 1669 1670 err = mmc_send_status(sc->dev, sc->dev, ivar->rca, 1671 &status); 1672 if (err != MMC_ERR_NONE) { 1673 device_printf(sc->dev, 1674 "Error reading card status %d\n", err); 1675 goto free_ivar; 1676 } 1677 if ((status & R1_CARD_IS_LOCKED) != 0) { 1678 device_printf(sc->dev, 1679 "Card is password protected, skipping\n"); 1680 goto free_ivar; 1681 } 1682 1683 /* Get card SCR. Card must be selected to fetch it. */ 1684 err = mmc_select_card(sc, ivar->rca); 1685 if (err != MMC_ERR_NONE) { 1686 device_printf(sc->dev, 1687 "Error selecting card %d\n", err); 1688 goto free_ivar; 1689 } 1690 err = mmc_app_send_scr(sc, ivar->rca, ivar->raw_scr); 1691 if (err != MMC_ERR_NONE) { 1692 device_printf(sc->dev, 1693 "Error reading SCR %d\n", err); 1694 goto free_ivar; 1695 } 1696 mmc_app_decode_scr(ivar->raw_scr, &ivar->scr); 1697 /* Get card switch capabilities (command class 10). */ 1698 if ((ivar->scr.sda_vsn >= 1) && 1699 (ivar->csd.ccc & (1 << 10))) { 1700 err = mmc_sd_switch(sc, SD_SWITCH_MODE_CHECK, 1701 SD_SWITCH_GROUP1, SD_SWITCH_NOCHANGE, 1702 switch_res); 1703 if (err == MMC_ERR_NONE && 1704 switch_res[13] & (1 << SD_SWITCH_HS_MODE)) { 1705 setbit(&ivar->timings, bus_timing_hs); 1706 ivar->hs_tran_speed = SD_HS_MAX; 1707 } 1708 } 1709 1710 /* 1711 * We deselect then reselect the card here. Some cards 1712 * become unselected and timeout with the above two 1713 * commands, although the state tables / diagrams in the 1714 * standard suggest they go back to the transfer state. 1715 * Other cards don't become deselected, and if we 1716 * attempt to blindly re-select them, we get timeout 1717 * errors from some controllers. So we deselect then 1718 * reselect to handle all situations. The only thing we 1719 * use from the sd_status is the erase sector size, but 1720 * it is still nice to get that right. 1721 */ 1722 (void)mmc_select_card(sc, 0); 1723 (void)mmc_select_card(sc, ivar->rca); 1724 (void)mmc_app_sd_status(sc, ivar->rca, 1725 ivar->raw_sd_status); 1726 mmc_app_decode_sd_status(ivar->raw_sd_status, 1727 &ivar->sd_status); 1728 if (ivar->sd_status.au_size != 0) { 1729 ivar->erase_sector = 1730 16 << ivar->sd_status.au_size; 1731 } 1732 /* Find maximum supported bus width. */ 1733 if ((host_caps & MMC_CAP_4_BIT_DATA) && 1734 (ivar->scr.bus_widths & SD_SCR_BUS_WIDTH_4)) 1735 ivar->bus_width = bus_width_4; 1736 1737 goto child_common; 1738 } 1739 ivar->rca = rca++; 1740 err = mmc_set_relative_addr(sc, ivar->rca); 1741 if (err != MMC_ERR_NONE) { 1742 device_printf(sc->dev, "Error setting RCA %d\n", err); 1743 goto free_ivar; 1744 } 1745 /* Get card CSD. */ 1746 err = mmc_send_csd(sc, ivar->rca, ivar->raw_csd); 1747 if (err != MMC_ERR_NONE) { 1748 device_printf(sc->dev, "Error getting CSD %d\n", err); 1749 goto free_ivar; 1750 } 1751 if (bootverbose || mmc_debug) 1752 device_printf(sc->dev, 1753 "%sard detected (CSD %08x%08x%08x%08x)\n", 1754 newcard ? "New c" : "C", ivar->raw_csd[0], 1755 ivar->raw_csd[1], ivar->raw_csd[2], 1756 ivar->raw_csd[3]); 1757 1758 mmc_decode_csd_mmc(ivar->raw_csd, &ivar->csd); 1759 ivar->sec_count = ivar->csd.capacity / MMC_SECTOR_SIZE; 1760 ivar->tran_speed = ivar->csd.tran_speed; 1761 ivar->erase_sector = ivar->csd.erase_sector * 1762 ivar->csd.write_bl_len / MMC_SECTOR_SIZE; 1763 1764 err = mmc_send_status(sc->dev, sc->dev, ivar->rca, &status); 1765 if (err != MMC_ERR_NONE) { 1766 device_printf(sc->dev, 1767 "Error reading card status %d\n", err); 1768 goto free_ivar; 1769 } 1770 if ((status & R1_CARD_IS_LOCKED) != 