blob: c9a6fc0eaa352201fe48898e01a6c25dd587feca [file] [log] [blame]
David Lanzendörfer3cbcb1602014-05-12 14:04:48 +02001/*
2 * Driver for sunxi SD/MMC host controllers
3 * (C) Copyright 2007-2011 Reuuimlla Technology Co., Ltd.
4 * (C) Copyright 2007-2011 Aaron Maoye <leafy.myeh@reuuimllatech.com>
5 * (C) Copyright 2013-2014 O2S GmbH <www.o2s.ch>
6 * (C) Copyright 2013-2014 David Lanzend�rfer <david.lanzendoerfer@o2s.ch>
7 * (C) Copyright 2013-2014 Hans de Goede <hdegoede@redhat.com>
8 *
9 * This program is free software; you can redistribute it and/or
10 * modify it under the terms of the GNU General Public License as
11 * published by the Free Software Foundation; either version 2 of
12 * the License, or (at your option) any later version.
13 */
14
15#include <linux/kernel.h>
16#include <linux/module.h>
17#include <linux/io.h>
18#include <linux/device.h>
19#include <linux/interrupt.h>
20#include <linux/delay.h>
21#include <linux/err.h>
22
23#include <linux/clk.h>
David Lanzendörfer3cbcb1602014-05-12 14:04:48 +020024#include <linux/gpio.h>
25#include <linux/platform_device.h>
26#include <linux/spinlock.h>
27#include <linux/scatterlist.h>
28#include <linux/dma-mapping.h>
29#include <linux/slab.h>
30#include <linux/reset.h>
31
32#include <linux/of_address.h>
33#include <linux/of_gpio.h>
34#include <linux/of_platform.h>
35
36#include <linux/mmc/host.h>
37#include <linux/mmc/sd.h>
38#include <linux/mmc/sdio.h>
39#include <linux/mmc/mmc.h>
40#include <linux/mmc/core.h>
41#include <linux/mmc/card.h>
42#include <linux/mmc/slot-gpio.h>
43
44/* register offset definitions */
45#define SDXC_REG_GCTRL (0x00) /* SMC Global Control Register */
46#define SDXC_REG_CLKCR (0x04) /* SMC Clock Control Register */
47#define SDXC_REG_TMOUT (0x08) /* SMC Time Out Register */
48#define SDXC_REG_WIDTH (0x0C) /* SMC Bus Width Register */
49#define SDXC_REG_BLKSZ (0x10) /* SMC Block Size Register */
50#define SDXC_REG_BCNTR (0x14) /* SMC Byte Count Register */
51#define SDXC_REG_CMDR (0x18) /* SMC Command Register */
52#define SDXC_REG_CARG (0x1C) /* SMC Argument Register */
53#define SDXC_REG_RESP0 (0x20) /* SMC Response Register 0 */
54#define SDXC_REG_RESP1 (0x24) /* SMC Response Register 1 */
55#define SDXC_REG_RESP2 (0x28) /* SMC Response Register 2 */
56#define SDXC_REG_RESP3 (0x2C) /* SMC Response Register 3 */
57#define SDXC_REG_IMASK (0x30) /* SMC Interrupt Mask Register */
58#define SDXC_REG_MISTA (0x34) /* SMC Masked Interrupt Status Register */
59#define SDXC_REG_RINTR (0x38) /* SMC Raw Interrupt Status Register */
60#define SDXC_REG_STAS (0x3C) /* SMC Status Register */
61#define SDXC_REG_FTRGL (0x40) /* SMC FIFO Threshold Watermark Registe */
62#define SDXC_REG_FUNS (0x44) /* SMC Function Select Register */
63#define SDXC_REG_CBCR (0x48) /* SMC CIU Byte Count Register */
64#define SDXC_REG_BBCR (0x4C) /* SMC BIU Byte Count Register */
65#define SDXC_REG_DBGC (0x50) /* SMC Debug Enable Register */
66#define SDXC_REG_HWRST (0x78) /* SMC Card Hardware Reset for Register */
67#define SDXC_REG_DMAC (0x80) /* SMC IDMAC Control Register */
68#define SDXC_REG_DLBA (0x84) /* SMC IDMAC Descriptor List Base Addre */
69#define SDXC_REG_IDST (0x88) /* SMC IDMAC Status Register */
70#define SDXC_REG_IDIE (0x8C) /* SMC IDMAC Interrupt Enable Register */
71#define SDXC_REG_CHDA (0x90)
72#define SDXC_REG_CBDA (0x94)
73
74#define mmc_readl(host, reg) \
75 readl((host)->reg_base + SDXC_##reg)
76#define mmc_writel(host, reg, value) \
77 writel((value), (host)->reg_base + SDXC_##reg)
78
79/* global control register bits */
80#define SDXC_SOFT_RESET BIT(0)
81#define SDXC_FIFO_RESET BIT(1)
82#define SDXC_DMA_RESET BIT(2)
83#define SDXC_INTERRUPT_ENABLE_BIT BIT(4)
84#define SDXC_DMA_ENABLE_BIT BIT(5)
85#define SDXC_DEBOUNCE_ENABLE_BIT BIT(8)
86#define SDXC_POSEDGE_LATCH_DATA BIT(9)
87#define SDXC_DDR_MODE BIT(10)
88#define SDXC_MEMORY_ACCESS_DONE BIT(29)
89#define SDXC_ACCESS_DONE_DIRECT BIT(30)
90#define SDXC_ACCESS_BY_AHB BIT(31)
91#define SDXC_ACCESS_BY_DMA (0 << 31)
