1 // SPDX-License-Identifier: GPL-2.0-or-later
3 * linux/drivers/mmc/core/mmc_ops.h
5 * Copyright 2006-2007 Pierre Ossman
8 #include <linux/slab.h>
9 #include <linux/export.h>
10 #include <linux/types.h>
11 #include <linux/scatterlist.h>
13 #include <linux/mmc/host.h>
14 #include <linux/mmc/card.h>
15 #include <linux/mmc/mmc.h>
22 #define MMC_OPS_TIMEOUT_MS (10 * 60 * 1000) /* 10 minute timeout */
24 static const u8 tuning_blk_pattern_4bit
[] = {
25 0xff, 0x0f, 0xff, 0x00, 0xff, 0xcc, 0xc3, 0xcc,
26 0xc3, 0x3c, 0xcc, 0xff, 0xfe, 0xff, 0xfe, 0xef,
27 0xff, 0xdf, 0xff, 0xdd, 0xff, 0xfb, 0xff, 0xfb,
28 0xbf, 0xff, 0x7f, 0xff, 0x77, 0xf7, 0xbd, 0xef,
29 0xff, 0xf0, 0xff, 0xf0, 0x0f, 0xfc, 0xcc, 0x3c,
30 0xcc, 0x33, 0xcc, 0xcf, 0xff, 0xef, 0xff, 0xee,
31 0xff, 0xfd, 0xff, 0xfd, 0xdf, 0xff, 0xbf, 0xff,
32 0xbb, 0xff, 0xf7, 0xff, 0xf7, 0x7f, 0x7b, 0xde,
35 static const u8 tuning_blk_pattern_8bit
[] = {
36 0xff, 0xff, 0x00, 0xff, 0xff, 0xff, 0x00, 0x00,
37 0xff, 0xff, 0xcc, 0xcc, 0xcc, 0x33, 0xcc, 0xcc,
38 0xcc, 0x33, 0x33, 0xcc, 0xcc, 0xcc, 0xff, 0xff,
39 0xff, 0xee, 0xff, 0xff, 0xff, 0xee, 0xee, 0xff,
40 0xff, 0xff, 0xdd, 0xff, 0xff, 0xff, 0xdd, 0xdd,
41 0xff, 0xff, 0xff, 0xbb, 0xff, 0xff, 0xff, 0xbb,
42 0xbb, 0xff, 0xff, 0xff, 0x77, 0xff, 0xff, 0xff,
43 0x77, 0x77, 0xff, 0x77, 0xbb, 0xdd, 0xee, 0xff,
44 0xff, 0xff, 0xff, 0x00, 0xff, 0xff, 0xff, 0x00,
45 0x00, 0xff, 0xff, 0xcc, 0xcc, 0xcc, 0x33, 0xcc,
46 0xcc, 0xcc, 0x33, 0x33, 0xcc, 0xcc, 0xcc, 0xff,
47 0xff, 0xff, 0xee, 0xff, 0xff, 0xff, 0xee, 0xee,
48 0xff, 0xff, 0xff, 0xdd, 0xff, 0xff, 0xff, 0xdd,
49 0xdd, 0xff, 0xff, 0xff, 0xbb, 0xff, 0xff, 0xff,
50 0xbb, 0xbb, 0xff, 0xff, 0xff, 0x77, 0xff, 0xff,
51 0xff, 0x77, 0x77, 0xff, 0x77, 0xbb, 0xdd, 0xee,
54 int __mmc_send_status(struct mmc_card
*card
, u32
*status
, unsigned int retries
)
57 struct mmc_command cmd
= {};
59 cmd
.opcode
= MMC_SEND_STATUS
;
60 if (!mmc_host_is_spi(card
->host
))
61 cmd
.arg
= card
->rca
<< 16;
62 cmd
.flags
= MMC_RSP_SPI_R2
| MMC_RSP_R1
| MMC_CMD_AC
;
64 err
= mmc_wait_for_cmd(card
->host
, &cmd
, retries
);
68 /* NOTE: callers are required to understand the difference
69 * between "native" and SPI format status words!