0) { 1771 device_printf(sc->dev, 1772 "Card is password protected, skipping\n"); 1773 goto free_ivar; 1774 } 1775 1776 err = mmc_select_card(sc, ivar->rca); 1777 if (err != MMC_ERR_NONE) { 1778 device_printf(sc->dev, "Error selecting card %d\n", 1779 err); 1780 goto free_ivar; 1781 } 1782 1783 /* Only MMC >= 4.x devices support EXT_CSD. */ 1784 if (ivar->csd.spec_vers >= 4) { 1785 err = mmc_send_ext_csd(sc->dev, sc->dev, 1786 ivar->raw_ext_csd); 1787 if (err != MMC_ERR_NONE) { 1788 device_printf(sc->dev, 1789 "Error reading EXT_CSD %d\n", err); 1790 goto free_ivar; 1791 } 1792 /* Handle extended capacity from EXT_CSD */ 1793 sec_count = ivar->raw_ext_csd[EXT_CSD_SEC_CNT] + 1794 (ivar->raw_ext_csd[EXT_CSD_SEC_CNT + 1] << 8) + 1795 (ivar->raw_ext_csd[EXT_CSD_SEC_CNT + 2] << 16) + 1796 (ivar->raw_ext_csd[EXT_CSD_SEC_CNT + 3] << 24); 1797 if (sec_count != 0) { 1798 ivar->sec_count = sec_count; 1799 ivar->high_cap = 1; 1800 } 1801 /* Find maximum supported bus width. */ 1802 ivar->bus_width = mmc_test_bus_width(sc); 1803 /* Get device speeds beyond normal mode. */ 1804 if ((ivar->raw_ext_csd[EXT_CSD_CARD_TYPE] & 1805 EXT_CSD_CARD_TYPE_HS_52) != 0) { 1806 setbit(&ivar->timings, bus_timing_hs); 1807 ivar->hs_tran_speed = MMC_TYPE_HS_52_MAX; 1808 } else if ((ivar->raw_ext_csd[EXT_CSD_CARD_TYPE] & 1809 EXT_CSD_CARD_TYPE_HS_26) != 0) { 1810 setbit(&ivar->timings, bus_timing_hs); 1811 ivar->hs_tran_speed = MMC_TYPE_HS_26_MAX; 1812 } 1813 if ((ivar->raw_ext_csd[EXT_CSD_CARD_TYPE] & 1814 EXT_CSD_CARD_TYPE_DDR_52_1_2V) != 0 && 1815 (host_caps & MMC_CAP_SIGNALING_120) != 0) { 1816 setbit(&ivar->timings, bus_timing_mmc_ddr52); 1817 setbit(&ivar->vccq_120, bus_timing_mmc_ddr52); 1818 } 1819 if ((ivar->raw_ext_csd[EXT_CSD_CARD_TYPE] & 1820 EXT_CSD_CARD_TYPE_DDR_52_1_8V) != 0 && 1821 (host_caps & MMC_CAP_SIGNALING_180) != 0) { 1822 setbit(&ivar->timings, bus_timing_mmc_ddr52); 1823 setbit(&ivar->vccq_180, bus_timing_mmc_ddr52); 1824 } 1825 if ((ivar->raw_ext_csd[EXT_CSD_CARD_TYPE] & 1826 EXT_CSD_CARD_TYPE_HS200_1_2V) != 0 && 1827 (host_caps & MMC_CAP_SIGNALING_120) != 0) { 1828 setbit(&ivar->timings, bus_timing_mmc_hs200); 1829 setbit(&ivar->vccq_120, bus_timing_mmc_hs200); 1830 } 1831 if ((ivar->raw_ext_csd[EXT_CSD_CARD_TYPE] & 1832 EXT_CSD_CARD_TYPE_HS200_1_8V) != 0 && 1833 (host_caps & MMC_CAP_SIGNALING_180) != 0) { 1834 setbit(&ivar->timings, bus_timing_mmc_hs200); 1835 setbit(&ivar->vccq_180, bus_timing_mmc_hs200); 1836 } 1837 if ((ivar->raw_ext_csd[EXT_CSD_CARD_TYPE] & 1838 EXT_CSD_CARD_TYPE_HS400_1_2V) != 0 && 1839 (host_caps & MMC_CAP_SIGNALING_120) != 0 && 1840 ivar->bus_width == bus_width_8) { 1841 setbit(&ivar->timings, bus_timing_mmc_hs400); 1842 setbit(&ivar->vccq_120, bus_timing_mmc_hs400); 1843 } 1844 if ((ivar->raw_ext_csd[EXT_CSD_CARD_TYPE] & 1845 EXT_CSD_CARD_TYPE_HS400_1_8V) != 0 && 1846 (host_caps & MMC_CAP_SIGNALING_180) != 0 && 1847 ivar->bus_width == bus_width_8) { 1848 setbit(&ivar->timings, bus_timing_mmc_hs400); 1849 setbit(&ivar->vccq_180, bus_timing_mmc_hs400); 1850 } 1851 if ((ivar->raw_ext_csd[EXT_CSD_CARD_TYPE] & 1852 EXT_CSD_CARD_TYPE_HS400_1_2V) != 0 && 1853 (ivar->raw_ext_csd[EXT_CSD_STROBE_SUPPORT] & 1854 EXT_CSD_STROBE_SUPPORT_EN) != 0 && 1855 (host_caps & MMC_CAP_SIGNALING_120) != 0 && 1856 ivar->bus_width == bus_width_8) { 1857 setbit(&ivar->timings, bus_timing_mmc_hs400es); 1858 setbit(&ivar->vccq_120, bus_timing_mmc_hs400es); 1859 } 1860 if ((ivar->raw_ext_csd[EXT_CSD_CARD_TYPE] & 1861 EXT_CSD_CARD_TYPE_HS400_1_8V) != 0 && 1862 (ivar->raw_ext_csd[EXT_CSD_STROBE_SUPPORT] & 1863 EXT_CSD_STROBE_SUPPORT_EN) != 0 && 1864 (host_caps & MMC_CAP_SIGNALING_180) != 0 && 1865 ivar->bus_width == bus_width_8) { 1866 setbit(&ivar->timings, bus_timing_mmc_hs400es); 1867 setbit(&ivar->vccq_180, bus_timing_mmc_hs400es); 1868 } 1869 /* 1870 * Determine generic switch timeout (provided in 1871 * units of 10 ms), defaulting to 500 ms. 1872 */ 1873 ivar->cmd6_time = 500 * 1000; 1874 if (ivar->csd.spec_vers >= 6) 1875 ivar->cmd6_time = 10 * 1876 ivar->raw_ext_csd[EXT_CSD_GEN_CMD6_TIME]; 1877 /* Handle HC erase sector size. */ 1878 if (ivar->raw_ext_csd[EXT_CSD_ERASE_GRP_SIZE] != 0) { 1879 ivar->erase_sector = 1024 * 1880 ivar->raw_ext_csd[EXT_CSD_ERASE_GRP_SIZE]; 1881 err = mmc_switch(sc->dev, sc->dev, ivar->rca, 1882 EXT_CSD_CMD_SET_NORMAL, 1883 EXT_CSD_ERASE_GRP_DEF, 1884 EXT_CSD_ERASE_GRP_DEF_EN, 1885 ivar->cmd6_time, true); 1886 if (err != MMC_ERR_NONE) { 1887 device_printf(sc->dev, 1888 "Error setting erase group %d\n", 1889 err); 1890 goto free_ivar; 1891 } 1892 } 1893 } 1894 1895 mmc_decode_cid_mmc(ivar->raw_cid, &ivar->cid, 1896 ivar->raw_ext_csd[EXT_CSD_REV] >= 5); 1897 1898 child_common: 1899 for (quirk = &mmc_quirks[0]; quirk->mid != 0x0; quirk++) { 1900 if ((quirk->mid == MMC_QUIRK_MID_ANY || 1901 quirk->mid == ivar->cid.mid) && 1902 (quirk->oid == MMC_QUIRK_OID_ANY || 1903 quirk->oid == ivar->cid.oid) && 1904 strncmp(quirk->pnm, ivar->cid.pnm, 1905 sizeof(ivar->cid.pnm)) == 0) { 1906 ivar->quirks = quirk->quirks; 1907 break; 1908 } 1909 } 1910 1911 /* 1912 * Some cards that report maximum I/O block sizes greater 1913 * than 512 require the block length to be set to 512, even 1914 * though that is supposed to be the default. Example: 1915 * 1916 * Transcend 2GB SDSC card, CID: 1917 * mid=0x1b oid=0x534d pnm="00000" prv=1.0 mdt=00.2000 1918 */ 1919 if (ivar->csd.read_bl_len != MMC_SECTOR_SIZE || 1920 ivar->csd.write_bl_len != MMC_SECTOR_SIZE) 1921 mmc_set_blocklen(sc, MMC_SECTOR_SIZE); 1922 1923 mmc_format_card_id_string(ivar); 1924 1925 if (bootverbose || mmc_debug) 1926 mmc_log_card(sc->dev, ivar, newcard); 1927 if (newcard) { 1928 /* Add device. */ 1929 child = device_add_child(sc->dev, NULL, -1); 1930 if (child != NULL) { 1931 device_set_ivars(child, ivar); 1932 sc->child_list = realloc(sc->child_list, 1933 sizeof(device_t) * sc->child_count + 1, 1934 M_DEVBUF, M_WAITOK); 1935 sc->child_list[sc->child_count++] = child; 1936 } else 1937 device_printf(sc->dev, "Error adding child\n"); 1938 } 1939 1940 free_ivar: 1941 if (newcard && child == NULL) 1942 free(ivar, M_DEVBUF); 1943 (void)mmc_select_card(sc, 0); 1944 /* 1945 * Not returning here when one MMC device could no be added 1946 * potentially would mean looping forever when that device 1947 * is broken (in which case it also may impact the remainder 1948 * of the bus anyway, though). 1949 */ 1950 if ((newcard && child == NULL) || 1951 mmcbr_get_mode(sc->dev) == mode_sd) 1952 return; 1953 } 1954 } 1955 1956 static void 1957 mmc_update_child_list(struct mmc_softc *sc) 1958 { 1959 device_t child; 1960 int i, j; 1961 1962 if (sc->child_count == 0) { 1963 free(sc->child_list, M_DEVBUF); 1964 return; 1965 } 1966 for (i = j = 0; i < sc->child_count; i++) { 1967 for (;;) { 1968 child = sc->child_list[j++]; 1969 if (child != NULL) 1970 break; 1971 } 1972 if (i != j) 1973 sc->child_list[i] = child; 1974 } 1975 sc->child_list = realloc(sc->child_list, sizeof(device_t) * 1976 sc->child_count, M_DEVBUF, M_WAITOK); 1977 } 1978 1979 static void 