92#define SDXC_HARDWARE_RESET \
93 (SDXC_SOFT_RESET | SDXC_FIFO_RESET | SDXC_DMA_RESET)
94
95/* clock control bits */
96#define SDXC_CARD_CLOCK_ON BIT(16)
97#define SDXC_LOW_POWER_ON BIT(17)
98
99/* bus width */
100#define SDXC_WIDTH1 0
101#define SDXC_WIDTH4 1
102#define SDXC_WIDTH8 2
103
104/* smc command bits */
105#define SDXC_RESP_EXPIRE BIT(6)
106#define SDXC_LONG_RESPONSE BIT(7)
107#define SDXC_CHECK_RESPONSE_CRC BIT(8)
108#define SDXC_DATA_EXPIRE BIT(9)
109#define SDXC_WRITE BIT(10)
110#define SDXC_SEQUENCE_MODE BIT(11)
111#define SDXC_SEND_AUTO_STOP BIT(12)
112#define SDXC_WAIT_PRE_OVER BIT(13)
113#define SDXC_STOP_ABORT_CMD BIT(14)
114#define SDXC_SEND_INIT_SEQUENCE BIT(15)
115#define SDXC_UPCLK_ONLY BIT(21)
116#define SDXC_READ_CEATA_DEV BIT(22)
117#define SDXC_CCS_EXPIRE BIT(23)
118#define SDXC_ENABLE_BIT_BOOT BIT(24)
119#define SDXC_ALT_BOOT_OPTIONS BIT(25)
120#define SDXC_BOOT_ACK_EXPIRE BIT(26)
121#define SDXC_BOOT_ABORT BIT(27)
122#define SDXC_VOLTAGE_SWITCH BIT(28)
123#define SDXC_USE_HOLD_REGISTER BIT(29)
124#define SDXC_START BIT(31)
125
126/* interrupt bits */
127#define SDXC_RESP_ERROR BIT(1)
128#define SDXC_COMMAND_DONE BIT(2)
129#define SDXC_DATA_OVER BIT(3)
130#define SDXC_TX_DATA_REQUEST BIT(4)
131#define SDXC_RX_DATA_REQUEST BIT(5)
132#define SDXC_RESP_CRC_ERROR BIT(6)
133#define SDXC_DATA_CRC_ERROR BIT(7)
134#define SDXC_RESP_TIMEOUT BIT(8)
135#define SDXC_DATA_TIMEOUT BIT(9)
136#define SDXC_VOLTAGE_CHANGE_DONE BIT(10)
137#define SDXC_FIFO_RUN_ERROR BIT(11)
138#define SDXC_HARD_WARE_LOCKED BIT(12)
139#define SDXC_START_BIT_ERROR BIT(13)
140#define SDXC_AUTO_COMMAND_DONE BIT(14)
141#define SDXC_END_BIT_ERROR BIT(15)
142#define SDXC_SDIO_INTERRUPT BIT(16)
143#define SDXC_CARD_INSERT BIT(30)
144#define SDXC_CARD_REMOVE BIT(31)
145#define SDXC_INTERRUPT_ERROR_BIT \
146 (SDXC_RESP_ERROR | SDXC_RESP_CRC_ERROR | SDXC_DATA_CRC_ERROR | \
147 SDXC_RESP_TIMEOUT | SDXC_DATA_TIMEOUT | SDXC_FIFO_RUN_ERROR | \
148 SDXC_HARD_WARE_LOCKED | SDXC_START_BIT_ERROR | SDXC_END_BIT_ERROR)
149#define SDXC_INTERRUPT_DONE_BIT \
150 (SDXC_AUTO_COMMAND_DONE | SDXC_DATA_OVER | \
151 SDXC_COMMAND_DONE | SDXC_VOLTAGE_CHANGE_DONE)
152
153/* status */
154#define SDXC_RXWL_FLAG BIT(0)
155#define SDXC_TXWL_FLAG BIT(1)
156#define SDXC_FIFO_EMPTY BIT(2)
157#define SDXC_FIFO_FULL BIT(3)
158#define SDXC_CARD_PRESENT BIT(8)
159#define SDXC_CARD_DATA_BUSY BIT(9)
160#define SDXC_DATA_FSM_BUSY BIT(10)
161#define SDXC_DMA_REQUEST BIT(31)
162#define SDXC_FIFO_SIZE 16
163
164/* Function select */
165#define SDXC_CEATA_ON (0xceaa << 16)
166#define SDXC_SEND_IRQ_RESPONSE BIT(0)
167#define SDXC_SDIO_READ_WAIT BIT(1)
168#define SDXC_ABORT_READ_DATA BIT(2)
169#define SDXC_SEND_CCSD BIT(8)
170#define SDXC_SEND_AUTO_STOPCCSD BIT(9)
171#define SDXC_CEATA_DEV_IRQ_ENABLE BIT(10)
172
173/* IDMA controller bus mod bit field */
174#define SDXC_IDMAC_SOFT_RESET BIT(0)
175#define SDXC_IDMAC_FIX_BURST BIT(1)
176#define SDXC_IDMAC_IDMA_ON BIT(7)
177#define SDXC_IDMAC_REFETCH_DES BIT(31)
178
179/* IDMA status bit field */
180#define SDXC_IDMAC_TRANSMIT_INTERRUPT BIT(0)
181#define SDXC_IDMAC_RECEIVE_INTERRUPT BIT(1)
182#define SDXC_IDMAC_FATAL_BUS_ERROR BIT(2)
183#define SDXC_IDMAC_DESTINATION_INVALID BIT(4)
184#define SDXC_IDMAC_CARD_ERROR_SUM BIT(5)
185#define SDXC_IDMAC_NORMAL_INTERRUPT_SUM BIT(8)
186#define SDXC_IDMAC_ABNORMAL_INTERRUPT_SUM BIT(9)
187#define SDXC_IDMAC_HOST_ABORT_INTERRUPT BIT(10)
188#define SDXC_IDMAC_IDLE (0 << 13)
189#define SDXC_IDMAC_SUSPEND (1 << 13)
190#define SDXC_IDMAC_DESC_READ (2 << 13)
191#define SDXC_IDMAC_DESC_CHECK (3 << 13)
192#define SDXC_IDMAC_READ_REQUEST_WAIT (4 << 13)
193#define SDXC_IDMAC_WRITE_REQUEST_WAIT (5 << 13)
194#define SDXC_IDMAC_READ (6 << 13)
195#define SDXC_IDMAC_WRITE (7 << 13)
196#define SDXC_IDMAC_DESC_CLOSE (8 << 13)
197
198/*
199* If the idma-des-size-bits of property is ie 13, bufsize bits are:
200* Bits 0-12: buf1 size
201* Bits 13-25: buf2 size
202* Bits 26-31: not used
203* Since we only ever set buf1 size, we can simply store it directly.
