1 /* 2 * Copyright (c) 2016-2018, ARM Limited and Contributors. All rights reserved. 3 * 4 * SPDX-License-Identifier: BSD-3-Clause 5 */ 6 7 #include <arch.h> 8 #include <arch_helpers.h> 9 #include <assert.h> 10 #include <cassert.h> 11 #include <common_def.h> 12 #include <debug.h> 13 #include <platform_def.h> 14 #include <stdbool.h> 15 #include <string.h> 16 #include <types.h> 17 #include <utils.h> 18 #include <xlat_tables.h> 19 #include "xlat_tables_private.h" 20 21 #if LOG_LEVEL >= LOG_LEVEL_VERBOSE 22 #define LVL0_SPACER "" 23 #define LVL1_SPACER " " 24 #define LVL2_SPACER " " 25 #define LVL3_SPACER " " 26 #define get_level_spacer(level) \ 27 (((level) == U(0)) ? LVL0_SPACER : \ 28 (((level) == U(1)) ? LVL1_SPACER : \ 29 (((level) == U(2)) ? LVL2_SPACER : LVL3_SPACER))) 30 #define debug_print(...) tf_printf(__VA_ARGS__) 31 #else 32 #define debug_print(...) ((void)0) 33 #endif 34 35 #define UNSET_DESC ~0ULL 36 #define MT_UNKNOWN ~0U 37 38 static uint64_t xlat_tables[MAX_XLAT_TABLES][XLAT_TABLE_ENTRIES] 39 __aligned(XLAT_TABLE_SIZE) __section("xlat_table"); 40 41 static unsigned int next_xlat; 42 static unsigned long long xlat_max_pa; 43 static uintptr_t xlat_max_va; 44 45 static uint64_t execute_never_mask; 46 static uint64_t ap1_mask; 47 48 /* 49 * Array of all memory regions stored in order of ascending base address. 50 * The list is terminated by the first entry with size == 0. 51 */ 52 static mmap_region_t mmap[MAX_MMAP_REGIONS + 1]; 53 54 55 void print_mmap(void) 56 { 57 #if LOG_LEVEL >= LOG_LEVEL_VERBOSE 58 debug_print("mmap:\n"); 59 mmap_region_t *mm = mmap; 60 while (mm->size != 0U) { 61 debug_print(" VA:%p PA:0x%llx size:0x%zx attr:0x%x\n", 62 (void *)mm->base_va, mm->base_pa, 63 mm->size, mm->attr); 64 ++mm; 65 }; 66 debug_print("\n"); 67 #endif 68 } 69 70 void mmap_add_region(unsigned long long base_pa, uintptr_t base_va, 71 size_t size, unsigned int attr) 72 { 73 mmap_region_t *mm = mmap; 74 const mmap_region_t *mm_last = mm + ARRAY_SIZE(mmap) - 1U; 75 unsigned long long end_pa = base_pa + size - 1U; 76 uintptr_t end_va = base_va + size - 1U; 77 78 assert(IS_PAGE_ALIGNED(base_pa)); 79 assert(IS_PAGE_ALIGNED(base_va)); 80 assert(IS_PAGE_ALIGNED(size)); 81 82 if (size == 0U) 83 return; 84 85 assert(base_pa < end_pa); /* Check for overflows */ 86 assert(base_va < end_va); 87 88 assert((base_va + (uintptr_t)size - (uintptr_t)1) <= 89 (PLAT_VIRT_ADDR_SPACE_SIZE - 1U)); 90 assert((base_pa + (unsigned long long)size - 1ULL) <= 91 (PLAT_PHY_ADDR_SPACE_SIZE - 1U)); 92 93 #if ENABLE_ASSERTIONS 94 95 /* Check for PAs and VAs overlaps with all other regions */ 96 for (mm = mmap; mm->size; ++mm) { 97 98 uintptr_t mm_end_va = mm->base_va + mm->size - 1U; 99 100 /* 101 * Check if one of the regions is completely inside the other 102 * one. 103 */ 104 bool fully_overlapped_va = 105 ((base_va >= mm->base_va) && (end_va <= mm_end_va)) || 106 ((mm->base_va >= base_va) && (mm_end_va <= end_va)); 107 108 /* 109 * Full VA overlaps are only allowed if both regions are 110 * identity mapped (zero offset) or have the same VA to PA 111 * offset. Also, make sure that it's not the exact same area. 112 */ 113 if (fully_overlapped_va) { 114 assert((mm->base_va - mm->base_pa) == 