1 // SPDX-License-Identifier: GPL-2.0 2 /* 3 * Synopsys DesignWare PCIe host controller driver 4 * 5 * Copyright (C) 2013 Samsung Electronics Co., Ltd. 6 * https://www.samsung.com 7 * 8 * Author: Jingoo Han <jg1.han@samsung.com> 9 */ 10 11 #include <linux/align.h> 12 #include <linux/bitops.h> 13 #include <linux/clk.h> 14 #include <linux/delay.h> 15 #include <linux/dma/edma.h> 16 #include <linux/gpio/consumer.h> 17 #include <linux/ioport.h> 18 #include <linux/of.h> 19 #include <linux/of_address.h> 20 #include <linux/pcie-dwc.h> 21 #include <linux/platform_device.h> 22 #include <linux/sizes.h> 23 #include <linux/types.h> 24 25 #include "../../pci.h" 26 #include "pcie-designware.h" 27 28 static const char * const dw_pcie_app_clks[DW_PCIE_NUM_APP_CLKS] = { 29 [DW_PCIE_DBI_CLK] = "dbi", 30 [DW_PCIE_MSTR_CLK] = "mstr", 31 [DW_PCIE_SLV_CLK] = "slv", 32 }; 33 34 static const char * const dw_pcie_core_clks[DW_PCIE_NUM_CORE_CLKS] = { 35 [DW_PCIE_PIPE_CLK] = "pipe", 36 [DW_PCIE_CORE_CLK] = "core", 37 [DW_PCIE_AUX_CLK] = "aux", 38 [DW_PCIE_REF_CLK] = "ref", 39 }; 40 41 static const char * const dw_pcie_app_rsts[DW_PCIE_NUM_APP_RSTS] = { 42 [DW_PCIE_DBI_RST] = "dbi", 43 [DW_PCIE_MSTR_RST] = "mstr", 44 [DW_PCIE_SLV_RST] = "slv", 45 }; 46 47 static const char * const dw_pcie_core_rsts[DW_PCIE_NUM_CORE_RSTS] = { 48 [DW_PCIE_NON_STICKY_RST] = "non-sticky", 49 [DW_PCIE_STICKY_RST] = "sticky", 50 [DW_PCIE_CORE_RST] = "core", 51 [DW_PCIE_PIPE_RST] = "pipe", 52 [DW_PCIE_PHY_RST] = "phy", 53 [DW_PCIE_HOT_RST] = "hot", 54 [DW_PCIE_PWR_RST] = "pwr", 55 }; 56 57 static const struct dwc_pcie_vsec_id dwc_pcie_ptm_vsec_ids[] = { 58 { .vendor_id = PCI_VENDOR_ID_QCOM, /* EP */ 59 .vsec_id = 0x03, .vsec_rev = 0x1 }, 60 { .vendor_id = PCI_VENDOR_ID_QCOM, /* RC */ 61 .vsec_id = 0x04, .vsec_rev = 0x1 }, 62 { } 63 }; 64 65 static int dw_pcie_get_clocks(struct dw_pcie *pci) 66 { 67 int i, ret; 68 69 for (i = 0; i < DW_PCIE_NUM_APP_CLKS; i++) 70 pci->app_clks[i].id = dw_pcie_app_clks[i]; 71 72 for (i = 0; i < DW_PCIE_NUM_CORE_CLKS; i++) 73 pci->core_clks[i].id = dw_pcie_core_clks[i]; 74 75 ret = devm_clk_bulk_get_optional(pci->dev, DW_PCIE_NUM_APP_CLKS, 76 pci->app_clks); 77 if (ret) 78 return ret; 79 80 return devm_clk_bulk_get_optional(pci->dev, DW_PCIE_NUM_CORE_CLKS, 81 pci->core_clks); 82 } 83 84 static int dw_pcie_get_resets(struct dw_pcie *pci) 85 { 86 int i, ret; 87 88 for (i = 0; i < DW_PCIE_NUM_APP_RSTS; i++) 89 pci->app_rsts[i].id = dw_pcie_app_rsts[i]; 90 91 for (i = 0; i < DW_PCIE_NUM_CORE_RSTS; i++) 92 pci->core_rsts[i].id = dw_pcie_core_rsts[i]; 93 94 ret = devm_reset_control_bulk_get_optional_shared(pci->dev, 95 DW_PCIE_NUM_APP_RSTS, 96 pci->app_rsts); 97 if (ret) 98 return ret; 99 100 ret = devm_reset_control_bulk_get_optional_exclusive(pci->dev, 101 DW_PCIE_NUM_CORE_RSTS, 102 pci->core_rsts); 103 if (ret) 104 return ret; 105 106 pci->pe_rst = devm_gpiod_get_optional(pci->dev, "reset", GPIOD_OUT_HIGH); 107 if (IS_ERR(pci->pe_rst)) 108 return PTR_ERR(pci->pe_rst); 109 110 return 0; 111 } 112 113 int dw_pcie_get_resources(struct dw_pcie *pci) 114 { 115 struct platform_device *pdev = to_platform_device(pci->dev); 116 struct device_node *np = dev_of_node(pci->dev); 117 struct resource *res; 118 int ret; 119 120 if (!pci->dbi_base) { 121 res = platform_get_resource_byname(pdev, IORESOURCE_MEM, "dbi"); 122 pci->dbi_base = devm_pci_remap_cfg_resource(pci->dev, res); 123 if (IS_ERR(pci->dbi_base)) 124 return PTR_ERR(pci->dbi_base); 125 pci->dbi_phys_addr = res->start; 126 } 127 128 /* DBI2 is mainly useful for the endpoint controller */ 129 if (!pci->dbi_base2) { 130 res = platform_get_resource_byname(pdev, IORESOURCE_MEM, "dbi2"); 131 if (res) { 132 pci->dbi_base2 = devm_pci_remap_cfg_resource(pci->dev, res); 133 if (IS_ERR(pci->dbi_base2)) 134 return PTR_ERR(pci->dbi_base2); 135 } else { 136 pci->dbi_base2 = pci->dbi_base + SZ_4K; 137 } 138 } 139 140 /* For non-unrolled iATU/eDMA platforms this range will be ignored */ 141 if (!pci->atu_base) { 142 res = platform_get_resource_byname(pdev, IORESOURCE_MEM, "atu"); 143 if (res) { 144 pci->atu_size = resource_size(res); 145 pci->atu_base = devm_ioremap_resource(pci->dev, res); 146 if (IS_ERR(pci->atu_base)) 147 return PTR_ERR(pci->atu_base); 148 pci->atu_phys_addr = res->start; 149 } else { 150 pci->atu_base = pci->dbi_base + DEFAULT_DBI_ATU_OFFSET; 151 } 152 } 153 154 /* Set a default value suitable for at most 8 in and 8 out windows */ 155 if (!pci->atu_size) 156 pci->atu_size = SZ_4K; 157 158 /* eDMA region can be