package granary
sectionYPositions = computeSectionYPositions($el), 10)"
x-init="setTimeout(() => sectionYPositions = computeSectionYPositions($el), 10)"
>
Pure-OCaml SQL engine
Install
dune-project
Dependency
Authors
Maintainers
Sources
0.0.3.tar.gz
sha256=8b18780ea373be48301d9f333925860a2f9110fc0ac28684295118d72b65a67e
sha512=25ca3c9c5e2b528704a542502e0f37dc33ba003f65622d969b8c2b800778585f8ef0cf89b36e6679832e3993e8303aecddfc662742baf7044d6afe4a796b8f11
doc/src/granary.storage/page.ml.html
Source file page.ml
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 99 100 101 102 103 104 105 106 107 108 109 110 111 112 113 114 115 116 117 118 119 120 121 122 123 124 125 126 127 128 129 130 131 132 133 134 135 136 137 138 139 140 141 142 143 144 145 146 147 148 149 150 151 152 153 154 155 156 157 158 159 160 161 162 163 164 165 166 167 168 169 170 171 172 173 174 175 176 177 178 179 180 181 182 183 184 185 186 187 188 189 190 191 192 193 194 195 196 197 198 199 200 201 202 203 204 205 206 207 208 209 210 211 212 213 214 215 216 217 218 219 220 221 222 223 224 225 226 227 228 229 230 231 232 233 234 235 236 237 238 239 240 241 242 243 244 245 246 247 248 249 250 251 252 253 254 255 256 257 258 259 260 261 262 263 264 265 266 267 268 269 270 271 272 273 274 275 276 277 278 279 280 281 282 283 284 285 286 287 288 289 290 291 292 293 294 295 296 297 298 299 300 301 302 303 304 305 306 307 308 309 310 311 312 313 314 315 316 317 318 319 320 321 322 323 324 325 326 327 328 329 330 331 332 333 334 335 336 337 338 339 340 341 342 343 344 345 346 347 348 349 350 351 352 353 354 355 356 357 358 359 360 361 362 363 364 365 366 367 368 369 370 371 372 373 374 375 376 377 378 379 380 381 382 383 384 385 386 387 388 389 390 391 392 393 394 395 396 397 398 399 400 401 402 403 404 405 406 407 408 409 410 411 412 413 414 415 416 417 418 419 420 421 422 423 424 425 426 427 428 429 430 431 432 433 434 435 436 437 438 439 440 441 442 443 444 445 446 447 448 449 450 451 452 453 454 455 456 457 458 459 460 461 462 463 464 465 466 467 468 469 470 471 472 473 474 475 476 477 478 479 480 481 482 483 484 485 486 487 488 489 490 491 492 493 494 495 496 497 498 499 500 501 502 503 504 505 506 507 508 509 510 511 512 513 514 515 516 517 518 519 520 521 522 523 524 525 526 527 528 529 530 531 532 533 534 535 536 537 538 539 540 541 542 543 544 545 546 547 548 549 550 551 552 553 554 555 556 557 558 559 560 561 562 563 564 565 566 567 568 569 570 571 572 573 574 575 576 577 578 579 580 581 582 583 584 585 586 587 588 589 590 591 592 593 594 595 596 597 598 599 600 601 602 603 604 605 606 607 608 609 610 611 612 613 614 615 616 617 618 619 620 621 622 623 624 625 626 627 628 629 630 631 632 633 634 635 636 637 638 639 640 641 642 643 644 645 646 647 648 649 650 651 652 653 654 655 656 657 658 659 660 661 662 663 664(** Page format codec — pure, no I/O, no Lwt. *) (* ------------------------------------------------------------------ *) (* Constants *) (* ------------------------------------------------------------------ *) let page_size = 4096 let header_size = 16 let data_offset = 16 let max_data_bytes = 4080 (* 4096 - 16 *) (* ------------------------------------------------------------------ *) (* Kind *) (* ------------------------------------------------------------------ *) type kind = | Header | Branch | Leaf | Freelist | Overflow let kind_of_byte = function | 0 -> Header | 1 -> Branch | 2 -> Leaf | 3 -> Freelist | 4 -> Overflow | n -> failwith (Printf.sprintf "invalid page kind: %d" n) ;; let byte_of_kind = function | Header -> 0 | Branch -> 1 | Leaf -> 2 | Freelist -> 3 | Overflow -> 4 ;; (* ------------------------------------------------------------------ *) (* Common header *) (* ------------------------------------------------------------------ *) type common = { kind : kind ; flags : int ; n_keys : int ; right_page : int32 ; crc32 : int32 } (* Common header layout (bytes 0–15): +0 [1] kind (uint8) +1 [1] flags (uint8) +2 [2] n_keys (uint16 BE) +4 [4] right_page (uint32 BE) +8 [4] crc32 (uint32 BE) +12 [4] reserved (zeros) *) let read_common buf = let kind_byte = Cstruct.get_uint8 buf 0 in let kind = kind_of_byte kind_byte in let flags = Cstruct.get_uint8 buf 1 in let n_keys = Cstruct.BE.get_uint16 buf 2 in let right_page = Cstruct.BE.get_uint32 buf 4 in let crc32 = Cstruct.BE.get_uint32 buf 8 in { kind; flags; n_keys; right_page; crc32 } ;; let write_common buf c = Cstruct.set_uint8 buf 0 (byte_of_kind c.kind); Cstruct.set_uint8 buf 1 c.flags; Cstruct.BE.set_uint16 buf 2 c.n_keys; Cstruct.BE.set_uint32 buf 4 c.right_page; Cstruct.BE.set_uint32 buf 8 c.crc32; (* zero the reserved field *) Cstruct.BE.set_uint32 buf 12 0l ;; (* ------------------------------------------------------------------ *) (* CRC32 (IEEE polynomial) *) (* ------------------------------------------------------------------ *) (* CRC32 table using native OCaml int (63-bit on 64-bit platforms) to avoid the per-operation heap allocation that OCaml's Int32 boxing incurs. Every value fits in a 32-bit unsigned range so 63-bit int is a safe superset. Requires 64-bit platform — correct for all granary/MirageOS targets. *) let crc32_table : int array = let table = Array.make 256 0 in for i = 0 to 255 do let crc = ref i in for _ = 0 to 7 do if !crc land 1 = 1 then crc := (!crc lsr 1) lxor 0xEDB88320 else crc := !crc lsr 1 done; table.(i) <- !crc done; table ;; (* Compute CRC32 over all bytes of [buf], treating bytes 8..11 (the crc32 field) as zeros without modifying the buffer. Returns a native int holding the unsigned 32-bit CRC value (high 31 bits are zero). *) let compute_crc_int buf = let crc = ref 0xFFFFFFFF in for i = 0 to Cstruct.length buf - 1 do let byte = if i >= 8 && i <= 11 then 0 else Char.code (Cstruct.get_char buf i) in crc := crc32_table.(!crc lxor byte land 0xFF) lxor (!crc lsr 8) done; !crc lxor 0xFFFFFFFF ;; let compute_crc buf = Int32.of_int (compute_crc_int buf) let verify_crc buf = let stored = Cstruct.BE.get_uint32 buf 8 in Int32.of_int (compute_crc_int buf) = stored ;; let seal buf = Cstruct.BE.set_uint32 buf 8 (Int32.of_int (compute_crc_int buf)) (* #174: per-tree schema-fingerprint stamp. It lives in the 4 reserved bytes at offset 12 of the common header (zeroed by [write_common]). Write it AFTER [write_common] and BEFORE [seal] — the CRC covers bytes 12..15, so the stamp is integrity-protected and any tamper is caught on read. *) let tag_offset = 12 let write_tag buf (tag : int32) = Cstruct.BE.set_uint32 buf tag_offset tag let read_tag buf : int32 = Cstruct.BE.get_uint32 buf tag_offset (* ------------------------------------------------------------------ *) (* Header page fields (kind = Header, bytes 16–63) *) (* ------------------------------------------------------------------ *) (* Header page layout (bytes 16..): +16 [8] txn_id (int64 BE) +24 [8] root_page (int64 BE) +32 [8] freelist_page (int64 BE) +40 [8] n_pages_total (int64 BE) +48 [8] schema_version (int64 BE) +56 [4] page_size (int32 BE) +60 [4] format_version (int32 BE) +64 [4] reserved_bytes_per_page (int32 BE, #95) +68 [4] enc_magic (uint32 BE; 0x53454E43 "SENC" when encrypted, #84) +72 [16] canary_nonce (16 bytes; meaningful when enc_magic set, #84) +88 [16] canary_tag (16 bytes; meaningful when enc_magic set, #84) +104..