115 (base_va - base_pa)); 116 assert((base_va != mm->base_va) || (size != mm->size)); 117 } else { 118 /* 119 * If the regions do not have fully overlapping VAs, 120 * then they must have fully separated VAs and PAs. 121 * Partial overlaps are not allowed 122 */ 123 124 unsigned long long mm_end_pa = 125 mm->base_pa + mm->size - 1; 126 127 bool separated_pa = (end_pa < mm->base_pa) || 128 (base_pa > mm_end_pa); 129 bool separated_va = (end_va < mm->base_va) || 130 (base_va > mm_end_va); 131 132 assert(separated_va && separated_pa); 133 } 134 } 135 136 mm = mmap; /* Restore pointer to the start of the array */ 137 138 #endif /* ENABLE_ASSERTIONS */ 139 140 /* Find correct place in mmap to insert new region */ 141 while ((mm->base_va < base_va) && (mm->size != 0U)) 142 ++mm; 143 144 /* 145 * If a section is contained inside another one with the same base 146 * address, it must be placed after the one it is contained in: 147 * 148 * 1st |-----------------------| 149 * 2nd |------------| 150 * 3rd |------| 151 * 152 * This is required for mmap_region_attr() to get the attributes of the 153 * small region correctly. 154 */ 155 while ((mm->base_va == base_va) && (mm->size > size)) 156 ++mm; 157 158 /* Make room for new region by moving other regions up by one place */ 159 (void)memmove(mm + 1, mm, (uintptr_t)mm_last - (uintptr_t)mm); 160 161 /* Check we haven't lost the empty sentinal from the end of the array */ 162 assert(mm_last->size == 0U); 163 164 mm->base_pa = base_pa; 165 mm->base_va = base_va; 166 mm->size = size; 167 mm->attr = attr; 168 169 if (end_pa > xlat_max_pa) 170 xlat_max_pa = end_pa; 171 if (end_va > xlat_max_va) 172 xlat_max_va = end_va; 173 } 174 175 void mmap_add(const mmap_region_t *mm) 176 { 177 const mmap_region_t *mm_cursor = mm; 178 179 while (mm_cursor->size != 0U) { 180 mmap_add_region(mm_cursor->base_pa, mm_cursor->base_va, 181 mm_cursor->size, mm_cursor->attr); 182 mm_cursor++; 183 } 184 } 185 186 static uint64_t mmap_desc(unsigned int attr, unsigned long long addr_pa, 187 unsigned int level) 188 { 189 uint64_t desc; 190 int mem_type; 191 192 /* Make sure that the granularity is fine enough to map this address. */ 193 assert((addr_pa & XLAT_BLOCK_MASK(level)) == 0U); 194 195 desc = addr_pa; 196 /* 197 * There are different translation table descriptors for level 3 and the 198 * rest. 199 */ 200 desc |= (level == XLAT_TABLE_LEVEL_MAX) ? PAGE_DESC : BLOCK_DESC; 201 desc |= ((attr & MT_NS) != 0U) ? LOWER_ATTRS(NS) : 0U; 202 desc |= ((attr & MT_RW) != 0U) ? LOWER_ATTRS(AP_RW) : LOWER_ATTRS(AP_RO); 203 /* 204 * Always set the access flag, as this library assumes access flag 205 * faults aren't managed. 206 */ 207 desc |= LOWER_ATTRS(ACCESS_FLAG); 208 desc |= ap1_mask; 209 210 /* 211 * Deduce shareability domain and executability of the memory region 212 * from the memory type. 213 * 214 * Data accesses to device memory and non-cacheable normal memory are 215 * coherent for all observers in the system, and correspondingly are 216 * always treated as being Outer Shareable. Therefore, for these 2 types 217 * of memory, it is not strictly needed to set the shareability field 218 * in the translation tables. 