1980 mmc_rescan_cards(struct mmc_softc *sc) 1981 { 1982 struct mmc_ivars *ivar; 1983 int err, i, j; 1984 1985 for (i = j = 0; i < sc->child_count; i++) { 1986 ivar = device_get_ivars(sc->child_list[i]); 1987 if (mmc_select_card(sc, ivar->rca) != MMC_ERR_NONE) { 1988 if (bootverbose || mmc_debug) 1989 device_printf(sc->dev, 1990 "Card at relative address %d lost\n", 1991 ivar->rca); 1992 err = device_delete_child(sc->dev, sc->child_list[i]); 1993 if (err != 0) { 1994 j++; 1995 continue; 1996 } 1997 free(ivar, M_DEVBUF); 1998 } else 1999 j++; 2000 } 2001 if (sc->child_count == j) 2002 goto out; 2003 sc->child_count = j; 2004 mmc_update_child_list(sc); 2005 out: 2006 (void)mmc_select_card(sc, 0); 2007 } 2008 2009 static int 2010 mmc_delete_cards(struct mmc_softc *sc, bool final) 2011 { 2012 struct mmc_ivars *ivar; 2013 int err, i, j; 2014 2015 err = 0; 2016 for (i = j = 0; i < sc->child_count; i++) { 2017 ivar = device_get_ivars(sc->child_list[i]); 2018 if (bootverbose || mmc_debug) 2019 device_printf(sc->dev, 2020 "Card at relative address %d deleted\n", 2021 ivar->rca); 2022 err = device_delete_child(sc->dev, sc->child_list[i]); 2023 if (err != 0) { 2024 j++; 2025 if (final == false) 2026 continue; 2027 else 2028 break; 2029 } 2030 free(ivar, M_DEVBUF); 2031 } 2032 sc->child_count = j; 2033 mmc_update_child_list(sc); 2034 return (err); 2035 } 2036 2037 static void 2038 mmc_go_discovery(struct mmc_softc *sc) 2039 { 2040 uint32_t ocr; 2041 device_t dev; 2042 int err; 2043 2044 dev = sc->dev; 2045 if (mmcbr_get_power_mode(dev) != power_on) { 2046 /* 2047 * First, try SD modes 2048 */ 2049 sc->squelched++; /* Errors are expected, squelch reporting. */ 2050 mmcbr_set_mode(dev, mode_sd); 2051 mmc_power_up(sc); 2052 mmcbr_set_bus_mode(dev, pushpull); 2053 if (bootverbose || mmc_debug) 2054 device_printf(sc->dev, "Probing bus\n"); 2055 mmc_idle_cards(sc); 2056 err = mmc_send_if_cond(sc, 1); 2057 if ((bootverbose || mmc_debug) && err == 0) 2058 device_printf(sc->dev, 2059 "SD 2.0 interface conditions: OK\n"); 2060 if (mmc_send_app_op_cond(sc, 0, &ocr) != MMC_ERR_NONE) { 2061 if (bootverbose || mmc_debug) 2062 device_printf(sc->dev, "SD probe: failed\n"); 2063 /* 2064 * Failed, try MMC 2065 */ 2066 mmcbr_set_mode(dev, mode_mmc); 2067 if (mmc_send_op_cond(sc, 0, &ocr) != MMC_ERR_NONE) { 2068 if (bootverbose || mmc_debug) 2069 device_printf(sc->dev, 2070 "MMC probe: failed\n"); 2071 ocr = 0; /* Failed both, powerdown. */ 2072 } else if (bootverbose || mmc_debug) 2073 device_printf(sc->dev, 2074 "MMC probe: OK (OCR: 0x%08x)\n", ocr); 2075 } else if (bootverbose || mmc_debug) 2076 device_printf(sc->dev, "SD probe: OK (OCR: 0x%08x)\n", 2077 ocr); 2078 sc->squelched--; 2079 2080 mmcbr_set_ocr(dev, mmc_select_vdd(sc, ocr)); 2081 if (mmcbr_get_ocr(dev) != 0) 2082 mmc_idle_cards(sc); 2083 } else { 2084 mmcbr_set_bus_mode(dev, opendrain); 2085 mmcbr_set_clock(dev, SD_MMC_CARD_ID_FREQUENCY); 2086 mmcbr_update_ios(dev); 2087 /* XXX recompute vdd based on new cards? */ 2088 } 2089 /* 2090 * Make sure that we have a mutually agreeable voltage to at least 2091 * one card on the bus. 2092 */ 2093 if (bootverbose || mmc_debug) 2094 device_printf(sc->dev, "Current OCR: 0x%08x\n", 2095 mmcbr_get_ocr(dev)); 2096 if (mmcbr_get_ocr(dev) == 0) { 2097 device_printf(sc->dev, "No compatible cards found on bus\n"); 2098 (void)mmc_delete_cards(sc, false); 2099 mmc_power_down(sc); 2100 return; 2101 } 2102 /* 2103 * Reselect the cards after we've idled them above. 