1 // SPDX-License-Identifier: (GPL-2.0 OR BSD-3-Clause) 2 // Copyright(c) 2015-17 Intel Corporation. 3 4 /* 5 * Cadence SoundWire Master module 6 * Used by Master driver 7 */ 8 9 #include <linux/cleanup.h> 10 #include <linux/crc8.h> 11 #include <linux/delay.h> 12 #include <linux/device.h> 13 #include <linux/debugfs.h> 14 #include <linux/interrupt.h> 15 #include <linux/io.h> 16 #include <linux/module.h> 17 #include <linux/pm_runtime.h> 18 #include <linux/soundwire/sdw_registers.h> 19 #include <linux/soundwire/sdw.h> 20 #include <sound/pcm_params.h> 21 #include <sound/soc.h> 22 #include <linux/workqueue.h> 23 #include "bus.h" 24 #include "cadence_master.h" 25 26 static int interrupt_mask; 27 module_param_named(cnds_mcp_int_mask, interrupt_mask, int, 0444); 28 MODULE_PARM_DESC(cdns_mcp_int_mask, "Cadence MCP IntMask"); 29 30 #define CDNS_MCP_CONFIG 0x0 31 #define CDNS_MCP_CONFIG_BUS_REL BIT(6) 32 33 #define CDNS_IP_MCP_CONFIG 0x0 /* IP offset added at run-time */ 34 35 #define CDNS_IP_MCP_CONFIG_MCMD_RETRY GENMASK(27, 24) 36 #define CDNS_IP_MCP_CONFIG_MPREQ_DELAY GENMASK(20, 16) 37 #define CDNS_IP_MCP_CONFIG_MMASTER BIT(7) 38 #define CDNS_IP_MCP_CONFIG_SNIFFER BIT(5) 39 #define CDNS_IP_MCP_CONFIG_CMD BIT(3) 40 #define CDNS_IP_MCP_CONFIG_OP GENMASK(2, 0) 41 #define CDNS_IP_MCP_CONFIG_OP_NORMAL 0 42 43 #define CDNS_MCP_CONTROL 0x4 44 45 #define CDNS_MCP_CONTROL_CMD_RST BIT(7) 46 #define CDNS_MCP_CONTROL_SOFT_RST BIT(6) 47 #define CDNS_MCP_CONTROL_HW_RST BIT(4) 48 #define CDNS_MCP_CONTROL_CLK_STOP_CLR BIT(2) 49 50 #define CDNS_IP_MCP_CONTROL 0x4 /* IP offset added at run-time */ 51 52 #define CDNS_IP_MCP_CONTROL_RST_DELAY GENMASK(10, 8) 53 #define CDNS_IP_MCP_CONTROL_SW_RST BIT(5) 54 #define CDNS_IP_MCP_CONTROL_CLK_PAUSE BIT(3) 55 #define CDNS_IP_MCP_CONTROL_CMD_ACCEPT BIT(1) 56 #define CDNS_IP_MCP_CONTROL_BLOCK_WAKEUP BIT(0) 57 58 #define CDNS_IP_MCP_CMDCTRL 0x8 /* IP offset added at run-time */ 59 60 #define CDNS_IP_MCP_CMDCTRL_INSERT_PARITY_ERR BIT(2) 61 62 #define CDNS_MCP_SSPSTAT 0xC 63 #define CDNS_MCP_FRAME_SHAPE 0x10 64 #define CDNS_MCP_FRAME_SHAPE_INIT 0x14 65 #define CDNS_MCP_FRAME_SHAPE_COL_MASK GENMASK(2, 0) 66 #define CDNS_MCP_FRAME_SHAPE_ROW_MASK GENMASK(7, 3) 67 68 #define CDNS_MCP_CONFIG_UPDATE 0x18 69 #define CDNS_MCP_CONFIG_UPDATE_BIT BIT(0) 70 71 #define CDNS_MCP_PHYCTRL 0x1C 72 #define CDNS_MCP_SSP_CTRL0 0x20 73 #define CDNS_MCP_SSP_CTRL1 0x28 74 #define CDNS_MCP_CLK_CTRL0 0x30 75 #define CDNS_MCP_CLK_CTRL1 0x38 76 #define CDNS_MCP_CLK_MCLKD_MASK GENMASK(7, 0) 77 78 #define CDNS_MCP_STAT 0x40 79 80 #define CDNS_MCP_STAT_ACTIVE_BANK BIT(20) 81 #define CDNS_MCP_STAT_CLK_STOP BIT(16) 82 83 #define CDNS_MCP_INTSTAT 0x44 84 #define CDNS_MCP_INTMASK 0x48 85 86 #define CDNS_MCP_INT_IRQ BIT(31) 87 #define CDNS_MCP_INT_RESERVED1 GENMASK(30, 17) 88 #define CDNS_MCP_INT_WAKEUP BIT(16) 89 #define CDNS_MCP_INT_SLAVE_RSVD BIT(15) 90 #define CDNS_MCP_INT_SLAVE_ALERT BIT(14) 91 #define CDNS_MCP_INT_SLAVE_ATTACH BIT(13) 92 #define CDNS_MCP_INT_SLAVE_NATTACH BIT(12) 93 #define CDNS_MCP_INT_SLAVE_MASK GENMASK(15, 12) 94 #define CDNS_MCP_INT_DPINT BIT(11) 95 #define CDNS_MCP_INT_CTRL_CLASH BIT(10) 96 #define CDNS_MCP_INT_DATA_CLASH BIT(9) 97 #define CDNS_MCP_INT_PARITY BIT(8) 98 #define CDNS_MCP_INT_CMD_ERR BIT(7) 99 #define CDNS_MCP_INT_RESERVED2 GENMASK(6, 4) 100 #define CDNS_MCP_INT_RX_NE BIT(3) 101 #define CDNS_MCP_INT_RX_WL BIT(2) 102 #define CDNS_MCP_INT_TXE BIT(1) 103 #define CDNS_MCP_INT_TXF BIT(0) 104 #define CDNS_MCP_INT_RESERVED (CDNS_MCP_INT_RESERVED1 | CDNS_MCP_INT_RESERVED2) 105 106 #define CDNS_MCP_INTSET 0x4C 107 108 #define CDNS_MCP_SLAVE_STAT 0x50 109 #define CDNS_MCP_SLAVE_STAT_MASK GENMASK(1, 0) 110 111 #define CDNS_MCP_SLAVE_INTSTAT0 0x54 112 #define CDNS_MCP_SLAVE_INTSTAT1 0x58 113 #define CDNS_MCP_SLAVE_INTSTAT_NPRESENT BIT(0) 114 #define CDNS_MCP_SLAVE_INTSTAT_ATTACHED BIT(1) 115 #define CDNS_MCP_SLAVE_INTSTAT_ALERT BIT(2) 116 #define CDNS_MCP_SLAVE_INTSTAT_RESERVED BIT(3) 117 #define CDNS_MCP_SLAVE_STATUS_BITS GENMASK(3, 0) 118 #define CDNS_MCP_SLAVE_STATUS_NUM 4 119 120 #define CDNS_MCP_SLAVE_INTMASK0 0x5C 121 #define CDNS_MCP_SLAVE_INTMASK1 0x60 122 123 #define CDNS_MCP_SLAVE_INTMASK0_MASK GENMASK(31, 0) 124 #define CDNS_MCP_SLAVE_INTMASK1_MASK GENMASK(15, 0) 125 126 #define CDNS_MCP_PORT_INTSTAT 0x64 127 #define CDNS_MCP_PDI_STAT 0x6C 128 129 #define CDNS_MCP_FIFOLEVEL 0x78 130 #define CDNS_MCP_FIFOSTAT 0x7C 131 #define CDNS_MCP_RX_FIFO_AVAIL GENMASK(5, 0) 132 133 #define CDNS_IP_MCP_CMD_BASE 0x80 /* IP offset added at run-time */ 134 #define CDNS_IP_MCP_RESP_BASE 0x80 /* IP offset added at run-time */ 135 /* FIFO can hold 8 commands */ 136 #define CDNS_MCP_CMD_LEN 8 137 #define CDNS_MCP_CMD_WORD_LEN 0x4 138 139 #define CDNS_MCP_CMD_SSP_TAG BIT(31) 140 #define CDNS_MCP_CMD_COMMAND GENMASK(30, 28) 141 #define CDNS_MCP_CMD_DEV_ADDR GENMASK(27, 24) 142 #define CDNS_MCP_CMD_REG_ADDR GENMASK(23, 8) 143 #define CDNS_MCP_CMD_REG_DATA GENMASK(7, 0) 144 145 #define CDNS_MCP_CMD_READ 2 146 #define CDNS_MCP_CMD_WRITE 3 147 148 #define CDNS_MCP_RESP_RDATA GENMASK(15, 8) 149 #define CDNS_MCP_RESP_ACK BIT(0) 150 #define CDNS_MCP_RESP_NACK BIT(1) 151 152 #define CDNS_DP_SIZE 128 153 154 #define CDNS_DPN_B0_CONFIG(n) (0x100 + CDNS_DP_SIZE * (n)) 155 #define CDNS_DPN_B0_CH_EN(n) (0x104 + CDNS_DP_SIZE * (n)) 156 #define CDNS_DPN_B0_SAMPLE_CTRL(n) (0x108 + CDNS_DP_SIZE * (n)) 157 #define CDNS_DPN_B0_OFFSET_CTRL(n) (0x10C + CDNS_DP_SIZE * (n)) 158 #define CDNS_DPN_B0_HCTRL(n) (0x110 + CDNS_DP_SIZE * (n)) 159 #define CDNS_DPN_B0_ASYNC_CTRL(n) (0x114 + CDNS_DP_SIZE * (n)) 160 161 #define CDNS_DPN_B1_CONFIG(n) (0x118 + CDNS_DP_SIZE * (n)) 162 #define CDNS_DPN_B1_CH_EN(n) (0x11C + CDNS_DP_SIZE * (n)) 163 #define CDNS_DPN_B1_SAMPLE_CTRL(n) (0x120 + CDNS_DP_SIZE * (n)) 164 #define CDNS_DPN_B1_OFFSET_CTRL(n) (0x124 + CDNS_DP_SIZE * (n)) 165 #define CDNS_DPN_B1_HCTRL(n) (0x128 + CDNS_DP_SIZE * (n)) 166 #define CDNS_DPN_B1_ASYNC_CTRL(n) (0x12C + CDNS_DP_SIZE * (n)) 167 168 #define CDNS_DPN_CONFIG_BPM BIT(18) 169 #define CDNS_DPN_CONFIG_BGC GENMASK(17, 16) 170 #define CDNS_DPN_CONFIG_WL GENMASK(12, 8) 171 #define CDNS_DPN_CONFIG_PORT_DAT GENMASK(3, 2) 172 #define CDNS_DPN_CONFIG_PORT_FLOW GENMASK(1, 0) 173 174 #define CDNS_DPN_SAMPLE_CTRL_SI GENMASK(15, 0) 175 176 #define CDNS_DPN_OFFSET_CTRL_1 GENMASK(7, 0) 177 #define CDNS_DPN_OFFSET_CTRL_2 GENMASK(15, 8) 178 179 #define CDNS_DPN_HCTRL_HSTOP GENMASK(3, 0) 180 #define CDNS_DPN_HCTRL_HSTART GENMASK(7, 4) 181 #define CDNS_DPN_HCTRL_LCTRL GENMASK(10, 8) 182 183 #define CDNS_PORTCTRL 0x130 184 #define CDNS_PORTCTRL_TEST_FAILED BIT(1) 185 #define CDNS_PORTCTRL_DIRN BIT(7) 186 #define CDNS_PORTCTRL_BANK_INVERT BIT(8) 187 #define CDNS_PORTCTRL_BULK_ENABLE BIT(16) 188 189 #define CDNS_PORT_OFFSET 0x80 190 191 #define CDNS_PDI_CONFIG(n) (0x1100 + (n) * 16) 192 193 #define CDNS_PDI_CONFIG_SOFT_RESET BIT(24) 194 #define CDNS_PDI_CONFIG_CHANNEL GENMASK(15, 8) 195 #define CDNS_PDI_CONFIG_PORT GENMASK(4, 0) 196 197 /* Driver defaults */ 198 #define CDNS_TX_TIMEOUT 500 199 200 #define CDNS_SCP_RX_FIFOLEVEL 0x2 201 202 /* 203 * register accessor helpers 204 */ 205 static inline u32 cdns_readl(struct sdw_cdns *cdns, int offset) 206 { 207 return readl(cdns->registers + offset); 208 } 209 210 static inline void cdns_writel(struct sdw_cdns *cdns, int offset, u32 value) 211 { 212 writel(value, cdns->registers + offset); 213 } 214 215 static inline u32 cdns_ip_readl(struct sdw_cdns *cdns, int offset) 216 { 217 return cdns_readl(cdns, cdns->ip_offset + offset); 218 } 219 220 static inline void cdns_ip_writel(struct sdw_cdns *cdns, int offset, u32 value) 221 { 222 return cdns_writel(cdns, cdns->ip_offset + offset, value); 223 } 224 225 static inline void cdns_updatel(struct sdw_cdns *cdns, 226 int offset, u32 mask, u32 val) 227 { 228 u32 tmp; 229 230 tmp = cdns_readl(cdns, offset); 231 tmp = (tmp & ~mask) | val; 232 cdns_writel(cdns, offset, tmp); 233 } 234 235 static inline void cdns_ip_updatel(struct sdw_cdns *cdns, 236 int offset, u32 mask, u32 val) 237 { 238 cdns_updatel(cdns, cdns->ip_offset + offset, mask, val); 239 } 240 241 static int cdns_set_wait(struct sdw_cdns *cdns, int offset, u32 mask, u32 value) 242 { 243 int timeout = 10; 244 u32 reg_read; 245 246 /* Wait for bit to be set */ 247 do { 248 reg_read = readl(cdns->registers + offset); 249 if ((reg_read & mask) == value) 250 return 0; 251 252 timeout--; 253 usleep_range(50, 100); 254 } while (timeout != 0); 255 256 return -ETIMEDOUT; 257 } 258 259 static int cdns_clear_bit(struct sdw_cdns *cdns, int offset, u32 value) 260 { 261 writel(value, cdns->registers + offset); 262 263 /* Wait for bit to be self cleared */ 264 return cdns_set_wait(cdns, offset, value, 0); 265 } 266 267 /* 268 * all changes to the MCP_CONFIG, MCP_CONTROL, MCP_CMDCTRL and MCP_PHYCTRL 269 * need to be confirmed with a write to MCP_CONFIG_UPDATE 270 */ 271 static int cdns_config_update(struct sdw_cdns *cdns) 272 { 273 int ret; 274 275 if (sdw_cdns_is_clock_stop(cdns)) { 276 dev_err(cdns->dev, "Cannot program MCP_CONFIG_UPDATE in ClockStopMode\n"); 277 return -EINVAL; 278 } 279 280 ret = cdns_clear_bit(cdns, CDNS_MCP_CONFIG_UPDATE, 281 CDNS_MCP_CONFIG_UPDATE_BIT); 282 if (ret < 0) 283 dev_err(cdns->dev, "Config update timedout\n"); 284 285 return ret; 286 } 287 288 /** 289 * sdw_cdns_config_update() - Update configurations 290 * @cdns: Cadence instance 291 */ 292 void sdw_cdns_config_update(struct sdw_cdns *cdns) 293 { 294 /* commit changes */ 295 cdns_writel(cdns, CDNS_MCP_CONFIG_UPDATE, CDNS_MCP_CONFIG_UPDATE_BIT); 296 } 297 EXPORT_SYMBOL(sdw_cdns_config_update); 298 299 /** 300 * sdw_cdns_config_update_set_wait() - wait until configuration update bit is self-cleared 301 * @cdns: Cadence instance 302 */ 303 int sdw_cdns_config_update_set_wait(struct sdw_cdns *cdns) 304 { 305 /* the hardware recommendation is to wait at least 300us */ 306 return cdns_set_wait(cdns, CDNS_MCP_CONFIG_UPDATE, 307 CDNS_MCP_CONFIG_UPDATE_BIT, 0); 308 } 309 EXPORT_SYMBOL(sdw_cdns_config_update_set_wait); 310 311 /* 312 * debugfs 313 */ 314 #ifdef CONFIG_DEBUG_FS 315 316 #define RD_BUF (2 * PAGE_SIZE) 317 318 static ssize_t cdns_sprintf(struct sdw_cdns *cdns, 319 char *buf, size_t pos, unsigned int reg) 320 { 321 return scnprintf(buf + pos, RD_BUF - pos, 322 "%4x\t%8x\n", reg, cdns_readl(cdns, reg)); 323 } 324 325 static int cdns_reg_show(struct seq_file *s, void *data) 326 { 327 struct sdw_cdns *cdns = s->private; 328 ssize_t ret; 329 int num_ports; 330 int i, j; 331 332 char *buf __free(kfree) = kzalloc(RD_BUF, GFP_KERNEL); 333 if (!buf) 334 return -ENOMEM; 335 336 ret = scnprintf(buf, RD_BUF, "Register Value\n"); 337 ret += scnprintf(buf + ret, RD_BUF - ret, "\nMCP Registers\n"); 338 /* 8 MCP registers */ 339 for (i = CDNS_MCP_CONFIG; i <= CDNS_MCP_PHYCTRL; i += sizeof(u32)) 340 ret += cdns_sprintf(cdns, buf, ret, i); 341 342 ret += scnprintf(buf + ret, RD_BUF - ret, 343 "\nStatus & Intr Registers\n"); 344 /* 13 Status & Intr registers (offsets 0x70 and 0x74 not defined) */ 345 for (i = CDNS_MCP_STAT; i <= CDNS_MCP_FIFOSTAT; i += sizeof(u32)) 346 ret += cdns_sprintf(cdns, buf, ret, i); 347 348 ret += scnprintf(buf + ret, RD_BUF - ret, 349 "\nSSP & Clk ctrl Registers\n"); 350 ret += cdns_sprintf(cdns, buf, ret, CDNS_MCP_SSP_CTRL0); 351 ret += cdns_sprintf(cdns, buf, ret, CDNS_MCP_SSP_CTRL1); 352 ret += cdns_sprintf(cdns, buf, ret, CDNS_MCP_CLK_CTRL0); 353 ret += cdns_sprintf(cdns, buf, ret, CDNS_MCP_CLK_CTRL1); 354 355 ret += scnprintf(buf + ret, RD_BUF - ret, 356 "\nDPn B0 Registers\n"); 357 358 num_ports = cdns->num_ports; 359 360 for (i = 0; i < num_ports; i++) { 361 ret += scnprintf(buf + ret, RD_BUF - ret, 362 "\nDP-%d\n", i); 363 for (j = CDNS_DPN_B0_CONFIG(i); 364 j < CDNS_DPN_B0_ASYNC_CTRL(i); j += sizeof(u32)) 365 ret += cdns_sprintf(cdns, buf, ret, j); 366 } 367 368 ret += scnprintf(buf + ret, RD_BUF - ret, 369 "\nDPn B1 Registers\n"); 370 for (i = 0; i < num_ports; i++) { 371 ret += scnprintf(buf + ret, RD_BUF - ret, 372 "\nDP-%d\n", i); 373 374 for (j = CDNS_DPN_B1_CONFIG(i); 375 j < CDNS_DPN_B1_ASYNC_CTRL(i); j += sizeof(u32)) 376 ret += cdns_sprintf(cdns, buf, ret, j); 377 } 378 379 ret += scnprintf(buf + ret, RD_BUF - ret, 380 "\nDPn Control Registers\n"); 381 for (i = 0; i < num_ports; i++) 382 ret += cdns_sprintf(cdns, buf, ret, 383 CDNS_PORTCTRL + i * CDNS_PORT_OFFSET); 384 385 ret += scnprintf(buf + ret, RD_BUF - ret, 386 "\nPDIn Config Registers\n"); 387 388 /* number of PDI and ports is interchangeable */ 389 for (i = 0; i < num_ports; i++) 390 ret += cdns_sprintf(cdns, buf, ret, CDNS_PDI_CONFIG(i)); 391 392 seq_printf(s, "%s", buf); 393 394 return 0; 395 } 396 DEFINE_SHOW_ATTRIBUTE(cdns_reg); 397 398 static int cdns_hw_reset(void *data, u64 value) 399 { 400 struct sdw_cdns *cdns = data; 401 int ret; 402 403 if (value != 1) 404 return -EINVAL; 405 406 /* Userspace changed the hardware state behind the kernel's back */ 407 add_taint(TAINT_USER, LOCKDEP_STILL_OK); 408 409 ret = sdw_cdns_exit_reset(cdns); 410 411 dev_dbg(cdns->dev, "link hw_reset done: %d\n", ret); 412 413 return ret; 414 } 415 416 DEFINE_DEBUGFS_ATTRIBUTE(cdns_hw_reset_fops, NULL, cdns_hw_reset, "%llu\n"); 417 418 static int cdns_parity_error_injection(void *data, u64 value) 419 { 420 struct sdw_cdns *cdns = data; 421 struct sdw_bus *bus; 422 int ret; 423 424 if (value != 1) 425 return -EINVAL; 426 427 bus = &cdns->bus; 428 429 /* 430 * Resume Master device. If this results in a bus reset, the 431 * Slave devices will re-attach and be re-enumerated. 432 */ 433 ret = pm_runtime_resume_and_get(bus->dev); 434 if (ret < 0 && ret != -EACCES) { 435 dev_err_ratelimited(cdns->dev, 436 "pm_runtime_resume_and_get failed in %s, ret %d\n", 437 __func__, ret); 438 return ret; 439 } 440 441 /* 442 * wait long enough for Slave(s) to be in steady state. This 443 * does not need to be super precise. 444 */ 445 msleep(200); 446 447 /* 448 * Take the bus lock here to make sure that any bus transactions 449 * will be queued while we inject a parity error on a dummy read 450 */ 451 mutex_lock(&bus->bus_lock); 452 453 /* program hardware to inject parity error */ 454 cdns_ip_updatel(cdns, CDNS_IP_MCP_CMDCTRL, 455 CDNS_IP_MCP_CMDCTRL_INSERT_PARITY_ERR, 456 CDNS_IP_MCP_CMDCTRL_INSERT_PARITY_ERR); 457 458 /* commit changes */ 459 ret = cdns_clear_bit(cdns, CDNS_MCP_CONFIG_UPDATE, CDNS_MCP_CONFIG_UPDATE_BIT); 460 if (ret < 0) 461 goto unlock; 462 463 /* do a broadcast dummy read to avoid bus clashes */ 464 ret = sdw_bread_no_pm_unlocked(&cdns->bus, 0xf, SDW_SCP_DEVID_0); 465 dev_info(cdns->dev, "parity error injection, read: %d\n", ret); 466 467 /* program hardware to disable parity error */ 468 cdns_ip_updatel(cdns, CDNS_IP_MCP_CMDCTRL, 469 CDNS_IP_MCP_CMDCTRL_INSERT_PARITY_ERR, 470 0); 471 472 /* commit changes */ 473 ret = cdns_clear_bit(cdns, CDNS_MCP_CONFIG_UPDATE, CDNS_MCP_CONFIG_UPDATE_BIT); 474 if (ret < 0) 475 goto unlock; 476 477 /* Userspace changed the hardware state behind the kernel's back */ 478 add_taint(TAINT_USER, LOCKDEP_STILL_OK); 479 480 unlock: 481 /* Continue bus operation with parity error injection disabled */ 482 mutex_unlock(&bus->bus_lock); 483 484 /* 485 * allow Master device to enter pm_runtime suspend. This may 486 * also result in Slave devices suspending. 487 */ 488 pm_runtime_mark_last_busy(bus->dev); 489 pm_runtime_put_autosuspend(bus->dev); 490 491 return 0; 492 } 493 494 DEFINE_DEBUGFS_ATTRIBUTE(cdns_parity_error_fops, NULL, 495 cdns_parity_error_injection, "%llu\n"); 496 497 static int cdns_set_pdi_loopback_source(void *data, u64 value) 498 { 499 struct sdw_cdns *cdns = data; 500 unsigned int pdi_out_num = cdns->pcm.num_bd + cdns->pcm.num_out; 501 502 if (value > pdi_out_num) 503 return -EINVAL; 504 505 /* Userspace changed the hardware state behind the kernel's back */ 506 add_taint(TAINT_USER, LOCKDEP_STILL_OK); 507 508 cdns->pdi_loopback_source = value; 509 510 return 0; 511 } 512 DEFINE_DEBUGFS_ATTRIBUTE(cdns_pdi_loopback_source_fops, NULL, cdns_set_pdi_loopback_source, "%llu\n"); 513 514 static int cdns_set_pdi_loopback_target(void *data, u64 value) 515 { 516 struct sdw_cdns *cdns = data; 517 unsigned int pdi_in_num = cdns->pcm.num_bd + cdns->pcm.num_in; 518 519 if (value > pdi_in_num) 520 return -EINVAL; 521 522 /* Userspace changed the hardware state behind the kernel's back */ 523 add_taint(TAINT_USER, LOCKDEP_STILL_OK); 524 525 cdns->pdi_loopback_target = value; 526 527 return 0; 528 } 529 DEFINE_DEBUGFS_ATTRIBUTE(cdns_pdi_loopback_target_fops, NULL, cdns_set_pdi_loopback_target, "%llu\n"); 530 531 /** 532 * sdw_cdns_debugfs_init() - Cadence debugfs init 533 * @cdns: Cadence instance 534 * @root: debugfs root 535 */ 536 void sdw_cdns_debugfs_init(struct sdw_cdns *cdns, struct dentry *root) 537 { 538 debugfs_create_file("cdns-registers", 0400, root, cdns, &cdns_reg_fops); 539 540 debugfs_create_file("cdns-hw-reset", 0200, root, cdns, 541 &cdns_hw_reset_fops); 542 543 debugfs_create_file("cdns-parity-error-injection", 0200, root, cdns, 544 &cdns_parity_error_fops); 545 546 cdns->pdi_loopback_source = -1; 547 cdns->pdi_loopback_target = -1; 548 549 debugfs_create_file("cdns-pdi-loopback-source", 0200, root, cdns, 550 &cdns_pdi_loopback_source_fops); 551 552 debugfs_create_file("cdns-pdi-loopback-target", 0200, root, cdns, 553 &cdns_pdi_loopback_target_fops); 554 555 } 556 EXPORT_SYMBOL_GPL(sdw_cdns_debugfs_init); 557 558 #endif /* CONFIG_DEBUG_FS */ 559 560 /* 561 * IO Calls 562 */ 563 static enum sdw_command_response 564 cdns_fill_msg_resp(struct sdw_cdns *cdns, 565 struct sdw_msg *msg, int count, int offset) 566 { 567 int nack = 0, no_ack = 0; 568 int i; 569 570 /* check message response */ 571 for (i = 0; i < count; i++) { 572 if (!(cdns->response_buf[i] & CDNS_MCP_RESP_ACK)) { 573 no_ack = 1; 574 dev_vdbg(cdns->dev, "Msg Ack not received, cmd %d\n", i); 575 } 576 if (cdns->response_buf[i] & CDNS_MCP_RESP_NACK) { 577 nack = 1; 578 dev_err_ratelimited(cdns->dev, "Msg NACK received, cmd %d\n", i); 579 } 580 } 581 582 if (nack) { 583 dev_err_ratelimited(cdns->dev, "Msg NACKed for Slave %d\n", msg->dev_num); 584 return SDW_CMD_FAIL; 585 } 586 587 if (no_ack) { 588 dev_dbg_ratelimited(cdns->dev, "Msg ignored for Slave %d\n", msg->dev_num); 589 return SDW_CMD_IGNORED; 590 } 591 592 if (msg->flags == SDW_MSG_FLAG_READ) { 593 /* fill response */ 594 for (i = 0; i < count; i++) 595 msg->buf[i + offset] = FIELD_GET(CDNS_MCP_RESP_RDATA, 596 cdns->response_buf[i]); 597 } 598 599 return SDW_CMD_OK; 600 } 601 602 static void cdns_read_response(struct sdw_cdns *cdns) 603 { 604 u32 num_resp, cmd_base; 605 int i; 606 607 /* RX_FIFO_AVAIL can be 2 entries more than the FIFO size */ 608 BUILD_BUG_ON(ARRAY_SIZE(cdns->response_buf) < CDNS_MCP_CMD_LEN + 2); 609 610 num_resp = cdns_readl(cdns, CDNS_MCP_FIFOSTAT); 611 num_resp &= CDNS_MCP_RX_FIFO_AVAIL; 612 if (num_resp > ARRAY_SIZE(cdns->response_buf)) { 613 dev_warn(cdns->dev, "RX AVAIL %d too long\n", num_resp); 614 num_resp = ARRAY_SIZE(cdns->response_buf); 615 } 616 617 cmd_base = CDNS_IP_MCP_CMD_BASE; 618 619 for (i = 0; i < num_resp; i++) { 620 cdns->response_buf[i] = cdns_ip_readl(cdns, cmd_base); 621 cmd_base += CDNS_MCP_CMD_WORD_LEN; 622 } 623 } 624 625 static enum sdw_command_response 626 _cdns_xfer_msg(struct sdw_cdns *cdns, struct sdw_msg *msg, int cmd, 627 int offset, int count, bool defer) 628 { 629 unsigned long time; 630 u32 base, i, data; 631 u16 addr; 632 633 /* Program the watermark level for RX FIFO */ 634 if (cdns->msg_count != count) { 635 cdns_writel(cdns, CDNS_MCP_FIFOLEVEL, count); 636 cdns->msg_count = count; 637 } 638 639 base = CDNS_IP_MCP_CMD_BASE; 640 addr = msg->addr + offset; 641 642 for (i = 0; i < count; i++) { 643 data = FIELD_PREP(CDNS_MCP_CMD_DEV_ADDR, msg->dev_num); 644 data |= FIELD_PREP(CDNS_MCP_CMD_COMMAND, cmd); 645 data |= FIELD_PREP(CDNS_MCP_CMD_REG_ADDR, addr); 646 addr++; 647 648 if (msg->flags == SDW_MSG_FLAG_WRITE) 649 data |= msg->buf[i + offset]; 650 651 data |= FIELD_PREP(CDNS_MCP_CMD_SSP_TAG, msg->ssp_sync); 652 cdns_ip_writel(cdns, base, data); 653 base += CDNS_MCP_CMD_WORD_LEN; 654 } 655 656 if (defer) 657 return SDW_CMD_OK; 658 659 /* wait for timeout or response */ 660 time = wait_for_completion_timeout(&cdns->tx_complete, 661 msecs_to_jiffies(CDNS_TX_TIMEOUT)); 662 if (!time) { 663 dev_err(cdns->dev, "IO transfer timed out, cmd %d device %d addr %x len %d\n", 664 cmd, msg->dev_num, msg->addr, msg->len); 665 msg->len = 0; 666 667 /* Drain anything in the RX_FIFO */ 668 cdns_read_response(cdns); 669 670 return SDW_CMD_TIMEOUT; 671 } 672 673 return cdns_fill_msg_resp(cdns, msg, count, offset); 674 } 675 676 static enum sdw_command_response 677 cdns_program_scp_addr(struct sdw_cdns *cdns, struct sdw_msg *msg) 678 { 679 int nack = 0, no_ack = 0; 680 unsigned long time; 681 u32 data[2], base; 682 int i; 683 684 /* Program the watermark level for RX FIFO */ 685 if (cdns->msg_count != CDNS_SCP_RX_FIFOLEVEL) { 686 cdns_writel(cdns, CDNS_MCP_FIFOLEVEL, CDNS_SCP_RX_FIFOLEVEL); 687 cdns->msg_count = CDNS_SCP_RX_FIFOLEVEL; 688 } 689 690 data[0] = FIELD_PREP(CDNS_MCP_CMD_DEV_ADDR, msg->dev_num); 691 data[0] |= FIELD_PREP(CDNS_MCP_CMD_COMMAND, 0x3); 692 data[1] = data[0]; 693 694 data[0] |= FIELD_PREP(CDNS_MCP_CMD_REG_ADDR, SDW_SCP_ADDRPAGE1); 695 data[1] |= FIELD_PREP(CDNS_MCP_CMD_REG_ADDR, SDW_SCP_ADDRPAGE2); 696 697 data[0] |= msg->addr_page1; 698 data[1] |= msg->addr_page2; 699 700 base = CDNS_IP_MCP_CMD_BASE; 701 cdns_ip_writel(cdns, base, data[0]); 702 base += CDNS_MCP_CMD_WORD_LEN; 703 cdns_ip_writel(cdns, base, data[1]); 704 705 time = wait_for_completion_timeout(&cdns->tx_complete, 706 msecs_to_jiffies(CDNS_TX_TIMEOUT)); 707 if (!time) { 708 dev_err(cdns->dev, "SCP Msg trf timed out\n"); 709 msg->len = 0; 710 return SDW_CMD_TIMEOUT; 711 } 712 713 /* check response the writes */ 714 for (i = 0; i < 2; i++) { 715 if (!