1 // SPDX-License-Identifier: GPL-2.0-only 2 /* 3 * Based on arch/arm/mm/init.c 4 * 5 * Copyright (C) 1995-2005 Russell King 6 * Copyright (C) 2012 ARM Ltd. 7 */ 8 9 #include <linux/kernel.h> 10 #include <linux/export.h> 11 #include <linux/errno.h> 12 #include <linux/swap.h> 13 #include <linux/init.h> 14 #include <linux/cc_platform.h> 15 #include <linux/cache.h> 16 #include <linux/mman.h> 17 #include <linux/nodemask.h> 18 #include <linux/initrd.h> 19 #include <linux/gfp.h> 20 #include <linux/math.h> 21 #include <linux/memblock.h> 22 #include <linux/sort.h> 23 #include <linux/of.h> 24 #include <linux/of_fdt.h> 25 #include <linux/dma-direct.h> 26 #include <linux/dma-map-ops.h> 27 #include <linux/efi.h> 28 #include <linux/swiotlb.h> 29 #include <linux/vmalloc.h> 30 #include <linux/mm.h> 31 #include <linux/kexec.h> 32 #include <linux/crash_dump.h> 33 #include <linux/hugetlb.h> 34 #include <linux/acpi_iort.h> 35 #include <linux/kmemleak.h> 36 #include <linux/execmem.h> 37 38 #include <asm/boot.h> 39 #include <asm/fixmap.h> 40 #include <asm/hypervisor.h> 41 #include <asm/kasan.h> 42 #include <asm/kernel-pgtable.h> 43 #include <asm/kvm_host.h> 44 #include <asm/memory.h> 45 #include <asm/numa.h> 46 #include <asm/rsi.h> 47 #include <asm/sections.h> 48 #include <asm/setup.h> 49 #include <linux/sizes.h> 50 #include <asm/tlb.h> 51 #include <asm/alternative.h> 52 #include <asm/xen/swiotlb-xen.h> 53 54 /* 55 * We need to be able to catch inadvertent references to memstart_addr 56 * that occur (potentially in generic code) before arm64_memblock_init() 57 * executes, which assigns it its actual value. So use a default value 58 * that cannot be mistaken for a real physical address. 59 */ 60 s64 memstart_addr __ro_after_init = -1; 61 EXPORT_SYMBOL(memstart_addr); 62 63 /* 64 * If the corresponding config options are enabled, we create both ZONE_DMA 65 * and ZONE_DMA32. By default ZONE_DMA covers the 32-bit addressable memory 66 * unless restricted on specific platforms (e.g. 30-bit on Raspberry Pi 4). 67 * In such case, ZONE_DMA32 covers the rest of the 32-bit addressable memory, 68 * otherwise it is empty. 69 */ 70 phys_addr_t __ro_after_init arm64_dma_phys_limit; 71 72 /* 73 * To make optimal use of block mappings when laying out the linear 74 * mapping, round down the base of physical memory to a size that can 75 * be mapped efficiently, i.e., either PUD_SIZE (4k granule) or PMD_SIZE 76 * (64k granule), or a multiple that can be mapped using contiguous bits 77 * in the page tables: 32 * PMD_SIZE (16k granule) 78 */ 79 #if defined(CONFIG_ARM64_4K_PAGES) 80 #define ARM64_MEMSTART_SHIFT PUD_SHIFT 81 #elif defined(CONFIG_ARM64_16K_PAGES) 82 #define ARM64_MEMSTART_SHIFT CONT_PMD_SHIFT 83 #else 84 #define ARM64_MEMSTART_SHIFT PMD_SHIFT 85 #endif 86 87 /* 88 * sparsemem vmemmap imposes an additional requirement on the alignment of 89 * memstart_addr, due to the fact that the base of the vmemmap region 90 * has a direct correspondence, and needs to appear sufficiently aligned 91 * in the virtual address space. 92 */ 93 #if ARM64_MEMSTART_SHIFT < SECTION_SIZE_BITS 94 #define ARM64_MEMSTART_ALIGN (1UL << SECTION_SIZE_BITS) 95 #else 96 #define ARM64_MEMSTART_ALIGN (1UL << ARM64_MEMSTART_SHIFT) 97 #endif 98 99 static void __init arch_reserve_crashkernel(void) 100 { 101 unsigned long long crash_base, crash_size, cma_size = 0; 102 unsigned long long low_size = 0; 103 bool high = false; 104 int ret; 105 106 if (!IS_ENABLED(CONFIG_CRASH_RESERVE)) 107 return; 108 109 ret = parse_crashkernel(boot_command_line, memblock_phys_mem_size(), 110 &crash_size, &crash_base, 111 &low_size, &cma_size, &high); 112 if (ret) 113 return; 114 115 reserve_crashkernel_generic(crash_size, crash_base, low_size, high); 116 reserve_crashkernel_cma(cma_size); 117 } 118 119 static phys_addr_t __init max_zone_phys(phys_addr_t zone_limit) 120 { 121 return min(zone_limit, memblock_end_of_DRAM() - 1) + 1; 122 } 123 124 void __init arch_zone_limits_init(unsigned long *max_zone_pfns) 125 { 126 phys_addr_t __maybe_unused dma32_phys_limit = 127 max_zone_phys(DMA_BIT_MASK(32)); 128 129 #ifdef CONFIG_ZONE_DMA 130 max_zone_pfns[ZONE_DMA] = PFN_DOWN(max_zone_phys(zone_dma_limit)); 131 #endif 132 #ifdef CONFIG_ZONE_DMA32 133 max_zone_pfns[ZONE_DMA32] = PFN_DOWN(dma32_phys_limit); 134 #endif 135 max_zone_pfns[ZONE_NORMAL] = max_pfn; 136 } 137 138 static void __init dma_limits_init(void) 139 { 140 phys_addr_t __maybe_unused acpi_zone_dma_limit; 141 phys_addr_t __maybe_unused dt_zone_dma_limit; 142 phys_addr_t __maybe_unused dma32_phys_limit = 143 max_zone_phys(DMA_BIT_MASK(32)); 144 145 #ifdef CONFIG_ZONE_DMA 146 acpi_zone_dma_limit = acpi_iort_dma_get_max_cpu_address(); 147 dt_zone_dma_limit = of_dma_get_max_cpu_address(NULL); 148 zone_dma_limit = min(dt_zone_dma_limit, acpi_zone_dma_limit); 149 /* 150 * Information we get from firmware (e.g. DT dma-ranges) describe DMA 151 * bus constraints. Devices using DMA might have their own limitations. 152 * Some of them rely on DMA zone in low 32-bit memory. Keep low RAM 153 * DMA zone on platforms that have RAM there. 154 */ 155 if (memblock_start_of_DRAM() < U32_MAX) 156 zone_dma_limit = min(zone_dma_limit, U32_MAX); 157 arm64_dma_phys_limit = max_zone_phys(zone_dma_limit); 158 #endif 159 #ifdef CONFIG_ZONE_DMA32 160 if (!arm64_dma_phys_limit) 161 arm64_dma_phys_limit = dma32_phys_limit; 162 #endif 163 if (!arm64_dma_phys_limit) 164 arm64_dma_phys_limit = PHYS_MASK + 1; 165 } 166 167 int pfn_is_map_memory(unsigned long pfn) 168 { 169 phys_addr_t addr = PFN_PHYS(pfn); 170 171 /* avoid false positives for bogus PFNs, see comment in pfn_valid() */ 172 if (PHYS_PFN(addr) != pfn) 173 return 0; 174 175 return memblock_is_map_memory(addr); 176 } 177 EXPORT_SYMBOL(pfn_is_map_memory); 178 179 static phys_addr_t memory_limit __ro_after_init = PHYS_ADDR_MAX; 180 181 /* 182 * Limit the memory size that was specified via FDT. 183 */ 184 static int __init early_mem(char *p) 185 { 186 if (!p) 187 return 1; 188 189 memory_limit = memparse(p, &p) & PAGE_MASK; 190 pr_notice("Memory limited to %lldMB\n", memory_limit >> 20); 191 192 return 0; 193 } 194 early_param("mem", early_mem); 195 196 void __init arm64_memblock_init(void) 197 { 198 s64 linear_region_size = PAGE_END - _PAGE_OFFSET(vabits_actual); 199 200 /* 201 * Corner case: 52-bit VA capable systems running KVM in nVHE mode may 202 * be limited in their ability to support a linear map that exceeds 51 203 * bits of VA space, depending on the placement of the ID map. Given 204 * that the placement of the ID map may be randomized, let's simply 205 * limit the kernel's linear map to 51 bits as well if we detect this 206 * configuration. 207 */ 208 if (IS_ENABLED(CONFIG_KVM) && vabits_actual == 52 && 209 is_hyp_mode_available() && !is_kernel_in_hyp_mode()) { 210 pr_info("Capping linear region to 51 bits for KVM in nVHE mode on LVA capable hardware.\n"); 211 linear_region_size = min_t(u64, linear_region_size, BIT(51)); 212 } 213 214 /* Remove memory above our supported physical address size */ 215 memblock_remove(1ULL << PHYS_MASK_SHIFT, ULLONG_MAX); 216 217 /* 218 * Select a suitable value for the base of physical memory. 