219 */ 220 mem_type = MT_TYPE(attr); 221 if (mem_type == MT_DEVICE) { 222 desc |= LOWER_ATTRS(ATTR_DEVICE_INDEX | OSH); 223 /* 224 * Always map device memory as execute-never. 225 * This is to avoid the possibility of a speculative instruction 226 * fetch, which could be an issue if this memory region 227 * corresponds to a read-sensitive peripheral. 228 */ 229 desc |= execute_never_mask; 230 231 } else { /* Normal memory */ 232 /* 233 * Always map read-write normal memory as execute-never. 234 * This library assumes that it is used by software that does 235 * not self-modify its code, therefore R/W memory is reserved 236 * for data storage, which must not be executable. 237 * 238 * Note that setting the XN bit here is for consistency only. 239 * The function that enables the MMU sets the SCTLR_ELx.WXN bit, 240 * which makes any writable memory region to be treated as 241 * execute-never, regardless of the value of the XN bit in the 242 * translation table. 243 * 244 * For read-only memory, rely on the MT_EXECUTE/MT_EXECUTE_NEVER 245 * attribute to figure out the value of the XN bit. 246 */ 247 if (((attr & MT_RW) != 0U) || ((attr & MT_EXECUTE_NEVER) != 0U)) { 248 desc |= execute_never_mask; 249 } 250 251 if (mem_type == MT_MEMORY) { 252 desc |= LOWER_ATTRS(ATTR_IWBWA_OWBWA_NTR_INDEX | ISH); 253 } else { 254 assert(mem_type == MT_NON_CACHEABLE); 255 desc |= LOWER_ATTRS(ATTR_NON_CACHEABLE_INDEX | OSH); 256 } 257 } 258 259 debug_print((mem_type == MT_MEMORY) ? "MEM" : 260 ((mem_type == MT_NON_CACHEABLE) ? "NC" : "DEV")); 261 debug_print(((attr & MT_RW) != 0U) ? "-RW" : "-RO"); 262 debug_print(((attr & MT_NS) != 0U) ? "-NS" : "-S"); 263 debug_print(((attr & MT_EXECUTE_NEVER) != 0U) ? "-XN" : "-EXEC"); 264 return desc; 265 } 266 267 /* 268 * Look for the innermost region that contains the area at `base_va` with size 269 * `size`. Populate *attr with the attributes of this region. 270 * 271 * On success, this function returns 0. 272 * If there are partial overlaps (meaning that a smaller size is needed) or if 273 * the region can't be found in the given area, it returns MT_UNKNOWN. In this 274 * case the value pointed by attr should be ignored by the caller. 275 */ 276 static unsigned int mmap_region_attr(const mmap_region_t *mm, uintptr_t base_va, 277 size_t size, unsigned int *attr) 278 { 279 /* Don't assume that the area is contained in the first region */ 280 unsigned int ret = MT_UNKNOWN; 281 282 /* 283 * Get attributes from last (innermost) region that contains the 284 * requested area. Don't stop as soon as one region doesn't contain it 285 * because there may be other internal regions that contain this area: 286 * 287 * |-----------------------------1-----------------------------| 288 * |----2----| |-------3-------| |----5----| 289 * |--4--| 290 * 291 * |---| <- Area we want the attributes of. 292 * 293 * In this example, the area is contained in regions 1, 3 and 4 but not 294 * in region 2. The loop shouldn't stop at region 2 as inner regions 295 * have priority over outer regions, it should stop at region 5. 