2104 */ 2105 if (mmcbr_get_mode(dev) == mode_sd) { 2106 err = mmc_send_if_cond(sc, 1); 2107 mmc_send_app_op_cond(sc, 2108 (err ? 0 : MMC_OCR_CCS) | mmcbr_get_ocr(dev), NULL); 2109 } else 2110 mmc_send_op_cond(sc, MMC_OCR_CCS | mmcbr_get_ocr(dev), NULL); 2111 mmc_discover_cards(sc); 2112 mmc_rescan_cards(sc); 2113 2114 mmcbr_set_bus_mode(dev, pushpull); 2115 mmcbr_update_ios(dev); 2116 mmc_calculate_clock(sc); 2117 } 2118 2119 static int 2120 mmc_calculate_clock(struct mmc_softc *sc) 2121 { 2122 device_t dev; 2123 struct mmc_ivars *ivar; 2124 int i; 2125 uint32_t dtr, max_dtr; 2126 uint16_t rca; 2127 enum mmc_bus_timing max_timing, timing; 2128 bool changed, hs400; 2129 2130 dev = sc->dev; 2131 max_dtr = mmcbr_get_f_max(dev); 2132 max_timing = bus_timing_max; 2133 do { 2134 changed = false; 2135 for (i = 0; i < sc->child_count; i++) { 2136 ivar = device_get_ivars(sc->child_list[i]); 2137 if (isclr(&ivar->timings, max_timing) || 2138 !mmc_host_timing(dev, max_timing)) { 2139 for (timing = max_timing - 1; timing >= 2140 bus_timing_normal; timing--) { 2141 if (isset(&ivar->timings, timing) && 2142 mmc_host_timing(dev, timing)) { 2143 max_timing = timing; 2144 break; 2145 } 2146 } 2147 changed = true; 2148 } 2149 dtr = mmc_timing_to_dtr(ivar, max_timing); 2150 if (dtr < max_dtr) { 2151 max_dtr = dtr; 2152 changed = true; 2153 } 2154 } 2155 } while (changed == true); 2156 2157 if (bootverbose || mmc_debug) { 2158 device_printf(dev, 2159 "setting transfer rate to %d.%03dMHz (%s timing)\n", 2160 max_dtr / 1000000, (max_dtr / 1000) % 1000, 2161 mmc_timing_to_string(max_timing)); 2162 } 2163 2164 /* 2165 * HS400 must be tuned in HS200 mode, so in case of HS400 we begin 2166 * with HS200 following the sequence as described in "6.6.2.2 HS200 2167 * timing mode selection" of the eMMC specification v5.1, too, and 2168 * switch to max_timing later. HS400ES requires no tuning and, thus, 2169 * can be switch to directly, but requires the same detour via high 2170 * speed mode as does HS400 (see mmc_switch_to_hs400()). 2171 */ 2172 hs400 = max_timing == bus_timing_mmc_hs400; 2173 timing = hs400 == true ? bus_timing_mmc_hs200 : max_timing; 2174 for (i = 0; i < sc->child_count; i++) { 2175 ivar = device_get_ivars(sc->child_list[i]); 2176 if ((ivar->timings & ~(1 << bus_timing_normal)) == 0) 2177 continue; 2178 2179 rca = ivar->rca; 2180 if (mmc_select_card(sc, rca) != MMC_ERR_NONE) { 2181 device_printf(dev, "Card at relative address %d " 2182 "failed to select\n", rca); 2183 continue; 2184 } 2185 2186 if (timing == bus_timing_mmc_hs200 || /* includes HS400 */ 2187 timing == bus_timing_mmc_hs400es) { 2188 if (mmc_set_vccq(sc, ivar, timing) != MMC_ERR_NONE) { 2189 device_printf(dev, "Failed to set VCCQ for " 2190 "card at relative address %d\n", rca); 2191 continue; 2192 } 2193 } 2194 2195 if (timing == bus_timing_mmc_hs200) { /* includes HS400 */ 2196 /* Set bus width (required for initial tuning). */ 2197 if (mmc_set_card_bus_width(sc, ivar, timing) != 2198 MMC_ERR_NONE) { 2199 device_printf(dev, "Card at relative address " 2200 "%d failed to set bus width\n", rca); 2201 continue; 2202 } 2203 mmcbr_set_bus_width(dev, ivar->bus_width); 2204 mmcbr_update_ios(dev); 2205 } else if (timing == bus_timing_mmc_hs400es) { 2206 if (mmc_switch_to_hs400(sc, ivar, max_dtr, timing) != 2207 MMC_ERR_NONE) { 2208 device_printf(dev, "Card at relative address " 2209 "%d failed to set %s timing\n", rca, 2210 mmc_timing_to_string(timing)); 2211 continue; 2212 } 2213 goto power_class; 2214 } 2215 2216 if (mmc_set_timing(sc, ivar, timing) != MMC_ERR_NONE) { 2217 device_printf(dev, "Card at relative address %d " 2218 "failed to set %s timing\n", rca, 2219 mmc_timing_to_string(timing)); 2220 continue; 2221 } 2222 2223 if (timing == bus_timing_mmc_ddr52) { 2224 /* 2225 * Set EXT_CSD_BUS_WIDTH_n_DDR in EXT_CSD_BUS_WIDTH 2226 * (must be done after switching to EXT_CSD_HS_TIMING). 