1 /* 2 * Copyright (c) 2016-2022, ARM Limited and Contributors. All rights reserved. 3 * 4 * SPDX-License-Identifier: BSD-3-Clause 5 */ 6 7 /* 8 * Contains generic routines to fix up the device tree blob passed on to 9 * payloads like BL32 and BL33 (and further down the boot chain). 10 * This allows to easily add PSCI nodes, when the original DT does not have 11 * it or advertises another method. 12 * Also it supports to add reserved memory nodes to describe memory that 13 * is used by the secure world, so that non-secure software avoids using 14 * that. 15 */ 16 17 #include <errno.h> 18 #include <stdio.h> 19 #include <string.h> 20 21 #include <libfdt.h> 22 23 #include <arch.h> 24 #include <common/debug.h> 25 #include <common/fdt_fixup.h> 26 #include <common/fdt_wrappers.h> 27 #include <drivers/console.h> 28 #include <lib/psci/psci.h> 29 #include <lib/utils_def.h> 30 #include <plat/common/platform.h> 31 32 33 static int append_psci_compatible(void *fdt, int offs, const char *str) 34 { 35 return fdt_appendprop(fdt, offs, "compatible", str, strlen(str) + 1); 36 } 37 38 /* 39 * Those defines are for PSCI v0.1 legacy clients, which we expect to use 40 * the same execution state (AArch32/AArch64) as TF-A. 41 * Kernels running in AArch32 on an AArch64 TF-A should use PSCI v0.2. 42 */ 43 #ifdef __aarch64__ 44 #define PSCI_CPU_SUSPEND_FNID PSCI_CPU_SUSPEND_AARCH64 45 #define PSCI_CPU_ON_FNID PSCI_CPU_ON_AARCH64 46 #else 47 #define PSCI_CPU_SUSPEND_FNID PSCI_CPU_SUSPEND_AARCH32 48 #define PSCI_CPU_ON_FNID PSCI_CPU_ON_AARCH32 49 #endif 50 51 /******************************************************************************* 52 * dt_add_psci_node() - Add a PSCI node into an existing device tree 53 * @fdt: pointer to the device tree blob in memory 54 * 55 * Add a device tree node describing PSCI into the root level of an existing 56 * device tree blob in memory. 57 * This will add v0.1, v0.2 and v1.0 compatible strings and the standard 58 * function IDs for v0.1 compatibility. 59 * An existing PSCI node will not be touched, the function will return success 60 * in this case. This function will not touch the /cpus enable methods, use 61 * dt_add_psci_cpu_enable_methods() for that. 62 * 63 * Return: 0 on success, -1 otherwise. 64 ******************************************************************************/ 65 int dt_add_psci_node(void *fdt) 66 { 67 int offs; 68 69 if (fdt_path_offset(fdt, "/psci") >= 0) { 70 WARN("PSCI Device Tree node already exists!\n"); 71 return 0; 72 } 73 74 offs = fdt_path_offset(fdt, "/"); 75 if (offs < 0) { 76 return -1; 77 } 78 offs = fdt_add_subnode(fdt, offs, "psci"); 79 if (offs < 0) { 80 return -1; 81 } 82 if (append_psci_compatible(fdt, offs, "arm,psci-1.0") != 0) { 83 return -1; 84 } 85 if (append_psci_compatible(fdt, offs, "arm,psci-0.2") != 0) { 86 return -1; 87 } 88 if (append_psci_compatible(fdt, offs, "arm,psci") != 0) { 89 return -1; 90 } 91 if (fdt_setprop_string(fdt, offs, "method", "smc") != 0) { 92 return -1; 93 } 94 if (fdt_setprop_u32(fdt, offs, "cpu_suspend", PSCI_CPU_SUSPEND_FNID) != 0) { 95 return -1; 96 } 97 if (fdt_setprop_u32(fdt, offs, "cpu_off", PSCI_CPU_OFF) != 0) { 98 return -1; 99 } 100 if (fdt_setprop_u32(fdt, offs, "cpu_on", PSCI_CPU_ON_FNID) != 0) { 101 return -1; 102 } 103 return 0; 104 } 105 106 /* 107 * Find the first subnode that has a "device_type" property with the value 108 * "cpu" and which's enable-method is not "psci" (yet). 109 * Returns 0 if no such subnode is found, so all have already been patched 110 * or none have to be patched in the first place. 