72 *status
= cmd
.resp
[0];
76 EXPORT_SYMBOL_GPL(__mmc_send_status
);
78 int mmc_send_status(struct mmc_card
*card
, u32
*status
)
80 return __mmc_send_status(card
, status
, MMC_CMD_RETRIES
);
82 EXPORT_SYMBOL_GPL(mmc_send_status
);
84 static int _mmc_select_card(struct mmc_host
*host
, struct mmc_card
*card
)
86 struct mmc_command cmd
= {};
88 cmd
.opcode
= MMC_SELECT_CARD
;
91 cmd
.arg
= card
->rca
<< 16;
92 cmd
.flags
= MMC_RSP_R1
| MMC_CMD_AC
;
95 cmd
.flags
= MMC_RSP_NONE
| MMC_CMD_AC
;
98 return mmc_wait_for_cmd(host
, &cmd
, MMC_CMD_RETRIES
);
101 int mmc_select_card(struct mmc_card
*card
)
104 return _mmc_select_card(card
->host
, card
);
107 int mmc_deselect_cards(struct mmc_host
*host
)
109 return _mmc_select_card(host
, NULL
);
113 * Write the value specified in the device tree or board code into the optional
114 * 16 bit Driver Stage Register. This can be used to tune raise/fall times and
115 * drive strength of the DAT and CMD outputs. The actual meaning of a given
116 * value is hardware dependant.
117 * The presence of the DSR register can be determined from the CSD register,
120 int mmc_set_dsr(struct mmc_host
*host
)
122 struct mmc_command cmd
= {};
124 cmd
.opcode
= MMC_SET_DSR
;
126 cmd
.arg
= (host
->dsr
<< 16) | 0xffff;
127 cmd
.flags
= MMC_RSP_NONE
| MMC_CMD_AC
;
129 return mmc_wait_for_cmd(host
, &cmd
, MMC_CMD_RETRIES
);
132 int mmc_go_idle(struct mmc_host
*host
)
135 struct mmc_command cmd
= {};
138 * Non-SPI hosts need to prevent chipselect going active during
139 * GO_IDLE; that would put chips into SPI mode. Remind them of
140 * that in case of hardware that won't pull up DAT3/nCS otherwise.
142 * SPI hosts ignore ios.chip_select; it's managed according to
143 * rules that must accommodate non-MMC slaves which this layer
144 * won't even know about.
146 if (!mmc_host_is_spi(host
)) {
147 mmc_set_chip_select(host
, MMC_CS_HIGH
);
151 cmd
.opcode
= MMC_GO_IDLE_STATE
;
153 cmd
.flags
= MMC_RSP_SPI_R1
| MMC_RSP_NONE
| MMC_CMD_BC
;
155 err
= mmc_wait_for_cmd(host
, &cmd
, 0);
159 if (!mmc_host_is_spi(host
)) {
160 mmc_set_chip_select(host
, MMC_CS_DONTCARE
);
164 host
->use_spi_crc
= 0;
169 int mmc_send_op_cond(struct mmc_host
*host
, u32 ocr
, u32
*rocr
)
171 struct mmc_command cmd
= {};
174 cmd
.opcode
= MMC_SEND_OP_COND
;
175 cmd
.arg
= mmc_host_is_spi(host
) ? 0 : ocr
;
176 cmd
.flags
= MMC_RSP_SPI_R1
| MMC_RSP_R3
| MMC_CMD_BCR
;
178 for (i
= 100; i
; i
--) {
179 err
= mmc_wait_for_cmd(host
, &cmd
, 0);
183 /* wait until reset completes */
184 if (mmc_host_is_spi(host
)) {
185 if (!(cmd
.resp
[0] & R1_SPI_IDLE
))
188 if (cmd
.resp
[0] & MMC_CARD_BUSY
)
197 * According to eMMC specification v5.1 section 6.4.3, we
198 * should issue CMD1 repeatedly in the idle state until
199 * the eMMC is ready. Otherwise some eMMC devices seem to enter
200 * the inactive mode after mmc_init_card() issued CMD0 when
201 * the eMMC device is busy.