(cdns->response_buf[i] & CDNS_MCP_RESP_ACK)) { 716 no_ack = 1; 717 dev_err(cdns->dev, "Program SCP Ack not received\n"); 718 if (cdns->response_buf[i] & CDNS_MCP_RESP_NACK) { 719 nack = 1; 720 dev_err(cdns->dev, "Program SCP NACK received\n"); 721 } 722 } 723 } 724 725 /* For NACK, NO ack, don't return err if we are in Broadcast mode */ 726 if (nack) { 727 dev_err_ratelimited(cdns->dev, 728 "SCP_addrpage NACKed for Slave %d\n", msg->dev_num); 729 return SDW_CMD_FAIL; 730 } 731 732 if (no_ack) { 733 dev_dbg_ratelimited(cdns->dev, 734 "SCP_addrpage ignored for Slave %d\n", msg->dev_num); 735 return SDW_CMD_IGNORED; 736 } 737 738 return SDW_CMD_OK; 739 } 740 741 static int cdns_prep_msg(struct sdw_cdns *cdns, struct sdw_msg *msg, int *cmd) 742 { 743 int ret; 744 745 if (msg->page) { 746 ret = cdns_program_scp_addr(cdns, msg); 747 if (ret) { 748 msg->len = 0; 749 return ret; 750 } 751 } 752 753 switch (msg->flags) { 754 case SDW_MSG_FLAG_READ: 755 *cmd = CDNS_MCP_CMD_READ; 756 break; 757 758 case SDW_MSG_FLAG_WRITE: 759 *cmd = CDNS_MCP_CMD_WRITE; 760 break; 761 762 default: 763 dev_err(cdns->dev, "Invalid msg cmd: %d\n", msg->flags); 764 return -EINVAL; 765 } 766 767 return 0; 768 } 769 770 enum sdw_command_response 771 cdns_xfer_msg(struct sdw_bus *bus, struct sdw_msg *msg) 772 { 773 struct sdw_cdns *cdns = bus_to_cdns(bus); 774 int cmd = 0, ret, i; 775 776 ret = cdns_prep_msg(cdns, msg, &cmd); 777 if (ret) 778 return SDW_CMD_FAIL_OTHER; 779 780 for (i = 0; i < msg->len / CDNS_MCP_CMD_LEN; i++) { 781 ret = _cdns_xfer_msg(cdns, msg, cmd, i * CDNS_MCP_CMD_LEN, 782 CDNS_MCP_CMD_LEN, false); 783 if (ret != SDW_CMD_OK) 784 return ret; 785 } 786 787 if (!(msg->len % CDNS_MCP_CMD_LEN)) 788 return SDW_CMD_OK; 789 790 return _cdns_xfer_msg(cdns, msg, cmd, i * CDNS_MCP_CMD_LEN, 791 msg->len % CDNS_MCP_CMD_LEN, false); 792 } 793 EXPORT_SYMBOL(cdns_xfer_msg); 794 795 enum sdw_command_response 796 cdns_xfer_msg_defer(struct sdw_bus *bus) 797 { 798 struct sdw_cdns *cdns = bus_to_cdns(bus); 799 struct sdw_defer *defer = &bus->defer_msg; 800 struct sdw_msg *msg = defer->msg; 801 int cmd = 0, ret; 802 803 /* for defer only 1 message is supported */ 804 if (msg->len > 1) 805 return -ENOTSUPP; 806 807 ret = cdns_prep_msg(cdns, msg, &cmd); 808 if (ret) 809 return SDW_CMD_FAIL_OTHER; 810 811 return _cdns_xfer_msg(cdns, msg, cmd, 0, msg->len, true); 812 } 813 EXPORT_SYMBOL(cdns_xfer_msg_defer); 814 815 u32 cdns_read_ping_status(struct sdw_bus *bus) 816 { 817 struct sdw_cdns *cdns = bus_to_cdns(bus); 818 819 return cdns_readl(cdns, CDNS_MCP_SLAVE_STAT); 820 } 821 EXPORT_SYMBOL(cdns_read_ping_status); 822 823 /* 824 * IRQ handling 825 */ 826 827 static int cdns_update_slave_status(struct sdw_cdns *cdns, 828 u64 slave_intstat) 829 { 830 enum sdw_slave_status status[SDW_MAX_DEVICES + 1]; 831 bool is_slave = false; 832 u32 mask; 833 u32 val; 834 int i, set_status; 835 836 memset(status, 0, sizeof(status)); 837 838 for (i = 0; i <= SDW_MAX_DEVICES; i++) { 839 mask = (slave_intstat >> (i * CDNS_MCP_SLAVE_STATUS_NUM)) & 840 CDNS_MCP_SLAVE_STATUS_BITS; 841 842 set_status = 0; 843 844 if (mask) { 845 is_slave = true; 846 847 if (mask & CDNS_MCP_SLAVE_INTSTAT_RESERVED) { 848 status[i] = SDW_SLAVE_RESERVED; 849 set_status++; 850 } 851 852 if (mask & CDNS_MCP_SLAVE_INTSTAT_ATTACHED) { 853 status[i] = SDW_SLAVE_ATTACHED; 854 set_status++; 855 } 856 857 if (mask & CDNS_MCP_SLAVE_INTSTAT_ALERT) { 858 status[i] = SDW_SLAVE_ALERT; 859 set_status++; 860 } 861 862 if (mask & CDNS_MCP_SLAVE_INTSTAT_NPRESENT) { 863 status[i] = SDW_SLAVE_UNATTACHED; 864 set_status++; 865 } 866 } 867 868 /* 869 * check that there was a single reported Slave status and when 870 * there is not use the latest status extracted from PING commands 871 */ 872 if (set_status != 1) { 873 val = cdns_readl(cdns, CDNS_MCP_SLAVE_STAT); 874 val >>= (i * 2); 875 876 switch (val & 0x3) { 877 case 0: 878 status[i] = SDW_SLAVE_UNATTACHED; 879 break; 880 case 1: 881 status[i] = SDW_SLAVE_ATTACHED; 882 break; 883 case 2: 884 status[i] = SDW_SLAVE_ALERT; 885 break; 886 case 3: 887 default: 888 status[i] = SDW_SLAVE_RESERVED; 889 break; 890 } 891 } 892 } 893 894 if (is_slave) { 895 int ret; 896 897 mutex_lock(&cdns->status_update_lock); 898 ret = sdw_handle_slave_status(&cdns->bus, status); 899 mutex_unlock(&cdns->status_update_lock); 900 return ret; 901 } 902 903 return 0; 904 } 905 906 /** 907 * sdw_cdns_irq() - Cadence interrupt handler 908 * @irq: irq number 909 * @dev_id: irq context 910 */ 911 irqreturn_t sdw_cdns_irq(int irq, void *dev_id) 912 { 913 struct sdw_cdns *cdns = dev_id; 914 u32 int_status; 915 916 /* Check if the link is up */ 917 if (!cdns->link_up) 918 return IRQ_NONE; 919 920 int_status = cdns_readl(cdns, CDNS_MCP_INTSTAT); 921 922 /* check for reserved values read as zero */ 923 if (int_status & CDNS_MCP_INT_RESERVED) 924 return IRQ_NONE; 925 926 if (!(int_status & CDNS_MCP_INT_IRQ)) 927 return IRQ_NONE; 928 929 if (int_status & CDNS_MCP_INT_RX_WL) { 930 struct sdw_bus *bus = &cdns->bus; 931 struct sdw_defer *defer = &bus->defer_msg; 932 933 cdns_read_response(cdns); 934 935 /* 936 * Clear interrupt before signalling the completion to avoid 937 * a race between this thread and the main thread starting 938 * another TX. 939 */ 940 cdns_writel(cdns, CDNS_MCP_INTSTAT, CDNS_MCP_INT_RX_WL); 941 int_status &= ~CDNS_MCP_INT_RX_WL; 942 943 if (defer && defer->msg) { 944 cdns_fill_msg_resp(cdns, defer->msg, 945 defer->length, 0); 946 complete(&defer->complete); 947 } else { 948 complete(&cdns->tx_complete); 949 } 950 } 951 952 if (int_status & CDNS_MCP_INT_PARITY) { 953 /* Parity error detected by Master */ 954 dev_err_ratelimited(cdns->dev, "Parity error\n"); 955 } 956 957 if (int_status & CDNS_MCP_INT_CTRL_CLASH) { 958 /* Slave is driving bit slot during control word */ 959 dev_err_ratelimited(cdns->dev, "Bus clash for control word\n"); 960 } 961 962 if (int_status & CDNS_MCP_INT_DATA_CLASH) { 963 /* 964 * Multiple slaves trying to drive bit slot, or issue with 965 * ownership of data bits or Slave gone bonkers 966 */ 967 dev_err_ratelimited(cdns->dev, "Bus clash for data word\n"); 968 } 969 970 if (cdns->bus.params.m_data_mode != SDW_PORT_DATA_MODE_NORMAL && 971 int_status & CDNS_MCP_INT_DPINT) { 972 u32 port_intstat; 973 974 /* just log which ports report an error */ 975 port_intstat = cdns_readl(cdns, CDNS_MCP_PORT_INTSTAT); 976 dev_err_ratelimited(cdns->dev, "DP interrupt: PortIntStat %8x\n", 977 port_intstat); 978 979 /* clear status w/ write1 */ 980 cdns_writel(cdns, CDNS_MCP_PORT_INTSTAT, port_intstat); 981 } 982 983 if (int_status & CDNS_MCP_INT_SLAVE_MASK) { 984 /* Mask the Slave interrupt and wake thread */ 985 cdns_updatel(cdns, CDNS_MCP_INTMASK, 986 CDNS_MCP_INT_SLAVE_MASK, 0); 987 988 int_status &= ~CDNS_MCP_INT_SLAVE_MASK; 989 990 /* 991 * Deal with possible race condition between interrupt 992 * handling and disabling interrupts on suspend. 993 * 994 * If the master is in the process of disabling 995 * interrupts, don't schedule a workqueue 996 */ 997 if (cdns->interrupt_enabled) 998 schedule_work(&cdns->work); 999 } 1000 1001 cdns_writel(cdns, CDNS_MCP_INTSTAT, int_status); 1002 return IRQ_HANDLED; 1003 } 1004 EXPORT_SYMBOL(sdw_cdns_irq); 1005 1006 static void cdns_check_attached_status_dwork(struct work_struct *work) 1007 { 1008 struct sdw_cdns *cdns = 1009 container_of(work, struct sdw_cdns, attach_dwork.work); 1010 enum sdw_slave_status status[SDW_MAX_DEVICES + 1]; 1011 u32 val; 1012 int ret; 1013 int i; 1014 1015 val = cdns_readl(cdns, CDNS_MCP_SLAVE_STAT); 1016 1017 for (i = 0; i <= SDW_MAX_DEVICES; i++) { 1018 status[i] = val & 0x3; 1019 if (status[i]) 1020 dev_dbg(cdns->dev, "Peripheral %d status: %d\n", i, status[i]); 1021 val >>= 2; 1022 } 1023 1024 mutex_lock(&cdns->status_update_lock); 1025 ret = sdw_handle_slave_status(&cdns->bus, status); 1026 mutex_unlock(&cdns->status_update_lock); 1027 if (ret < 0) 1028 dev_err(cdns->dev, "%s: sdw_handle_slave_status failed: %d\n", __func__, ret); 1029 } 1030 1031 /** 1032 * cdns_update_slave_status_work - update slave status in a work since we will need to handle 1033 * other interrupts eg. CDNS_MCP_INT_RX_WL during the update slave 1034 * process. 1035 * @work: cdns worker thread 1036 */ 1037 static void cdns_update_slave_status_work(struct work_struct *work) 1038 { 1039 struct sdw_cdns *cdns = 1040 container_of(work, struct sdw_cdns, work); 1041 u32 slave0, slave1; 1042 u64 slave_intstat; 1043 u32 device0_status; 1044 int retry_count = 0; 1045 1046 /* 1047 * Clear main interrupt first so we don't lose any assertions 1048 * that happen during this function. 1049 */ 1050 cdns_writel(cdns, CDNS_MCP_INTSTAT, CDNS_MCP_INT_SLAVE_MASK); 1051 1052 slave0 = cdns_readl(cdns, CDNS_MCP_SLAVE_INTSTAT0); 1053 slave1 = cdns_readl(cdns, CDNS_MCP_SLAVE_INTSTAT1); 1054 1055 /* 1056 * Clear the bits before handling so we don't lose any 1057 * bits that re-assert. 