204*/
205#define SDXC_IDMAC_DES0_DIC BIT(1) /* disable interrupt on completion */
206#define SDXC_IDMAC_DES0_LD BIT(2) /* last descriptor */
207#define SDXC_IDMAC_DES0_FD BIT(3) /* first descriptor */
208#define SDXC_IDMAC_DES0_CH BIT(4) /* chain mode */
209#define SDXC_IDMAC_DES0_ER BIT(5) /* end of ring */
210#define SDXC_IDMAC_DES0_CES BIT(30) /* card error summary */
211#define SDXC_IDMAC_DES0_OWN BIT(31) /* 1-idma owns it, 0-host owns it */
212
213struct sunxi_idma_des {
214 u32 config;
215 u32 buf_size;
216 u32 buf_addr_ptr1;
217 u32 buf_addr_ptr2;
218};
219
220struct sunxi_mmc_host {
221 struct mmc_host *mmc;
222 struct reset_control *reset;
223
224 /* IO mapping base */
225 void __iomem *reg_base;
226
227 /* clock management */
228 struct clk *clk_ahb;
229 struct clk *clk_mmc;
Maxime Ripard6c09bb82014-07-12 12:01:33 +0200230 struct clk *clk_sample;
231 struct clk *clk_output;
David Lanzendörfer3cbcb1602014-05-12 14:04:48 +0200232
233 /* irq */
234 spinlock_t lock;
235 int irq;
236 u32 int_sum;
237 u32 sdio_imask;
238
239 /* dma */
240 u32 idma_des_size_bits;
241 dma_addr_t sg_dma;
242 void *sg_cpu;
243 bool wait_dma;
244
245 struct mmc_request *mrq;
246 struct mmc_request *manual_stop_mrq;
247 int ferror;
248};
249
250static int sunxi_mmc_reset_host(struct sunxi_mmc_host *host)
251{
252 unsigned long expire = jiffies + msecs_to_jiffies(250);
253 u32 rval;
254
255 mmc_writel(host, REG_CMDR, SDXC_HARDWARE_RESET);
256 do {
257 rval = mmc_readl(host, REG_GCTRL);
258 } while (time_before(jiffies, expire) && (rval & SDXC_HARDWARE_RESET));
259
260 if (rval & SDXC_HARDWARE_RESET) {
261 dev_err(mmc_dev(host->mmc), "fatal err reset timeout\n");
262 return -EIO;
263 }
264
265 return 0;
266}
267
268static int sunxi_mmc_init_host(struct mmc_host *mmc)
269{
270 u32 rval;
271 struct sunxi_mmc_host *host = mmc_priv(mmc);
272
273 if (sunxi_mmc_reset_host(host))
274 return -EIO;
275
276 mmc_writel(host, REG_FTRGL, 0x20070008);
277 mmc_writel(host, REG_TMOUT, 0xffffffff);
278 mmc_writel(host, REG_IMASK, host->sdio_imask);
279 mmc_writel(host, REG_RINTR, 0xffffffff);
280 mmc_writel(host, REG_DBGC, 0xdeb);
281 mmc_writel(host, REG_FUNS, SDXC_CEATA_ON);
282 mmc_writel(host, REG_DLBA, host->sg_dma);
283
284 rval = mmc_readl(host, REG_GCTRL);
285 rval |= SDXC_INTERRUPT_ENABLE_BIT;
286 rval &= ~SDXC_ACCESS_DONE_DIRECT;
287 mmc_writel(host, REG_GCTRL, rval);
288
289 return 0;
290}
291
292static void sunxi_mmc_init_idma_des(struct sunxi_mmc_host *host,
293 struct mmc_data *data)
294{
295 struct sunxi_idma_des *pdes = (struct sunxi_idma_des *)host->sg_cpu;
296 struct sunxi_idma_des *pdes_pa = (struct sunxi_idma_des *)host->sg_dma;
297 int i, max_len = (1 << host->idma_des_size_bits);
298
299 for (i = 0; i < data->sg_len; i++) {
300 pdes[i].config = SDXC_IDMAC_DES0_CH | SDXC_IDMAC_DES0_OWN |
301 SDXC_IDMAC_DES0_DIC;
302
303 if (data->sg[i].length == max_len)
304 pdes[i].buf_size = 0; /* 0 == max_len */
305 else
306 pdes[i].buf_size = data->sg[i].length;
307
308 pdes[i].buf_addr_ptr1 = sg_dma_address(&data->sg[i]);
309 pdes[i].buf_addr_ptr2 = (u32)&pdes_pa[i + 1];
310 }
311
312 pdes[0].config |= SDXC_IDMAC_DES0_FD;
313 pdes[i - 1].config = SDXC_IDMAC_DES0_OWN | SDXC_IDMAC_DES0_LD;
314
315 /*
316 * Avoid the io-store starting the idmac hitting io-mem before the
317 * descriptors hit the main-mem.