296 */ 297 for ( ; ; ++mm) { 298 299 if (mm->size == 0U) 300 return ret; /* Reached end of list */ 301 302 if (mm->base_va > (base_va + size - 1U)) 303 return ret; /* Next region is after area so end */ 304 305 if ((mm->base_va + mm->size - 1U) < base_va) 306 continue; /* Next region has already been overtaken */ 307 308 if ((ret == 0U) && (mm->attr == *attr)) 309 continue; /* Region doesn't override attribs so skip */ 310 311 if ((mm->base_va > base_va) || 312 ((mm->base_va + mm->size - 1U) < (base_va + size - 1U))) 313 return MT_UNKNOWN; /* Region doesn't fully cover area */ 314 315 *attr = mm->attr; 316 ret = 0U; 317 } 318 return ret; 319 } 320 321 static mmap_region_t *init_xlation_table_inner(mmap_region_t *mm, 322 uintptr_t base_va, 323 uint64_t *table, 324 unsigned int level) 325 { 326 assert((level >= XLAT_TABLE_LEVEL_MIN) && 327 (level <= XLAT_TABLE_LEVEL_MAX)); 328 329 unsigned int level_size_shift = 330 L0_XLAT_ADDRESS_SHIFT - level * XLAT_TABLE_ENTRIES_SHIFT; 331 u_register_t level_size = (u_register_t)1 << level_size_shift; 332 u_register_t level_index_mask = 333 ((u_register_t)XLAT_TABLE_ENTRIES_MASK) << level_size_shift; 334 335 debug_print("New xlat table:\n"); 336 337 do { 338 uint64_t desc = UNSET_DESC; 339 340 if (mm->size == 0U) { 341 /* Done mapping regions; finish zeroing the table */ 342 desc = INVALID_DESC; 343 } else if ((mm->base_va + mm->size - 1U) < base_va) { 344 /* This area is after the region so get next region */ 345 ++mm; 346 continue; 347 } 348 349 debug_print("%s VA:%p size:0x%llx ", get_level_spacer(level), 350 (void *)base_va, (unsigned long long)level_size); 351 352 if (mm->base_va > (base_va + level_size - 1U)) { 353 /* Next region is after this area. Nothing to map yet */ 354 desc = INVALID_DESC; 355 /* Make sure that the current level allows block descriptors */ 356 } else if (level >= XLAT_BLOCK_LEVEL_MIN) { 357 /* 358 * Try to get attributes of this area. It will fail if 359 * there are partially overlapping regions. On success, 360 * it will return the innermost region's attributes. 361 */ 362 unsigned int attr; 363 unsigned int r = mmap_region_attr(mm, base_va, 364 level_size, &attr); 365 366 if (r == 0U) { 367 desc = mmap_desc(attr, 368 base_va - mm->base_va + mm->base_pa, 369 level); 370 } 371 } 372 373 if (desc == UNSET_DESC) { 374 /* Area not covered by a region so need finer table */ 375 uint64_t *new_table = xlat_tables[next_xlat]; 376 377 next_xlat++; 378 assert(next_xlat <= MAX_XLAT_TABLES); 379 desc = TABLE_DESC | (uintptr_t)new_table; 380 381 /* Recurse to fill in new table */ 382 mm = init_xlation_table_inner(mm, base_va, 383 new_table, level + 1U); 384 } 385 386 debug_print("\n"); 387 388 *table++ = desc; 389 base_va += level_size; 390 } while ((base_va & level_index_mask) && 391 ((base_va - 1U) < (PLAT_VIRT_ADDR_SPACE_SIZE - 1U))); 392 393 return mm; 394 } 395 396 void init_xlation_table(uintptr_t base_va, uint64_t *table, 397 unsigned int level, uintptr_t *max_va, 398 unsigned long long *max_pa) 399 { 400 unsigned int el = xlat_arch_current_el(); 401 402 execute_never_mask = xlat_arch_get_xn_desc(el); 403 404 if (el == 3U) { 405 ap1_mask = LOWER_ATTRS(AP_ONE_VA_RANGE_RES1); 406 } else { 407 assert(el == 1U); 408 ap1_mask = 0ULL; 409 } 410 411 init_xlation_table_inner(mmap, base_va, table, level); 412 *max_va = xlat_max_va; 413 *max_pa = xlat_max_pa; 414 } 415