1058 */ 1059 cdns_writel(cdns, CDNS_MCP_SLAVE_INTSTAT0, slave0); 1060 cdns_writel(cdns, CDNS_MCP_SLAVE_INTSTAT1, slave1); 1061 1062 /* combine the two status */ 1063 slave_intstat = ((u64)slave1 << 32) | slave0; 1064 1065 dev_dbg_ratelimited(cdns->dev, "Slave status change: 0x%llx\n", slave_intstat); 1066 1067 update_status: 1068 cdns_update_slave_status(cdns, slave_intstat); 1069 1070 /* 1071 * When there is more than one peripheral per link, it's 1072 * possible that a deviceB becomes attached after we deal with 1073 * the attachment of deviceA. Since the hardware does a 1074 * logical AND, the attachment of the second device does not 1075 * change the status seen by the driver. 1076 * 1077 * In that case, clearing the registers above would result in 1078 * the deviceB never being detected - until a change of status 1079 * is observed on the bus. 1080 * 1081 * To avoid this race condition, re-check if any device0 needs 1082 * attention with PING commands. There is no need to check for 1083 * ALERTS since they are not allowed until a non-zero 1084 * device_number is assigned. 1085 * 1086 * Do not clear the INTSTAT0/1. While looping to enumerate devices on 1087 * #0 there could be status changes on other devices - these must 1088 * be kept in the INTSTAT so they can be handled when all #0 devices 1089 * have been handled. 1090 */ 1091 1092 device0_status = cdns_readl(cdns, CDNS_MCP_SLAVE_STAT); 1093 device0_status &= 3; 1094 1095 if (device0_status == SDW_SLAVE_ATTACHED) { 1096 if (retry_count++ < SDW_MAX_DEVICES) { 1097 dev_dbg_ratelimited(cdns->dev, 1098 "Device0 detected after clearing status, iteration %d\n", 1099 retry_count); 1100 slave_intstat = CDNS_MCP_SLAVE_INTSTAT_ATTACHED; 1101 goto update_status; 1102 } else { 1103 dev_err_ratelimited(cdns->dev, 1104 "Device0 detected after %d iterations\n", 1105 retry_count); 1106 } 1107 } 1108 1109 /* unmask Slave interrupt now */ 1110 cdns_updatel(cdns, CDNS_MCP_INTMASK, 1111 CDNS_MCP_INT_SLAVE_MASK, CDNS_MCP_INT_SLAVE_MASK); 1112 1113 } 1114 1115 /* paranoia check to make sure self-cleared bits are indeed cleared */ 1116 void sdw_cdns_check_self_clearing_bits(struct sdw_cdns *cdns, const char *string, 1117 bool initial_delay, int reset_iterations) 1118 { 1119 u32 ip_mcp_control; 1120 u32 mcp_control; 1121 u32 mcp_config_update; 1122 int i; 1123 1124 if (initial_delay) 1125 usleep_range(1000, 1500); 1126 1127 ip_mcp_control = cdns_ip_readl(cdns, CDNS_IP_MCP_CONTROL); 1128 1129 /* the following bits should be cleared immediately */ 1130 if (ip_mcp_control & CDNS_IP_MCP_CONTROL_SW_RST) 1131 dev_err(cdns->dev, "%s failed: IP_MCP_CONTROL_SW_RST is not cleared\n", string); 1132 1133 mcp_control = cdns_readl(cdns, CDNS_MCP_CONTROL); 1134 1135 /* the following bits should be cleared immediately */ 1136 if (mcp_control & CDNS_MCP_CONTROL_CMD_RST) 1137 dev_err(cdns->dev, "%s failed: MCP_CONTROL_CMD_RST is not cleared\n", string); 1138 if (mcp_control & CDNS_MCP_CONTROL_SOFT_RST) 1139 dev_err(cdns->dev, "%s failed: MCP_CONTROL_SOFT_RST is not cleared\n", string); 1140 if (mcp_control & CDNS_MCP_CONTROL_CLK_STOP_CLR) 1141 dev_err(cdns->dev, "%s failed: MCP_CONTROL_CLK_STOP_CLR is not cleared\n", string); 1142 1143 mcp_config_update = cdns_readl(cdns, CDNS_MCP_CONFIG_UPDATE); 1144 if (mcp_config_update & CDNS_MCP_CONFIG_UPDATE_BIT) 1145 dev_err(cdns->dev, "%s failed: MCP_CONFIG_UPDATE_BIT is not cleared\n", string); 1146 1147 i = 0; 1148 while (mcp_control & CDNS_MCP_CONTROL_HW_RST) { 1149 if (i == reset_iterations) { 1150 dev_err(cdns->dev, "%s failed: MCP_CONTROL_HW_RST is not cleared\n", string); 1151 break; 1152 } 1153 1154 dev_dbg(cdns->dev, "%s: MCP_CONTROL_HW_RST is not cleared at iteration %d\n", string, i); 1155 i++; 1156 1157 usleep_range(1000, 1500); 1158 mcp_control = cdns_readl(cdns, CDNS_MCP_CONTROL); 1159 } 1160 1161 } 1162 EXPORT_SYMBOL(sdw_cdns_check_self_clearing_bits); 1163 1164 /* 1165 * init routines 1166 */ 1167 1168 /** 1169 * sdw_cdns_exit_reset() - Program reset parameters and start bus operations 1170 * @cdns: Cadence instance 1171 */ 1172 int sdw_cdns_exit_reset(struct sdw_cdns *cdns) 1173 { 1174 /* keep reset delay unchanged to 4096 cycles */ 1175 1176 /* use hardware generated reset */ 1177 cdns_updatel(cdns, CDNS_MCP_CONTROL, 1178 CDNS_MCP_CONTROL_HW_RST, 1179 CDNS_MCP_CONTROL_HW_RST); 1180 1181 /* commit changes */ 1182 return cdns_config_update(cdns); 1183 } 1184 EXPORT_SYMBOL(sdw_cdns_exit_reset); 1185 1186 /** 1187 * cdns_enable_slave_interrupts() - Enable SDW slave interrupts 1188 * @cdns: Cadence instance 1189 * @state: boolean for true/false 1190 */ 1191 static void cdns_enable_slave_interrupts(struct sdw_cdns *cdns, bool state) 1192 { 1193 u32 mask; 1194 1195 mask = cdns_readl(cdns, CDNS_MCP_INTMASK); 1196 if (state) 1197 mask |= CDNS_MCP_INT_SLAVE_MASK; 1198 else 1199 mask &= ~CDNS_MCP_INT_SLAVE_MASK; 1200 1201 cdns_writel(cdns, CDNS_MCP_INTMASK, mask); 1202 } 1203 1204 /** 1205 * sdw_cdns_enable_interrupt() - Enable SDW interrupts 1206 * @cdns: Cadence instance 1207 * @state: True if we are trying to enable interrupt. 1208 */ 1209 int sdw_cdns_enable_interrupt(struct sdw_cdns *cdns, bool state) 1210 { 1211 u32 slave_intmask0 = 0; 1212 u32 slave_intmask1 = 0; 1213 u32 mask = 0; 1214 1215 if (!state) 1216 goto update_masks; 1217 1218 slave_intmask0 = CDNS_MCP_SLAVE_INTMASK0_MASK; 1219 slave_intmask1 = CDNS_MCP_SLAVE_INTMASK1_MASK; 1220 1221 /* enable detection of all slave state changes */ 1222 mask = CDNS_MCP_INT_SLAVE_MASK; 1223 1224 /* enable detection of bus issues */ 1225 mask |= CDNS_MCP_INT_CTRL_CLASH | CDNS_MCP_INT_DATA_CLASH | 1226 CDNS_MCP_INT_PARITY; 1227 1228 /* port interrupt limited to test modes for now */ 1229 if (cdns->bus.params.m_data_mode != SDW_PORT_DATA_MODE_NORMAL) 1230 mask |= CDNS_MCP_INT_DPINT; 1231 1232 /* enable detection of RX fifo level */ 1233 mask |= CDNS_MCP_INT_RX_WL; 1234 1235 /* 1236 * CDNS_MCP_INT_IRQ needs to be set otherwise all previous 1237 * settings are irrelevant 1238 */ 1239 mask |= CDNS_MCP_INT_IRQ; 1240 1241 if (interrupt_mask) /* parameter override */ 1242 mask = interrupt_mask; 1243 1244 update_masks: 1245 /* clear slave interrupt status before enabling interrupt */ 1246 if (state) { 1247 u32 slave_state; 1248 1249 slave_state = cdns_readl(cdns, CDNS_MCP_SLAVE_INTSTAT0); 1250 cdns_writel(cdns, CDNS_MCP_SLAVE_INTSTAT0, slave_state); 1251 slave_state = cdns_readl(cdns, CDNS_MCP_SLAVE_INTSTAT1); 1252 cdns_writel(cdns, CDNS_MCP_SLAVE_INTSTAT1, slave_state); 1253 } 1254 cdns->interrupt_enabled = state; 1255 1256 /* 1257 * Complete any on-going status updates before updating masks, 1258 * and cancel queued status updates. 1259 * 1260 * There could be a race with a new interrupt thrown before 1261 * the 3 mask updates below are complete, so in the interrupt 1262 * we use the 'interrupt_enabled' status to prevent new work 1263 * from being queued. 1264 */ 1265 if (!state) 1266 cancel_work_sync(&cdns->work); 1267 1268 cdns_writel(cdns, CDNS_MCP_SLAVE_INTMASK0, slave_intmask0); 1269 cdns_writel(cdns, CDNS_MCP_SLAVE_INTMASK1, slave_intmask1); 1270 cdns_writel(cdns, CDNS_MCP_INTMASK, mask); 1271 1272 return 0; 1273 } 1274 EXPORT_SYMBOL(sdw_cdns_enable_interrupt); 1275 1276 static int cdns_allocate_pdi(struct sdw_cdns *cdns, 1277 struct sdw_cdns_pdi **stream, 1278 u32 num) 1279 { 1280 struct sdw_cdns_pdi *pdi; 1281 int i; 1282 1283 if (!num) 1284 return 0; 1285 1286 pdi = devm_kcalloc(cdns->dev, num, sizeof(*pdi), GFP_KERNEL); 1287 if (!pdi) 1288 return -ENOMEM; 1289 1290 for (i = 0; i < num; i++) { 1291 pdi[i].num = i; 1292 } 1293 1294 *stream = pdi; 1295 return 0; 1296 } 1297 1298 /** 1299 * sdw_cdns_pdi_init() - PDI initialization routine 1300 * 1301 * @cdns: Cadence instance 1302 * @config: Stream configurations 1303 */ 1304 int sdw_cdns_pdi_init(struct sdw_cdns *cdns, 1305 struct sdw_cdns_stream_config config) 1306 { 1307 struct sdw_cdns_streams *stream; 1308 int ret; 1309 1310 cdns->pcm.num_bd = config.pcm_bd; 1311 cdns->pcm.num_in = config.pcm_in; 1312 cdns->pcm.num_out = config.pcm_out; 1313 1314 /* Allocate PDIs for PCMs */ 1315 stream = &cdns->pcm; 1316 1317 /* we allocate PDI0 and PDI1 which are used for Bulk */ 1318 ret = cdns_allocate_pdi(cdns, &stream->bd, stream->num_bd); 1319 if (ret) 1320 return ret; 1321 1322 ret = cdns_allocate_pdi(cdns, &stream->in, stream->num_in); 1323 if (ret) 1324 return ret; 1325 1326 ret = cdns_allocate_pdi(cdns, &stream->out, stream->num_out); 1327 if (ret) 1328 return ret; 1329 1330 /* Update total number of PCM PDIs */ 1331 stream->num_pdi = stream->num_bd + stream->num_in + stream->num_out; 1332 cdns->num_ports = stream->num_pdi; 1333 1334 return 0; 1335 } 1336 EXPORT_SYMBOL(sdw_cdns_pdi_init); 1337 1338 static u32 cdns_set_initial_frame_shape(int n_rows, int n_cols) 1339 { 1340 u32 val; 1341 int c; 1342 int r; 1343 1344 r = sdw_find_row_index(n_rows); 1345 c = sdw_find_col_index(n_cols); 1346 1347 val = FIELD_PREP(CDNS_MCP_FRAME_SHAPE_ROW_MASK, r); 1348 val |= FIELD_PREP(CDNS_MCP_FRAME_SHAPE_COL_MASK, c); 1349 1350 return val; 1351 } 1352 1353 static int cdns_init_clock_ctrl(struct sdw_cdns *cdns) 1354 { 1355 struct sdw_bus *bus = &cdns->bus; 1356 struct sdw_master_prop *prop = &bus->prop; 1357 u32 val; 1358 u32 ssp_interval; 1359 int divider; 1360 1361 dev_dbg(cdns->dev, "mclk %d max %d row %d col %d\n", 1362 prop->mclk_freq, 1363 prop->max_clk_freq, 1364 prop->default_row, 1365 prop->default_col); 1366 1367 if (!prop->default_frame_rate || !prop->default_row) { 1368 dev_err(cdns->dev, "Default frame_rate %d or row %d is invalid\n", 1369 prop->default_frame_rate, prop->default_row); 1370 return -EINVAL; 1371 } 1372 1373 /* Set clock divider */ 1374 divider = (prop->mclk_freq * SDW_DOUBLE_RATE_FACTOR / 1375 bus->params.curr_dr_freq) - 1; 1376 1377 cdns_updatel(cdns, CDNS_MCP_CLK_CTRL0, 1378 CDNS_MCP_CLK_MCLKD_MASK, divider); 1379 cdns_updatel(cdns, CDNS_MCP_CLK_CTRL1, 1380 CDNS_MCP_CLK_MCLKD_MASK, divider); 1381 1382 /* Set frame shape base on the actual bus frequency. */ 1383 prop->default_col = bus->params.curr_dr_freq / 1384 prop->default_frame_rate / prop->default_row; 1385 1386 /* 1387 * Frame shape changes after initialization have to be done 1388 * with the bank switch mechanism 1389 */ 1390 val = cdns_set_initial_frame_shape(prop->default_row, 1391 prop->default_col); 1392 cdns_writel(cdns, CDNS_MCP_FRAME_SHAPE_INIT, val); 1393 1394 /* Set SSP interval to default value */ 1395 ssp_interval = prop->default_frame_rate / SDW_CADENCE_GSYNC_HZ; 1396 cdns_writel(cdns, CDNS_MCP_SSP_CTRL0, ssp_interval); 1397 cdns_writel(cdns, CDNS_MCP_SSP_CTRL1, ssp_interval); 1398 1399 return 0; 1400 } 1401 1402 /** 1403 * sdw_cdns_soft_reset() - Cadence soft-reset 1404 * @cdns: Cadence instance 1405 */ 1406 int sdw_cdns_soft_reset(struct sdw_cdns *cdns) 1407 { 1408 int ret; 1409 1410 cdns_updatel(cdns, CDNS_MCP_CONTROL, CDNS_MCP_CONTROL_SOFT_RST, 1411 CDNS_MCP_CONTROL_SOFT_RST); 1412 1413 ret = cdns_config_update(cdns); 1414 if (ret < 0) { 1415 dev_err(cdns->dev, "%s: config update failed\n", __func__); 1416 return ret; 1417 } 1418 1419 ret = cdns_set_wait(cdns, CDNS_MCP_CONTROL, CDNS_MCP_CONTROL_SOFT_RST, 0); 1420 if (ret < 0) 1421 dev_err(cdns->dev, "%s: Soft Reset timed out\n", __func__); 1422 1423 return ret; 1424 } 1425 EXPORT_SYMBOL(sdw_cdns_soft_reset); 1426 1427 /** 1428 * sdw_cdns_init() - Cadence initialization 1429 * @cdns: Cadence instance 1430 */ 1431 int sdw_cdns_init(struct sdw_cdns *cdns) 1432 { 1433 int ret; 1434 u32 val; 1435 1436 ret = cdns_init_clock_ctrl(cdns); 1437 if (ret) 1438 return ret; 1439 1440 sdw_cdns_check_self_clearing_bits(cdns, __func__, false, 0); 1441 1442 /* reset msg_count to default value of FIFOLEVEL */ 1443 cdns->msg_count = cdns_readl(cdns, CDNS_MCP_FIFOLEVEL); 1444 1445 /* flush command FIFOs */ 1446 cdns_updatel(cdns, CDNS_MCP_CONTROL, CDNS_MCP_CONTROL_CMD_RST, 1447 CDNS_MCP_CONTROL_CMD_RST); 1448 1449 /* Set cmd accept mode */ 1450 cdns_ip_updatel(cdns, CDNS_IP_MCP_CONTROL, CDNS_IP_MCP_CONTROL_CMD_ACCEPT, 1451 CDNS_IP_MCP_CONTROL_CMD_ACCEPT); 1452 1453 /* disable wakeup */ 1454 cdns_ip_updatel(cdns, CDNS_IP_MCP_CONTROL, 1455 CDNS_IP_MCP_CONTROL_BLOCK_WAKEUP, 1456 0); 1457 1458 /* Configure mcp config */ 1459 val = cdns_readl(cdns, CDNS_MCP_CONFIG); 1460 1461 /* Disable auto bus release */ 1462 val &= ~CDNS_MCP_CONFIG_BUS_REL; 1463 1464 cdns_writel(cdns, CDNS_MCP_CONFIG, val); 1465 1466 /* Configure IP mcp config */ 1467 val = cdns_ip_readl(cdns, CDNS_IP_MCP_CONFIG); 1468 1469 /* enable bus operations with clock and data */ 1470 val &= ~CDNS_IP_MCP_CONFIG_OP; 1471 val |= CDNS_IP_MCP_CONFIG_OP_NORMAL; 1472 1473 /* Set cmd mode for Tx and Rx cmds */ 1474 val &= ~CDNS_IP_MCP_CONFIG_CMD; 1475 1476 /* Disable sniffer mode */ 1477 val &= ~CDNS_IP_MCP_CONFIG_SNIFFER; 1478 1479 if (cdns->bus.multi_link) 1480 /* Set Multi-master mode to take gsync into account */ 1481 val |= CDNS_IP_MCP_CONFIG_MMASTER; 1482 1483 /* leave frame delay to hardware default of 0x1F */ 1484 1485 /* leave command retry to hardware default of 0 */ 1486 1487 cdns_ip_writel(cdns, CDNS_IP_MCP_CONFIG, val); 1488 1489 /* changes will be committed later */ 1490 return 0; 1491 } 1492 EXPORT_SYMBOL(sdw_cdns_init); 1493 1494 int cdns_bus_conf(struct sdw_bus *bus, struct sdw_bus_params *params) 1495 { 1496 struct sdw_master_prop *prop = &bus->prop; 1497 struct sdw_cdns *cdns = bus_to_cdns(bus); 1498 int mcp_clkctrl_off; 1499 int divider; 1500 1501 if (!params->curr_dr_freq) { 1502 dev_err(cdns->dev, "NULL curr_dr_freq\n"); 1503 return -EINVAL; 1504 } 1505 1506 divider = prop->mclk_freq * SDW_DOUBLE_RATE_FACTOR / 1507 params->curr_dr_freq; 1508 divider--; /* divider is 1/(N+1) */ 1509 1510 if (params->next_bank) 1511 mcp_clkctrl_off = CDNS_MCP_CLK_CTRL1; 1512 else 1513 mcp_clkctrl_off = CDNS_MCP_CLK_CTRL0; 1514 1515 cdns_updatel(cdns, mcp_clkctrl_off, CDNS_MCP_CLK_MCLKD_MASK, divider); 1516 1517 return 0; 1518 } 1519 EXPORT_SYMBOL(cdns_bus_conf); 1520 1521 static int cdns_port_params(struct sdw_bus *bus, 1522 struct sdw_port_params *p_params, unsigned int bank) 1523 { 1524 struct sdw_cdns *cdns = bus_to_cdns(bus); 1525 int dpn_config_off_source; 1526 int dpn_config_off_target; 1527 int target_num = p_params->num; 1528 int source_num = p_params->num; 1529 bool override = false; 1530 int dpn_config; 1531 1532 if (target_num == cdns->pdi_loopback_target && 1533 cdns->pdi_loopback_source != -1) { 1534 source_num = cdns->pdi_loopback_source; 1535 override = true; 1536 } 1537 1538 if (bank) { 1539 dpn_config_off_source = CDNS_DPN_B1_CONFIG(source_num); 1540 dpn_config_off_target = CDNS_DPN_B1_CONFIG(target_num); 1541 } else { 1542 dpn_config_off_source = CDNS_DPN_B0_CONFIG(source_num); 1543 dpn_config_off_target = CDNS_DPN_B0_CONFIG(target_num); 1544 } 1545 1546 dpn_config = cdns_readl(cdns, dpn_config_off_source); 1547 1548 /* use port params if there is no loopback, otherwise use source as is */ 1549 if (!override) { 1550 u32p_replace_bits(&dpn_config, p_params->bps - 1, CDNS_DPN_CONFIG_WL); 1551 u32p_replace_bits(&dpn_config, p_params->flow_mode, CDNS_DPN_CONFIG_PORT_FLOW); 1552 u32p_replace_bits(&dpn_config, p_params->data_mode, CDNS_DPN_CONFIG_PORT_DAT); 1553 } 1554 1555 cdns_writel(cdns, dpn_config_off_target, dpn_config); 1556 1557 return 0; 1558 } 1559 1560 static int cdns_transport_params(struct sdw_bus *bus, 1561 struct sdw_transport_params *t_params, 1562 enum sdw_reg_bank bank) 1563 { 1564 struct sdw_cdns *cdns = bus_to_cdns(bus); 1565 int dpn_config; 1566 int dpn_config_off_source; 1567 int dpn_config_off_target; 1568 int dpn_hctrl; 1569 int dpn_hctrl_off_source; 1570 int dpn_hctrl_off_target; 1571 int dpn_offsetctrl; 1572 int dpn_offsetctrl_off_source; 1573 int dpn_offsetctrl_off_target; 1574 int dpn_samplectrl; 1575 int dpn_samplectrl_off_source; 1576 int dpn_samplectrl_off_target; 1577 int source_num = t_params->port_num; 1578 int target_num = t_params->port_num; 1579 bool override = false; 1580 1581 if (target_num == cdns->pdi_loopback_target && 1582 cdns->pdi_loopback_source != -1) { 1583 source_num = cdns->pdi_loopback_source; 1584 override = true; 1585 } 1586 1587 /* 1588 * Note: Only full data port is supported on the Master side for 1589 * both PCM and PDM ports. 1590 */ 1591 1592 if (bank) { 1593 dpn_config_off_source = CDNS_DPN_B1_CONFIG(source_num); 1594 dpn_hctrl_off_source = CDNS_DPN_B1_HCTRL(source_num); 1595 dpn_offsetctrl_off_source = CDNS_DPN_B1_OFFSET_CTRL(source_num); 1596 dpn_samplectrl_off_source = CDNS_DPN_B1_SAMPLE_CTRL(source_num); 1597 1598 dpn_config_off_target = CDNS_DPN_B1_CONFIG(target_num); 1599 dpn_hctrl_off_target = CDNS_DPN_B1_HCTRL(target_num); 1600 dpn_offsetctrl_off_target = CDNS_DPN_B1_OFFSET_CTRL(target_num); 1601 dpn_samplectrl_off_target = CDNS_DPN_B1_SAMPLE_CTRL(target_num); 1602 1603 } else { 1604 dpn_config_off_source = CDNS_DPN_B0_CONFIG(source_num); 1605 dpn_hctrl_off_source = CDNS_DPN_B0_HCTRL(source_num); 1606 dpn_offsetctrl_off_source = CDNS_DPN_B0_OFFSET_CTRL(source_num); 1607 dpn_samplectrl_off_source = CDNS_DPN_B0_SAMPLE_CTRL(source_num); 1608 1609 dpn_config_off_target = CDNS_DPN_B0_CONFIG(target_num); 1610 dpn_hctrl_off_target = CDNS_DPN_B0_HCTRL(target_num); 1611 dpn_offsetctrl_off_target = CDNS_DPN_B0_OFFSET_CTRL(target_num); 1612 dpn_samplectrl_off_target = CDNS_DPN_B0_SAMPLE_CTRL(target_num); 1613 } 1614 1615 dpn_config = cdns_readl(cdns, dpn_config_off_source); 1616 if (!override) { 1617 u32p_replace_bits(&dpn_config, t_params->blk_grp_ctrl, CDNS_DPN_CONFIG_BGC); 1618 u32p_replace_bits(&dpn_config, t_params->blk_pkg_mode, CDNS_DPN_CONFIG_BPM); 1619 } 1620 cdns_writel(cdns, dpn_config_off_target, dpn_config); 1621 1622 if (!override) { 1623 dpn_offsetctrl = 0; 1624 u32p_replace_bits(&dpn_offsetctrl, t_params->offset1, CDNS_DPN_OFFSET_CTRL_1); 1625 u32p_replace_bits(&dpn_offsetctrl, t_params->offset2, CDNS_DPN_OFFSET_CTRL_2); 1626 } else { 1627 dpn_offsetctrl = cdns_readl(cdns, dpn_offsetctrl_off_source); 1628 } 1629 cdns_writel(cdns, dpn_offsetctrl_off_target, dpn_offsetctrl); 1630 1631 if (!override) { 1632 dpn_hctrl = 0; 1633 u32p_replace_bits(&dpn_hctrl, t_params->hstart, CDNS_DPN_HCTRL_HSTART); 1634 u32p_replace_bits(&dpn_hctrl, t_params->hstop, CDNS_DPN_HCTRL_HSTOP); 1635 u32p_replace_bits(&dpn_hctrl, t_params->lane_ctrl, CDNS_DPN_HCTRL_LCTRL); 1636 } else { 1637 dpn_hctrl = cdns_readl(cdns, dpn_hctrl_off_source); 1638 } 1639 cdns_writel(cdns, dpn_hctrl_off_target, dpn_hctrl); 1640 1641 if (!override) 1642 dpn_samplectrl = t_params->sample_interval - 1; 1643 else 1644 dpn_samplectrl = cdns_readl(cdns, dpn_samplectrl_off_source); 1645 cdns_writel(cdns, dpn_samplectrl_off_target, dpn_samplectrl); 1646 1647 return 0; 1648 } 1649 1650 static int cdns_port_enable(struct sdw_bus *bus, 1651 struct sdw_enable_ch *enable_ch, unsigned int bank) 1652 { 1653 struct sdw_cdns *cdns = bus_to_cdns(bus); 1654 int dpn_chnen_off, ch_mask; 1655 1656 if (bank) 1657 dpn_chnen_off = CDNS_DPN_B1_CH_EN(enable_ch->port_num); 1658 else 1659 dpn_chnen_off = CDNS_DPN_B0_CH_EN(enable_ch->port_num); 1660 1661 ch_mask = enable_ch->ch_mask * enable_ch->enable; 1662 cdns_writel(cdns, dpn_chnen_off, ch_mask); 1663 1664 return 0; 1665 } 1666 1667 static const struct sdw_master_port_ops cdns_port_ops = { 1668 .dpn_set_port_params = cdns_port_params, 1669 .dpn_set_port_transport_params = cdns_transport_params, 1670 .dpn_port_enable_ch = cdns_port_enable, 1671 }; 1672 1673 /** 1674 * sdw_cdns_is_clock_stop: Check clock status 1675 * 1676 * @cdns: Cadence instance 1677 */ 1678 bool sdw_cdns_is_clock_stop(struct sdw_cdns *cdns) 1679 { 1680 return !!