318 */
319 wmb();
320}
321
322static enum dma_data_direction sunxi_mmc_get_dma_dir(struct mmc_data *data)
323{
324 if (data->flags & MMC_DATA_WRITE)
325 return DMA_TO_DEVICE;
326 else
327 return DMA_FROM_DEVICE;
328}
329
330static int sunxi_mmc_map_dma(struct sunxi_mmc_host *host,
331 struct mmc_data *data)
332{
333 u32 i, dma_len;
334 struct scatterlist *sg;
335
336 dma_len = dma_map_sg(mmc_dev(host->mmc), data->sg, data->sg_len,
337 sunxi_mmc_get_dma_dir(data));
338 if (dma_len == 0) {
339 dev_err(mmc_dev(host->mmc), "dma_map_sg failed\n");
340 return -ENOMEM;
341 }
342
343 for_each_sg(data->sg, sg, data->sg_len, i) {
344 if (sg->offset & 3 || sg->length & 3) {
345 dev_err(mmc_dev(host->mmc),
346 "unaligned scatterlist: os %x length %d\n",
347 sg->offset, sg->length);
348 return -EINVAL;
349 }
350 }
351
352 return 0;
353}
354
355static void sunxi_mmc_start_dma(struct sunxi_mmc_host *host,
356 struct mmc_data *data)
357{
358 u32 rval;
359
360 sunxi_mmc_init_idma_des(host, data);
361
362 rval = mmc_readl(host, REG_GCTRL);
363 rval |= SDXC_DMA_ENABLE_BIT;
364 mmc_writel(host, REG_GCTRL, rval);
365 rval |= SDXC_DMA_RESET;
366 mmc_writel(host, REG_GCTRL, rval);
367
368 mmc_writel(host, REG_DMAC, SDXC_IDMAC_SOFT_RESET);
369
370 if (!(data->flags & MMC_DATA_WRITE))
371 mmc_writel(host, REG_IDIE, SDXC_IDMAC_RECEIVE_INTERRUPT);
372
373 mmc_writel(host, REG_DMAC,
374 SDXC_IDMAC_FIX_BURST | SDXC_IDMAC_IDMA_ON);
375}
376
377static void sunxi_mmc_send_manual_stop(struct sunxi_mmc_host *host,
378 struct mmc_request *req)
379{
380 u32 arg, cmd_val, ri;
381 unsigned long expire = jiffies + msecs_to_jiffies(1000);
382
383 cmd_val = SDXC_START | SDXC_RESP_EXPIRE |
384 SDXC_STOP_ABORT_CMD | SDXC_CHECK_RESPONSE_CRC;
385
386 if (req->cmd->opcode == SD_IO_RW_EXTENDED) {
387 cmd_val |= SD_IO_RW_DIRECT;
388 arg = (1 << 31) | (0 << 28) | (SDIO_CCCR_ABORT << 9) |
389 ((req->cmd->arg >> 28) & 0x7);
390 } else {
391 cmd_val |= MMC_STOP_TRANSMISSION;
392 arg = 0;
393 }
394
395 mmc_writel(host, REG_CARG, arg);
396 mmc_writel(host, REG_CMDR, cmd_val);
397
398 do {
399 ri = mmc_readl(host, REG_RINTR);
400 } while (!(ri & (SDXC_COMMAND_DONE | SDXC_INTERRUPT_ERROR_BIT)) &&
401 time_before(jiffies, expire));
402
403 if (!(ri & SDXC_COMMAND_DONE) || (ri & SDXC_INTERRUPT_ERROR_BIT)) {
404 dev_err(mmc_dev(host->mmc), "send stop command failed\n");
405 if (req->stop)
406 req->stop->resp[0] = -ETIMEDOUT;
407 } else {
408 if (req->stop)
409 req->stop->resp[0] = mmc_readl(host, REG_RESP0);
410 }
411
412 mmc_writel(host, REG_RINTR, 0xffff);
413}
414
415static void sunxi_mmc_dump_errinfo(struct sunxi_mmc_host *host)
416{
417 struct mmc_command *cmd = host->mrq->cmd;
418 struct mmc_data *data = host->mrq->data;
419
420 /* For some cmds timeout is normal with sd/mmc cards */
421 if ((host->int_sum & SDXC_INTERRUPT_ERROR_BIT) ==
422 SDXC_RESP_TIMEOUT && (cmd->opcode == SD_IO_SEND_OP_COND ||
423 cmd->opcode == SD_IO_RW_DIRECT))
424 return;
425
426 dev_err(mmc_dev(host->mmc),
427 "smc %d err, cmd %d,%s%s%s%s%s%s%s%s%s%s !!\n",
428 host->mmc->index, cmd->opcode,
429 data ? (data->flags & MMC_DATA_WRITE ? " WR" : " RD") : "",
430 host->int_sum & SDXC_RESP_ERROR ? " RE" : "",
431 host->int_sum & SDXC_RESP_CRC_ERROR ? " RCE" : "",
432 host->int_sum & SDXC_DATA_CRC_ERROR ? " DCE" : "",
433 host->int_sum & SDXC_RESP_TIMEOUT ? " RTO" : "",
434 host->int_sum & SDXC_DATA_TIMEOUT ? " DTO" : "",
435 host->int_sum & SDXC_FIFO_RUN_ERROR ? " FE" : "",
436 host->int_sum & SDXC_HARD_WARE_LOCKED ? " HL" : "",
437 host->int_sum & SDXC_START_BIT_ERROR ? " SBE" : "",
438 host->int_sum & SDXC_END_BIT_ERROR ? " EBE" : ""
439 );
440}
441
442/* Called in interrupt context! */
443static irqreturn_t sunxi_mmc_finalize_request(struct sunxi_mmc_host *host)
444{
445 struct mmc_request *mrq = host->mrq;
446 struct mmc_data *data = mrq->data;
447 u32 rval;
448
449 mmc_writel(host, REG_IMASK, host->sdio_imask);
450 mmc_writel(host, REG_IDIE, 0);
451
452 if (host->int_sum & SDXC_INTERRUPT_ERROR_BIT) {
453 sunxi_mmc_dump_errinfo(host);
454 mrq->cmd->error = -ETIMEDOUT;
455
456 if (data) {
457 data->error = -ETIMEDOUT;
458 host->manual_stop_mrq = mrq;
459 }
460
461 if (mrq->stop)
462 mrq->stop->error = -ETIMEDOUT;
463 } else {
464 if (mrq->cmd->flags & MMC_RSP_136) {
465 mrq->cmd->resp[0] = mmc_readl(host, REG_RESP3);
466 mrq->cmd->resp[1] = mmc_readl(host, REG_RESP2);
467 mrq->cmd->resp[2] = mmc_readl(host, REG_RESP1);
468 mrq->cmd->resp[3] = mmc_readl(host, REG_RESP0);
469 } else {
470 mrq->cmd->resp[0] = mmc_readl(host, REG_RESP0);
471 }
472
473 if (data)
474 data->bytes_xfered = data->blocks * data->blksz;
475 }
476
477 if (data) {