mapped to a custom base address */ 159 if (!pci->edma.reg_base) { 160 res = platform_get_resource_byname(pdev, IORESOURCE_MEM, "dma"); 161 if (res) { 162 pci->edma.reg_base = devm_ioremap_resource(pci->dev, res); 163 if (IS_ERR(pci->edma.reg_base)) 164 return PTR_ERR(pci->edma.reg_base); 165 } else if (pci->atu_size >= 2 * DEFAULT_DBI_DMA_OFFSET) { 166 pci->edma.reg_base = pci->atu_base + DEFAULT_DBI_DMA_OFFSET; 167 } 168 } 169 170 /* LLDD is supposed to manually switch the clocks and resets state */ 171 if (dw_pcie_cap_is(pci, REQ_RES)) { 172 ret = dw_pcie_get_clocks(pci); 173 if (ret) 174 return ret; 175 176 ret = dw_pcie_get_resets(pci); 177 if (ret) 178 return ret; 179 } 180 181 if (pci->max_link_speed < 1) 182 pci->max_link_speed = of_pci_get_max_link_speed(np); 183 184 of_property_read_u32(np, "num-lanes", &pci->num_lanes); 185 186 if (of_property_read_bool(np, "snps,enable-cdm-check")) 187 dw_pcie_cap_set(pci, CDM_CHECK); 188 189 return 0; 190 } 191 192 void dw_pcie_version_detect(struct dw_pcie *pci) 193 { 194 u32 ver; 195 196 /* The content of the CSR is zero on DWC PCIe older than v4.70a */ 197 ver = dw_pcie_readl_dbi(pci, PCIE_VERSION_NUMBER); 198 if (!ver) 199 return; 200 201 if (pci->version && pci->version != ver) 202 dev_warn(pci->dev, "Versions don't match (%08x != %08x)\n", 203 pci->version, ver); 204 else 205 pci->version = ver; 206 207 ver = dw_pcie_readl_dbi(pci, PCIE_VERSION_TYPE); 208 209 if (pci->type && pci->type != ver) 210 dev_warn(pci->dev, "Types don't match (%08x != %08x)\n", 211 pci->type, ver); 212 else 213 pci->type = ver; 214 } 215 216 /* 217 * These interfaces resemble the pci_find_*capability() interfaces, but these 218 * are for configuring host controllers, which are bridges *to* PCI devices but 219 * are not PCI devices themselves. 220 */ 221 static u8 __dw_pcie_find_next_cap(struct dw_pcie *pci, u8 cap_ptr, 222 u8 cap) 223 { 224 u8 cap_id, next_cap_ptr; 225 u16 reg; 226 227 if (!cap_ptr) 228 return 0; 229 230 reg = dw_pcie_readw_dbi(pci, cap_ptr); 231 cap_id = (reg & 0x00ff); 232 233 if (cap_id > PCI_CAP_ID_MAX) 234 return 0; 235 236 if (cap_id == cap) 237 return cap_ptr; 238 239 next_cap_ptr = (reg & 0xff00) >> 8; 240 return __dw_pcie_find_next_cap(pci, next_cap_ptr, cap); 241 } 242 243 u8 dw_pcie_find_capability(struct dw_pcie *pci, u8 cap) 244 { 245 u8 next_cap_ptr; 246 u16 reg; 247 248 reg = dw_pcie_readw_dbi(pci, PCI_CAPABILITY_LIST); 249 next_cap_ptr = (reg & 0x00ff); 250 251 return __dw_pcie_find_next_cap(pci, next_cap_ptr, cap); 252 } 253 EXPORT_SYMBOL_GPL(dw_pcie_find_capability); 254 255 static u16 dw_pcie_find_next_ext_capability(struct dw_pcie *pci, u16 start, 256 u8 cap) 257 { 258 u32 header; 259 int ttl; 260 int pos = PCI_CFG_SPACE_SIZE; 261 262 /* minimum 8 bytes per capability */ 263 ttl = (PCI_CFG_SPACE_EXP_SIZE - PCI_CFG_SPACE_SIZE) / 8; 264 265 if (start) 266 pos = start; 267 268 header = dw_pcie_readl_dbi(pci, pos); 269 /* 270 * If we have no capabilities, this is indicated by cap ID, 271 * cap version and next pointer all being 0. 272 */ 273 if (header == 0) 274 return 0; 275 276 while (ttl-- > 0) { 277 if (PCI_EXT_CAP_ID(header) == cap && pos != start) 278 return pos; 279 280 pos = PCI_EXT_CAP_NEXT(header); 281 if (pos < PCI_CFG_SPACE_SIZE) 282 break; 283 284 header = dw_pcie_readl_dbi(pci, pos); 285 } 286 287 return 0; 288 } 289 290 u16 dw_pcie_find_ext_capability(struct dw_pcie *pci, u8 cap) 291 { 292 return dw_pcie_find_next_ext_capability(pci, 0, cap); 293 } 294 EXPORT_SYMBOL_GPL(dw_pcie_find_ext_capability); 295 296 static u16 __dw_pcie_find_vsec_capability(struct dw_pcie *pci, u16 vendor_id, 297 u16 vsec_id) 298 { 299 u16 vsec = 0; 300 u32 header; 301 302 if (vendor_id != dw_pcie_readw_dbi(pci, PCI_VENDOR_ID)) 303 return 0; 304 305 while ((vsec = dw_pcie_find_next_ext_capability(pci, vsec, 306 PCI_EXT_CAP_ID_VNDR))) { 307 header = dw_pcie_readl_dbi(pci, vsec + PCI_VNDR_HEADER); 308 if (PCI_VNDR_HEADER_ID(header) == vsec_id) 309 return vsec; 310 } 311 312 return 0; 313 } 314 315 static u16 dw_pcie_find_vsec_capability(struct dw_pcie *pci, 316 const struct dwc_pcie_vsec_id *vsec_ids) 317 { 318 const struct dwc_pcie_vsec_id *vid; 319 u16 vsec; 320 u32 header; 321 322 for (vid = vsec_ids; vid->vendor_id; vid++) { 323 vsec = __dw_pcie_find_vsec_capability(pci, vid->vendor_id, 324 vid->vsec_id); 325 if (vsec) { 326 header = dw_pcie_readl_dbi(pci, vsec + PCI_VNDR_HEADER); 327 if (PCI_VNDR_HEADER_REV(header) == vid->vsec_rev) 328 return vsec; 329 } 330 } 331 332 return 0; 333 } 