111 * Returns 1 if *one* such subnode has been found and successfully changed 112 * to "psci". 113 * Returns negative values on error. 114 * 115 * Call in a loop until it returns 0. Recalculate the node offset after 116 * it has returned 1. 117 */ 118 static int dt_update_one_cpu_node(void *fdt, int offset) 119 { 120 int offs; 121 122 /* Iterate over all subnodes to find those with device_type = "cpu". */ 123 for (offs = fdt_first_subnode(fdt, offset); offs >= 0; 124 offs = fdt_next_subnode(fdt, offs)) { 125 const char *prop; 126 int len; 127 int ret; 128 129 prop = fdt_getprop(fdt, offs, "device_type", &len); 130 if (prop == NULL) 131 continue; 132 if ((strcmp(prop, "cpu") != 0) || (len != 4)) 133 continue; 134 135 /* Ignore any nodes which already use "psci". */ 136 prop = fdt_getprop(fdt, offs, "enable-method", &len); 137 if ((prop != NULL) && 138 (strcmp(prop, "psci") == 0) && (len == 5)) 139 continue; 140 141 ret = fdt_setprop_string(fdt, offs, "enable-method", "psci"); 142 if (ret < 0) 143 return ret; 144 /* 145 * Subnode found and patched. 146 * Restart to accommodate potentially changed offsets. 147 */ 148 return 1; 149 } 150 151 if (offs == -FDT_ERR_NOTFOUND) 152 return 0; 153 154 return offs; 155 } 156 157 /******************************************************************************* 158 * dt_add_psci_cpu_enable_methods() - switch CPU nodes in DT to use PSCI 159 * @fdt: pointer to the device tree blob in memory 160 * 161 * Iterate over all CPU device tree nodes (/cpus/cpu@x) in memory to change 162 * the enable-method to PSCI. This will add the enable-method properties, if 163 * required, or will change existing properties to read "psci". 164 * 165 * Return: 0 on success, or a negative error value otherwise. 166 ******************************************************************************/ 167 168 int dt_add_psci_cpu_enable_methods(void *fdt) 169 { 170 int offs, ret; 171 172 do { 173 offs = fdt_path_offset(fdt, "/cpus"); 174 if (offs < 0) { 175 return offs; 176 } 177 178 ret = dt_update_one_cpu_node(fdt, offs); 179 } while (ret > 0); 180 181 return ret; 182 } 183 184 #define HIGH_BITS_U32(x) ((sizeof(x) > 4U) ? (uint32_t)((x) >> 32) : (uint32_t)0) 185 186 /******************************************************************************* 187 * fdt_add_reserved_memory() - reserve (secure) memory regions in DT 188 * @dtb: pointer to the device tree blob in memory 189 * @node_name: name of the subnode to be used 190 * @base: physical base address of the reserved region 191 * @size: size of the reserved region 192 * 193 * Add a region of memory to the /reserved-memory node in a device tree in 194 * memory, creating that node if required. Each region goes into a subnode 195 * of that node and has a @node_name, a @base address and a @size. 196 * This will prevent any device tree consumer from using that memory. It 197 * can be used to announce secure memory regions, as it adds the "no-map" 198 * property to prevent mapping and speculative operations on that region. 199 * 200 * See reserved-memory/reserved-memory.txt in the (Linux kernel) DT binding 201 * documentation for details. 202 * According to this binding, the address-cells and size-cells must match 203 * those of the root node. 204 * 205 * Return: 0 on success, a negative error value otherwise. 