478 mmc_writel(host, REG_IDST, 0x337);
479 mmc_writel(host, REG_DMAC, 0);
480 rval = mmc_readl(host, REG_GCTRL);
481 rval |= SDXC_DMA_RESET;
482 mmc_writel(host, REG_GCTRL, rval);
483 rval &= ~SDXC_DMA_ENABLE_BIT;
484 mmc_writel(host, REG_GCTRL, rval);
485 rval |= SDXC_FIFO_RESET;
486 mmc_writel(host, REG_GCTRL, rval);
487 dma_unmap_sg(mmc_dev(host->mmc), data->sg, data->sg_len,
488 sunxi_mmc_get_dma_dir(data));
489 }
490
491 mmc_writel(host, REG_RINTR, 0xffff);
492
493 host->mrq = NULL;
494 host->int_sum = 0;
495 host->wait_dma = false;
496
497 return host->manual_stop_mrq ? IRQ_WAKE_THREAD : IRQ_HANDLED;
498}
499
500static irqreturn_t sunxi_mmc_irq(int irq, void *dev_id)
501{
502 struct sunxi_mmc_host *host = dev_id;
503 struct mmc_request *mrq;
504 u32 msk_int, idma_int;
505 bool finalize = false;
506 bool sdio_int = false;
507 irqreturn_t ret = IRQ_HANDLED;
508
509 spin_lock(&host->lock);
510
511 idma_int = mmc_readl(host, REG_IDST);
512 msk_int = mmc_readl(host, REG_MISTA);
513
514 dev_dbg(mmc_dev(host->mmc), "irq: rq %p mi %08x idi %08x\n",
515 host->mrq, msk_int, idma_int);
516
517 mrq = host->mrq;
518 if (mrq) {
519 if (idma_int & SDXC_IDMAC_RECEIVE_INTERRUPT)
520 host->wait_dma = false;
521
522 host->int_sum |= msk_int;
523
524 /* Wait for COMMAND_DONE on RESPONSE_TIMEOUT before finalize */
525 if ((host->int_sum & SDXC_RESP_TIMEOUT) &&
526 !(host->int_sum & SDXC_COMMAND_DONE))
527 mmc_writel(host, REG_IMASK,
528 host->sdio_imask | SDXC_COMMAND_DONE);
529 /* Don't wait for dma on error */
530 else if (host->int_sum & SDXC_INTERRUPT_ERROR_BIT)
531 finalize = true;
532 else if ((host->int_sum & SDXC_INTERRUPT_DONE_BIT) &&
533 !host->wait_dma)
534 finalize = true;
535 }
536
537 if (msk_int & SDXC_SDIO_INTERRUPT)
538 sdio_int = true;
539
540 mmc_writel(host, REG_RINTR, msk_int);
541 mmc_writel(host, REG_IDST, idma_int);
542
543 if (finalize)
544 ret = sunxi_mmc_finalize_request(host);
545
546 spin_unlock(&host->lock);
547
548 if (finalize && ret == IRQ_HANDLED)
549 mmc_request_done(host->mmc, mrq);
550
551 if (sdio_int)
552 mmc_signal_sdio_irq(host->mmc);
553
554 return ret;
555}
556
557static irqreturn_t sunxi_mmc_handle_manual_stop(int irq, void *dev_id)
558{
559 struct sunxi_mmc_host *host = dev_id;
560 struct mmc_request *mrq;
561 unsigned long iflags;
562
563 spin_lock_irqsave(&host->lock, iflags);
564 mrq = host->manual_stop_mrq;
565 spin_unlock_irqrestore(&host->lock, iflags);
566
567 if (!mrq) {
568 dev_err(mmc_dev(host->mmc), "no request for manual stop\n");
569 return IRQ_HANDLED;
570 }
571
572 dev_err(mmc_dev(host->mmc), "data error, sending stop command\n");
573 sunxi_mmc_send_manual_stop(host, mrq);
574
575 spin_lock_irqsave(&host->lock, iflags);
576 host->manual_stop_mrq = NULL;
577 spin_unlock_irqrestore(&host->lock, iflags);
578
579 mmc_request_done(host->mmc, mrq);
580
581 return IRQ_HANDLED;
582}
583
584static int sunxi_mmc_oclk_onoff(struct sunxi_mmc_host *host, u32 oclk_en)
585{
586 unsigned long expire = jiffies + msecs_to_jiffies(250);
587 u32 rval;
588
589 rval = mmc_readl(host, REG_CLKCR);
590 rval &= ~(SDXC_CARD_CLOCK_ON | SDXC_LOW_POWER_ON);
591
592 if (oclk_en)
593 rval |= SDXC_CARD_CLOCK_ON;
594
595 mmc_writel(host, REG_CLKCR, rval);
596
597 rval = SDXC_START | SDXC_UPCLK_ONLY | SDXC_WAIT_PRE_OVER;
598 mmc_writel(host, REG_CMDR, rval);
599
600 do {
601 rval = mmc_readl(host, REG_CMDR);
602 } while (time_before(jiffies, expire) && (rval & SDXC_START));
603
604 /* clear irq status bits set by the command */
605 mmc_writel(host, REG_RINTR,
606 mmc_readl(host, REG_RINTR) & ~SDXC_SDIO_INTERRUPT);
607
608 if (rval & SDXC_START) {
609 dev_err(mmc_dev(host->mmc), "fatal err update clk timeout\n");
610 return -EIO;
611 }
612
613 return 0;
614}
615
616static int sunxi_mmc_clk_set_rate(struct sunxi_mmc_host *host,
617 struct mmc_ios *ios)
618{
Maxime Ripard6c09bb82014-07-12 12:01:33 +0200619 u32 rate, oclk_dly, rval, sclk_dly;
David Lanzendörfer3cbcb1602014-05-12 14:04:48 +0200620 int ret;
621
622 rate = clk_round_rate(host->clk_mmc, ios->clock);
623 dev_dbg(mmc_dev(host->mmc), "setting clk to %d, rounded %d\n",
624 ios->clock, rate);
625
626 /* setting clock rate */
627 ret = clk_set_rate(host->clk_mmc, rate);
628 if (ret) {
629 dev_err(mmc_dev(host->mmc), "error setting clk to %d: %d\n",
630 rate, ret);
631 return ret;
632 }
633
634 ret = sunxi_mmc_oclk_onoff(host, 0);
635 if (ret)
636 return ret;
637
638 /* clear internal divider */
639 rval = mmc_readl(host, REG_CLKCR);
640 rval &= ~0xff;
641 mmc_writel(host, REG_CLKCR, rval);
642
643 /* determine delays */
644 if (rate <= 400000) {
Maxime Ripard6c09bb82014-07-12 12:01:33 +0200645 oclk_dly = 180;
646 sclk_dly = 42;