334 335 u16 dw_pcie_find_rasdes_capability(struct dw_pcie *pci) 336 { 337 return dw_pcie_find_vsec_capability(pci, dwc_pcie_rasdes_vsec_ids); 338 } 339 EXPORT_SYMBOL_GPL(dw_pcie_find_rasdes_capability); 340 341 u16 dw_pcie_find_ptm_capability(struct dw_pcie *pci) 342 { 343 return dw_pcie_find_vsec_capability(pci, dwc_pcie_ptm_vsec_ids); 344 } 345 EXPORT_SYMBOL_GPL(dw_pcie_find_ptm_capability); 346 347 int dw_pcie_read(void __iomem *addr, int size, u32 *val) 348 { 349 if (!IS_ALIGNED((uintptr_t)addr, size)) { 350 *val = 0; 351 return PCIBIOS_BAD_REGISTER_NUMBER; 352 } 353 354 if (size == 4) { 355 *val = readl(addr); 356 } else if (size == 2) { 357 *val = readw(addr); 358 } else if (size == 1) { 359 *val = readb(addr); 360 } else { 361 *val = 0; 362 return PCIBIOS_BAD_REGISTER_NUMBER; 363 } 364 365 return PCIBIOS_SUCCESSFUL; 366 } 367 EXPORT_SYMBOL_GPL(dw_pcie_read); 368 369 int dw_pcie_write(void __iomem *addr, int size, u32 val) 370 { 371 if (!IS_ALIGNED((uintptr_t)addr, size)) 372 return PCIBIOS_BAD_REGISTER_NUMBER; 373 374 if (size == 4) 375 writel(val, addr); 376 else if (size == 2) 377 writew(val, addr); 378 else if (size == 1) 379 writeb(val, addr); 380 else 381 return PCIBIOS_BAD_REGISTER_NUMBER; 382 383 return PCIBIOS_SUCCESSFUL; 384 } 385 EXPORT_SYMBOL_GPL(dw_pcie_write); 386 387 u32 dw_pcie_read_dbi(struct dw_pcie *pci, u32 reg, size_t size) 388 { 389 int ret; 390 u32 val; 391 392 if (pci->ops && pci->ops->read_dbi) 393 return pci->ops->read_dbi(pci, pci->dbi_base, reg, size); 394 395 ret = dw_pcie_read(pci->dbi_base + reg, size, &val); 396 if (ret) 397 dev_err(pci->dev, "Read DBI address failed\n"); 398 399 return val; 400 } 401 EXPORT_SYMBOL_GPL(dw_pcie_read_dbi); 402 403 void dw_pcie_write_dbi(struct dw_pcie *pci, u32 reg, size_t size, u32 val) 404 { 405 int ret; 406 407 if (pci->ops && pci->ops->write_dbi) { 408 pci->ops->write_dbi(pci, pci->dbi_base, reg, size, val); 409 return; 410 } 411 412 ret = dw_pcie_write(pci->dbi_base + reg, size, val); 413 if (ret) 414 dev_err(pci->dev, "Write DBI address failed\n"); 415 } 416 EXPORT_SYMBOL_GPL(dw_pcie_write_dbi); 417 418 void dw_pcie_write_dbi2(struct dw_pcie *pci, u32 reg, size_t size, u32 val) 419 { 420 int ret; 421 422 if (pci->ops && pci->ops->write_dbi2) { 423 pci->ops->write_dbi2(pci, pci->dbi_base2, reg, size, val); 424 return; 425 } 426 427 ret = dw_pcie_write(pci->dbi_base2 + reg, size, val); 428 if (ret) 429 dev_err(pci->dev, "write DBI address failed\n"); 430 } 431 EXPORT_SYMBOL_GPL(dw_pcie_write_dbi2); 432 433 static inline void __iomem *dw_pcie_select_atu(struct dw_pcie *pci, u32 dir, 434 u32 index) 435 { 436 if (dw_pcie_cap_is(pci, IATU_UNROLL)) 437 return pci->atu_base + PCIE_ATU_UNROLL_BASE(dir, index); 438 439 dw_pcie_writel_dbi(pci, PCIE_ATU_VIEWPORT, dir | index); 440 return pci->atu_base; 441 } 442 443 static u32 dw_pcie_readl_atu(struct dw_pcie *pci, u32 dir, u32 index, u32 reg) 444 { 445 void __iomem *base; 446 int ret; 447 u32 val; 448 449 base = dw_pcie_select_atu(pci, dir, index); 450 451 if (pci->ops && pci->ops->read_dbi) 452 return pci->ops->read_dbi(pci, base, reg, 4); 453 454 ret = dw_pcie_read(base + reg, 4, &val); 455 if (ret) 456 dev_err(pci->dev, "Read ATU address failed\n"); 457 458 return val; 459 } 460 461 static void dw_pcie_writel_atu(struct dw_pcie *pci, u32 dir, u32 index, 462 u32 reg, u32 val) 463 { 464 void __iomem *base; 465 int ret; 466 467 base = dw_pcie_select_atu(pci, dir, index); 468 469 if (pci->ops && pci->ops->write_dbi) { 470 pci->ops->write_dbi(pci, base, reg, 4, val); 471 return; 472 } 473 474 ret = dw_pcie_write(base + reg, 4, val); 475 if (ret) 476 dev_err(pci->dev, "Write ATU address failed\n"); 477 } 478 479 static inline u32 dw_pcie_readl_atu_ob(struct dw_pcie *pci, u32 index, u32 reg) 480 { 481 return dw_pcie_readl_atu(pci, PCIE_ATU_REGION_DIR_OB, index, reg); 482 } 483 484 static inline void dw_pcie_writel_atu_ob(struct dw_pcie *pci, u32 index, u32 reg, 485 u32 val) 486 { 487 dw_pcie_writel_atu(pci, PCIE_ATU_REGION_DIR_OB, index, reg, val); 488 } 489 490 static inline u32 dw_pcie_enable_ecrc(u32 val) 491 { 492 /* 493 * DesignWare core version 4.90A has a design issue where the 'TD' 494 * bit in the Control register-1 of the ATU outbound region acts 495 * like an override for the ECRC setting, i.e., the presence of TLP 496 * Digest (ECRC) in the outgoing TLPs is solely determined by this 497 * bit. This is contrary to the PCIe spec which says that the 498 * enablement of the ECRC is solely determined by the AER 499 * registers. 