219 */ 220 memstart_addr = round_down(memblock_start_of_DRAM(), 221 ARM64_MEMSTART_ALIGN); 222 223 if ((memblock_end_of_DRAM() - memstart_addr) > linear_region_size) 224 pr_warn("Memory doesn't fit in the linear mapping, VA_BITS too small\n"); 225 226 /* 227 * Remove the memory that we will not be able to cover with the 228 * linear mapping. Take care not to clip the kernel which may be 229 * high in memory. 230 */ 231 memblock_remove(max_t(u64, memstart_addr + linear_region_size, 232 __pa_symbol(_end)), ULLONG_MAX); 233 if (memstart_addr + linear_region_size < memblock_end_of_DRAM()) { 234 /* ensure that memstart_addr remains sufficiently aligned */ 235 memstart_addr = round_up(memblock_end_of_DRAM() - linear_region_size, 236 ARM64_MEMSTART_ALIGN); 237 memblock_remove(0, memstart_addr); 238 } 239 240 /* 241 * If we are running with a 52-bit kernel VA config on a system that 242 * does not support it, we have to place the available physical 243 * memory in the 48-bit addressable part of the linear region, i.e., 244 * we have to move it upward. Since memstart_addr represents the 245 * physical address of PAGE_OFFSET, we have to *subtract* from it. 246 */ 247 if (IS_ENABLED(CONFIG_ARM64_VA_BITS_52) && (vabits_actual != 52)) 248 memstart_addr -= _PAGE_OFFSET(vabits_actual) - _PAGE_OFFSET(52); 249 250 /* 251 * Apply the memory limit if it was set. Since the kernel may be loaded 252 * high up in memory, add back the kernel region that must be accessible 253 * via the linear mapping. 254 */ 255 if (memory_limit != PHYS_ADDR_MAX) { 256 memblock_mem_limit_remove_map(memory_limit); 257 memblock_add(__pa_symbol(_text), (resource_size_t)(_end - _text)); 258 } 259 260 if (IS_ENABLED(CONFIG_BLK_DEV_INITRD) && phys_initrd_size) { 261 /* 262 * Add back the memory we just removed if it results in the 263 * initrd to become inaccessible via the linear mapping. 264 * Otherwise, this is a no-op 265 */ 266 phys_addr_t base = phys_initrd_start & PAGE_MASK; 267 resource_size_t size = PAGE_ALIGN(phys_initrd_start + phys_initrd_size) - base; 268 269 /* 270 * We can only add back the initrd memory if we don't end up 271 * with more memory than we can address via the linear mapping. 272 * It is up to the bootloader to position the kernel and the 273 * initrd reasonably close to each other (i.e., within 32 GB of 274 * each other) so that all granule/#levels combinations can 275 * always access both. 276 */ 277 if (WARN(base < memblock_start_of_DRAM() || 278 base + size > memblock_start_of_DRAM() + 279 linear_region_size, 280 "initrd not fully accessible via the linear mapping -- please check your bootloader ...\n")) { 281 phys_initrd_size = 0; 282 } else { 283 memblock_add(base, size); 284 memblock_clear_nomap(base, size); 285 memblock_reserve(base, size); 286 } 287 } 288 289 /* 290 * Register the kernel text, kernel data, initrd, and initial 291 * pagetables with memblock. 292 */ 293 memblock_reserve(__pa_symbol(_text), _end - _text); 294 if (IS_ENABLED(CONFIG_BLK_DEV_INITRD) && phys_initrd_size) { 295 /* the generic initrd code expects virtual addresses */ 296 initrd_start = __phys_to_virt(phys_initrd_start); 297 initrd_end = initrd_start + phys_initrd_size; 298 } 299 300 early_init_fdt_scan_reserved_mem(); 301 } 302 303 void __init bootmem_init(void) 304 { 305 unsigned long min, max; 306 307 min = PFN_UP(memblock_start_of_DRAM()); 308 max = PFN_DOWN(memblock_end_of_DRAM()); 309 310 early_memtest(min << PAGE_SHIFT, max << PAGE_SHIFT); 311 312 max_pfn = max_low_pfn = max; 313 min_low_pfn = min; 314 315 arch_numa_init(); 316 317 kvm_hyp_reserve(); 318 dma_limits_init(); 319 320 /* 321 * Reserve the CMA area after arm64_dma_phys_limit was initialised. 