2227 */ 2228 if (mmc_set_card_bus_width(sc, ivar, timing) != 2229 MMC_ERR_NONE) { 2230 device_printf(dev, "Card at relative address " 2231 "%d failed to set bus width\n", rca); 2232 continue; 2233 } 2234 mmcbr_set_bus_width(dev, ivar->bus_width); 2235 mmcbr_update_ios(dev); 2236 if (mmc_set_vccq(sc, ivar, timing) != MMC_ERR_NONE) { 2237 device_printf(dev, "Failed to set VCCQ for " 2238 "card at relative address %d\n", rca); 2239 continue; 2240 } 2241 } 2242 2243 /* Set clock (must be done before initial tuning). */ 2244 mmcbr_set_clock(dev, max_dtr); 2245 mmcbr_update_ios(dev); 2246 2247 if (mmcbr_tune(dev, hs400) != 0) { 2248 device_printf(dev, "Card at relative address %d " 2249 "failed to execute initial tuning\n", rca); 2250 continue; 2251 } 2252 2253 if (hs400 == true && mmc_switch_to_hs400(sc, ivar, max_dtr, 2254 max_timing) != MMC_ERR_NONE) { 2255 device_printf(dev, "Card at relative address %d " 2256 "failed to set %s timing\n", rca, 2257 mmc_timing_to_string(max_timing)); 2258 continue; 2259 } 2260 2261 power_class: 2262 if (mmc_set_power_class(sc, ivar) != MMC_ERR_NONE) { 2263 device_printf(dev, "Card at relative address %d " 2264 "failed to set power class\n", rca); 2265 } 2266 } 2267 (void)mmc_select_card(sc, 0); 2268 return (max_dtr); 2269 } 2270 2271 /* 2272 * Switch from HS200 to HS400 (either initially or for re-tuning) or directly 2273 * to HS400ES. This follows the sequences described in "6.6.2.3 HS400 timing 2274 * mode selection" of the eMMC specification v5.1. 2275 */ 2276 static int 2277 mmc_switch_to_hs400(struct mmc_softc *sc, struct mmc_ivars *ivar, 2278 uint32_t clock, enum mmc_bus_timing max_timing) 2279 { 2280 device_t dev; 2281 int err; 2282 uint16_t rca; 2283 2284 dev = sc->dev; 2285 rca = ivar->rca; 2286 2287 /* 2288 * Both clock and timing must be set as appropriate for high speed 2289 * before eventually switching to HS400/HS400ES; mmc_set_timing() 2290 * will issue mmcbr_update_ios(). 2291 */ 2292 mmcbr_set_clock(dev, ivar->hs_tran_speed); 2293 err = mmc_set_timing(sc, ivar, bus_timing_hs); 2294 if (err != MMC_ERR_NONE) 2295 return (err); 2296 2297 /* 2298 * Set EXT_CSD_BUS_WIDTH_8_DDR in EXT_CSD_BUS_WIDTH (and additionally 2299 * EXT_CSD_BUS_WIDTH_ES for HS400ES). 2300 */ 2301 err = mmc_set_card_bus_width(sc, ivar, max_timing); 2302 if (err != MMC_ERR_NONE) 2303 return (err); 2304 mmcbr_set_bus_width(dev, ivar->bus_width); 2305 mmcbr_update_ios(dev); 2306 2307 /* Finally, switch to HS400/HS400ES mode. */ 2308 err = mmc_set_timing(sc, ivar, max_timing); 2309 if (err != MMC_ERR_NONE) 2310 return (err); 2311 mmcbr_set_clock(dev, clock); 2312 mmcbr_update_ios(dev); 2313 return (MMC_ERR_NONE); 2314 } 2315 2316 /* 2317 * Switch from HS400 to HS200 (for re-tuning). 2318 */ 2319 static int 2320 mmc_switch_to_hs200(struct mmc_softc *sc, struct mmc_ivars *ivar, 2321 uint32_t clock) 2322 { 2323 device_t dev; 2324 int err; 2325 uint16_t rca; 2326 2327 dev = sc->dev; 2328 rca = ivar->rca; 2329 2330 /* 2331 * Both clock and timing must initially be set as appropriate for 2332 * DDR52 before eventually switching to HS200; mmc_set_timing() 2333 * will issue mmcbr_update_ios(). 