203 if (!ocr
&& !mmc_host_is_spi(host
))
204 cmd
.arg
= cmd
.resp
[0] | BIT(30);
207 if (rocr
&& !mmc_host_is_spi(host
))
213 int mmc_set_relative_addr(struct mmc_card
*card
)
215 struct mmc_command cmd
= {};
217 cmd
.opcode
= MMC_SET_RELATIVE_ADDR
;
218 cmd
.arg
= card
->rca
<< 16;
219 cmd
.flags
= MMC_RSP_R1
| MMC_CMD_AC
;
221 return mmc_wait_for_cmd(card
->host
, &cmd
, MMC_CMD_RETRIES
);
225 mmc_send_cxd_native(struct mmc_host
*host
, u32 arg
, u32
*cxd
, int opcode
)
228 struct mmc_command cmd
= {};
232 cmd
.flags
= MMC_RSP_R2
| MMC_CMD_AC
;
234 err
= mmc_wait_for_cmd(host
, &cmd
, MMC_CMD_RETRIES
);
238 memcpy(cxd
, cmd
.resp
, sizeof(u32
) * 4);
244 * NOTE: void *buf, caller for the buf is required to use DMA-capable
245 * buffer or on-stack buffer (with some overhead in callee).
248 mmc_send_cxd_data(struct mmc_card
*card
, struct mmc_host
*host
,
249 u32 opcode
, void *buf
, unsigned len
)
251 struct mmc_request mrq
= {};
252 struct mmc_command cmd
= {};
253 struct mmc_data data
= {};
254 struct scatterlist sg
;
262 /* NOTE HACK: the MMC_RSP_SPI_R1 is always correct here, but we
263 * rely on callers to never use this with "native" calls for reading
264 * CSD or CID. Native versions of those commands use the R2 type,
265 * not R1 plus a data block.
267 cmd
.flags
= MMC_RSP_SPI_R1
| MMC_RSP_R1
| MMC_CMD_ADTC
;
271 data
.flags
= MMC_DATA_READ
;
275 sg_init_one(&sg
, buf
, len
);
277 if (opcode
== MMC_SEND_CSD
|| opcode
== MMC_SEND_CID
) {
279 * The spec states that CSR and CID accesses have a timeout
280 * of 64 clock cycles.
283 data
.timeout_clks
= 64;
285 mmc_set_data_timeout(&data
, card
);
287 mmc_wait_for_req(host
, &mrq
);
297 static int mmc_spi_send_csd(struct mmc_card
*card
, u32
*csd
)
302 csd_tmp
= kzalloc(16, GFP_KERNEL
);
306 ret
= mmc_send_cxd_data(card
, card
->host
, MMC_SEND_CSD
, csd_tmp
, 16);
310 for (i
= 0; i
< 4; i
++)
311 csd
[i
] = be32_to_cpu(csd_tmp
[i
]);
318 int mmc_send_csd(struct mmc_card
*card
, u32
*csd
)
320 if (mmc_host_is_spi(card
->host
))
321 return mmc_spi_send_csd(card
, csd
);
323 return mmc_send_cxd_native(card
->host
, card
->rca
<< 16, csd
,
327 static int mmc_spi_send_cid(struct mmc_host
*host
, u32
*cid
)
332 cid_tmp
= kzalloc(16, GFP_KERNEL
);
336 ret
= mmc_send_cxd_data(NULL
, host
, MMC_SEND_CID
, cid_tmp
, 16);
340 for (i
= 0; i
< 4; i
++)
341 cid
[i
] = be32_to_cpu(cid_tmp
[i
]);
348 int mmc_send_cid(struct mmc_host
*host
, u32
*cid
)
350 if (mmc_host_is_spi(host
))
351 return mmc_spi_send_cid(host
, cid
);
353 return mmc_send_cxd_native(host
, 0, cid
, MMC_ALL_SEND_CID
);
356 int mmc_get_ext_csd(struct mmc_card
*card
, u8
**new_ext_csd
)
361 if (!card
|| !new_ext_csd
)
364 if (!mmc_can_ext_csd(card
))
368 * As the ext_csd is so large and mostly unused, we don't store the
369 * raw block in mmc_card.