(cdns_readl(cdns, CDNS_MCP_STAT) & CDNS_MCP_STAT_CLK_STOP); 1681 } 1682 EXPORT_SYMBOL(sdw_cdns_is_clock_stop); 1683 1684 /** 1685 * sdw_cdns_clock_stop: Cadence clock stop configuration routine 1686 * 1687 * @cdns: Cadence instance 1688 * @block_wake: prevent wakes if required by the platform 1689 */ 1690 int sdw_cdns_clock_stop(struct sdw_cdns *cdns, bool block_wake) 1691 { 1692 bool slave_present = false; 1693 struct sdw_slave *slave; 1694 int ret; 1695 1696 sdw_cdns_check_self_clearing_bits(cdns, __func__, false, 0); 1697 1698 /* Check suspend status */ 1699 if (sdw_cdns_is_clock_stop(cdns)) { 1700 dev_dbg(cdns->dev, "Clock is already stopped\n"); 1701 return 0; 1702 } 1703 1704 /* 1705 * Before entering clock stop we mask the Slave 1706 * interrupts. This helps avoid having to deal with e.g. a 1707 * Slave becoming UNATTACHED while the clock is being stopped 1708 */ 1709 cdns_enable_slave_interrupts(cdns, false); 1710 1711 /* 1712 * For specific platforms, it is required to be able to put 1713 * master into a state in which it ignores wake-up trials 1714 * in clock stop state 1715 */ 1716 if (block_wake) 1717 cdns_ip_updatel(cdns, CDNS_IP_MCP_CONTROL, 1718 CDNS_IP_MCP_CONTROL_BLOCK_WAKEUP, 1719 CDNS_IP_MCP_CONTROL_BLOCK_WAKEUP); 1720 1721 list_for_each_entry(slave, &cdns->bus.slaves, node) { 1722 if (slave->status == SDW_SLAVE_ATTACHED || 1723 slave->status == SDW_SLAVE_ALERT) { 1724 slave_present = true; 1725 break; 1726 } 1727 } 1728 1729 /* commit changes */ 1730 ret = cdns_config_update(cdns); 1731 if (ret < 0) { 1732 dev_err(cdns->dev, "%s: config_update failed\n", __func__); 1733 return ret; 1734 } 1735 1736 /* Prepare slaves for clock stop */ 1737 if (slave_present) { 1738 ret = sdw_bus_prep_clk_stop(&cdns->bus); 1739 if (ret < 0 && ret != -ENODATA) { 1740 dev_err(cdns->dev, "prepare clock stop failed %d\n", ret); 1741 return ret; 1742 } 1743 } 1744 1745 /* 1746 * Enter clock stop mode and only report errors if there are 1747 * Slave devices present (ALERT or ATTACHED) 1748 */ 1749 ret = sdw_bus_clk_stop(&cdns->bus); 1750 if (ret < 0 && slave_present && ret != -ENODATA) { 1751 dev_err(cdns->dev, "bus clock stop failed %d\n", ret); 1752 return ret; 1753 } 1754 1755 ret = cdns_set_wait(cdns, CDNS_MCP_STAT, 1756 CDNS_MCP_STAT_CLK_STOP, 1757 CDNS_MCP_STAT_CLK_STOP); 1758 if (ret < 0) 1759 dev_err(cdns->dev, "Clock stop failed %d\n", ret); 1760 1761 return ret; 1762 } 1763 EXPORT_SYMBOL(sdw_cdns_clock_stop); 1764 1765 /** 1766 * sdw_cdns_clock_restart: Cadence PM clock restart configuration routine 1767 * 1768 * @cdns: Cadence instance 1769 * @bus_reset: context may be lost while in low power modes and the bus 1770 * may require a Severe Reset and re-enumeration after a wake. 1771 */ 1772 int sdw_cdns_clock_restart(struct sdw_cdns *cdns, bool bus_reset) 1773 { 1774 int ret; 1775 1776 /* unmask Slave interrupts that were masked when stopping the clock */ 1777 cdns_enable_slave_interrupts(cdns, true); 1778 1779 ret = cdns_clear_bit(cdns, CDNS_MCP_CONTROL, 1780 CDNS_MCP_CONTROL_CLK_STOP_CLR); 1781 if (ret < 0) { 1782 dev_err(cdns->dev, "Couldn't exit from clock stop\n"); 1783 return ret; 1784 } 1785 1786 ret = cdns_set_wait(cdns, CDNS_MCP_STAT, CDNS_MCP_STAT_CLK_STOP, 0); 1787 if (ret < 0) { 1788 dev_err(cdns->dev, "clock stop exit failed %d\n", ret); 1789 return ret; 1790 } 1791 1792 cdns_ip_updatel(cdns, CDNS_IP_MCP_CONTROL, 1793 CDNS_IP_MCP_CONTROL_BLOCK_WAKEUP, 0); 1794 1795 cdns_ip_updatel(cdns, CDNS_IP_MCP_CONTROL, CDNS_IP_MCP_CONTROL_CMD_ACCEPT, 1796 CDNS_IP_MCP_CONTROL_CMD_ACCEPT); 1797 1798 if (!bus_reset) { 1799 1800 /* enable bus operations with clock and data */ 1801 cdns_ip_updatel(cdns, CDNS_IP_MCP_CONFIG, 1802 CDNS_IP_MCP_CONFIG_OP, 1803 CDNS_IP_MCP_CONFIG_OP_NORMAL); 1804 1805 ret = cdns_config_update(cdns); 1806 if (ret < 0) { 1807 dev_err(cdns->dev, "%s: config_update failed\n", __func__); 1808 return ret; 1809 } 1810 1811 ret = sdw_bus_exit_clk_stop(&cdns->bus); 1812 if (ret < 0) 1813 dev_err(cdns->dev, "bus failed to exit clock stop %d\n", ret); 1814 } 1815 1816 return ret; 1817 } 1818 EXPORT_SYMBOL(sdw_cdns_clock_restart); 1819 1820 /** 1821 * sdw_cdns_probe() - Cadence probe routine 1822 * @cdns: Cadence instance 1823 */ 1824 int sdw_cdns_probe(struct sdw_cdns *cdns) 1825 { 1826 init_completion(&cdns->tx_complete); 1827 cdns->bus.port_ops = &cdns_port_ops; 1828 1829 mutex_init(&cdns->status_update_lock); 1830 1831 INIT_WORK(&cdns->work, cdns_update_slave_status_work); 1832 INIT_DELAYED_WORK(&cdns->attach_dwork, cdns_check_attached_status_dwork); 1833 1834 return 0; 1835 } 1836 EXPORT_SYMBOL(sdw_cdns_probe); 1837 1838 int cdns_set_sdw_stream(struct snd_soc_dai *dai, 1839 void *stream, int direction) 1840 { 1841 struct sdw_cdns *cdns = snd_soc_dai_get_drvdata(dai); 1842 struct sdw_cdns_dai_runtime *dai_runtime; 1843 1844 dai_runtime = cdns->dai_runtime_array[dai->id]; 1845 1846 if (stream) { 1847 /* first paranoia check */ 1848 if (dai_runtime) { 1849 dev_err(dai->dev, 1850 "dai_runtime already allocated for dai %s\n", 1851 dai->name); 1852 return -EINVAL; 1853 } 1854 1855 /* allocate and set dai_runtime info */ 1856 dai_runtime = kzalloc_obj(*dai_runtime); 1857 if (!dai_runtime) 1858 return -ENOMEM; 1859 1860 dai_runtime->stream_type = SDW_STREAM_PCM; 1861 1862 dai_runtime->bus = &cdns->bus; 1863 dai_runtime->link_id = cdns->instance; 1864 1865 dai_runtime->stream = stream; 1866 dai_runtime->direction = direction; 1867 1868 cdns->dai_runtime_array[dai->id] = dai_runtime; 1869 } else { 1870 /* second paranoia check */ 1871 if (!dai_runtime) { 1872 dev_err(dai->dev, 1873 "dai_runtime not allocated for dai %s\n", 1874 dai->name); 1875 return -EINVAL; 1876 } 1877 1878 /* for NULL stream we release allocated dai_runtime */ 1879 kfree(dai_runtime); 1880 cdns->dai_runtime_array[dai->id] = NULL; 1881 } 1882 return 0; 1883 } 1884 EXPORT_SYMBOL(cdns_set_sdw_stream); 1885 1886 /** 1887 * cdns_find_pdi() - Find a free PDI 1888 * 1889 * @cdns: Cadence instance 1890 * @num: Number of PDIs 1891 * @pdi: PDI instances 1892 * @dai_id: DAI id 1893 * 1894 * Find a PDI for a given PDI array. The PDI num and dai_id are 1895 * expected to match, return NULL otherwise. 1896 */ 1897 static struct sdw_cdns_pdi *cdns_find_pdi(struct sdw_cdns *cdns, 1898 unsigned int num, 1899 struct sdw_cdns_pdi *pdi, 1900 int dai_id) 1901 { 1902 int i; 1903 1904 for (i = 0; i < num; i++) 1905 if (pdi[i].num == dai_id) 1906 return &pdi[i]; 1907 1908 return NULL; 1909 } 1910 1911 /** 1912 * sdw_cdns_config_stream: Configure a stream 1913 * 1914 * @cdns: Cadence instance 1915 * @ch: Channel count 1916 * @dir: Data direction 1917 * @pdi: PDI to be used 1918 */ 1919 void sdw_cdns_config_stream(struct sdw_cdns *cdns, 1920 u32 ch, u32 dir, struct sdw_cdns_pdi *pdi) 1921 { 1922 u32 offset, val = 0; 1923 1924 if (dir == SDW_DATA_DIR_RX) { 1925 val = CDNS_PORTCTRL_DIRN; 1926 1927 if (cdns->bus.params.m_data_mode != SDW_PORT_DATA_MODE_NORMAL) 1928 val |= CDNS_PORTCTRL_TEST_FAILED; 1929 } else if (pdi->num == 0 || pdi->num == 1) { 1930 val |= CDNS_PORTCTRL_BULK_ENABLE; 1931 } 1932 offset = CDNS_PORTCTRL + pdi->num * CDNS_PORT_OFFSET; 1933 cdns_updatel(cdns, offset, 1934 CDNS_PORTCTRL_DIRN | CDNS_PORTCTRL_TEST_FAILED | 1935 CDNS_PORTCTRL_BULK_ENABLE, 1936 val); 1937 1938 /* The DataPort0 needs to be mapped to both PDI0 and PDI1 ! */ 1939 if (pdi->num == 1) 1940 val = 0; 1941 else 1942 val = pdi->num; 1943 val |= CDNS_PDI_CONFIG_SOFT_RESET; 1944 val |= FIELD_PREP(CDNS_PDI_CONFIG_CHANNEL, (1 << ch) - 1); 1945 cdns_writel(cdns, CDNS_PDI_CONFIG(pdi->num), val); 1946 } 1947 EXPORT_SYMBOL(sdw_cdns_config_stream); 1948 1949 /** 1950 * sdw_cdns_alloc_pdi() - Allocate a PDI 1951 * 1952 * @cdns: Cadence instance 1953 * @stream: Stream to be allocated 1954 * @ch: Channel count 1955 * @dir: Data direction 1956 * @dai_id: DAI id 1957 */ 1958 struct sdw_cdns_pdi *sdw_cdns_alloc_pdi(struct sdw_cdns *cdns, 1959 struct sdw_cdns_streams *stream, 1960 u32 ch, u32 dir, int dai_id) 1961 { 1962 struct sdw_cdns_pdi *pdi = NULL; 1963 1964 if (dir == SDW_DATA_DIR_RX) 1965 pdi = cdns_find_pdi(cdns, stream->num_in, stream->in, 1966 dai_id); 1967 else 1968 pdi = cdns_find_pdi(cdns, stream->num_out, stream->out, 1969 dai_id); 1970 1971 /* check if we found a PDI, else find in bi-directional */ 1972 if (!pdi) 1973 pdi = cdns_find_pdi(cdns, stream->num_bd, stream->bd, 1974 dai_id); 1975 1976 if (pdi) { 1977 pdi->l_ch_num = 0; 1978 pdi->h_ch_num = ch - 1; 1979 pdi->dir = dir; 1980 pdi->ch_count = ch; 1981 } 1982 1983 return pdi; 1984 } 1985 EXPORT_SYMBOL(sdw_cdns_alloc_pdi); 1986 1987 /* 1988 * the MIPI SoundWire CRC8 polynomial is X^8 + X^6 + X^3 + X^2 + 1, MSB first 1989 * The value is (1)01001101 = 0x4D 1990 * 1991 * the table below was generated with 1992 * 1993 * u8 crc8_lookup_table[CRC8_TABLE_SIZE]; 1994 * crc8_populate_msb(crc8_lookup_table, SDW_CRC8_POLY); 1995 * 1996 */ 1997 #define SDW_CRC8_SEED 0xFF 1998 #define SDW_CRC8_POLY 0x4D 1999 2000 static const u8 sdw_crc8_lookup_msb[CRC8_TABLE_SIZE] = { 2001 0x00, 0x4d, 0x9a, 0xd7, 0x79, 0x34, 0xe3, 0xae, /* 0 - 7 */ 2002 0xf2, 0xbf, 0x68, 0x25, 0x8b, 0xc6, 0x11, 0x5c, /* 8 -15 */ 2003 0xa9, 0xe4, 0x33, 0x7e, 0xd0, 0x9d, 0x4a, 0x07, /* 16 - 23 */ 2004 0x5b, 0x16, 0xc1, 0x8c, 0x22, 0x6f, 0xb8, 0xf5, /* 24 - 31 */ 2005 0x1f, 0x52, 0x85, 0xc8, 0x66, 0x2b, 0xfc, 0xb1, /* 32 - 39 */ 2006 0xed, 0xa0, 0x77, 0x3a, 0x94, 0xd9, 0x0e, 0x43, /* 40 - 47 */ 2007 0xb6, 0xfb, 0x2c, 0x61, 0xcf, 0x82, 0x55, 0x18, /* 48 - 55 */ 2008 0x44, 0x09, 0xde, 0x93, 0x3d, 0x70, 0xa7, 0xea, /* 56 - 63 */ 2009 0x3e, 0x73, 0xa4, 0xe9, 0x47, 0x0a, 0xdd, 0x90, /* 64 - 71 */ 2010 0xcc, 0x81, 0x56, 0x1b, 0xb5, 0xf8, 0x2f, 0x62, /* 72 - 79 */ 2011 0x97, 0xda, 0x0d, 0x40, 0xee, 0xa3, 0x74, 0x39, /* 80 - 87 */ 2012 0x65, 0x28, 0xff, 0xb2, 0x1c, 0x51, 0x86, 0xcb, /* 88 - 95 */ 2013 0x21, 0x6c, 0xbb, 0xf6, 0x58, 0x15, 0xc2, 0x8f, /* 96 - 103 */ 2014 0xd3, 0x9e, 0x49, 0x04, 0xaa, 0xe7, 0x30, 0x7d, /* 104 - 111 */ 2015 0x88, 0xc5, 0x12, 0x5f, 0xf1, 0xbc, 0x6b, 0x26, /* 112 - 119 */ 2016 0x7a, 0x37, 0xe0, 0xad, 0x03, 0x4e, 0x99, 0xd4, /* 120 - 127 */ 2017 0x7c, 0x31, 0xe6, 0xab, 0x05, 0x48, 0x9f, 0xd2, /* 128 - 135 */ 2018 0x8e, 0xc3, 0x14, 0x59, 0xf7, 0xba, 0x6d, 0x20, /* 136 - 143 */ 2019 0xd5, 0x98, 0x4f, 0x02, 0xac, 0xe1, 0x36, 0x7b, /* 144 - 151 */ 2020 0x27, 0x6a, 0xbd, 0xf0, 0x5e, 0x13, 0xc4, 0x89, /* 152 - 159 */ 2021 0x63, 0x2e, 0xf9, 0xb4, 0x1a, 0x57, 0x80, 0xcd, /* 160 - 167 */ 2022 0x91, 0xdc, 0x0b, 0x46, 0xe8, 0xa5, 0x72, 0x3f, /* 168 - 175 */ 2023 0xca, 0x87, 0x50, 0x1d, 0xb3, 0xfe, 0x29, 0x64, /* 176 - 183 */ 2024 0x38, 0x75, 0xa2, 0xef, 0x41, 0x0c, 0xdb, 0x96, /* 184 - 191 */ 2025 0x42, 0x0f, 0xd8, 0x95, 0x3b, 0x76, 0xa1, 0xec, /* 192 - 199 */ 2026 0xb0, 0xfd, 0x2a, 0x67, 0xc9, 0x84, 0x53, 0x1e, /* 200 - 207 */ 2027 0xeb, 0xa6, 0x71, 0x3c, 0x92, 0xdf, 0x08, 0x45, /* 208 - 215 */ 2028 0x19, 0x54, 0x83, 0xce, 0x60, 0x2d, 0xfa, 0xb7, /* 216 - 223 */ 2029 0x5d, 0x10, 0xc7, 0x8a, 0x24, 0x69, 0xbe, 0xf3, /* 224 - 231 */ 2030 0xaf, 0xe2, 0x35, 0x78, 0xd6, 0x9b, 0x4c, 0x01, /* 232 - 239 */ 2031 0xf4, 0xb9, 0x6e, 0x23, 0x8d, 0xc0, 0x17, 0x5a, /* 240 - 247 */ 2032 0x06, 0x4b, 0x9c, 0xd1, 0x7f, 0x32, 0xe5, 0xa8 /* 248 - 255 */ 2033 }; 2034 2035 /* BPT/BRA helpers */ 2036 2037 #define SDW_CDNS_BRA_HDR 6 /* defined by MIPI */ 2038 #define SDW_CDNS_BRA_HDR_CRC 1 /* defined by MIPI */ 2039 #define SDW_CDNS_BRA_HDR_CRC_PAD 