500 * 501 * Because of this, even when the ECRC is enabled through AER 502 * registers, the transactions going through ATU won't have TLP 503 * Digest as there is no way the PCI core AER code could program 504 * the TD bit which is specific to the DesignWare core. 505 * 506 * The best way to handle this scenario is to program the TD bit 507 * always. It affects only the traffic from root port to downstream 508 * devices. 509 * 510 * At this point, 511 * When ECRC is enabled in AER registers, everything works normally 512 * When ECRC is NOT enabled in AER registers, then, 513 * on Root Port:- TLP Digest (DWord size) gets appended to each packet 514 * even through it is not required. Since downstream 515 * TLPs are mostly for configuration accesses and BAR 516 * accesses, they are not in critical path and won't 517 * have much negative effect on the performance. 518 * on End Point:- TLP Digest is received for some/all the packets coming 519 * from the root port. TLP Digest is ignored because, 520 * as per the PCIe Spec r5.0 v1.0 section 2.2.3 521 * "TLP Digest Rules", when an endpoint receives TLP 522 * Digest when its ECRC check functionality is disabled 523 * in AER registers, received TLP Digest is just ignored. 524 * Since there is no issue or error reported either side, best way to 525 * handle the scenario is to program TD bit by default. 526 */ 527 528 return val | PCIE_ATU_TD; 529 } 530 531 int dw_pcie_prog_outbound_atu(struct dw_pcie *pci, 532 const struct dw_pcie_ob_atu_cfg *atu) 533 { 534 u64 parent_bus_addr = atu->parent_bus_addr; 535 u32 retries, val; 536 u64 limit_addr; 537 538 limit_addr = parent_bus_addr + atu->size - 1; 539 540 if ((limit_addr & ~pci->region_limit) != (parent_bus_addr & ~pci->region_limit) || 541 !IS_ALIGNED(parent_bus_addr, pci->region_align) || 542 !IS_ALIGNED(atu->pci_addr, pci->region_align) || !atu->size) { 543 return -EINVAL; 544 } 545 546 dw_pcie_writel_atu_ob(pci, atu->index, PCIE_ATU_LOWER_BASE, 547 lower_32_bits(parent_bus_addr)); 548 dw_pcie_writel_atu_ob(pci, atu->index, PCIE_ATU_UPPER_BASE, 549 upper_32_bits(parent_bus_addr)); 550 551 dw_pcie_writel_atu_ob(pci, atu->index, PCIE_ATU_LIMIT, 552 lower_32_bits(limit_addr)); 553 if (dw_pcie_ver_is_ge(pci, 460A)) 554 dw_pcie_writel_atu_ob(pci, atu->index, PCIE_ATU_UPPER_LIMIT, 555 upper_32_bits(limit_addr)); 556 557 dw_pcie_writel_atu_ob(pci, atu->index, PCIE_ATU_LOWER_TARGET, 558 lower_32_bits(atu->pci_addr)); 559 dw_pcie_writel_atu_ob(pci, atu->index, PCIE_ATU_UPPER_TARGET, 560 upper_32_bits(atu->pci_addr)); 561 562 val = atu->type | atu->routing | PCIE_ATU_FUNC_NUM(atu->func_no); 563 if (upper_32_bits(limit_addr) > upper_32_bits(parent_bus_addr) && 564 dw_pcie_ver_is_ge(pci, 460A)) 565 val |= PCIE_ATU_INCREASE_REGION_SIZE; 566 if (dw_pcie_ver_is(pci, 490A)) 567 val = dw_pcie_enable_ecrc(val); 568 dw_pcie_writel_atu_ob(pci, atu->index, PCIE_ATU_REGION_CTRL1, val); 569 570 val = PCIE_ATU_ENABLE; 571 if (atu->type == PCIE_ATU_TYPE_MSG) { 572 /* The data-less messages only for now */ 573 val |= PCIE_ATU_INHIBIT_PAYLOAD | atu->code; 574 } 575 dw_pcie_writel_atu_ob(pci, atu->index, PCIE_ATU_REGION_CTRL2, val); 576 577 /* 578 * Make sure ATU enable takes effect before any subsequent config 579 * and I/O accesses. 580 */ 581 for (retries = 0; retries < LINK_WAIT_MAX_IATU_RETRIES; retries++) { 582 val = dw_pcie_readl_atu_ob(pci, atu->index, PCIE_ATU_REGION_CTRL2); 583 if (val & PCIE_ATU_ENABLE) 584 return 0; 585 586 mdelay(LINK_WAIT_IATU); 587 } 588 589 dev_err(pci->dev, "Outbound iATU is not being enabled\n"); 590 591 return -ETIMEDOUT; 592 } 593 594 static inline u32 dw_pcie_readl_atu_ib(struct dw_pcie *pci, u32 index, u32 reg) 595 { 596 return dw_pcie_readl_atu(pci, PCIE_ATU_REGION_DIR_IB, index, reg); 597 } 598 599 static inline void dw_pcie_writel_atu_ib(struct dw_pcie *pci, u32 index, u32 reg, 600 u32 val) 601 { 602 dw_pcie_writel_atu(pci, PCIE_ATU_REGION_DIR_IB, index, reg, val); 603 } 604 605 int dw_pcie_prog_inbound_atu(struct dw_pcie *pci, int index, int type, 606 u64 parent_bus_addr, u64 pci_addr, u64 size) 607 { 608 u64 limit_addr = pci_addr + size - 1; 609 u32 retries, val; 610 611 if ((limit_addr & ~pci->region_limit) != (pci_addr & ~pci->region_limit) || 612 !IS_ALIGNED(parent_bus_addr, pci->region_align) || 613 !IS_ALIGNED(pci_addr, pci->region_align) || !size) { 614 return -EINVAL; 615 } 616 617 dw_pcie_writel_atu_ib(pci, index, PCIE_ATU_LOWER_BASE, 618 lower_32_bits(pci_addr)); 619 dw_pcie_writel_atu_ib(pci, index, PCIE_ATU_UPPER_BASE, 