322 */ 323 dma_contiguous_reserve(arm64_dma_phys_limit); 324 325 /* 326 * request_standard_resources() depends on crashkernel's memory being 327 * reserved, so do it here. 328 */ 329 arch_reserve_crashkernel(); 330 331 memblock_dump_all(); 332 } 333 334 void __init arch_setup_zero_pages(void) 335 { 336 __zero_page = phys_to_page(__pa_symbol(empty_zero_page)); 337 } 338 339 void __init arch_mm_preinit(void) 340 { 341 unsigned int flags = SWIOTLB_VERBOSE; 342 343 if (is_realm_world() || is_protected_kvm_guest()) { 344 flags |= SWIOTLB_FORCE; 345 } else if (max_pfn <= PFN_DOWN(arm64_dma_phys_limit)) { 346 /* 347 * If no bouncing needed for ZONE_DMA, reduce the swiotlb 348 * buffer for kmalloc() bouncing to 1MB per 1GB of RAM. 349 */ 350 unsigned long size = 351 DIV_ROUND_UP(memblock_phys_mem_size(), 1024); 352 353 swiotlb_adjust_size(min(swiotlb_size_or_default(), size)); 354 } 355 356 swiotlb_init(true, flags); 357 358 /* 359 * Check boundaries twice: Some fundamental inconsistencies can be 360 * detected at build time already. 361 */ 362 #ifdef CONFIG_COMPAT 363 BUILD_BUG_ON(TASK_SIZE_32 > DEFAULT_MAP_WINDOW_64); 364 #endif 365 366 /* 367 * Selected page table levels should match when derived from 368 * scratch using the virtual address range and page size. 369 */ 370 BUILD_BUG_ON(ARM64_HW_PGTABLE_LEVELS(CONFIG_ARM64_VA_BITS) != 371 CONFIG_PGTABLE_LEVELS); 372 373 if (PAGE_SIZE >= 16384 && get_num_physpages() <= 128) { 374 extern int sysctl_overcommit_memory; 375 /* 376 * On a machine this small we won't get anywhere without 377 * overcommit, so turn it on by default. 378 */ 379 sysctl_overcommit_memory = OVERCOMMIT_ALWAYS; 380 } 381 } 382 383 bool page_alloc_available __ro_after_init; 384 385 void __init mem_init(void) 386 { 387 page_alloc_available = true; 388 swiotlb_update_mem_attributes(); 389 } 390 391 void free_initmem(void) 392 { 393 void *lm_init_begin = lm_alias(__init_begin); 394 void *lm_init_end = lm_alias(__init_end); 395 396 WARN_ON(!IS_ALIGNED((unsigned long)lm_init_begin, PAGE_SIZE)); 397 WARN_ON(!IS_ALIGNED((unsigned long)lm_init_end, PAGE_SIZE)); 398 399 free_reserved_area(lm_init_begin, lm_init_end, 400 POISON_FREE_INITMEM, "unused kernel"); 401 /* 402 * Unmap the __init region but leave the VM area in place. This 403 * prevents the region from being reused for kernel modules, which 404 * is not supported by kallsyms. 405 */ 406 vunmap_range((u64)__init_begin, (u64)__init_end); 407 } 408 409 void dump_mem_limit(void) 410 { 411 if (memory_limit != PHYS_ADDR_MAX) { 412 pr_emerg("Memory Limit: %llu MB\n", memory_limit >> 20); 413 } else { 414 pr_emerg("Memory Limit: none\n"); 415 } 416 } 417 418 bool cc_platform_has(enum cc_attr attr) 419 { 420 switch (attr) { 421 case CC_ATTR_MEM_ENCRYPT: 422 return is_realm_world() || is_protected_kvm_guest(); 423 default: 424 return false; 425 } 426 } 427 EXPORT_SYMBOL_GPL(cc_platform_has); 428 429 #ifdef CONFIG_EXECMEM 430 static u64 module_direct_base __ro_after_init = 0; 431 static u64 module_plt_base __ro_after_init = 0; 432 433 /* 434 * Choose a random page-aligned base address for a window of 'size' bytes which 435 * entirely contains the interval [start, end - 1]. 436 */ 437 static u64 __init random_bounding_box(u64 size, u64 start, u64 end) 438 { 439 u64 max_pgoff, pgoff; 440 441 if ((end - start) >= size) 442 return 0; 443 444 max_pgoff = (size - (end - start)) / PAGE_SIZE; 445 pgoff = get_random_u32_inclusive(0, max_pgoff); 446 447 return start - pgoff * PAGE_SIZE; 448 } 449 450 /* 451 * Modules may directly reference data and text anywhere within the kernel 452 * image and other modules. References using PREL32 relocations have a +/-2G 453 * range, and so we need to ensure that the entire kernel image and all modules 454 * fall within a 2G window such that these are always within range. 