1 /* Cadence only */ 2040 #define SDW_CDNS_BRA_HDR_RESP 1 /* defined by MIPI */ 2041 #define SDW_CDNS_BRA_HDR_RESP_PAD 1 /* Cadence only */ 2042 2043 #define SDW_CDNS_BRA_DATA_PAD 1 /* Cadence only */ 2044 #define SDW_CDNS_BRA_DATA_CRC 1 /* defined by MIPI */ 2045 #define SDW_CDNS_BRA_DATA_CRC_PAD 1 /* Cadence only */ 2046 2047 #define SDW_CDNS_BRA_FOOTER_RESP 1 /* defined by MIPI */ 2048 #define SDW_CDNS_BRA_FOOTER_RESP_PAD 1 /* Cadence only */ 2049 2050 #define SDW_CDNS_WRITE_PDI1_BUFFER_SIZE \ 2051 ((SDW_CDNS_BRA_HDR_RESP + SDW_CDNS_BRA_HDR_RESP_PAD + \ 2052 SDW_CDNS_BRA_FOOTER_RESP + SDW_CDNS_BRA_FOOTER_RESP_PAD) * 2) 2053 2054 #define SDW_CDNS_READ_PDI0_BUFFER_SIZE \ 2055 ((SDW_CDNS_BRA_HDR + SDW_CDNS_BRA_HDR_CRC + SDW_CDNS_BRA_HDR_CRC_PAD) * 2) 2056 2057 static unsigned int sdw_cdns_bra_actual_data_size(unsigned int allocated_bytes_per_frame) 2058 { 2059 unsigned int total; 2060 2061 if (allocated_bytes_per_frame < (SDW_CDNS_BRA_HDR + SDW_CDNS_BRA_HDR_CRC + 2062 SDW_CDNS_BRA_HDR_RESP + SDW_CDNS_BRA_DATA_CRC + 2063 SDW_CDNS_BRA_FOOTER_RESP)) 2064 return 0; 2065 2066 total = allocated_bytes_per_frame - SDW_CDNS_BRA_HDR - SDW_CDNS_BRA_HDR_CRC - 2067 SDW_CDNS_BRA_HDR_RESP - SDW_CDNS_BRA_DATA_CRC - SDW_CDNS_BRA_FOOTER_RESP; 2068 2069 return total; 2070 } 2071 2072 static unsigned int sdw_cdns_write_pdi0_buffer_size(unsigned int actual_data_size) 2073 { 2074 unsigned int total; 2075 2076 total = SDW_CDNS_BRA_HDR + SDW_CDNS_BRA_HDR_CRC + SDW_CDNS_BRA_HDR_CRC_PAD; 2077 2078 total += actual_data_size; 2079 if (actual_data_size & 1) 2080 total += SDW_CDNS_BRA_DATA_PAD; 2081 2082 total += SDW_CDNS_BRA_DATA_CRC + SDW_CDNS_BRA_DATA_CRC_PAD; 2083 2084 return total * 2; 2085 } 2086 2087 static unsigned int sdw_cdns_read_pdi1_buffer_size(unsigned int actual_data_size) 2088 { 2089 unsigned int total; 2090 2091 total = SDW_CDNS_BRA_HDR_RESP + SDW_CDNS_BRA_HDR_RESP_PAD; 2092 2093 total += actual_data_size; 2094 if (actual_data_size & 1) 2095 total += SDW_CDNS_BRA_DATA_PAD; 2096 2097 total += SDW_CDNS_BRA_HDR_CRC + SDW_CDNS_BRA_HDR_CRC_PAD; 2098 2099 total += SDW_CDNS_BRA_FOOTER_RESP + SDW_CDNS_BRA_FOOTER_RESP_PAD; 2100 2101 return total * 2; 2102 } 2103 2104 int sdw_cdns_bpt_find_bandwidth(int command, /* 0: write, 1: read */ 2105 int row, int col, int frame_rate, 2106 unsigned int *tx_dma_bandwidth, 2107 unsigned int *rx_dma_bandwidth) 2108 { 2109 unsigned int bpt_bits = row * (col - 1); 2110 unsigned int bpt_bytes = bpt_bits >> 3; 2111 unsigned int pdi0_buffer_size; 2112 unsigned int pdi1_buffer_size; 2113 unsigned int data_per_frame; 2114 2115 data_per_frame = sdw_cdns_bra_actual_data_size(bpt_bytes); 2116 if (!data_per_frame) 2117 return -EINVAL; 2118 2119 if (command == 0) { 2120 pdi0_buffer_size = sdw_cdns_write_pdi0_buffer_size(data_per_frame); 2121 pdi1_buffer_size = SDW_CDNS_WRITE_PDI1_BUFFER_SIZE; 2122 } else { 2123 pdi0_buffer_size = SDW_CDNS_READ_PDI0_BUFFER_SIZE; 2124 pdi1_buffer_size = sdw_cdns_read_pdi1_buffer_size(data_per_frame); 2125 } 2126 2127 *tx_dma_bandwidth = pdi0_buffer_size * 8 * frame_rate; 2128 *rx_dma_bandwidth = pdi1_buffer_size * 8 * frame_rate; 2129 2130 return 0; 2131 } 2132 EXPORT_SYMBOL(sdw_cdns_bpt_find_bandwidth); 2133 2134 int sdw_cdns_bpt_find_buffer_sizes(int command, /* 0: write, 1: read */ 2135 int row, int col, unsigned int data_bytes, 2136 unsigned int requested_bytes_per_frame, 2137 unsigned int bra_block_alignment, 2138 unsigned int *data_per_frame, unsigned int *pdi0_buffer_size, 2139 unsigned int *pdi1_buffer_size, unsigned int *num_frames) 2140 { 2141 unsigned int bpt_bits = row * (col - 1); 2142 unsigned int bpt_bytes = bpt_bits >> 3; 2143 unsigned int actual_bpt_bytes; 2144 unsigned int pdi0_tx_size; 2145 unsigned int pdi1_rx_size; 2146 unsigned int remainder; 2147 2148 if (!data_bytes) 2149 return -EINVAL; 2150 2151 actual_bpt_bytes = sdw_cdns_bra_actual_data_size(bpt_bytes); 2152 if (!actual_bpt_bytes) 2153 return -EINVAL; 2154 2155 /* 2156 * the caller may want to set the number of bytes per frame, 2157 * allow when possible 2158 */ 2159 if (requested_bytes_per_frame < actual_bpt_bytes) 2160 actual_bpt_bytes = requested_bytes_per_frame; 2161 2162 if (bra_block_alignment) { 2163 /* align to a multiple of bra_block_alignment */ 2164 if (actual_bpt_bytes < bra_block_alignment) { 2165 pr_err("effective bytes per frame %u is smaller than block alignment %u\n", 2166 actual_bpt_bytes, bra_block_alignment); 2167 return -EINVAL; 2168 } 2169 actual_bpt_bytes -= (actual_bpt_bytes % bra_block_alignment); 2170 } 2171 2172 *data_per_frame = actual_bpt_bytes; 2173 2174 if (data_bytes < actual_bpt_bytes) 2175 actual_bpt_bytes = data_bytes; 2176 2177 if (command == 0) { 2178 /* 2179 * for writes we need to send all the data_bytes per frame, 2180 * even for the last frame which may only transport fewer bytes 2181 */ 2182 2183 *num_frames = DIV_ROUND_UP(data_bytes, actual_bpt_bytes); 2184 2185 pdi0_tx_size = sdw_cdns_write_pdi0_buffer_size(actual_bpt_bytes); 2186 pdi1_rx_size = SDW_CDNS_WRITE_PDI1_BUFFER_SIZE; 2187 2188 *pdi0_buffer_size = pdi0_tx_size * *num_frames; 2189 *pdi1_buffer_size = pdi1_rx_size * *num_frames; 2190 } else { 2191 /* 2192 * for reads we need to retrieve only what is requested in the BPT 2193 * header, so the last frame needs to be special-cased 2194 */ 2195 *num_frames = data_bytes / actual_bpt_bytes; 2196 2197 pdi0_tx_size = SDW_CDNS_READ_PDI0_BUFFER_SIZE; 2198 pdi1_rx_size = sdw_cdns_read_pdi1_buffer_size(actual_bpt_bytes); 2199 2200 *pdi0_buffer_size = pdi0_tx_size * *num_frames; 2201 *pdi1_buffer_size = pdi1_rx_size * *num_frames; 2202 2203 remainder = data_bytes % actual_bpt_bytes; 2204 if (remainder) { 2205 pdi0_tx_size = SDW_CDNS_READ_PDI0_BUFFER_SIZE; 2206 pdi1_rx_size = sdw_cdns_read_pdi1_buffer_size(remainder); 2207 2208 *num_frames = *num_frames + 1; 2209 *pdi0_buffer_size += pdi0_tx_size; 2210 *pdi1_buffer_size += pdi1_rx_size; 2211 } 2212 } 2213 2214 return 0; 2215 } 2216 EXPORT_SYMBOL(sdw_cdns_bpt_find_buffer_sizes); 2217 2218 static int sdw_cdns_copy_write_data(u8 *data, int data_size, u8 *dma_buffer, int dma_buffer_size) 2219 { 2220 /* 2221 * the implementation copies the data one byte at a time. Experiments with 2222 * two bytes at a time did not seem to improve the performance 2223 */ 2224 int i, j; 2225 2226 /* size check to prevent out of bounds access */ 2227 i = data_size - 1; 2228 j = (2 * i) - (i & 1); 2229 if (data_size & 1) 2230 j++; 2231 j += 2; 2232 if (j >= dma_buffer_size) 2233 return -EINVAL; 2234 2235 /* copy data */ 2236 for (i = 0; i < data_size; i++) { 2237 j = (2 * i) - (i & 1); 2238 dma_buffer[j] = data[i]; 2239 } 2240 /* add required pad */ 2241 if (data_size & 1) 2242 dma_buffer[++j] = 0; 2243 /* skip last two bytes */ 2244 j += 2; 2245 2246 /* offset and data are off-by-one */ 2247 return j + 1; 2248 } 2249 2250 static int sdw_cdns_prepare_write_pd0_buffer(u8 *header, unsigned int header_size, 2251 u8 *data, unsigned int data_size, 2252 u8 *dma_buffer, unsigned int dma_buffer_size, 2253 unsigned int *dma_data_written, 2254 unsigned int frame_counter) 2255 { 2256 int data_written; 2257 u8 *last_byte; 2258 u8 crc; 2259 2260 *dma_data_written = 0; 2261 2262 data_written = sdw_cdns_copy_write_data(header, header_size, dma_buffer, dma_buffer_size); 2263 if (data_written < 0) 2264 return data_written; 2265 dma_buffer[3] = BIT(7); 2266 dma_buffer[3] |= frame_counter & GENMASK(3, 0); 2267 2268 dma_buffer += data_written; 2269 dma_buffer_size -= data_written; 2270 *dma_data_written += data_written; 2271 2272 crc = SDW_CRC8_SEED; 2273 crc = crc8(sdw_crc8_lookup_msb, header, header_size, crc); 2274 2275 data_written = sdw_cdns_copy_write_data(&crc, 1, dma_buffer, dma_buffer_size); 2276 if (data_written < 0) 2277 return data_written; 2278 dma_buffer += data_written; 2279 dma_buffer_size -= data_written; 2280 *dma_data_written += data_written; 2281 2282 data_written = sdw_cdns_copy_write_data(data, data_size, dma_buffer, dma_buffer_size); 2283 if (data_written < 0) 2284 return data_written; 2285 dma_buffer += data_written; 2286 dma_buffer_size -= data_written; 2287 *dma_data_written += data_written; 2288 2289 crc = SDW_CRC8_SEED; 2290 crc = crc8(sdw_crc8_lookup_msb, data, data_size, crc); 2291 data_written = sdw_cdns_copy_write_data(&crc, 1, dma_buffer, dma_buffer_size); 2292 if (data_written < 0) 2293 return data_written; 2294 dma_buffer += data_written; 2295 dma_buffer_size -= data_written; 2296 *dma_data_written += data_written; 2297 2298 /* tag last byte */ 2299 last_byte = dma_buffer - 1; 2300 last_byte[0] = BIT(6); 2301 2302 return 0; 2303 } 2304 2305 static int sdw_cdns_prepare_read_pd0_buffer(u8 *header, unsigned int header_size, 2306 u8 *dma_buffer, unsigned int dma_buffer_size, 2307 unsigned int *dma_data_written, 2308 unsigned int frame_counter) 2309 { 2310 int data_written; 2311 u8 *last_byte; 2312 u8 crc; 2313 2314 *dma_data_written = 0; 2315 2316 data_written = sdw_cdns_copy_write_data(header, header_size, dma_buffer, dma_buffer_size); 2317 if (data_written < 0) 2318 return data_written; 2319 dma_buffer[3] = BIT(7); 2320 dma_buffer[3] |= frame_counter & GENMASK(3, 0); 2321 2322 dma_buffer += data_written; 2323 dma_buffer_size -= data_written; 2324 *dma_data_written += data_written; 2325 2326 crc = SDW_CRC8_SEED; 2327 crc = crc8(sdw_crc8_lookup_msb, header, header_size, crc); 2328 2329 data_written = sdw_cdns_copy_write_data(&crc, 1, dma_buffer, dma_buffer_size); 2330 if (data_written < 0) 2331 return data_written; 2332 dma_buffer += data_written; 2333 dma_buffer_size -= data_written; 2334 *dma_data_written += data_written; 2335 2336 /* tag last byte */ 2337 last_byte = dma_buffer - 1; 2338 last_byte[0] = BIT(6); 2339 2340 return 0; 2341 } 2342 2343 #define CDNS_BPT_ROLLING_COUNTER_START 1 2344 2345 int sdw_cdns_prepare_write_dma_buffer(u8 dev_num, struct sdw_bpt_section *sec, int num_sec, 2346 int data_per_frame, u8 *dma_buffer, 2347 int dma_buffer_size, int *dma_buffer_total_bytes) 2348 { 2349 int total_dma_data_written = 0; 2350 u8 *p_dma_buffer = dma_buffer; 2351 u8 header[SDW_CDNS_BRA_HDR]; 2352 unsigned int start_register; 2353 unsigned int section_size; 2354 int dma_data_written; 2355 u8 *p_data; 2356 u8 counter; 2357 int ret; 2358 int i; 2359 2360 counter = CDNS_BPT_ROLLING_COUNTER_START; 2361 