371 ext_csd
= kzalloc(512, GFP_KERNEL
);
375 err
= mmc_send_cxd_data(card
, card
->host
, MMC_SEND_EXT_CSD
, ext_csd
,
380 *new_ext_csd
= ext_csd
;
384 EXPORT_SYMBOL_GPL(mmc_get_ext_csd
);
386 int mmc_spi_read_ocr(struct mmc_host
*host
, int highcap
, u32
*ocrp
)
388 struct mmc_command cmd
= {};
391 cmd
.opcode
= MMC_SPI_READ_OCR
;
392 cmd
.arg
= highcap
? (1 << 30) : 0;
393 cmd
.flags
= MMC_RSP_SPI_R3
;
395 err
= mmc_wait_for_cmd(host
, &cmd
, 0);
401 int mmc_spi_set_crc(struct mmc_host
*host
, int use_crc
)
403 struct mmc_command cmd
= {};
406 cmd
.opcode
= MMC_SPI_CRC_ON_OFF
;
407 cmd
.flags
= MMC_RSP_SPI_R1
;
410 err
= mmc_wait_for_cmd(host
, &cmd
, 0);
412 host
->use_spi_crc
= use_crc
;
416 static int mmc_switch_status_error(struct mmc_host
*host
, u32 status
)
418 if (mmc_host_is_spi(host
)) {
419 if (status
& R1_SPI_ILLEGAL_COMMAND
)
422 if (R1_STATUS(status
))
423 pr_warn("%s: unexpected status %#x after switch\n",
424 mmc_hostname(host
), status
);
425 if (status
& R1_SWITCH_ERROR
)
431 /* Caller must hold re-tuning */
432 int __mmc_switch_status(struct mmc_card
*card
, bool crc_err_fatal
)
437 err
= mmc_send_status(card
, &status
);
438 if (!crc_err_fatal
&& err
== -EILSEQ
)
443 return mmc_switch_status_error(card
->host
, status
);
446 int mmc_switch_status(struct mmc_card
*card
)
448 return __mmc_switch_status(card
, true);
451 static int mmc_poll_for_busy(struct mmc_card
*card
, unsigned int timeout_ms
,
452 bool send_status
, bool retry_crc_err
)
454 struct mmc_host
*host
= card
->host
;
456 unsigned long timeout
;
458 bool expired
= false;
461 /* We have an unspecified cmd timeout, use the fallback value. */
463 timeout_ms
= MMC_OPS_TIMEOUT_MS
;
466 * In cases when not allowed to poll by using CMD13 or because we aren't
467 * capable of polling by using ->card_busy(), then rely on waiting the
468 * stated timeout to be sufficient.
470 if (!send_status
&& !host
->ops
->card_busy
) {
471 mmc_delay(timeout_ms
);
475 timeout
= jiffies
+ msecs_to_jiffies(timeout_ms
) + 1;
478 * Due to the possibility of being preempted while polling,
479 * check the expiration time first.
481 expired
= time_after(jiffies
, timeout
);
483 if (host
->ops
->card_busy
) {
484 busy
= host
->ops
->card_busy(host
);
486 err
= mmc_send_status(card
, &status
);
487 if (retry_crc_err
&& err
== -EILSEQ
) {
492 err
= mmc_switch_status_error(host
, status
);
495 busy
= R1_CURRENT_STATE(status
) == R1_STATE_PRG
;
499 /* Timeout if the device still remains busy. */
500 if (expired
&& busy
) {
501 pr_err("%s: Card stuck being busy! %s\n",
502 mmc_hostname(host
), __func__
);
511 * __mmc_switch - modify EXT_CSD register
512 * @card: the MMC card associated with the data transfer
513 * @set: cmd set values
514 * @index: EXT_CSD register index
515 * @value: value to program into EXT_CSD register
516 * @timeout_ms: timeout (ms) for operation performed by register write,
517 * timeout of zero implies maximum possible timeout
518 * @timing: new timing to change to
519 * @use_busy_signal: use the busy signal as response type
520 * @send_status: send status cmd to poll for busy
521 * @retry_crc_err: retry when CRC errors when polling with CMD13 for busy
523 * Modifies the EXT_CSD register for selected card.
525 int __mmc_switch(struct mmc_card
*card
, u8 set
, u8 index
, u8 value
,
526 unsigned int timeout_ms
, unsigned char timing
,
527 bool use_busy_signal
, bool send_status
, bool retry_crc_err
)
529 struct mmc_host
*host
= card
->host
;
531 struct mmc_command cmd
= {};
532 bool use_r1b_resp
= use_busy_signal
;
533 unsigned char old_timing
= host
->ios
.timing
;
535 mmc_retune_hold(host
);
538 * If the cmd timeout and the max_busy_timeout of the host are both
539 * specified, let's validate them. A failure means we need to prevent
540 * the host from doing hw busy detection, which is done by converting
541 * to a R1 response instead of a R1B.