620 upper_32_bits(pci_addr)); 621 622 dw_pcie_writel_atu_ib(pci, index, PCIE_ATU_LIMIT, 623 lower_32_bits(limit_addr)); 624 if (dw_pcie_ver_is_ge(pci, 460A)) 625 dw_pcie_writel_atu_ib(pci, index, PCIE_ATU_UPPER_LIMIT, 626 upper_32_bits(limit_addr)); 627 628 dw_pcie_writel_atu_ib(pci, index, PCIE_ATU_LOWER_TARGET, 629 lower_32_bits(parent_bus_addr)); 630 dw_pcie_writel_atu_ib(pci, index, PCIE_ATU_UPPER_TARGET, 631 upper_32_bits(parent_bus_addr)); 632 633 val = type; 634 if (upper_32_bits(limit_addr) > upper_32_bits(pci_addr) && 635 dw_pcie_ver_is_ge(pci, 460A)) 636 val |= PCIE_ATU_INCREASE_REGION_SIZE; 637 dw_pcie_writel_atu_ib(pci, index, PCIE_ATU_REGION_CTRL1, val); 638 dw_pcie_writel_atu_ib(pci, index, PCIE_ATU_REGION_CTRL2, PCIE_ATU_ENABLE); 639 640 /* 641 * Make sure ATU enable takes effect before any subsequent config 642 * and I/O accesses. 643 */ 644 for (retries = 0; retries < LINK_WAIT_MAX_IATU_RETRIES; retries++) { 645 val = dw_pcie_readl_atu_ib(pci, index, PCIE_ATU_REGION_CTRL2); 646 if (val & PCIE_ATU_ENABLE) 647 return 0; 648 649 mdelay(LINK_WAIT_IATU); 650 } 651 652 dev_err(pci->dev, "Inbound iATU is not being enabled\n"); 653 654 return -ETIMEDOUT; 655 } 656 657 int dw_pcie_prog_ep_inbound_atu(struct dw_pcie *pci, u8 func_no, int index, 658 int type, u64 parent_bus_addr, u8 bar, size_t size) 659 { 660 u32 retries, val; 661 662 if (!IS_ALIGNED(parent_bus_addr, pci->region_align) || 663 !IS_ALIGNED(parent_bus_addr, size)) 664 return -EINVAL; 665 666 dw_pcie_writel_atu_ib(pci, index, PCIE_ATU_LOWER_TARGET, 667 lower_32_bits(parent_bus_addr)); 668 dw_pcie_writel_atu_ib(pci, index, PCIE_ATU_UPPER_TARGET, 669 upper_32_bits(parent_bus_addr)); 670 671 dw_pcie_writel_atu_ib(pci, index, PCIE_ATU_REGION_CTRL1, type | 672 PCIE_ATU_FUNC_NUM(func_no)); 673 dw_pcie_writel_atu_ib(pci, index, PCIE_ATU_REGION_CTRL2, 674 PCIE_ATU_ENABLE | PCIE_ATU_FUNC_NUM_MATCH_EN | 675 PCIE_ATU_BAR_MODE_ENABLE | (bar << 8)); 676 677 /* 678 * Make sure ATU enable takes effect before any subsequent config 679 * and I/O accesses. 680 */ 681 for (retries = 0; retries < LINK_WAIT_MAX_IATU_RETRIES; retries++) { 682 val = dw_pcie_readl_atu_ib(pci, index, PCIE_ATU_REGION_CTRL2); 683 if (val & PCIE_ATU_ENABLE) 684 return 0; 685 686 mdelay(LINK_WAIT_IATU); 687 } 688 689 dev_err(pci->dev, "Inbound iATU is not being enabled\n"); 690 691 return -ETIMEDOUT; 692 } 693 694 void dw_pcie_disable_atu(struct dw_pcie *pci, u32 dir, int index) 695 { 696 dw_pcie_writel_atu(pci, dir, index, PCIE_ATU_REGION_CTRL2, 0); 697 } 698 699 int dw_pcie_wait_for_link(struct dw_pcie *pci) 700 { 701 u32 offset, val; 702 int retries; 703 704 /* Check if the link is up or not */ 705 for (retries = 0; retries < LINK_WAIT_MAX_RETRIES; retries++) { 706 if (dw_pcie_link_up(pci)) 707 break; 708 709 msleep(LINK_WAIT_SLEEP_MS); 710 } 711 712 if (retries >= LINK_WAIT_MAX_RETRIES) { 713 dev_info(pci->dev, "Phy link never came up\n"); 714 return -ETIMEDOUT; 715 } 716 717 offset = dw_pcie_find_capability(pci, PCI_CAP_ID_EXP); 718 val = dw_pcie_readw_dbi(pci, offset + PCI_EXP_LNKSTA); 719 720 dev_info(pci->dev, "PCIe Gen.%u x%u link up\n", 721 FIELD_GET(PCI_EXP_LNKSTA_CLS, val), 722 FIELD_GET(PCI_EXP_LNKSTA_NLW, val)); 723 724 return 0; 725 } 726 EXPORT_SYMBOL_GPL(dw_pcie_wait_for_link); 727 728 bool dw_pcie_link_up(struct dw_pcie *pci) 729 { 730 u32 val; 731 732 if (pci->ops && pci->ops->link_up) 733 return pci->ops->link_up(pci); 734 735 val = dw_pcie_readl_dbi(pci, PCIE_PORT_DEBUG1); 736 return ((val & PCIE_PORT_DEBUG1_LINK_UP) && 737 (!(val & PCIE_PORT_DEBUG1_LINK_IN_TRAINING))); 738 } 739 EXPORT_SYMBOL_GPL(dw_pcie_link_up); 740 741 void dw_pcie_upconfig_setup(struct dw_pcie *pci) 742 { 743 u32 val; 744 745 val = dw_pcie_readl_dbi(pci, PCIE_PORT_MULTI_LANE_CTRL); 746 val |= PORT_MLTI_UPCFG_SUPPORT; 747 dw_pcie_writel_dbi(pci, PCIE_PORT_MULTI_LANE_CTRL, val); 748 } 749 EXPORT_SYMBOL_GPL(dw_pcie_upconfig_setup); 750 751 static void dw_pcie_link_set_max_speed(struct dw_pcie *pci) 752 { 753 u32 cap, ctrl2, link_speed; 754 u8 offset = dw_pcie_find_capability(pci, PCI_CAP_ID_EXP); 755 756 cap = dw_pcie_readl_dbi(pci, offset + PCI_EXP_LNKCAP); 757 758 /* 759 * Even if the platform doesn't want to limit the maximum link speed, 760 * just cache the hardware default value so that the vendor drivers can 761 * use it to do any link specific configuration. 