455 * 456 * Modules may directly branch to functions and code within the kernel text, 457 * and to functions and code within other modules. These branches will use 458 * CALL26/JUMP26 relocations with a +/-128M range. Without PLTs, we must ensure 459 * that the entire kernel text and all module text falls within a 128M window 460 * such that these are always within range. With PLTs, we can expand this to a 461 * 2G window. 462 * 463 * We chose the 128M region to surround the entire kernel image (rather than 464 * just the text) as using the same bounds for the 128M and 2G regions ensures 465 * by construction that we never select a 128M region that is not a subset of 466 * the 2G region. For very large and unusual kernel configurations this means 467 * we may fall back to PLTs where they could have been avoided, but this keeps 468 * the logic significantly simpler. 469 */ 470 static int __init module_init_limits(void) 471 { 472 u64 kernel_end = (u64)_end; 473 u64 kernel_start = (u64)_text; 474 u64 kernel_size = kernel_end - kernel_start; 475 476 /* 477 * The default modules region is placed immediately below the kernel 478 * image, and is large enough to use the full 2G relocation range. 479 */ 480 BUILD_BUG_ON(KIMAGE_VADDR != MODULES_END); 481 BUILD_BUG_ON(MODULES_VSIZE < SZ_2G); 482 483 if (!kaslr_enabled()) { 484 if (kernel_size < SZ_128M) 485 module_direct_base = kernel_end - SZ_128M; 486 if (kernel_size < SZ_2G) 487 module_plt_base = kernel_end - SZ_2G; 488 } else { 489 u64 min = kernel_start; 490 u64 max = kernel_end; 491 492 if (IS_ENABLED(CONFIG_RANDOMIZE_MODULE_REGION_FULL)) { 493 pr_info("2G module region forced by RANDOMIZE_MODULE_REGION_FULL\n"); 494 } else { 495 module_direct_base = random_bounding_box(SZ_128M, min, max); 496 if (module_direct_base) { 497 min = module_direct_base; 498 max = module_direct_base + SZ_128M; 499 } 500 } 501 502 module_plt_base = random_bounding_box(SZ_2G, min, max); 503 } 504 505 pr_info("%llu pages in range for non-PLT usage", 506 module_direct_base ? (SZ_128M - kernel_size) / PAGE_SIZE : 0); 507 pr_info("%llu pages in range for PLT usage", 508 module_plt_base ? (SZ_2G - kernel_size) / PAGE_SIZE : 0); 509 510 return 0; 511 } 512 513 static struct execmem_info execmem_info __ro_after_init; 514 515 struct execmem_info __init *execmem_arch_setup(void) 516 { 517 unsigned long fallback_start = 0, fallback_end = 0; 518 unsigned long start = 0, end = 0; 519 520 module_init_limits(); 521 522 /* 523 * Where possible, prefer to allocate within direct branch range of the 524 * kernel such that no PLTs are necessary. 525 */ 526 if (module_direct_base) { 527 start = module_direct_base; 528 end = module_direct_base + SZ_128M; 529 530 if (module_plt_base) { 531 fallback_start = module_plt_base; 532 fallback_end = module_plt_base + SZ_2G; 533 } 534 } else if (module_plt_base) { 535 start = module_plt_base; 536 end = module_plt_base + SZ_2G; 537 } 538 539 execmem_info = (struct execmem_info){ 540 .ranges = { 541 [EXECMEM_DEFAULT] = { 542 .start = start, 543 .end = end, 544 .pgprot = PAGE_KERNEL, 545 .alignment = 1, 546 .fallback_start = fallback_start, 547 .fallback_end = fallback_end, 548 }, 549 [EXECMEM_KPROBES] = { 550 .start = VMALLOC_START, 551 .end = VMALLOC_END, 552 .pgprot = PAGE_KERNEL_ROX, 553 .alignment = 1, 554 }, 555 [EXECMEM_BPF] = { 556 .start = VMALLOC_START, 557 .end = VMALLOC_END, 558 .pgprot = PAGE_KERNEL, 559 .alignment = 1, 560 }, 561 }, 562 }; 563 564 return &execmem_info; 565 } 566 #endif /* CONFIG_EXECMEM */ 567