543 if (timeout_ms
&& host
->max_busy_timeout
&&
544 (timeout_ms
> host
->max_busy_timeout
))
545 use_r1b_resp
= false;
547 cmd
.opcode
= MMC_SWITCH
;
548 cmd
.arg
= (MMC_SWITCH_MODE_WRITE_BYTE
<< 24) |
552 cmd
.flags
= MMC_CMD_AC
;
554 cmd
.flags
|= MMC_RSP_SPI_R1B
| MMC_RSP_R1B
;
556 * A busy_timeout of zero means the host can decide to use
557 * whatever value it finds suitable.
559 cmd
.busy_timeout
= timeout_ms
;
561 cmd
.flags
|= MMC_RSP_SPI_R1
| MMC_RSP_R1
;
564 if (index
== EXT_CSD_SANITIZE_START
)
565 cmd
.sanitize_busy
= true;
567 err
= mmc_wait_for_cmd(host
, &cmd
, 0);
571 /* No need to check card status in case of unblocking command */
572 if (!use_busy_signal
)
575 /*If SPI or used HW busy detection above, then we don't need to poll. */
576 if (((host
->caps
& MMC_CAP_WAIT_WHILE_BUSY
) && use_r1b_resp
) ||
577 mmc_host_is_spi(host
))
580 /* Let's try to poll to find out when the command is completed. */
581 err
= mmc_poll_for_busy(card
, timeout_ms
, send_status
, retry_crc_err
);
586 /* Switch to new timing before check switch status. */
588 mmc_set_timing(host
, timing
);
591 err
= mmc_switch_status(card
);
593 mmc_set_timing(host
, old_timing
);
596 mmc_retune_release(host
);
601 int mmc_switch(struct mmc_card
*card
, u8 set
, u8 index
, u8 value
,
602 unsigned int timeout_ms
)
604 return __mmc_switch(card
, set
, index
, value
, timeout_ms
, 0,
607 EXPORT_SYMBOL_GPL(mmc_switch
);
609 int mmc_send_tuning(struct mmc_host
*host
, u32 opcode
, int *cmd_error
)
611 struct mmc_request mrq
= {};
612 struct mmc_command cmd
= {};
613 struct mmc_data data
= {};
614 struct scatterlist sg
;
615 struct mmc_ios
*ios
= &host
->ios
;
616 const u8
*tuning_block_pattern
;
620 if (ios
->bus_width
== MMC_BUS_WIDTH_8
) {
621 tuning_block_pattern
= tuning_blk_pattern_8bit
;
622 size
= sizeof(tuning_blk_pattern_8bit
);
623 } else if (ios
->bus_width
== MMC_BUS_WIDTH_4
) {
624 tuning_block_pattern
= tuning_blk_pattern_4bit
;
625 size
= sizeof(tuning_blk_pattern_4bit
);
629 data_buf
= kzalloc(size
, GFP_KERNEL
);
637 cmd
.flags
= MMC_RSP_R1
| MMC_CMD_ADTC
;
641 data
.flags
= MMC_DATA_READ
;
644 * According to the tuning specs, Tuning process
645 * is normally shorter 40 executions of CMD19,
646 * and timeout value should be shorter than 150 ms
648 data
.timeout_ns
= 150 * NSEC_PER_MSEC
;
652 sg_init_one(&sg
, data_buf
, size
);
654 mmc_wait_for_req(host
, &mrq
);
657 *cmd_error
= cmd
.error
;
669 if (memcmp(data_buf
, tuning_block_pattern
, size
))
676 EXPORT_SYMBOL_GPL(mmc_send_tuning
);
678 int mmc_abort_tuning(struct mmc_host
*host
, u32 opcode
)
680 struct mmc_command cmd
= {};
683 * eMMC specification specifies that CMD12 can be used to stop a tuning
684 * command, but SD specification does not, so do nothing unless it is
687 if (opcode
!= MMC_SEND_TUNING_BLOCK_HS200
)
690 cmd
.opcode
= MMC_STOP_TRANSMISSION
;
691 cmd
.flags
= MMC_RSP_SPI_R1
| MMC_RSP_R1
| MMC_CMD_AC
;
694 * For drivers that override R1 to R1b, set an arbitrary timeout based
695 * on the tuning timeout i.e. 150ms.