2334 */ 2335 mmcbr_set_clock(dev, ivar->hs_tran_speed); 2336 err = mmc_set_timing(sc, ivar, bus_timing_mmc_ddr52); 2337 if (err != MMC_ERR_NONE) 2338 return (err); 2339 2340 /* 2341 * Next, switch to high speed. Thus, clear EXT_CSD_BUS_WIDTH_n_DDR 2342 * in EXT_CSD_BUS_WIDTH and update bus width and timing in ios. 2343 */ 2344 err = mmc_set_card_bus_width(sc, ivar, bus_timing_hs); 2345 if (err != MMC_ERR_NONE) 2346 return (err); 2347 mmcbr_set_bus_width(dev, ivar->bus_width); 2348 mmcbr_set_timing(sc->dev, bus_timing_hs); 2349 mmcbr_update_ios(dev); 2350 2351 /* Finally, switch to HS200 mode. */ 2352 err = mmc_set_timing(sc, ivar, bus_timing_mmc_hs200); 2353 if (err != MMC_ERR_NONE) 2354 return (err); 2355 mmcbr_set_clock(dev, clock); 2356 mmcbr_update_ios(dev); 2357 return (MMC_ERR_NONE); 2358 } 2359 2360 static int 2361 mmc_retune(device_t busdev, device_t dev, bool reset) 2362 { 2363 struct mmc_softc *sc; 2364 struct mmc_ivars *ivar; 2365 int err; 2366 uint32_t clock; 2367 enum mmc_bus_timing timing; 2368 2369 if (device_get_parent(dev) != busdev) 2370 return (MMC_ERR_INVALID); 2371 2372 sc = device_get_softc(busdev); 2373 if (sc->retune_needed != 1 && sc->retune_paused != 0) 2374 return (MMC_ERR_INVALID); 2375 2376 timing = mmcbr_get_timing(busdev); 2377 if (timing == bus_timing_mmc_hs400) { 2378 /* 2379 * Controllers use the data strobe line to latch data from 2380 * the devices in HS400 mode so periodic re-tuning isn't 2381 * expected to be required, i. e. only if a CRC or tuning 2382 * error is signaled to the bridge. In these latter cases 2383 * we are asked to reset the tuning circuit and need to do 2384 * the switch timing dance. 2385 */ 2386 if (reset == false) 2387 return (0); 2388 ivar = device_get_ivars(dev); 2389 clock = mmcbr_get_clock(busdev); 2390 if (mmc_switch_to_hs200(sc, ivar, clock) != MMC_ERR_NONE) 2391 return (MMC_ERR_BADCRC); 2392 } 2393 err = mmcbr_retune(busdev, reset); 2394 if (err != 0 && timing == bus_timing_mmc_hs400) 2395 return (MMC_ERR_BADCRC); 2396 switch (err) { 2397 case 0: 2398 break; 2399 case EIO: 2400 return (MMC_ERR_FAILED); 2401 default: 2402 return (MMC_ERR_INVALID); 2403 } 2404 if (timing == bus_timing_mmc_hs400) { 2405 if (mmc_switch_to_hs400(sc, ivar, clock, timing) != 2406 MMC_ERR_NONE) 2407 return (MMC_ERR_BADCRC); 2408 } 2409 return (MMC_ERR_NONE); 2410 } 2411 2412 static void 2413 mmc_retune_pause(device_t busdev, device_t dev, bool retune) 2414 { 2415 struct mmc_softc *sc; 2416 2417 sc = device_get_softc(busdev); 2418 KASSERT(device_get_parent(dev) == busdev, 2419 ("%s: %s is not a child of %s", __func__, device_get_nameunit(dev), 2420 device_get_nameunit(busdev))); 2421 KASSERT(sc->owner != NULL, 2422 ("%s: Request from %s without bus being acquired.", __func__, 2423 device_get_nameunit(dev))); 2424 2425 if (retune == true && sc->retune_paused == 0) 2426 sc->retune_needed = 1; 2427 sc->retune_paused++; 2428 } 2429 2430 static void 2431 mmc_retune_unpause(device_t busdev, device_t dev) 2432 { 2433 struct mmc_softc *sc; 2434 2435 sc = device_get_softc(busdev); 2436 KASSERT(device_get_parent(dev) == busdev, 2437 ("%s: %s is not a child of %s", __func__, device_get_nameunit(dev), 2438 device_get_nameunit(busdev))); 2439 KASSERT(sc->owner != NULL, 2440 ("%s: Request from %s without bus being acquired.", __func__, 2441 device_get_nameunit(dev))); 2442 KASSERT(sc->retune_paused != 0, 2443 ("%s: Re-tune pause count already at 0", __func__)); 2444 2445 sc->retune_paused--; 2446 } 2447 2448 static void 