David Lanzendörfer3cbcb1602014-05-12 14:04:48 +0200647 } else if (rate <= 25000000) {
Maxime Ripard6c09bb82014-07-12 12:01:33 +0200648 oclk_dly = 180;
649 sclk_dly = 75;
David Lanzendörfer3cbcb1602014-05-12 14:04:48 +0200650 } else if (rate <= 50000000) {
651 if (ios->timing == MMC_TIMING_UHS_DDR50) {
Maxime Ripard6c09bb82014-07-12 12:01:33 +0200652 oclk_dly = 60;
653 sclk_dly = 120;
David Lanzendörfer3cbcb1602014-05-12 14:04:48 +0200654 } else {
Maxime Ripard6c09bb82014-07-12 12:01:33 +0200655 oclk_dly = 90;
656 sclk_dly = 150;
David Lanzendörfer3cbcb1602014-05-12 14:04:48 +0200657 }
Maxime Ripard6c09bb82014-07-12 12:01:33 +0200658 } else if (rate <= 100000000) {
659 oclk_dly = 6;
660 sclk_dly = 24;
661 } else if (rate <= 200000000) {
662 oclk_dly = 3;
663 sclk_dly = 12;
David Lanzendörfer3cbcb1602014-05-12 14:04:48 +0200664 } else {
Maxime Ripard6c09bb82014-07-12 12:01:33 +0200665 return -EINVAL;
David Lanzendörfer3cbcb1602014-05-12 14:04:48 +0200666 }
667
Maxime Ripard6c09bb82014-07-12 12:01:33 +0200668 clk_set_phase(host->clk_sample, sclk_dly);
669 clk_set_phase(host->clk_output, oclk_dly);
David Lanzendörfer3cbcb1602014-05-12 14:04:48 +0200670
671 return sunxi_mmc_oclk_onoff(host, 1);
672}
673
674static void sunxi_mmc_set_ios(struct mmc_host *mmc, struct mmc_ios *ios)
675{
676 struct sunxi_mmc_host *host = mmc_priv(mmc);
677 u32 rval;
678
679 /* Set the power state */
680 switch (ios->power_mode) {
681 case MMC_POWER_ON:
682 break;
683
684 case MMC_POWER_UP:
685 mmc_regulator_set_ocr(mmc, mmc->supply.vmmc, ios->vdd);
686
687 host->ferror = sunxi_mmc_init_host(mmc);
688 if (host->ferror)
689 return;
690
691 dev_dbg(mmc_dev(mmc), "power on!\n");
692 break;
693
694 case MMC_POWER_OFF:
695 dev_dbg(mmc_dev(mmc), "power off!\n");
696 sunxi_mmc_reset_host(host);
697 mmc_regulator_set_ocr(mmc, mmc->supply.vmmc, 0);
698 break;
699 }
700
701 /* set bus width */
702 switch (ios->bus_width) {
703 case MMC_BUS_WIDTH_1:
704 mmc_writel(host, REG_WIDTH, SDXC_WIDTH1);
705 break;
706 case MMC_BUS_WIDTH_4:
707 mmc_writel(host, REG_WIDTH, SDXC_WIDTH4);
708 break;
709 case MMC_BUS_WIDTH_8:
710 mmc_writel(host, REG_WIDTH, SDXC_WIDTH8);
711 break;
712 }
713
714 /* set ddr mode */
715 rval = mmc_readl(host, REG_GCTRL);
716 if (ios->timing == MMC_TIMING_UHS_DDR50)
717 rval |= SDXC_DDR_MODE;
718 else
719 rval &= ~SDXC_DDR_MODE;
720 mmc_writel(host, REG_GCTRL, rval);
721
722 /* set up clock */
723 if (ios->clock && ios->power_mode) {
724 host->ferror = sunxi_mmc_clk_set_rate(host, ios);
725 /* Android code had a usleep_range(50000, 55000); here */
726 }
727}
728
729static void sunxi_mmc_enable_sdio_irq(struct mmc_host *mmc, int enable)
730{
731 struct sunxi_mmc_host *host = mmc_priv(mmc);
732 unsigned long flags;
733 u32 imask;
734
735 spin_lock_irqsave(&host->lock, flags);
736
737 imask = mmc_readl(host, REG_IMASK);
738 if (enable) {
739 host->sdio_imask = SDXC_SDIO_INTERRUPT;
740 imask |= SDXC_SDIO_INTERRUPT;
741 } else {
742 host->sdio_imask = 0;
743 imask &= ~SDXC_SDIO_INTERRUPT;
744 }
745 mmc_writel(host, REG_IMASK, imask);
746 spin_unlock_irqrestore(&host->lock, flags);
747}
748
749static void sunxi_mmc_hw_reset(struct mmc_host *mmc)
750{
751 struct sunxi_mmc_host *host = mmc_priv(mmc);
752 mmc_writel(host, REG_HWRST, 0);
753 udelay(10);
754 mmc_writel(host, REG_HWRST, 1);
755 udelay(300);
756}
757
758static void sunxi_mmc_request(struct mmc_host *mmc, struct mmc_request *mrq)
759{
760 struct sunxi_mmc_host *host = mmc_priv(mmc);
761 struct mmc_command *cmd = mrq->cmd;
762 struct mmc_data *data = mrq->data;
763 unsigned long iflags;
764 u32 imask = SDXC_INTERRUPT_ERROR_BIT;
765 u32 cmd_val = SDXC_START | (cmd->opcode & 0x3f);
766 int ret;
767
768 /* Check for set_ios errors (should never happen) */
769 if (host->ferror) {
770 mrq->cmd->error = host->ferror;
771 mmc_request_done(mmc, mrq);
772 return;
773 }
774
775 if (data) {
776 ret = sunxi_mmc_map_dma(host, data);
777 if (ret < 0) {
778 dev_err(mmc_dev(mmc), "map DMA failed\n");
779 cmd->error = ret;
780 data->error = ret;
781 mmc_request_done(mmc, mrq);
782 return;
783 }
784 }
785
786 if (cmd->opcode == MMC_GO_IDLE_STATE) {
787 cmd_val |= SDXC_SEND_INIT_SEQUENCE;
788 imask |= SDXC_COMMAND_DONE;
789 }
790
791 if (cmd->flags & MMC_RSP_PRESENT) {
792 cmd_val |= SDXC_RESP_EXPIRE;
793 if (cmd->flags & MMC_RSP_136)
794 cmd_val |= SDXC_LONG_RESPONSE;
795 if (cmd->flags & MMC_RSP_CRC)
796 cmd_val |= SDXC_CHECK_RESPONSE_CRC;
797
798 if ((cmd->flags & MMC_CMD_MASK) == MMC_CMD_ADTC) {
799 cmd_val |= SDXC_DATA_EXPIRE | SDXC_WAIT_PRE_OVER;
800 if (cmd->data->flags & MMC_DATA_STREAM) {
801 imask |= SDXC_AUTO_COMMAND_DONE;
802 cmd_val |= SDXC_SEQUENCE_MODE |