697 cmd
.busy_timeout
= 150;
699 return mmc_wait_for_cmd(host
, &cmd
, 0);
701 EXPORT_SYMBOL_GPL(mmc_abort_tuning
);
704 mmc_send_bus_test(struct mmc_card
*card
, struct mmc_host
*host
, u8 opcode
,
707 struct mmc_request mrq
= {};
708 struct mmc_command cmd
= {};
709 struct mmc_data data
= {};
710 struct scatterlist sg
;
714 static u8 testdata_8bit
[8] = { 0x55, 0xaa, 0, 0, 0, 0, 0, 0 };
715 static u8 testdata_4bit
[4] = { 0x5a, 0, 0, 0 };
717 /* dma onto stack is unsafe/nonportable, but callers to this
718 * routine normally provide temporary on-stack buffers ...
720 data_buf
= kmalloc(len
, GFP_KERNEL
);
725 test_buf
= testdata_8bit
;
727 test_buf
= testdata_4bit
;
729 pr_err("%s: Invalid bus_width %d\n",
730 mmc_hostname(host
), len
);
735 if (opcode
== MMC_BUS_TEST_W
)
736 memcpy(data_buf
, test_buf
, len
);
743 /* NOTE HACK: the MMC_RSP_SPI_R1 is always correct here, but we
744 * rely on callers to never use this with "native" calls for reading
745 * CSD or CID. Native versions of those commands use the R2 type,
746 * not R1 plus a data block.
748 cmd
.flags
= MMC_RSP_SPI_R1
| MMC_RSP_R1
| MMC_CMD_ADTC
;
752 if (opcode
== MMC_BUS_TEST_R
)
753 data
.flags
= MMC_DATA_READ
;
755 data
.flags
= MMC_DATA_WRITE
;
759 mmc_set_data_timeout(&data
, card
);
760 sg_init_one(&sg
, data_buf
, len
);
761 mmc_wait_for_req(host
, &mrq
);
763 if (opcode
== MMC_BUS_TEST_R
) {
764 for (i
= 0; i
< len
/ 4; i
++)
765 if ((test_buf
[i
] ^ data_buf
[i
]) != 0xff) {
780 int mmc_bus_test(struct mmc_card
*card
, u8 bus_width
)
784 if (bus_width
== MMC_BUS_WIDTH_8
)
786 else if (bus_width
== MMC_BUS_WIDTH_4
)
788 else if (bus_width
== MMC_BUS_WIDTH_1
)
789 return 0; /* no need for test */
794 * Ignore errors from BUS_TEST_W. BUS_TEST_R will fail if there
795 * is a problem. This improves chances that the test will work.
797 mmc_send_bus_test(card
, card
->host
, MMC_BUS_TEST_W
, width
);
798 return mmc_send_bus_test(card
, card
->host
, MMC_BUS_TEST_R
, width
);
801 static int mmc_send_hpi_cmd(struct mmc_card
*card
, u32
*status
)
803 struct mmc_command cmd
= {};
807 opcode
= card
->ext_csd
.hpi_cmd
;
808 if (opcode
== MMC_STOP_TRANSMISSION
)
809 cmd
.flags
= MMC_RSP_R1B
| MMC_CMD_AC
;
810 else if (opcode
== MMC_SEND_STATUS
)
811 cmd
.flags
= MMC_RSP_R1
| MMC_CMD_AC
;
814 cmd
.arg
= card
->rca
<< 16 | 1;
816 err
= mmc_wait_for_cmd(card
->host
, &cmd
, 0);
818 pr_warn("%s: error %d interrupting operation. "
819 "HPI command response %#x\n", mmc_hostname(card
->host
),
824 *status
= cmd
.resp
[0];
830 * mmc_interrupt_hpi - Issue for High priority Interrupt
831 * @card: the MMC card associated with the HPI transfer
833 * Issued High Priority Interrupt, and check for card status
834 * until out-of prg-state.