(page_size-1) reserved zeros *) type header_fields = { txn_id : int64 ; root_page : int64 ; freelist_page : int64 ; n_pages_total : int64 ; schema_version : int64 ; page_size : int32 ; format_version : int32 ; reserved_bytes_per_page : int32 ; enc_magic : int32 (** 0x53454E43 "SENC" when encrypted, else 0 (#84) *) ; canary_nonce : string (** 16 bytes; meaningful only when enc_magic set *) ; canary_tag : string (** 16 bytes; meaningful only when enc_magic set *) } let read_header_fields buf = let txn_id = Cstruct.BE.get_uint64 buf 16 in let root_page = Cstruct.BE.get_uint64 buf 24 in let freelist_page = Cstruct.BE.get_uint64 buf 32 in let n_pages_total = Cstruct.BE.get_uint64 buf 40 in let schema_version = Cstruct.BE.get_uint64 buf 48 in let page_size = Cstruct.BE.get_uint32 buf 56 in let format_version = Cstruct.BE.get_uint32 buf 60 in let reserved_bytes_per_page = Cstruct.BE.get_uint32 buf 64 in let enc_magic = Cstruct.BE.get_uint32 buf 68 in let canary_nonce = Cstruct.to_string buf ~off:72 ~len:16 in let canary_tag = Cstruct.to_string buf ~off:88 ~len:16 in { txn_id ; root_page ; freelist_page ; n_pages_total ; schema_version ; page_size ; format_version ; reserved_bytes_per_page ; enc_magic ; canary_nonce ; canary_tag } ;; let write_header_fields buf hf = (* Zero bytes 16..end first so the reserved area is clean (sized to the actual page buffer, #95). write_common handles bytes 0..15 separately. *) Cstruct.memset (Cstruct.sub buf 16 (Cstruct.length buf - 16)) 0; Cstruct.BE.set_uint64 buf 16 hf.txn_id; Cstruct.BE.set_uint64 buf 24 hf.root_page; Cstruct.BE.set_uint64 buf 32 hf.freelist_page; Cstruct.BE.set_uint64 buf 40 hf.n_pages_total; Cstruct.BE.set_uint64 buf 48 hf.schema_version; Cstruct.BE.set_uint32 buf 56 hf.page_size; Cstruct.BE.set_uint32 buf 60 hf.format_version; Cstruct.BE.set_uint32 buf 64 hf.reserved_bytes_per_page; Cstruct.BE.set_uint32 buf 68 hf.enc_magic; if Int32.equal hf.enc_magic 0l then () else ( Cstruct.blit_from_string hf.canary_nonce 0 buf 72 16; Cstruct.blit_from_string hf.canary_tag 0 buf 88 16) ;; (* ------------------------------------------------------------------ *) (* Branch page entries *) (* ------------------------------------------------------------------ *) (* Each branch entry: [key_len: uint16 BE][key: key_len bytes][left_child: uint32 BE] Total size per entry: 2 + key_len + 4 = 6 + key_len bytes. *) type branch_entry = { key : bytes ; left_child : int32 ; next_offset : int } let branch_entry_at buf ~offset = let page_size = Cstruct.length buf in (* Need at least 6 bytes for key_len (2) + left_child (4) *) if offset + 6 > page_size then `End else ( let key_len = Cstruct.BE.get_uint16 buf offset in if offset + 2 + key_len + 4 > page_size then `End else ( let key = Bytes.create key_len in Cstruct.blit_to_bytes buf (offset + 2) key 0 key_len; let left_child = Cstruct.BE.get_uint32 buf (offset + 2 + key_len) in let next_offset = offset + 2 + key_len + 4 in `Entry { key; left_child; next_offset })) ;; let branch_append_entry ?(reserved = 0) buf ~offset ~key ~left_child = let page_size = Cstruct.length buf in let key_len = Bytes.length key in if key_len > 0xFFFF then invalid_arg "branch_append_entry: key too long (max 65535 bytes)"; let entry_size = 2 + key_len + 4 in if offset + entry_size > page_size - reserved then invalid_arg (Printf.sprintf "branch_append_entry: entry size %d would overflow page at offset %d" entry_size offset); Cstruct.BE.set_uint16 buf offset key_len; Cstruct.blit_from_bytes key 0 buf (offset + 2) key_len; Cstruct.BE.set_uint32 buf (offset + 2 + key_len) left_child; offset + 2 + key_len + 4 ;; (* ------------------------------------------------------------------ *) (* Leaf page entries *) (* ------------------------------------------------------------------ *) (* Each leaf entry: [key_len: uint16 