803 SDXC_SEND_AUTO_STOP;
804 }
805
806 if (cmd->data->stop) {
807 imask |= SDXC_AUTO_COMMAND_DONE;
808 cmd_val |= SDXC_SEND_AUTO_STOP;
809 } else {
810 imask |= SDXC_DATA_OVER;
811 }
812
813 if (cmd->data->flags & MMC_DATA_WRITE)
814 cmd_val |= SDXC_WRITE;
815 else
816 host->wait_dma = true;
817 } else {
818 imask |= SDXC_COMMAND_DONE;
819 }
820 } else {
821 imask |= SDXC_COMMAND_DONE;
822 }
823
824 dev_dbg(mmc_dev(mmc), "cmd %d(%08x) arg %x ie 0x%08x len %d\n",
825 cmd_val & 0x3f, cmd_val, cmd->arg, imask,
826 mrq->data ? mrq->data->blksz * mrq->data->blocks : 0);
827
828 spin_lock_irqsave(&host->lock, iflags);
829
830 if (host->mrq || host->manual_stop_mrq) {
831 spin_unlock_irqrestore(&host->lock, iflags);
832
833 if (data)
834 dma_unmap_sg(mmc_dev(mmc), data->sg, data->sg_len,
835 sunxi_mmc_get_dma_dir(data));
836
837 dev_err(mmc_dev(mmc), "request already pending\n");
838 mrq->cmd->error = -EBUSY;
839 mmc_request_done(mmc, mrq);
840 return;
841 }
842
843 if (data) {
844 mmc_writel(host, REG_BLKSZ, data->blksz);
845 mmc_writel(host, REG_BCNTR, data->blksz * data->blocks);
846 sunxi_mmc_start_dma(host, data);
847 }
848
849 host->mrq = mrq;
850 mmc_writel(host, REG_IMASK, host->sdio_imask | imask);
851 mmc_writel(host, REG_CARG, cmd->arg);
852 mmc_writel(host, REG_CMDR, cmd_val);
853
854 spin_unlock_irqrestore(&host->lock, iflags);
855}
856
857static const struct of_device_id sunxi_mmc_of_match[] = {
858 { .compatible = "allwinner,sun4i-a10-mmc", },
859 { .compatible = "allwinner,sun5i-a13-mmc", },
860 { /* sentinel */ }
861};
862MODULE_DEVICE_TABLE(of, sunxi_mmc_of_match);
863
864static struct mmc_host_ops sunxi_mmc_ops = {
865 .request = sunxi_mmc_request,
866 .set_ios = sunxi_mmc_set_ios,
867 .get_ro = mmc_gpio_get_ro,
868 .get_cd = mmc_gpio_get_cd,
869 .enable_sdio_irq = sunxi_mmc_enable_sdio_irq,
870 .hw_reset = sunxi_mmc_hw_reset,
871};
872
873static int sunxi_mmc_resource_request(struct sunxi_mmc_host *host,
874 struct platform_device *pdev)
875{
876 struct device_node *np = pdev->dev.of_node;
877 int ret;
878
879 if (of_device_is_compatible(np, "allwinner,sun4i-a10-mmc"))
880 host->idma_des_size_bits = 13;
881 else
882 host->idma_des_size_bits = 16;
883
884 ret = mmc_regulator_get_supply(host->mmc);
885 if (ret) {
886 if (ret != -EPROBE_DEFER)
887 dev_err(&pdev->dev, "Could not get vmmc supply\n");
888 return ret;
889 }
890
891 host->reg_base = devm_ioremap_resource(&pdev->dev,
892 platform_get_resource(pdev, IORESOURCE_MEM, 0));
893 if (IS_ERR(host->reg_base))
894 return PTR_ERR(host->reg_base);
895
896 host->clk_ahb = devm_clk_get(&pdev->dev, "ahb");
897 if (IS_ERR(host->clk_ahb)) {
898 dev_err(&pdev->dev, "Could not get ahb clock\n");
899 return PTR_ERR(host->clk_ahb);
900 }
901
902 host->clk_mmc = devm_clk_get(&pdev->dev, "mmc");
903 if (IS_ERR(host->clk_mmc)) {
904 dev_err(&pdev->dev, "Could not get mmc clock\n");
905 return PTR_ERR(host->clk_mmc);
906 }
907
Maxime Ripard6c09bb82014-07-12 12:01:33 +0200908 host->clk_output = devm_clk_get(&pdev->dev, "output");
909 if (IS_ERR(host->clk_output)) {
910 dev_err(&pdev->dev, "Could not get output clock\n");
911 return PTR_ERR(host->clk_output);
912 }
913
914 host->clk_sample = devm_clk_get(&pdev->dev, "sample");
915 if (IS_ERR(host->clk_sample)) {
916 dev_err(&pdev->dev, "Could not get sample clock\n");
917 return PTR_ERR(host->clk_sample);
918 }
919
David Lanzendörfer3cbcb1602014-05-12 14:04:48 +0200920 host->reset = devm_reset_control_get(&pdev->dev, "ahb");
921
922 ret = clk_prepare_enable(host->clk_ahb);
923 if (ret) {
924 dev_err(&pdev->dev, "Enable ahb clk err %d\n", ret);
925 return ret;
926 }
927
928 ret = clk_prepare_enable(host->clk_mmc);
929 if (ret) {
930 dev_err(&pdev->dev, "Enable mmc clk err %d\n", ret);
931 goto error_disable_clk_ahb;
932 }
933
Maxime Ripard6c09bb82014-07-12 12:01:33 +0200934 ret = clk_prepare_enable(host->clk_output);
935 if (ret) {
936 dev_err(&pdev->dev, "Enable output clk err %d\n", ret);
937 goto error_disable_clk_mmc;
938 }
939
940 ret = clk_prepare_enable(host->clk_sample);
941 if (ret) {
942 dev_err(&pdev->dev, "Enable sample clk err %d\n", ret);
943 goto error_disable_clk_output;
944 }
945
David Lanzendörfer3cbcb1602014-05-12 14:04:48 +0200946 if (!IS_ERR(host->reset)) {
947 ret = reset_control_deassert(host->reset);
948 if (ret) {
949 dev_err(&pdev->dev, "reset err %d\n", ret);
Maxime Ripard6c09bb82014-07-12 12:01:33 +0200950 goto error_disable_clk_sample;
David Lanzendörfer3cbcb1602014-05-12 14:04:48 +0200951 }
952 }
953
954 /*
955 * Sometimes the controller asserts the irq on boot for some reason,
956 * make sure the controller is in a sane state before enabling irqs.