2362 header[0] = BIT(1); /* write command: BIT(1) set */ 2363 header[0] |= GENMASK(7, 6); /* header is active */ 2364 header[0] |= (dev_num << 2); 2365 2366 for (i = 0; i < num_sec; i++) { 2367 start_register = sec[i].addr; 2368 section_size = sec[i].len; 2369 p_data = sec[i].buf; 2370 2371 while (section_size >= data_per_frame) { 2372 header[0] &= ~BIT(0); 2373 header[0] |= (data_per_frame >> 8) & BIT(0); 2374 header[1] = data_per_frame & 0xFF; 2375 header[2] = start_register >> 24 & 0xFF; 2376 header[3] = start_register >> 16 & 0xFF; 2377 header[4] = start_register >> 8 & 0xFF; 2378 header[5] = start_register >> 0 & 0xFF; 2379 2380 ret = sdw_cdns_prepare_write_pd0_buffer(header, SDW_CDNS_BRA_HDR, 2381 p_data, data_per_frame, 2382 p_dma_buffer, dma_buffer_size, 2383 &dma_data_written, counter); 2384 if (ret < 0) 2385 return ret; 2386 2387 counter++; 2388 2389 p_data += data_per_frame; 2390 section_size -= data_per_frame; 2391 2392 p_dma_buffer += dma_data_written; 2393 dma_buffer_size -= dma_data_written; 2394 total_dma_data_written += dma_data_written; 2395 2396 start_register += data_per_frame; 2397 } 2398 2399 if (section_size) { 2400 header[0] &= ~BIT(0); 2401 header[0] |= (section_size >> 8) & BIT(0); 2402 header[1] = section_size & 0xFF; 2403 header[2] = start_register >> 24 & 0xFF; 2404 header[3] = start_register >> 16 & 0xFF; 2405 header[4] = start_register >> 8 & 0xFF; 2406 header[5] = start_register >> 0 & 0xFF; 2407 2408 ret = sdw_cdns_prepare_write_pd0_buffer(header, SDW_CDNS_BRA_HDR, 2409 p_data, section_size, 2410 p_dma_buffer, dma_buffer_size, 2411 &dma_data_written, counter); 2412 if (ret < 0) 2413 return ret; 2414 2415 counter++; 2416 2417 p_dma_buffer += dma_data_written; 2418 dma_buffer_size -= dma_data_written; 2419 total_dma_data_written += dma_data_written; 2420 } 2421 } 2422 2423 *dma_buffer_total_bytes = total_dma_data_written; 2424 2425 return 0; 2426 } 2427 EXPORT_SYMBOL(sdw_cdns_prepare_write_dma_buffer); 2428 2429 int sdw_cdns_prepare_read_dma_buffer(u8 dev_num, struct sdw_bpt_section *sec, int num_sec, 2430 int data_per_frame, u8 *dma_buffer, int dma_buffer_size, 2431 int *dma_buffer_total_bytes, unsigned int fake_size) 2432 { 2433 int total_dma_data_written = 0; 2434 u8 *p_dma_buffer = dma_buffer; 2435 u8 header[SDW_CDNS_BRA_HDR]; 2436 unsigned int start_register; 2437 unsigned int data_size; 2438 int dma_data_written; 2439 u8 counter; 2440 int ret; 2441 int i; 2442 2443 counter = CDNS_BPT_ROLLING_COUNTER_START; 2444 2445 header[0] = 0; /* read command: BIT(1) cleared */ 2446 header[0] |= GENMASK(7, 6); /* header is active */ 2447 header[0] |= (dev_num << 2); 2448 2449 for (i = 0; i < num_sec; i++) { 2450 start_register = sec[i].addr; 2451 data_size = sec[i].len; 2452 while (data_size >= data_per_frame) { 2453 header[0] &= ~BIT(0); 2454 header[0] |= (data_per_frame >> 8) & BIT(0); 2455 header[1] = data_per_frame & 0xFF; 2456 header[2] = start_register >> 24 & 0xFF; 2457 header[3] = start_register >> 16 & 0xFF; 2458 header[4] = start_register >> 8 & 0xFF; 2459 header[5] = start_register >> 0 & 0xFF; 2460 2461 ret = sdw_cdns_prepare_read_pd0_buffer(header, SDW_CDNS_BRA_HDR, 2462 p_dma_buffer, dma_buffer_size, 2463 &dma_data_written, counter); 2464 if (ret < 0) 2465 return ret; 2466 2467 counter++; 2468 2469 data_size -= data_per_frame; 2470 2471 p_dma_buffer += dma_data_written; 2472 dma_buffer_size -= dma_data_written; 2473 total_dma_data_written += dma_data_written; 2474 2475 start_register += data_per_frame; 2476 } 2477 2478 if (data_size) { 2479 header[0] &= ~BIT(0); 2480 header[0] |= (data_size >> 8) & BIT(0); 2481 header[1] = data_size & 0xFF; 2482 header[2] = start_register >> 24 & 0xFF; 2483 header[3] = start_register >> 16 & 0xFF; 2484 header[4] = start_register >> 8 & 0xFF; 2485 header[5] = start_register >> 0 & 0xFF; 2486 2487 ret = sdw_cdns_prepare_read_pd0_buffer(header, SDW_CDNS_BRA_HDR, 2488 p_dma_buffer, dma_buffer_size, 2489 &dma_data_written, counter); 2490 if (ret < 0) 2491 return ret; 2492 2493 counter++; 2494 2495 p_dma_buffer += dma_data_written; 2496 dma_buffer_size -= dma_data_written; 2497 total_dma_data_written += dma_data_written; 2498 } 2499 } 2500 2501 /* Add fake frame */ 2502 header[0] &= ~GENMASK(7, 6); /* Set inactive flag in BPT/BRA frame heade */ 2503 while (fake_size >= data_per_frame) { 2504 header[0] &= ~BIT(0); 2505 header[0] |= (data_per_frame >> 8) & BIT(0); 2506 header[1] = data_per_frame & 0xFF; 2507 ret = sdw_cdns_prepare_read_pd0_buffer(header, SDW_CDNS_BRA_HDR, p_dma_buffer, 2508 dma_buffer_size, &dma_data_written, 2509 counter); 2510 if (ret < 0) 2511 return ret; 2512 2513 counter++; 2514 2515 fake_size -= data_per_frame; 2516 p_dma_buffer += dma_data_written; 2517 dma_buffer_size -= dma_data_written; 2518 total_dma_data_written += dma_data_written; 2519 } 2520 2521 if (fake_size) { 2522 header[0] &= ~BIT(0); 2523 header[0] |= (fake_size >> 8) & BIT(0); 2524 header[1] = fake_size & 0xFF; 2525 ret = sdw_cdns_prepare_read_pd0_buffer(header, SDW_CDNS_BRA_HDR, p_dma_buffer, 2526 dma_buffer_size, &dma_data_written, 2527 counter); 2528 if (ret < 0) 2529 return ret; 2530 2531 counter++; 2532 2533 p_dma_buffer += dma_data_written; 2534 dma_buffer_size -= dma_data_written; 2535 total_dma_data_written += dma_data_written; 2536 } 2537 2538 *dma_buffer_total_bytes = total_dma_data_written; 2539 2540 return 0; 2541 } 2542 EXPORT_SYMBOL(sdw_cdns_prepare_read_dma_buffer); 2543 2544 static int check_counter(u32 val, u8 counter) 2545 { 2546 u8 frame; 2547 2548 frame = (val >> 24) & GENMASK(3, 0); 2549 if (counter != frame) 2550 return -EIO; 2551 return 0; 2552 } 2553 2554 static int check_response(u32 val) 2555 { 2556 u8 response; 2557 2558 response = (val >> 3) & GENMASK(1, 0); 2559 if (response == 0) /* Ignored */ 2560 return -ENODATA; 2561 if (response != 1) /* ACK */ 2562 return -EIO; 2563 2564 return 0; 2565 } 2566 2567 static int check_frame_start(u32 header, u8 counter) 2568 { 2569 int ret; 2570 2571 /* check frame_start marker */ 2572 if (!(header & BIT(31))) 2573 return -EIO; 2574 2575 ret = check_counter(header, counter); 2576 if (ret < 0) 2577 return ret; 2578 2579 return check_response(header); 2580 } 2581 2582 static int check_frame_end(u32 footer) 2583 { 2584 /* check frame_end marker */ 2585 if (!(footer & BIT(30))) 2586 return -EIO; 2587 2588 return check_response(footer); 2589 } 2590 2591 int sdw_cdns_check_write_response(struct device *dev, u8 *dma_buffer, 2592 int dma_buffer_size, int num_frames) 2593 { 2594 u32 *p_data; 2595 int counter; 2596 u32 header; 2597 u32 footer; 2598 int ret; 2599 int i; 2600 2601 /* paranoia check on buffer size */ 2602 if (dma_buffer_size != num_frames * 8) 2603 return -EINVAL; 2604 2605 counter = CDNS_BPT_ROLLING_COUNTER_START; 2606 p_data = (u32 *)dma_buffer; 2607 2608 for (i = 0; i < num_frames; i++) { 2609 header = *p_data++; 2610 footer = *p_data++; 2611 2612 ret = check_frame_start(header, counter); 2613 if (ret < 0) { 2614 dev_err(dev, "%s: bad frame %d/%d start header %x\n", 2615 __func__, i + 1, num_frames, header); 2616 return ret; 2617 } 2618 2619 ret = check_frame_end(footer); 2620 if (ret < 0) { 2621 dev_err(dev, "%s: bad frame %d/%d end footer %x\n", 2622 __func__, i + 1, num_frames, footer); 2623 return ret; 2624 } 2625 2626 counter++; 2627 counter &= GENMASK(3, 0); 2628 } 2629 return 0; 2630 } 2631 EXPORT_SYMBOL(sdw_cdns_check_write_response); 2632 2633 static u8 extract_read_data(u32 *data, int num_bytes, u8 *buffer) 2634 { 2635 u32 val; 2636 int i; 2637 u8 crc; 2638 u8 b0; 2639 u8 b1; 2640 2641 crc = SDW_CRC8_SEED; 2642 2643 /* process two bytes at a time */ 2644 for (i = 0; i < num_bytes / 2; i++) { 2645 val = *data++; 2646 2647 b0 = val & 0xff; 2648 b1 = (val >> 8) & 0xff; 2649 2650 *buffer++ = b0; 2651 crc = crc8(sdw_crc8_lookup_msb, &b0, 1, crc); 2652 2653 *buffer++ = b1; 2654 crc = crc8(sdw_crc8_lookup_msb, &b1, 1, crc); 2655 } 2656 /* handle remaining byte if it exists */ 2657 if (num_bytes & 1) { 2658 val = *data; 2659 2660 b0 = val & 0xff; 2661 2662 *buffer++ = b0; 2663 crc = crc8(sdw_crc8_lookup_msb, &b0, 1, crc); 2664 } 2665 return crc; 2666 } 2667 2668 int sdw_cdns_check_read_response(struct device *dev, u8 *dma_buffer, int dma_buffer_size, 2669 struct sdw_bpt_section *sec, int num_sec, int num_frames, 2670 int data_per_frame) 2671 { 2672 int total_num_bytes = 0; 2673 int buffer_size = 0; 2674 int sec_index; 2675 u32 *p_data; 2676 u8 *p_buf; 2677 int counter; 2678 u32 header; 2679 u32 footer; 2680 u8 expected_crc; 2681 u8 crc; 2682 int len; 2683 int ret; 2684 int i; 2685 2686 counter = CDNS_BPT_ROLLING_COUNTER_START; 2687 p_data = (u32 *)dma_buffer; 2688 2689 sec_index = 0; 2690 p_buf = sec[sec_index].buf; 2691 buffer_size = sec[sec_index].len; 2692 2693 for (i = 0; i < num_frames; i++) { 2694 header = *p_data++; 2695 2696 ret = check_frame_start(header, counter); 2697 if (ret < 0) { 2698 dev_err(dev, "%s: bad frame %d/%d start header %x\n", 2699 __func__, i + 1, num_frames, header); 2700 return ret; 2701 } 2702 2703 len = data_per_frame; 2704 if (total_num_bytes + data_per_frame > buffer_size) 2705 len = buffer_size - total_num_bytes; 2706 2707 crc = extract_read_data(p_data, len, p_buf); 2708 2709 p_data += (len + 1) / 2; 2710 expected_crc = *p_data++ & 0xff; 2711 2712 if (crc != expected_crc) { 2713 dev_err(dev, "%s: bad frame %d/%d crc %#x expected %#x\n", 2714 __func__, i + 1, num_frames, crc, expected_crc); 2715 return -EIO; 2716 } 2717 2718 p_buf += len; 2719 total_num_bytes += len; 2720 2721 footer = *p_data++; 2722 ret = check_frame_end(footer); 2723 if (ret < 0) { 2724 dev_err(dev, "%s: bad frame %d/%d end footer %x\n", 2725 __func__, i + 1, num_frames, footer); 2726 return ret; 2727 } 2728 2729 counter++; 2730 counter &= GENMASK(3, 0); 2731 2732 if (buffer_size == total_num_bytes && (i + 1) < num_frames) { 2733 sec_index++; 2734 if (sec_index >= num_sec) { 2735 dev_err(dev, "%s: incorrect section index %d i %d\n", 2736 __func__, sec_index, i); 2737 return -EINVAL; 2738 } 2739 p_buf = sec[sec_index].buf; 2740 buffer_size = sec[sec_index].len; 2741 total_num_bytes = 0; 2742 } 2743 } 2744 return 0; 2745 } 2746 EXPORT_SYMBOL(sdw_cdns_check_read_response); 2747 2748 MODULE_LICENSE("Dual BSD/GPL"); 2749 MODULE_DESCRIPTION("Cadence Soundwire Library"); 2750