BE][key: key_len bytes][val_len: uint16 BE][val: val_len bytes] Total size per entry: 2 + key_len + 2 + val_len = 4 + key_len + val_len bytes. *) type leaf_entry = { key : bytes ; value : bytes ; next_offset : int } let leaf_entry_at buf ~offset = let page_size = Cstruct.length buf in (* Need at least 4 bytes for key_len (2) + val_len (2) *) if offset + 4 > page_size then `End else ( let key_len = Cstruct.BE.get_uint16 buf offset in if offset + 2 + key_len + 2 > page_size then `End else ( let val_len = Cstruct.BE.get_uint16 buf (offset + 2 + key_len) in if offset + 2 + key_len + 2 + val_len > page_size then `End else ( let key = Bytes.create key_len in Cstruct.blit_to_bytes buf (offset + 2) key 0 key_len; let value = Bytes.create val_len in Cstruct.blit_to_bytes buf (offset + 2 + key_len + 2) value 0 val_len; let next_offset = offset + 2 + key_len + 2 + val_len in `Entry { key; value; next_offset }))) ;; let leaf_append_entry ?(reserved = 0) buf ~offset ~key ~value = let page_size = Cstruct.length buf in let key_len = Bytes.length key in let val_len = Bytes.length value in if key_len > 0xFFFF then invalid_arg "leaf_append_entry: key too long (max 65535 bytes)"; if val_len > 0xFFFF then invalid_arg "leaf_append_entry: value too long (max 65535 bytes)"; let entry_size = 2 + key_len + 2 + val_len in if offset + entry_size > page_size - reserved then invalid_arg (Printf.sprintf "leaf_append_entry: entry size %d would overflow page at offset %d" entry_size offset); Cstruct.BE.set_uint16 buf offset key_len; Cstruct.blit_from_bytes key 0 buf (offset + 2) key_len; Cstruct.BE.set_uint16 buf (offset + 2 + key_len) val_len; Cstruct.blit_from_bytes value 0 buf (offset + 2 + key_len + 2) val_len; offset + 2 + key_len + 2 + val_len ;; (* ------------------------------------------------------------------ *) (* In-place B-tree search (no per-entry allocation, #245) *) (* ------------------------------------------------------------------ *) (* These searches are called once per entry / once per page on the hot point- lookup path, so they must allocate NOTHING beyond the matched value. Each loop is a TOP-LEVEL recursive function taking all state as parameters: a nested [let rec] would capture its free variables into a closure that OCaml heap-allocates on every call (measured ~72 B per comparison — O(n_keys) of them per page, which would defeat the point of avoiding the entry list). MUST STAY IN SYNC with the entry layout encoded in [leaf_entry_at] / [branch_entry_at] above: these duplicate the byte offsets (key_len/val_len positions, bounds checks) to read in place instead of decoding to records. Any format change (e.g. the deferred cell-pointer directory) must touch both sides; the [prop_leaf_lookup_matches] / [prop_branch_pick_matches] QCheck equivalence tests are the backstop that catches drift. *) (* Byte loop for [compare_key_at]: compare [key.[0..n)] against [buf] bytes at [kstart..kstart+n) as UNSIGNED. Returns 0 if the [n]-byte prefixes are equal, else the sign of the first differing byte. *) let rec compare_key_loop buf kstart key n i = if i >= n then 0 else ( let a = Char.code (Bytes.unsafe_get key i) in let b = Cstruct.get_uint8 buf (kstart + i) in if a <> b then if a < b then -1 else 1 else compare_key_loop buf kstart key n (i + 1)) ;; (* Compare a target [key] against the entry key stored in [buf] at byte range [kstart .. kstart+klen), WITHOUT copying the stored key out. Same sign convention as [Bytes.compare key stored_key]: negative if [key] sorts before, 0 if equal, positive if after. Bytes compared as UNSIGNED, then the shorter key sorts first — byte-identical to [Bytes.compare]. Both leaf and branch entries start with [key_len: uint16][key: key_len], so this serves both. Allocates nothing. *) let compare_key_at buf ~kstart ~klen ~key = let kb = Bytes.length key in let n = if kb < klen then kb else klen in let c = compare_key_loop buf kstart key n 0 in if c <> 0 then c else Int.compare kb klen ;; let rec leaf_lookup_loop buf page_size n_keys key offset i = if i >= n_keys || offset + 4 > page_size then None else ( let key_len = Cstruct.BE.get_uint16 buf offset in let val_off = offset + 2 + key_len in if val_off + 2 > page_size then None else ( let val_len = Cstruct.BE.get_uint16 buf val_off in if val_off + 2 + val_len > page_size then None else ( let c = compare_key_at buf ~kstart:(offset + 2) ~klen:key_len ~key in if c = 0 then ( let value = Bytes.create val_len in Cstruct.blit_to_bytes buf (val_off + 2) value 0 val_len; Some value) else if c < 0 then None (* target sorts before this entry: not present *) else leaf_lookup_loop buf page_size n_keys key (val_off + 2 + val_len) (i + 1)))) ;; (* In-place point lookup on a sorted leaf page ([n_keys] = [common.n_keys]). Walks entries by offset, comparing each key against the page bytes directly; returns the matching value (freshly copied) or [None]. Allocates ONLY the matched value — no entry list, no per-entry key/value bytes, no closure. Bounds handling and the sorted short-circuit exactly mirror [decode]-then-linear-scan over {!leaf_entry_at}, so results are byte-identical (#245). *) let leaf_lookup buf ~n_keys ~key : bytes option = leaf_lookup_loop buf (Cstruct.length buf) n_keys key data_offset 0 ;; let rec branch_pick_loop buf page_size n_keys right_page key offset i = if i >= n_keys || offset + 6 > page_size then right_page else ( let key_len = Cstruct.BE.get_uint16 buf offset in if offset + 2 + key_len + 4 > page_size then right_page else ( let c = compare_key_at buf ~kstart:(offset + 2) ~klen:key_len ~key in if c < 0 then Cstruct.BE.get_uint32 buf (offset + 2 + key_len) else branch_pick_loop buf page_size n_keys right_page key (offset + 2 + key_len + 4) (i + 1))) ;; (* In-place branch child selection on a sorted branch page. Returns the child page-id (int32) to descend into for [key] — the [left_child] of the first entry whose key is strictly greater than [key], else [right_page] (= [common.right_page]). Allocates nothing; byte-identical to the list-based pick (#245). *) let branch_pick buf ~n_keys ~right_page ~key : int32 = branch_pick_loop buf (Cstruct.length buf) n_keys right_page key data_offset 0 ;; (* ------------------------------------------------------------------ *) (* Zero-alloc write-path helpers (#356) *) (* ------------------------------------------------------------------ *) (* Result of {!leaf_find_position}: where a key belongs in a sorted leaf page. *) type leaf_position = { insert_off : int (* byte offset of first entry >= key, or data_end *) ; data_end : int (* byte offset right after last entry *) ; key_found : bool (* true iff an exact match exists at insert_off *) } (* Scan a sorted leaf page to find where [key] belongs. Single forward pass, allocates nothing. Returns [insert_off = data_end] when the new key is larger than all existing keys. *) let leaf_find_position buf ~n_keys ~key : leaf_position = let page_size = Cstruct.length buf in let rec scan offset i insert_off insert_set key_found = if i >= n_keys || offset + 4 > page_size then { insert_off = (if insert_set then insert_off else offset) ; data_end = offset ; key_found } else ( let key_len = Cstruct.BE.get_uint16 buf offset in let val_off = offset + 2 + key_len in let val_len = Cstruct.BE.get_uint16 buf val_off in let next_off = val_off + 2 + val_len in if insert_set then scan next_off (i + 1) insert_off true key_found else ( let c = compare_key_at buf ~kstart:(offset + 2) ~klen:key_len ~key in if c < 0 then scan next_off (i + 1) offset true false else if c = 0 then scan next_off (i + 1) offset true true else scan next_off (i + 1) (-1) false false)) in scan data_offset 0 (-1) false false ;; (* Zero-alloc test: does the leaf entry starting at byte [offset] have a key equal to [key]? Used to validate an append-cursor against the live page (#356) without decoding the entry. Bounds-checked: returns false if [offset] does not address a well-formed entry. *) let leaf_key_matches_at buf ~offset ~key = let page_size = Cstruct.length buf in if offset + 2 > page_size then false else ( let key_len = Cstruct.BE.get_uint16 buf offset in if offset + 2 + key_len > page_size then false else Bytes.length key = key_len && compare_key_at buf ~kstart:(offset + 2) ~klen:key_len ~key = 0) ;; (* Build a new leaf page with [key, stored_value] inserted at [pos.insert_off]. Entries before the insertion point are blitted from [buf]; entries after are blitted after the new entry. Updates n_keys and tag. CRC seal is deferred to flush-time (#356) — the pager seals all dirty pages at WAL-commit. *) let leaf_blit_insert buf ~pos ~key ~stored_value ~right_page ~write_tag:tag ~n_keys = let page_size = Cstruct.length buf in let new_buf = Cstruct.create page_size in Cstruct.memset new_buf 0; let before_len = pos.insert_off - data_offset in if before_len > 0 then Cstruct.blit buf data_offset new_buf data_offset before_len; let after_off = leaf_append_entry new_buf ~offset:pos.insert_off ~key ~value:stored_value in let after_len = pos.data_end - pos.insert_off in if after_len > 0 then Cstruct.blit buf pos.insert_off new_buf after_off after_len; let common = { kind = Leaf; flags = 0; n_keys = n_keys + 1; right_page; crc32 = 0l } in write_common new_buf common; write_tag new_buf tag; new_buf ;; (* Insert ([key], [stored_value]) into a sorted leaf page IN PLACE at [pos.insert_off], shifting the tail entries up to make room, then bumping the header's n_keys. Mutates [buf] directly — used by the in-place insert fast path (#356) when the leaf is already owned by the current write txn (dirty), avoiding a full page copy + parent-pointer rewrite. The tail shift copies bytes backward (high → low destination first) so the source and destination ranges may overlap safely; for an append at the end ([pos.insert_off = pos.data_end]) the tail is empty and no shift happens. Caller guarantees [pos.key_found = false] and that the new entry fits within the page's usable region. Preserves the existing right_page and tag. CRC is resealed at flush-time (#356). *) let leaf_insert_inplace buf ~pos ~key ~stored_value ~n_keys = let entry_size = 2 + Bytes.length key + 2 + Bytes.length stored_value in let tail_len = pos.data_end - pos.insert_off in (* Shift the tail [insert_off, data_end) up by [entry_size], backward so the overlapping ranges don't clobber unread source bytes. *) if tail_len > 0 then for i = tail_len - 1 downto 0 do Cstruct.set_uint8 buf (pos.insert_off + entry_size + i) (Cstruct.get_uint8 buf (pos.insert_off + i)) done; let _ = leaf_append_entry buf ~offset:pos.insert_off ~key ~value:stored_value in (* Bump n_keys in the common header (bytes 2..3, uint16 BE). *) Cstruct.BE.set_uint16 buf 2 (n_keys + 1) ;; (* Like [branch_pick_loop] but also returns the child's ordinal index and the byte offset of its [left_child] int32 field within [buf] (-1 for right_page). Allocates nothing. *) let rec branch_pick_with_info_loop buf page_size n_keys right_page key offset i = if i >= n_keys || offset + 6 > page_size then right_page, i, -1 else ( let key_len = Cstruct.BE.get_uint16 buf offset in if offset + 2 + key_len + 