206 ******************************************************************************/ 207 int fdt_add_reserved_memory(void *dtb, const char *node_name, 208 uintptr_t base, size_t size) 209 { 210 int offs = fdt_path_offset(dtb, "/reserved-memory"); 211 int node; 212 uint32_t addresses[4]; 213 int ac, sc; 214 unsigned int idx = 0; 215 216 ac = fdt_address_cells(dtb, 0); 217 sc = fdt_size_cells(dtb, 0); 218 if (ac < 0 || sc < 0) { 219 return -EINVAL; 220 } 221 if (offs < 0) { /* create if not existing yet */ 222 offs = fdt_add_subnode(dtb, 0, "reserved-memory"); 223 if (offs < 0) { 224 return offs; 225 } 226 fdt_setprop_u32(dtb, offs, "#address-cells", (uint32_t)ac); 227 fdt_setprop_u32(dtb, offs, "#size-cells", (uint32_t)sc); 228 fdt_setprop(dtb, offs, "ranges", NULL, 0); 229 } 230 231 /* Check for existing regions */ 232 fdt_for_each_subnode(node, dtb, offs) { 233 uintptr_t c_base; 234 size_t c_size; 235 int ret; 236 237 ret = fdt_get_reg_props_by_index(dtb, node, 0, &c_base, &c_size); 238 /* Ignore illegal subnodes */ 239 if (ret != 0) { 240 continue; 241 } 242 243 /* existing region entirely contains the new region */ 244 if (base >= c_base && (base + size) <= (c_base + c_size)) { 245 return 0; 246 } 247 } 248 249 if (ac > 1) { 250 addresses[idx] = cpu_to_fdt32(HIGH_BITS_U32(base)); 251 idx++; 252 } 253 addresses[idx] = cpu_to_fdt32(LO(base)); 254 idx++; 255 if (sc > 1) { 256 addresses[idx] = cpu_to_fdt32(HIGH_BITS_U32(size)); 257 idx++; 258 } 259 addresses[idx] = cpu_to_fdt32(LO(size)); 260 idx++; 261 offs = fdt_add_subnode(dtb, offs, node_name); 262 fdt_setprop(dtb, offs, "no-map", NULL, 0); 263 fdt_setprop(dtb, offs, "reg", addresses, idx * sizeof(uint32_t)); 264 265 return 0; 266 } 267 268 /******************************************************************************* 269 * fdt_add_cpu() Add a new CPU node to the DT 270 * @dtb: Pointer to the device tree blob in memory 271 * @parent: Offset of the parent node 272 * @mpidr: MPIDR for the current CPU 273 * 274 * Create and add a new cpu node to a DTB. 275 * 276 * Return the offset of the new node or a negative value in case of error 277 ******************************************************************************/ 278 279 static int fdt_add_cpu(void *dtb, int parent, u_register_t mpidr) 280 { 281 int cpu_offs; 282 int err; 283 char snode_name[15]; 284 uint64_t reg_prop; 285 286 reg_prop = mpidr & MPID_MASK & ~MPIDR_MT_MASK; 287 288 snprintf(snode_name, sizeof(snode_name), "cpu@%x", 289 (unsigned int)reg_prop); 290 291 cpu_offs = fdt_add_subnode(dtb, parent, snode_name); 292 if (cpu_offs < 0) { 293 ERROR ("FDT: add subnode \"%s\" failed: %i\n", 294 snode_name, cpu_offs); 295 return cpu_offs; 296 } 297 298 err = fdt_setprop_string(dtb, cpu_offs, "compatible", "arm,armv8"); 299 if (err < 0) { 300 ERROR ("FDT: write to \"%s\" property of node at offset %i failed\n", 301 "compatible", cpu_offs); 302 return err; 303 } 304 305 err = fdt_setprop_u64(dtb, cpu_offs, "reg", reg_prop); 306 if (err < 0) { 307 ERROR ("FDT: write to \"%s\" property of node at offset %i failed\n", 308 "reg", cpu_offs); 309 return err; 310 } 311 312 err = fdt_setprop_string(dtb, cpu_offs, "device_type", "cpu"); 313 if (err < 0) { 314 ERROR ("FDT: write to \"%s\" property of node at offset %i failed\n", 315 "device_type", cpu_offs); 316 return err; 317 } 318 319 err = fdt_setprop_string(dtb, cpu_offs, "enable-method", "psci"); 320 if (err < 0) { 321 ERROR ("FDT: write to \"%s\" property of node at offset %i failed\n", 322 "enable-method", cpu_offs); 323 return err; 324 } 325 326 return cpu_offs; 327 } 328 329 /****************************************************************************** 330 * fdt_add_cpus_node() - Add the cpus node to the DTB 331 * @dtb: pointer to the device tree blob in memory 332 * @afflv0: Maximum number of threads per core (affinity level 0). 