2449 mmc_scan(struct mmc_softc *sc) 2450 { 2451 device_t dev = sc->dev; 2452 int err; 2453 2454 err = mmc_acquire_bus(dev, dev); 2455 if (err != 0) { 2456 device_printf(dev, "Failed to acquire bus for scanning\n"); 2457 return; 2458 } 2459 mmc_go_discovery(sc); 2460 err = mmc_release_bus(dev, dev); 2461 if (err != 0) { 2462 device_printf(dev, "Failed to release bus after scanning\n"); 2463 return; 2464 } 2465 (void)bus_generic_attach(dev); 2466 } 2467 2468 static int 2469 mmc_read_ivar(device_t bus, device_t child, int which, uintptr_t *result) 2470 { 2471 struct mmc_ivars *ivar = device_get_ivars(child); 2472 2473 switch (which) { 2474 default: 2475 return (EINVAL); 2476 case MMC_IVAR_SPEC_VERS: 2477 *result = ivar->csd.spec_vers; 2478 break; 2479 case MMC_IVAR_DSR_IMP: 2480 *result = ivar->csd.dsr_imp; 2481 break; 2482 case MMC_IVAR_MEDIA_SIZE: 2483 *result = ivar->sec_count; 2484 break; 2485 case MMC_IVAR_RCA: 2486 *result = ivar->rca; 2487 break; 2488 case MMC_IVAR_SECTOR_SIZE: 2489 *result = MMC_SECTOR_SIZE; 2490 break; 2491 case MMC_IVAR_TRAN_SPEED: 2492 *result = mmcbr_get_clock(bus); 2493 break; 2494 case MMC_IVAR_READ_ONLY: 2495 *result = ivar->read_only; 2496 break; 2497 case MMC_IVAR_HIGH_CAP: 2498 *result = ivar->high_cap; 2499 break; 2500 case MMC_IVAR_CARD_TYPE: 2501 *result = ivar->mode; 2502 break; 2503 case MMC_IVAR_BUS_WIDTH: 2504 *result = ivar->bus_width; 2505 break; 2506 case MMC_IVAR_ERASE_SECTOR: 2507 *result = ivar->erase_sector; 2508 break; 2509 case MMC_IVAR_MAX_DATA: 2510 *result = mmcbr_get_max_data(bus); 2511 break; 2512 case MMC_IVAR_CMD6_TIMEOUT: 2513 *result = ivar->cmd6_time; 2514 break; 2515 case MMC_IVAR_QUIRKS: 2516 *result = ivar->quirks; 2517 break; 2518 case MMC_IVAR_CARD_ID_STRING: 2519 *(char **)result = ivar->card_id_string; 2520 break; 2521 case MMC_IVAR_CARD_SN_STRING: 2522 *(char **)result = ivar->card_sn_string; 2523 break; 2524 } 2525 return (0); 2526 } 2527 2528 static int 2529 mmc_write_ivar(device_t bus, device_t child, int which, uintptr_t value) 2530 { 2531 2532 /* 2533 * None are writable ATM 2534 */ 2535 return (EINVAL); 2536 } 2537 2538 static void 2539 mmc_delayed_attach(void *xsc) 2540 { 2541 struct mmc_softc *sc = xsc; 2542 2543 mmc_scan(sc); 2544 config_intrhook_disestablish(&sc->config_intrhook); 2545 } 2546 2547 static int 2548 mmc_child_location_str(device_t dev, device_t child, char *buf, 2549 size_t buflen) 2550 { 2551 2552 snprintf(buf, buflen, "rca=0x%04x", mmc_get_rca(child)); 2553 return (0); 2554 } 2555 2556 static device_method_t mmc_methods[] = { 2557 /* device_if */ 2558 DEVMETHOD(device_probe, mmc_probe), 2559 DEVMETHOD(device_attach, mmc_attach), 2560 DEVMETHOD(device_detach, mmc_detach), 2561 DEVMETHOD(device_suspend, mmc_suspend), 2562 DEVMETHOD(device_resume, mmc_resume), 2563 2564 /* Bus interface */ 2565 DEVMETHOD(bus_read_ivar, mmc_read_ivar), 2566 DEVMETHOD(bus_write_ivar, mmc_write_ivar), 2567 DEVMETHOD(bus_child_location_str, mmc_child_location_str), 2568 2569 /* MMC Bus interface */ 2570 DEVMETHOD(mmcbus_retune_pause, mmc_retune_pause), 2571 DEVMETHOD(mmcbus_retune_unpause, mmc_retune_unpause), 2572 DEVMETHOD(mmcbus_wait_for_request, mmc_wait_for_request), 2573 DEVMETHOD(mmcbus_acquire_bus, mmc_acquire_bus), 2574 DEVMETHOD(mmcbus_release_bus, mmc_release_bus), 2575 2576 DEVMETHOD_END 2577 }; 2578 2579 driver_t mmc_driver = { 2580 "mmc", 2581 mmc_methods, 2582 sizeof(struct mmc_softc), 2583 }; 2584 devclass_t mmc_devclass; 2585 2586 MODULE_VERSION(mmc, MMC_VERSION); 2587