762 */ 763 if (pci->max_link_speed < 1) { 764 pci->max_link_speed = FIELD_GET(PCI_EXP_LNKCAP_SLS, cap); 765 return; 766 } 767 768 ctrl2 = dw_pcie_readl_dbi(pci, offset + PCI_EXP_LNKCTL2); 769 ctrl2 &= ~PCI_EXP_LNKCTL2_TLS; 770 771 switch (pcie_link_speed[pci->max_link_speed]) { 772 case PCIE_SPEED_2_5GT: 773 link_speed = PCI_EXP_LNKCTL2_TLS_2_5GT; 774 break; 775 case PCIE_SPEED_5_0GT: 776 link_speed = PCI_EXP_LNKCTL2_TLS_5_0GT; 777 break; 778 case PCIE_SPEED_8_0GT: 779 link_speed = PCI_EXP_LNKCTL2_TLS_8_0GT; 780 break; 781 case PCIE_SPEED_16_0GT: 782 link_speed = PCI_EXP_LNKCTL2_TLS_16_0GT; 783 break; 784 default: 785 /* Use hardware capability */ 786 link_speed = FIELD_GET(PCI_EXP_LNKCAP_SLS, cap); 787 ctrl2 &= ~PCI_EXP_LNKCTL2_HASD; 788 break; 789 } 790 791 dw_pcie_writel_dbi(pci, offset + PCI_EXP_LNKCTL2, ctrl2 | link_speed); 792 793 cap &= ~((u32)PCI_EXP_LNKCAP_SLS); 794 dw_pcie_writel_dbi(pci, offset + PCI_EXP_LNKCAP, cap | link_speed); 795 796 } 797 798 int dw_pcie_link_get_max_link_width(struct dw_pcie *pci) 799 { 800 u8 cap = dw_pcie_find_capability(pci, PCI_CAP_ID_EXP); 801 u32 lnkcap = dw_pcie_readl_dbi(pci, cap + PCI_EXP_LNKCAP); 802 803 return FIELD_GET(PCI_EXP_LNKCAP_MLW, lnkcap); 804 } 805 806 static void dw_pcie_link_set_max_link_width(struct dw_pcie *pci, u32 num_lanes) 807 { 808 u32 lnkcap, lwsc, plc; 809 u8 cap; 810 811 if (!num_lanes) 812 return; 813 814 /* Set the number of lanes */ 815 plc = dw_pcie_readl_dbi(pci, PCIE_PORT_LINK_CONTROL); 816 plc &= ~PORT_LINK_FAST_LINK_MODE; 817 plc &= ~PORT_LINK_MODE_MASK; 818 819 /* Set link width speed control register */ 820 lwsc = dw_pcie_readl_dbi(pci, PCIE_LINK_WIDTH_SPEED_CONTROL); 821 lwsc &= ~PORT_LOGIC_LINK_WIDTH_MASK; 822 lwsc |= PORT_LOGIC_LINK_WIDTH_1_LANES; 823 switch (num_lanes) { 824 case 1: 825 plc |= PORT_LINK_MODE_1_LANES; 826 break; 827 case 2: 828 plc |= PORT_LINK_MODE_2_LANES; 829 break; 830 case 4: 831 plc |= PORT_LINK_MODE_4_LANES; 832 break; 833 case 8: 834 plc |= PORT_LINK_MODE_8_LANES; 835 break; 836 default: 837 dev_err(pci->dev, "num-lanes %u: invalid value\n", num_lanes); 838 return; 839 } 840 dw_pcie_writel_dbi(pci, PCIE_PORT_LINK_CONTROL, plc); 841 dw_pcie_writel_dbi(pci, PCIE_LINK_WIDTH_SPEED_CONTROL, lwsc); 842 843 cap = dw_pcie_find_capability(pci, PCI_CAP_ID_EXP); 844 lnkcap = dw_pcie_readl_dbi(pci, cap + PCI_EXP_LNKCAP); 845 lnkcap &= ~PCI_EXP_LNKCAP_MLW; 846 lnkcap |= FIELD_PREP(PCI_EXP_LNKCAP_MLW, num_lanes); 847 dw_pcie_writel_dbi(pci, cap + PCI_EXP_LNKCAP, lnkcap); 848 } 849 850 void dw_pcie_iatu_detect(struct dw_pcie *pci) 851 { 852 int max_region, ob, ib; 853 u32 val, min, dir; 854 u64 max; 855 856 val = dw_pcie_readl_dbi(pci, PCIE_ATU_VIEWPORT); 857 if (val == 0xFFFFFFFF) { 858 dw_pcie_cap_set(pci, IATU_UNROLL); 859 860 max_region = min((int)pci->atu_size / 512, 256); 861 } else { 862 pci->atu_base = pci->dbi_base + PCIE_ATU_VIEWPORT_BASE; 863 pci->atu_size = PCIE_ATU_VIEWPORT_SIZE; 864 865 dw_pcie_writel_dbi(pci, PCIE_ATU_VIEWPORT, 0xFF); 866 max_region = dw_pcie_readl_dbi(pci, PCIE_ATU_VIEWPORT) + 1; 867 } 868 869 for (ob = 0; ob < max_region; ob++) { 870 dw_pcie_writel_atu_ob(pci, ob, PCIE_ATU_LOWER_TARGET, 0x11110000); 871 val = dw_pcie_readl_atu_ob(pci, ob, PCIE_ATU_LOWER_TARGET); 872 if (val != 0x11110000) 873 break; 874 } 875 876 for (ib = 0; ib < max_region; ib++) { 877 dw_pcie_writel_atu_ib(pci, ib, PCIE_ATU_LOWER_TARGET, 0x11110000); 878 val = dw_pcie_readl_atu_ib(pci, ib, PCIE_ATU_LOWER_TARGET); 879 if (val != 0x11110000) 880 break; 881 } 882 883 if (ob) { 884 dir = PCIE_ATU_REGION_DIR_OB; 885 } else if (ib) { 886 dir = PCIE_ATU_REGION_DIR_IB; 887 } else { 888 dev_err(pci->dev, "No iATU regions found\n"); 889 return; 890 } 891 892 dw_pcie_writel_atu(pci, dir, 0, PCIE_ATU_LIMIT, 0x0); 893 min = dw_pcie_readl_atu(pci, dir, 0, PCIE_ATU_LIMIT); 894 895 if (dw_pcie_ver_is_ge(pci, 460A)) { 896 dw_pcie_writel_atu(pci, dir, 0, PCIE_ATU_UPPER_LIMIT, 0xFFFFFFFF); 897 max = dw_pcie_readl_atu(pci, dir, 0, PCIE_ATU_UPPER_LIMIT); 898 } else { 899 max = 0; 900 } 901 902 pci->num_ob_windows = ob; 903 pci->num_ib_windows = ib; 904 pci->region_align = 1 << fls(min); 905 pci->region_limit = (max << 32) | (SZ_4G - 1); 906 907 dev_info(pci->dev, "iATU: unroll %s, %u ob, %u ib, align %uK, limit %lluG\n", 908 dw_pcie_cap_is(pci, IATU_UNROLL) ? "T" : "F", 909 pci->num_ob_windows, pci->num_ib_windows, 910 pci->region_align / SZ_1K, (pci->region_limit + 1) / SZ_1G); 911 } 912 913 static u32 dw_pcie_readl_dma(struct dw_pcie *pci, u32 reg) 914 { 915 u32 val = 0; 916 int ret; 917 918 if (pci->ops && pci->ops->read_dbi) 919 return pci->ops->read_dbi(pci, pci->edma.reg_base, reg, 4); 920 921 ret = dw_pcie_read(pci->edma.reg_base + reg, 4, &val); 922 if (ret) 923 dev_err(pci->dev, "Read DMA address failed\n"); 924 925 return val; 926 } 927 928 static int dw_pcie_edma_irq_vector(struct device *dev, unsigned int nr) 929 { 930 struct platform_device *pdev = to_platform_device(dev); 931 char name[6]; 932 int ret; 933 934 if (nr >= EDMA_MAX_WR_CH + EDMA_MAX_RD_CH) 935 return -EINVAL; 936 937 ret = platform_get_irq_byname_optional(pdev, "dma"); 938 if (ret > 0) 939 return ret; 940 941 snprintf(name, sizeof(name), "dma%u", nr); 942 943 return platform_get_irq_byname_optional(pdev, name); 944 } 945 946 static struct dw_edma_plat_ops dw_pcie_edma_ops = { 947 .irq_vector = dw_pcie_edma_irq_vector, 948 }; 949 950 static void dw_pcie_edma_init_data(struct dw_pcie *pci) 951 { 952 pci->edma.dev = pci->dev; 953 954 if (!pci->edma.ops) 955 pci->edma.ops = &dw_pcie_edma_ops; 956 957 pci->edma.flags |= DW_EDMA_CHIP_LOCAL; 958 } 959 960 static int dw_pcie_edma_find_mf(struct dw_pcie *pci) 961 { 962 u32 val; 963 964 /* 965 * Bail out finding the mapping format if it is already set by the glue 966 * driver. Also ensure that the edma.reg_base is pointing to a valid 967 * memory region. 968 */ 969 if (pci->edma.mf != EDMA_MF_EDMA_LEGACY) 970 return pci->edma.reg_base ? 0 : -ENODEV; 971 972 /* 973 * Indirect eDMA CSRs access has been completely removed since v5.40a 974 * thus no space is now reserved for the eDMA channels viewport and 975 * former DMA CTRL register is no longer fixed to FFs. 976 */ 977 if (dw_pcie_ver_is_ge(pci, 540A)) 978 val = 0xFFFFFFFF; 979 else 980 val = dw_pcie_readl_dbi(pci, PCIE_DMA_VIEWPORT_BASE + PCIE_DMA_CTRL); 981 982 if (val == 0xFFFFFFFF && pci->edma.reg_base) { 983 pci->edma.mf = EDMA_MF_EDMA_UNROLL; 984 } else if (val != 0xFFFFFFFF) { 985 pci->edma.mf = EDMA_MF_EDMA_LEGACY; 986 987 pci->edma.reg_base = pci->dbi_base + PCIE_DMA_VIEWPORT_BASE; 988 } else { 989 return -ENODEV; 990 } 991 992 return 0; 993 } 994 995 static int dw_pcie_edma_find_channels(struct dw_pcie *pci) 996 { 997 u32 val; 998 999 /* 1000 * Autodetect the read/write channels count only for non-HDMA platforms. 1001 * HDMA platforms with native CSR mapping doesn't support autodetect, 1002 * so the glue drivers should've passed the valid count already. If not, 1003 * the below sanity check will catch it. 1004 */ 1005 if (pci->edma.mf != EDMA_MF_HDMA_NATIVE) { 1006 val = dw_pcie_readl_dma(pci, PCIE_DMA_CTRL); 1007 1008 pci->edma.ll_wr_cnt = FIELD_GET(PCIE_DMA_NUM_WR_CHAN, val); 1009 pci->edma.ll_rd_cnt = FIELD_GET(PCIE_DMA_NUM_RD_CHAN, val); 1010 } 1011 1012 /* Sanity check the channels count if the mapping was incorrect */ 1013 if (!pci->edma.ll_wr_cnt || pci->edma.ll_wr_cnt > EDMA_MAX_WR_CH || 1014 !pci->edma.ll_rd_cnt || pci->edma.ll_rd_cnt > EDMA_MAX_RD_CH) 1015 return -EINVAL; 1016 1017 return 0; 1018 } 1019 1020 static int dw_pcie_edma_find_chip(struct dw_pcie *pci) 1021 { 1022 int ret; 1023 1024 dw_pcie_edma_init_data(pci); 1025 1026 ret = dw_pcie_edma_find_mf(pci); 1027 if (ret) 1028 return ret; 1029 1030 return dw_pcie_edma_find_channels(pci); 1031 } 1032 1033 static int dw_pcie_edma_irq_verify(struct dw_pcie *pci) 1034 { 1035 struct platform_device *pdev = to_platform_device(pci->dev); 1036 u16 ch_cnt = pci->edma.ll_wr_cnt + pci->edma.ll_rd_cnt; 1037 char name[15]; 1038 int ret; 1039 1040 if (pci->edma.nr_irqs == 1) 1041 return 0; 1042 else if (pci->edma.nr_irqs > 1) 1043 return pci->edma.nr_irqs != ch_cnt ? -EINVAL : 0; 1044 1045 ret = platform_get_irq_byname_optional(pdev, "dma"); 1046 if (ret > 0) { 1047 pci->edma.nr_irqs = 1; 1048 return 0; 1049 } 1050 1051 for (; pci->edma.nr_irqs < ch_cnt; pci->edma.nr_irqs++) { 1052 snprintf(name, sizeof(name), "dma%d", pci->edma.nr_irqs); 1053 1054 ret = platform_get_irq_byname_optional(pdev, name); 1055 if (ret <= 0) 1056 return -EINVAL; 1057 } 1058 1059 return 0; 1060 } 1061 1062 static int dw_pcie_edma_ll_alloc(struct dw_pcie *pci) 1063 { 1064 struct dw_edma_region *ll; 1065 dma_addr_t paddr; 1066 int i; 1067 1068 for (i = 0; i < pci->edma.ll_wr_cnt; i++) { 1069 ll = &pci->edma.ll_region_wr[i]; 1070 ll->sz = DMA_LLP_MEM_SIZE; 1071 ll->vaddr.mem = dmam_alloc_coherent(pci->dev, ll->sz, 1072 &paddr, GFP_KERNEL); 1073 if (!ll->vaddr.mem) 1074 return -ENOMEM; 1075 1076 ll->paddr = paddr; 1077 } 1078 1079 for (i = 0; i < pci->edma.ll_rd_cnt; i++) { 1080 ll = &pci->edma.ll_region_rd[i]; 1081 ll->sz = DMA_LLP_MEM_SIZE; 1082 ll->vaddr.mem = dmam_alloc_coherent(pci->dev, ll->sz, 1083 &paddr, GFP_KERNEL); 1084 if (!ll->vaddr.mem) 