333 * @afflv1: Maximum number of CPUs per cluster (affinity level 1). 334 * @afflv2: Maximum number of clusters (affinity level 2). 335 * 336 * Iterate over all the possible MPIDs given the maximum affinity levels and 337 * add a cpus node to the DTB with all the valid CPUs on the system. 338 * If there is already a /cpus node, exit gracefully 339 * 340 * A system with two CPUs would generate a node equivalent or similar to: 341 * 342 * cpus { 343 * #address-cells = <2>; 344 * #size-cells = <0>; 345 * 346 * cpu0: cpu@0 { 347 * compatible = "arm,armv8"; 348 * reg = <0x0 0x0>; 349 * device_type = "cpu"; 350 * enable-method = "psci"; 351 * }; 352 * cpu1: cpu@10000 { 353 * compatible = "arm,armv8"; 354 * reg = <0x0 0x100>; 355 * device_type = "cpu"; 356 * enable-method = "psci"; 357 * }; 358 * }; 359 * 360 * Full documentation about the CPU bindings can be found at: 361 * https://www.kernel.org/doc/Documentation/devicetree/bindings/arm/cpus.txt 362 * 363 * Return the offset of the node or a negative value on error. 364 ******************************************************************************/ 365 366 int fdt_add_cpus_node(void *dtb, unsigned int afflv0, 367 unsigned int afflv1, unsigned int afflv2) 368 { 369 int offs; 370 int err; 371 unsigned int i, j, k; 372 u_register_t mpidr; 373 int cpuid; 374 375 if (fdt_path_offset(dtb, "/cpus") >= 0) { 376 return -EEXIST; 377 } 378 379 offs = fdt_add_subnode(dtb, 0, "cpus"); 380 if (offs < 0) { 381 ERROR ("FDT: add subnode \"cpus\" node to parent node failed"); 382 return offs; 383 } 384 385 err = fdt_setprop_u32(dtb, offs, "#address-cells", 2); 386 if (err < 0) { 387 ERROR ("FDT: write to \"%s\" property of node at offset %i failed\n", 388 "#address-cells", offs); 389 return err; 390 } 391 392 err = fdt_setprop_u32(dtb, offs, "#size-cells", 0); 393 if (err < 0) { 394 ERROR ("FDT: write to \"%s\" property of node at offset %i failed\n", 395 "#size-cells", offs); 396 return err; 397 } 398 399 /* 400 * Populate the node with the CPUs. 401 * As libfdt prepends subnodes within a node, reverse the index count 402 * so the CPU nodes would be better ordered. 403 */ 404 for (i = afflv2; i > 0U; i--) { 405 for (j = afflv1; j > 0U; j--) { 406 for (k = afflv0; k > 0U; k--) { 407 mpidr = ((i - 1) << MPIDR_AFF2_SHIFT) | 408 ((j - 1) << MPIDR_AFF1_SHIFT) | 409 ((k - 1) << MPIDR_AFF0_SHIFT) | 410 (read_mpidr_el1() & MPIDR_MT_MASK); 411 412 cpuid = plat_core_pos_by_mpidr(mpidr); 413 if (cpuid >= 0) { 414 /* Valid MPID found */ 415 err = fdt_add_cpu(dtb, offs, mpidr); 416 if (err < 0) { 417 ERROR ("FDT: %s 0x%08x\n", 418 "error adding CPU", 419 (uint32_t)mpidr); 420 return err; 421 } 422 } 423 } 424 } 425 } 426 427 return offs; 428 } 429 430 /******************************************************************************* 431 * fdt_add_cpu_idle_states() - add PSCI CPU idle states to cpu nodes in the DT 432 * @dtb: pointer to the device tree blob in memory 433 * @states: array of idle state descriptions, ending with empty element 434 * 435 * Add information about CPU idle states to the devicetree. This function 436 * assumes that CPU idle states are not already present in the devicetree, and 437 * that all CPU states are equally applicable to all CPUs. 438 * 439 * See arm/idle-states.yaml and arm/psci.yaml in the (Linux kernel) DT binding 440 * documentation for more details. 