4 > page_size then right_page, i, -1 else ( let c = compare_key_at buf ~kstart:(offset + 2) ~klen:key_len ~key in if c < 0 then ( let ptr_off = offset + 2 + key_len in Cstruct.BE.get_uint32 buf ptr_off, i, ptr_off) else branch_pick_with_info_loop buf page_size n_keys right_page key (offset + 2 + key_len + 4) (i + 1))) ;; (* In-place branch child selection that also returns the chosen child's ordinal index and the byte offset of its [left_child] field (-1 for [right_page]). Used in the fast CoW branch-update path (#356). *) let branch_pick_with_info buf ~n_keys ~right_page ~key : int32 * int * int = branch_pick_with_info_loop buf (Cstruct.length buf) n_keys right_page key data_offset 0 ;; (* Build a new branch page identical to [buf] except the child pointer at [child_ptr_offset] is replaced with [new_child]. If [child_ptr_offset < 0] the [right_page] header field is updated instead. Returns a fresh, freshly-sealed Cstruct. *) let branch_blit_update_child buf ~child_ptr_offset ~new_child ~write_tag:tag = let page_size = Cstruct.length buf in let new_buf = Cstruct.create page_size in Cstruct.blit buf 0 new_buf 0 page_size; if child_ptr_offset >= 0 then Cstruct.BE.set_uint32 new_buf child_ptr_offset new_child else Cstruct.BE.set_uint32 new_buf 4 new_child; write_tag new_buf tag; new_buf ;; (* ------------------------------------------------------------------ *) (* Freelist page entries *) (* ------------------------------------------------------------------ *) (* Each freelist entry: [page_id: uint32 BE][freed_at_txn_id: int64 BE] Total: 4 + 8 = 12 bytes per entry. *) type freelist_entry = { page_id : int32 ; freed_at_txn_id : int64 } let freelist_entry_size = 12 let max_freelist_entries_per_page = max_data_bytes / freelist_entry_size (* = 4080 / 12 = 340 *) let freelist_entry_at buf ~index = let off = data_offset + (index * freelist_entry_size) in let page_id = Cstruct.BE.get_uint32 buf off in let freed_at_txn_id = Cstruct.BE.get_uint64 buf (off + 4) in { page_id; freed_at_txn_id } ;; let freelist_set_entry buf ~index ~page_id ~freed_at_txn_id = let off = data_offset + (index * freelist_entry_size) in Cstruct.BE.set_uint32 buf off page_id; Cstruct.BE.set_uint64 buf (off + 4) freed_at_txn_id ;; (* ------------------------------------------------------------------ *) (* Overflow page (kind = Overflow) *) (* ------------------------------------------------------------------ *) (* Overflow page layout: +0 [16] common header (kind=Overflow; right_page = next_pid; n_keys = 0) +16 [2] payload_len (uint16 BE) +18 [payload_len] payload bytes +18+payload_len..4095 unused (zero-fill) *) let max_overflow_payload_bytes = max_data_bytes - 2 let overflow_payload_len buf = Cstruct.BE.get_uint16 buf data_offset let overflow_payload buf = let len = overflow_payload_len buf in let out = Bytes.create len in Cstruct.blit_to_bytes buf (data_offset + 2) out 0 len; out ;; let write_overflow ?(reserved = 0) buf ~next_pid ~payload ~payload_off ~payload_len = let max_payload = Cstruct.length buf - data_offset - 2 - reserved in if payload_len < 0 || payload_len > max_payload then invalid_arg (Printf.sprintf "write_overflow: payload_len %d out of range" payload_len); Cstruct.memset buf 0; let common = { kind = Overflow; flags = 0; n_keys = 0; right_page = next_pid; crc32 = 0l } in write_common buf common; Cstruct.BE.set_uint16 buf data_offset payload_len; Cstruct.blit_from_bytes payload payload_off buf (data_offset + 2) payload_len ;; [@@@ai_disclosure "ai-generated"] [@@@ai_model "claude-opus-4-7"] [@@@ai_provider "Anthropic"]
sectionYPositions = computeSectionYPositions($el), 10)"
x-init="setTimeout(() => sectionYPositions = computeSectionYPositions($el), 10)"
>