1085 return -ENOMEM; 1086 1087 ll->paddr = paddr; 1088 } 1089 1090 return 0; 1091 } 1092 1093 int dw_pcie_edma_detect(struct dw_pcie *pci) 1094 { 1095 int ret; 1096 1097 /* Don't fail if no eDMA was found (for the backward compatibility) */ 1098 ret = dw_pcie_edma_find_chip(pci); 1099 if (ret) 1100 return 0; 1101 1102 /* Don't fail on the IRQs verification (for the backward compatibility) */ 1103 ret = dw_pcie_edma_irq_verify(pci); 1104 if (ret) { 1105 dev_err(pci->dev, "Invalid eDMA IRQs found\n"); 1106 return 0; 1107 } 1108 1109 ret = dw_pcie_edma_ll_alloc(pci); 1110 if (ret) { 1111 dev_err(pci->dev, "Couldn't allocate LLP memory\n"); 1112 return ret; 1113 } 1114 1115 /* Don't fail if the DW eDMA driver can't find the device */ 1116 ret = dw_edma_probe(&pci->edma); 1117 if (ret && ret != -ENODEV) { 1118 dev_err(pci->dev, "Couldn't register eDMA device\n"); 1119 return ret; 1120 } 1121 1122 dev_info(pci->dev, "eDMA: unroll %s, %hu wr, %hu rd\n", 1123 pci->edma.mf == EDMA_MF_EDMA_UNROLL ? "T" : "F", 1124 pci->edma.ll_wr_cnt, pci->edma.ll_rd_cnt); 1125 1126 return 0; 1127 } 1128 1129 void dw_pcie_edma_remove(struct dw_pcie *pci) 1130 { 1131 dw_edma_remove(&pci->edma); 1132 } 1133 1134 void dw_pcie_setup(struct dw_pcie *pci) 1135 { 1136 u32 val; 1137 1138 dw_pcie_link_set_max_speed(pci); 1139 1140 /* Configure Gen1 N_FTS */ 1141 if (pci->n_fts[0]) { 1142 val = dw_pcie_readl_dbi(pci, PCIE_PORT_AFR); 1143 val &= ~(PORT_AFR_N_FTS_MASK | PORT_AFR_CC_N_FTS_MASK); 1144 val |= PORT_AFR_N_FTS(pci->n_fts[0]); 1145 val |= PORT_AFR_CC_N_FTS(pci->n_fts[0]); 1146 dw_pcie_writel_dbi(pci, PCIE_PORT_AFR, val); 1147 } 1148 1149 /* Configure Gen2+ N_FTS */ 1150 if (pci->n_fts[1]) { 1151 val = dw_pcie_readl_dbi(pci, PCIE_LINK_WIDTH_SPEED_CONTROL); 1152 val &= ~PORT_LOGIC_N_FTS_MASK; 1153 val |= pci->n_fts[1]; 1154 dw_pcie_writel_dbi(pci, PCIE_LINK_WIDTH_SPEED_CONTROL, val); 1155 } 1156 1157 if (dw_pcie_cap_is(pci, CDM_CHECK)) { 1158 val = dw_pcie_readl_dbi(pci, PCIE_PL_CHK_REG_CONTROL_STATUS); 1159 val |= PCIE_PL_CHK_REG_CHK_REG_CONTINUOUS | 1160 PCIE_PL_CHK_REG_CHK_REG_START; 1161 dw_pcie_writel_dbi(pci, PCIE_PL_CHK_REG_CONTROL_STATUS, val); 1162 } 1163 1164 val = dw_pcie_readl_dbi(pci, PCIE_PORT_LINK_CONTROL); 1165 val &= ~PORT_LINK_FAST_LINK_MODE; 1166 val |= PORT_LINK_DLL_LINK_EN; 1167 dw_pcie_writel_dbi(pci, PCIE_PORT_LINK_CONTROL, val); 1168 1169 dw_pcie_link_set_max_link_width(pci, pci->num_lanes); 1170 } 1171 1172 resource_size_t dw_pcie_parent_bus_offset(struct dw_pcie *pci, 1173 const char *reg_name, 1174 resource_size_t cpu_phys_addr) 1175 { 1176 struct device *dev = pci->dev; 1177 struct device_node *np = dev->of_node; 1178 int index; 1179 u64 reg_addr, fixup_addr; 1180 u64 (*fixup)(struct dw_pcie *pcie, u64 cpu_addr); 1181 1182 /* Look up reg_name address on parent bus */ 1183 index = of_property_match_string(np, "reg-names", reg_name); 1184 1185 if (index < 0) { 1186 dev_err(dev, "No %s in devicetree \"reg\" property\n", reg_name); 1187 return 0; 1188 } 1189 1190 of_property_read_reg(np, index, ®_addr, NULL); 1191 1192 fixup = pci->ops ? pci->ops->cpu_addr_fixup : NULL; 1193 if (fixup) { 1194 fixup_addr = fixup(pci, cpu_phys_addr); 1195 if (reg_addr == fixup_addr) { 1196 dev_info(dev, "%s reg[%d] %#010llx == %#010llx == fixup(cpu %#010llx); %ps is redundant with this devicetree\n", 1197 reg_name, index, reg_addr, fixup_addr, 1198 (unsigned long long) cpu_phys_addr, fixup); 1199 } else { 1200 dev_warn(dev, "%s reg[%d] %#010llx != %#010llx == fixup(cpu %#010llx); devicetree is broken\n", 1201 reg_name, index, reg_addr, fixup_addr, 1202 (unsigned long long) cpu_phys_addr); 1203 reg_addr = fixup_addr; 1204 } 1205 1206 return cpu_phys_addr - reg_addr; 1207 } 1208 1209 if (pci->use_parent_dt_ranges) { 1210 1211 /* 1212 * This platform once had a fixup, presumably because it 1213 * translates between CPU and PCI controller addresses. 1214 * Log a note if devicetree didn't describe a translation. 1215 */ 1216 if (reg_addr == cpu_phys_addr) 1217 dev_info(dev, "%s reg[%d] %#010llx == cpu %#010llx\n; no fixup was ever needed for this devicetree\n", 1218 reg_name, index, reg_addr, 1219 (unsigned long long) cpu_phys_addr); 1220 } else { 1221 if (reg_addr != cpu_phys_addr) { 1222 dev_warn(dev, "%s reg[%d] %#010llx != cpu %#010llx; no fixup and devicetree \"ranges\" is broken, assuming no translation\n", 1223 reg_name, index, reg_addr, 1224 (unsigned long long) cpu_phys_addr); 1225 return 0; 1226 } 1227 } 1228 1229 return cpu_phys_addr - reg_addr; 1230 } 1231