441 * 442 * Return: 0 on success, a negative error value otherwise. 443 ******************************************************************************/ 444 int fdt_add_cpu_idle_states(void *dtb, const struct psci_cpu_idle_state *state) 445 { 446 int cpu_node, cpus_node, idle_states_node, ret; 447 uint32_t count, phandle; 448 449 ret = fdt_find_max_phandle(dtb, &phandle); 450 phandle++; 451 if (ret < 0) { 452 return ret; 453 } 454 455 cpus_node = fdt_path_offset(dtb, "/cpus"); 456 if (cpus_node < 0) { 457 return cpus_node; 458 } 459 460 /* Create the idle-states node and its child nodes. */ 461 idle_states_node = fdt_add_subnode(dtb, cpus_node, "idle-states"); 462 if (idle_states_node < 0) { 463 return idle_states_node; 464 } 465 466 ret = fdt_setprop_string(dtb, idle_states_node, "entry-method", "psci"); 467 if (ret < 0) { 468 return ret; 469 } 470 471 for (count = 0U; state->name != NULL; count++, phandle++, state++) { 472 int idle_state_node; 473 474 idle_state_node = fdt_add_subnode(dtb, idle_states_node, 475 state->name); 476 if (idle_state_node < 0) { 477 return idle_state_node; 478 } 479 480 fdt_setprop_string(dtb, idle_state_node, "compatible", 481 "arm,idle-state"); 482 fdt_setprop_u32(dtb, idle_state_node, "arm,psci-suspend-param", 483 state->power_state); 484 if (state->local_timer_stop) { 485 fdt_setprop_empty(dtb, idle_state_node, 486 "local-timer-stop"); 487 } 488 fdt_setprop_u32(dtb, idle_state_node, "entry-latency-us", 489 state->entry_latency_us); 490 fdt_setprop_u32(dtb, idle_state_node, "exit-latency-us", 491 state->exit_latency_us); 492 fdt_setprop_u32(dtb, idle_state_node, "min-residency-us", 493 state->min_residency_us); 494 if (state->wakeup_latency_us) { 495 fdt_setprop_u32(dtb, idle_state_node, 496 "wakeup-latency-us", 497 state->wakeup_latency_us); 498 } 499 fdt_setprop_u32(dtb, idle_state_node, "phandle", phandle); 500 } 501 502 if (count == 0U) { 503 return 0; 504 } 505 506 /* Link each cpu node to the idle state nodes. */ 507 fdt_for_each_subnode(cpu_node, dtb, cpus_node) { 508 const char *device_type; 509 fdt32_t *value; 510 511 /* Only process child nodes with device_type = "cpu". */ 512 device_type = fdt_getprop(dtb, cpu_node, "device_type", NULL); 513 if (device_type == NULL || strcmp(device_type, "cpu") != 0) { 514 continue; 515 } 516 517 /* Allocate space for the list of phandles. */ 518 ret = fdt_setprop_placeholder(dtb, cpu_node, "cpu-idle-states", 519 count * sizeof(phandle), 520 (void **)&value); 521 if (ret < 0) { 522 return ret; 523 } 524 525 /* Fill in the phandles of the idle state nodes. */ 526 for (uint32_t i = 0U; i < count; ++i) { 527 value[i] = cpu_to_fdt32(phandle - count + i); 528 } 529 } 530 531 return 0; 532 } 533 534 /** 535 * fdt_adjust_gic_redist() - Adjust GICv3 redistributor size 536 * @dtb: Pointer to the DT blob in memory 537 * @nr_cores: Number of CPU cores on this system. 538 * @gicr_base: Base address of the first GICR frame, or ~0 if unchanged 539 * @gicr_frame_size: Size of the GICR frame per core 540 * 541 * On a GICv3 compatible interrupt controller, the redistributor provides 542 * a number of 64k pages per each supported core. So with a dynamic topology, 543 * this size cannot be known upfront and thus can't be hardcoded into the DTB. 544 * 545 * Find the DT node describing the GICv3 interrupt controller, and adjust 546 * the size of the redistributor to match the number of actual cores on 547 * this system. 