957 */
958 ret = sunxi_mmc_reset_host(host);
959 if (ret)
960 goto error_assert_reset;
961
962 host->irq = platform_get_irq(pdev, 0);
963 return devm_request_threaded_irq(&pdev->dev, host->irq, sunxi_mmc_irq,
964 sunxi_mmc_handle_manual_stop, 0, "sunxi-mmc", host);
965
966error_assert_reset:
967 if (!IS_ERR(host->reset))
968 reset_control_assert(host->reset);
Maxime Ripard6c09bb82014-07-12 12:01:33 +0200969error_disable_clk_sample:
970 clk_disable_unprepare(host->clk_sample);
971error_disable_clk_output:
972 clk_disable_unprepare(host->clk_output);
David Lanzendörfer3cbcb1602014-05-12 14:04:48 +0200973error_disable_clk_mmc:
974 clk_disable_unprepare(host->clk_mmc);
975error_disable_clk_ahb:
976 clk_disable_unprepare(host->clk_ahb);
977 return ret;
978}
979
980static int sunxi_mmc_probe(struct platform_device *pdev)
981{
982 struct sunxi_mmc_host *host;
983 struct mmc_host *mmc;
984 int ret;
985
986 mmc = mmc_alloc_host(sizeof(struct sunxi_mmc_host), &pdev->dev);
987 if (!mmc) {
988 dev_err(&pdev->dev, "mmc alloc host failed\n");
989 return -ENOMEM;
990 }
991
992 host = mmc_priv(mmc);
993 host->mmc = mmc;
994 spin_lock_init(&host->lock);
995
996 ret = sunxi_mmc_resource_request(host, pdev);
997 if (ret)
998 goto error_free_host;
999
1000 host->sg_cpu = dma_alloc_coherent(&pdev->dev, PAGE_SIZE,
1001 &host->sg_dma, GFP_KERNEL);
1002 if (!host->sg_cpu) {
1003 dev_err(&pdev->dev, "Failed to allocate DMA descriptor mem\n");
1004 ret = -ENOMEM;
1005 goto error_free_host;
1006 }
1007
1008 mmc->ops = &sunxi_mmc_ops;
1009 mmc->max_blk_count = 8192;
1010 mmc->max_blk_size = 4096;
1011 mmc->max_segs = PAGE_SIZE / sizeof(struct sunxi_idma_des);
1012 mmc->max_seg_size = (1 << host->idma_des_size_bits);
1013 mmc->max_req_size = mmc->max_seg_size * mmc->max_segs;
1014 /* 400kHz ~ 50MHz */
1015 mmc->f_min = 400000;
1016 mmc->f_max = 50000000;
Chen-Yu Tsai3df01a92014-08-20 21:39:20 +08001017 mmc->caps |= MMC_CAP_MMC_HIGHSPEED | MMC_CAP_SD_HIGHSPEED |
1018 MMC_CAP_ERASE;
David Lanzendörfer3cbcb1602014-05-12 14:04:48 +02001019
1020 ret = mmc_of_parse(mmc);
1021 if (ret)
1022 goto error_free_dma;
1023
1024 ret = mmc_add_host(mmc);
1025 if (ret)
1026 goto error_free_dma;
1027
1028 dev_info(&pdev->dev, "base:0x%p irq:%u\n", host->reg_base, host->irq);
1029 platform_set_drvdata(pdev, mmc);
1030 return 0;
1031
1032error_free_dma:
1033 dma_free_coherent(&pdev->dev, PAGE_SIZE, host->sg_cpu, host->sg_dma);
1034error_free_host:
1035 mmc_free_host(mmc);
1036 return ret;
1037}
1038
1039static int sunxi_mmc_remove(struct platform_device *pdev)
1040{
1041 struct mmc_host *mmc = platform_get_drvdata(pdev);
1042 struct sunxi_mmc_host *host = mmc_priv(mmc);
1043
1044 mmc_remove_host(mmc);
1045 disable_irq(host->irq);
1046 sunxi_mmc_reset_host(host);
1047
1048 if (!IS_ERR(host->reset))
1049 reset_control_assert(host->reset);
1050
1051 clk_disable_unprepare(host->clk_mmc);
1052 clk_disable_unprepare(host->clk_ahb);
1053
1054 dma_free_coherent(&pdev->dev, PAGE_SIZE, host->sg_cpu, host->sg_dma);
1055 mmc_free_host(mmc);
1056
1057 return 0;
1058}
1059
1060static struct platform_driver sunxi_mmc_driver = {
1061 .driver = {
1062 .name = "sunxi-mmc",
David Lanzendörfer3cbcb1602014-05-12 14:04:48 +02001063 .of_match_table = of_match_ptr(sunxi_mmc_of_match),
1064 },
1065 .probe = sunxi_mmc_probe,
1066 .remove = sunxi_mmc_remove,
1067};
1068module_platform_driver(sunxi_mmc_driver);
1069
1070MODULE_DESCRIPTION("Allwinner's SD/MMC Card Controller Driver");
1071MODULE_LICENSE("GPL v2");
1072MODULE_AUTHOR("David Lanzend�rfer <david.lanzendoerfer@o2s.ch>");
1073MODULE_ALIAS("platform:sunxi-mmc");