836 int mmc_interrupt_hpi(struct mmc_card
*card
)
840 unsigned long prg_wait
;
842 if (!card
->ext_csd
.hpi_en
) {
843 pr_info("%s: HPI enable bit unset\n", mmc_hostname(card
->host
));
847 err
= mmc_send_status(card
, &status
);
849 pr_err("%s: Get card status fail\n", mmc_hostname(card
->host
));
853 switch (R1_CURRENT_STATE(status
)) {
859 * In idle and transfer states, HPI is not needed and the caller
860 * can issue the next intended command immediately
866 /* In all other states, it's illegal to issue HPI */
867 pr_debug("%s: HPI cannot be sent. Card state=%d\n",
868 mmc_hostname(card
->host
), R1_CURRENT_STATE(status
));
873 err
= mmc_send_hpi_cmd(card
, &status
);
877 prg_wait
= jiffies
+ msecs_to_jiffies(card
->ext_csd
.out_of_int_time
);
879 err
= mmc_send_status(card
, &status
);
881 if (!err
&& R1_CURRENT_STATE(status
) == R1_STATE_TRAN
)
883 if (time_after(jiffies
, prg_wait
))
891 int mmc_can_ext_csd(struct mmc_card
*card
)
893 return (card
&& card
->csd
.mmca_vsn
> CSD_SPEC_VER_3
);
896 static int mmc_read_bkops_status(struct mmc_card
*card
)
901 err
= mmc_get_ext_csd(card
, &ext_csd
);
905 card
->ext_csd
.raw_bkops_status
= ext_csd
[EXT_CSD_BKOPS_STATUS
];
906 card
->ext_csd
.raw_exception_status
= ext_csd
[EXT_CSD_EXP_EVENTS_STATUS
];
912 * mmc_run_bkops - Run BKOPS for supported cards
913 * @card: MMC card to run BKOPS for
915 * Run background operations synchronously for cards having manual BKOPS
916 * enabled and in case it reports urgent BKOPS level.
918 void mmc_run_bkops(struct mmc_card
*card
)
922 if (!card
->ext_csd
.man_bkops_en
)
925 err
= mmc_read_bkops_status(card
);
927 pr_err("%s: Failed to read bkops status: %d\n",
928 mmc_hostname(card
->host
), err
);
932 if (!card
->ext_csd
.raw_bkops_status
||
933 card
->ext_csd
.raw_bkops_status
< EXT_CSD_BKOPS_LEVEL_2
)
936 mmc_retune_hold(card
->host
);
939 * For urgent BKOPS status, LEVEL_2 and higher, let's execute
940 * synchronously. Future wise, we may consider to start BKOPS, for less
941 * urgent levels by using an asynchronous background task, when idle.
943 err
= mmc_switch(card
, EXT_CSD_CMD_SET_NORMAL
,
944 EXT_CSD_BKOPS_START
, 1, MMC_OPS_TIMEOUT_MS
);
946 pr_warn("%s: Error %d starting bkops\n",
947 mmc_hostname(card
->host
), err
);
949 mmc_retune_release(card
->host
);
951 EXPORT_SYMBOL(mmc_run_bkops
);
954 * Flush the cache to the non-volatile storage.
956 int mmc_flush_cache(struct mmc_card
*card
)
960 if (mmc_card_mmc(card
) &&
961 (card
->ext_csd
.cache_size
> 0) &&
962 (card
->ext_csd
.cache_ctrl
& 1)) {
963 err
= mmc_switch(card
, EXT_CSD_CMD_SET_NORMAL
,
964 EXT_CSD_FLUSH_CACHE
, 1, 0);
966 pr_err("%s: cache flush error %d\n",
967 mmc_hostname(card
->host
), err
);
972 EXPORT_SYMBOL(mmc_flush_cache
);
974 static int mmc_cmdq_switch(struct mmc_card
*card
, bool enable
)
976 u8 val
= enable
? EXT_CSD_CMDQ_MODE_ENABLED
: 0;
979 if (!card
->ext_csd
.cmdq_support
)
982 err
= mmc_switch(card
, EXT_CSD_CMD_SET_NORMAL
, EXT_CSD_CMDQ_MODE_EN
,
983 val
, card
->ext_csd
.generic_cmd6_time
);
985 card
->ext_csd
.cmdq_en
= enable
;
990 int mmc_cmdq_enable(struct mmc_card
*card
)
992 return mmc_cmdq_switch(card
, true);
994 EXPORT_SYMBOL_GPL(mmc_cmdq_enable
);
996 int mmc_cmdq_disable(struct mmc_card
*card
)
998 return mmc_cmdq_switch(card
, false);
1000 EXPORT_SYMBOL_GPL(mmc_cmdq_disable
);