548 * A GICv4 compatible redistributor uses four 64K pages per core, whereas GICs 549 * without support for direct injection of virtual interrupts use two 64K pages. 550 * The @gicr_frame_size parameter should be 262144 and 131072, respectively. 551 * Also optionally allow adjusting the GICR frame base address, when this is 552 * different due to ITS frames between distributor and redistributor. 553 * 554 * Return: 0 on success, negative error value otherwise. 555 */ 556 int fdt_adjust_gic_redist(void *dtb, unsigned int nr_cores, 557 uintptr_t gicr_base, unsigned int gicr_frame_size) 558 { 559 int offset = fdt_node_offset_by_compatible(dtb, 0, "arm,gic-v3"); 560 uint64_t reg_64; 561 uint32_t reg_32; 562 void *val; 563 int parent, ret; 564 int ac, sc; 565 566 if (offset < 0) { 567 return offset; 568 } 569 570 parent = fdt_parent_offset(dtb, offset); 571 if (parent < 0) { 572 return parent; 573 } 574 ac = fdt_address_cells(dtb, parent); 575 sc = fdt_size_cells(dtb, parent); 576 if (ac < 0 || sc < 0) { 577 return -EINVAL; 578 } 579 580 if (gicr_base != INVALID_BASE_ADDR) { 581 if (ac == 1) { 582 reg_32 = cpu_to_fdt32(gicr_base); 583 val = ®_32; 584 } else { 585 reg_64 = cpu_to_fdt64(gicr_base); 586 val = ®_64; 587 } 588 /* 589 * The redistributor base address is the second address in 590 * the "reg" entry, so we have to skip one address and one 591 * size cell. 592 */ 593 ret = fdt_setprop_inplace_namelen_partial(dtb, offset, 594 "reg", 3, 595 (ac + sc) * 4, 596 val, ac * 4); 597 if (ret < 0) { 598 return ret; 599 } 600 } 601 602 if (sc == 1) { 603 reg_32 = cpu_to_fdt32(nr_cores * gicr_frame_size); 604 val = ®_32; 605 } else { 606 reg_64 = cpu_to_fdt64(nr_cores * (uint64_t)gicr_frame_size); 607 val = ®_64; 608 } 609 610 /* 611 * The redistributor is described in the second "reg" entry. 612 * So we have to skip one address and one size cell, then another 613 * address cell to get to the second size cell. 614 */ 615 return fdt_setprop_inplace_namelen_partial(dtb, offset, "reg", 3, 616 (ac + sc + ac) * 4, 617 val, sc * 4); 618 } 619 /** 620 * fdt_set_mac_address () - store MAC address in device tree 621 * @dtb: pointer to the device tree blob in memory 622 * @eth_idx: number of Ethernet interface in /aliases node 623 * @mac_addr: pointer to 6 byte MAC address to store 624 * 625 * Use the generic local-mac-address property in a network device DT node 626 * to define the MAC address this device should be using. Many platform 627 * network devices lack device-specific non-volatile storage to hold this 628 * address, and leave it up to firmware to find and store a unique MAC 629 * address in the DT. 630 * The MAC address could be read from some board or firmware defined storage, 631 * or could be derived from some other unique property like a serial number. 632 * 633 * Return: 0 on success, a negative libfdt error value otherwise. 634 */ 635 int fdt_set_mac_address(void *dtb, unsigned int ethernet_idx, 636 const uint8_t *mac_addr) 637 { 638 char eth_alias[12]; 639 const char *path; 640 int node; 641 642 if (ethernet_idx > 9U) { 643 return -FDT_ERR_BADVALUE; 644 } 645 snprintf(eth_alias, sizeof(eth_alias), "ethernet%d", ethernet_idx); 646 647 path = fdt_get_alias(dtb, eth_alias); 648 if (path == NULL) { 649 return -FDT_ERR_NOTFOUND; 650 } 651 652 node = fdt_path_offset(dtb, path); 653 if (node < 0) { 654 ERROR("Path \"%s\" not found in DT: %d\n", path, node); 655 return node; 656 } 657 658 return fdt_setprop(dtb, node, "local-mac-address", mac_addr, 6); 659 } 660