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.store/store.ml.html
Source file store.ml
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Two backends share the same interface: - [Mem] — pure in-memory [Bytes_map]-per-tree (the Phase 0 backend). Used by [create ()]. No I/O, no size limits, no errors. - [Btree] — CoW B+-tree over a Pager over a BLOCK device, given as I/O callbacks via [open_block]/[open_block_wal]. Persists across reopen. Inherits the B+-tree leaf-cell size limits (512-byte keys, 1024-byte values). Unix-file convenience constructors live in the [granary.unix] driver library, not here, so the core stays platform-agnostic (#170). The two are wrapped in a sum type so callers see one [Store.t]. *) open Lwt.Syntax module Btree = Granary_storage.Btree module Pager = Granary_storage.Pager module Header = Granary_storage.Header module Freelist = Granary_storage.Freelist module Pager_event = Granary_storage.Pager_event module Page = Granary_storage.Page module Geometry = Granary_storage.Geometry module Crypto = Granary_storage.Crypto module Varint = Granary_encoding.Varint module Bytes_map = Map.Make (Bytes) type ro type rw type tree_id = int type error = | Block_error of string | Corruption of string | Key_too_large of int | Value_too_large of int | Header_error of string | Encryption_key_required (** DB is encrypted but no key was supplied *) | Encryption_key_mismatch (** supplied key fails the header canary *) | Not_encrypted (** a key was supplied for a plaintext DB *) | Encryption_rng_unseeded (** a key was supplied but {!Mirage_crypto_rng} is not seeded, so no per-page nonce can be generated — the application must seed the RNG at boot *) (** as-of API used on a store opened without the feature *) | History_pruned (** as-of target is older than the retained floor *) | History_misconfigured (** [as_of_history:true] but no history sink supplied *) let pp_error fmt = function | Block_error s -> Format.fprintf fmt "Block_error(%s)" s | Corruption s -> Format.fprintf fmt "Corruption(%s)" s | Key_too_large n -> Format.fprintf fmt "Key_too_large(%d)" n | Value_too_large n -> Format.fprintf fmt "Value_too_large(%d)" n | Header_error s -> Format.fprintf fmt "Header_error(%s)" s | Encryption_key_required -> Format.pp_print_string fmt "Encryption_key_required" | Encryption_key_mismatch -> Format.pp_print_string fmt "Encryption_key_mismatch" | Not_encrypted -> Format.pp_print_string fmt "Not_encrypted" | Encryption_rng_unseeded -> Format.pp_print_string fmt "Encryption_rng_unseeded" | History_unavailable -> Format.fprintf fmt "as-of time travel is not enabled on this database" | History_pruned -> Format.fprintf fmt "as-of target is older than the retained history horizon" | History_misconfigured -> Format.fprintf fmt "as_of_history was requested but no history log was supplied" ;; (* ------------------------------------------------------------------ *) (* Btree-backend internal state *) (* ------------------------------------------------------------------ *) (* The meta-tree is stored separately from user trees (it doesn't live in the [trees] hashtable). It tracks the root_page of every tree_id created via [get/put/del]; its OWN root_page is what we commit into the header. *) type bt_savepoint = { sp_name : string ; sp_meta_root : int64 ; sp_tree_roots : (tree_id * int64) list ; sp_freelist : Freelist.t ; sp_n_pages : int64 ; sp_dirty : Pager.dirty_snapshot ; sp_txn_pool : int64 list (** #297: txn-owned page pool snapshot, restored on savepoint rollback. *) } (* Per-store commit queue for WAL-mode group commit (#77, #151). After a writer has staged its WAL frames it releases [lock] and joins this queue to await one shared fsync. [drainer] is set to [true] by the first arriving writer (acting as coordinator); subsequent writers register a resolver on [waiters] and block until the drainer wakes them with the sync result. [pending] tracks the number of waiters so the drainer can yield additional ticks while new arrivals keep registering, widening the batch. Cooperative Lwt scheduling makes the [drainer]/[pending]/[waiters] transitions atomic (no implicit yield between read and write). The per-batch resolvers carry [(unit, exn) result] so an fsync failure in the drainer propagates to every joiner in the same batch instead of being silently dropped by a unit-broadcast (#151). *) type commit_queue = { mutable drainer : bool ; mutable pending : int ; mutable waiters : (unit, exn) result Lwt.u list } let create_commit_queue () = { drainer = false; pending = 0; waiters = [] } type bt_state = { close_fn : unit -> unit Lwt.t ; pager : Pager.t ; cipher : Crypto.t option (** #84: the page cipher when the DB is encrypted, else [None]. Mirrors the cipher captured by the read/write callback closures; retained here so [copy_to]/[rekey_to] can re-encrypt the snapshot page image. *) ; mutable meta : Btree.t ; trees : (tree_id, Btree.t) Hashtbl.t ; tree_tags : (tree_id, int32) Hashtbl.t (** #174: per-tree page-header stamp (low 32 bits of the schema fingerprint), set by the catalog via {!set_tree_tag}. Pages written for a tree carry its tag in the reserved header bytes; untagged trees (default) carry 0. *) ; mutable current_header : Header.t ; schema_version : int64 ; mutable txn_freelist_snapshot : Freelist.t option ; (* Snapshot of freelist taken at rw_begin; restored on rollback. None when no RW txn is active. *) active_readers : (int64, int) Hashtbl.t ; (* Maps snap_txn_id -> reference count of active RO txns at that snapshot *) mutable bt_savepoints : bt_savepoint list ; (* Stack of named savepoints; newest at front. Cleared on commit/rollback. *) bt_append : (tree_id, Btree.append_cursor) Hashtbl.t ; (* #356: per-tree append cursor for O(1) bulk sequential inserts. Set by [put_x] after an append, consumed by the next append. Invalidated on commit/rollback/savepoint-rollback and on any non-append mutation of the tree. Re-validated against the live page on every use, so a stale entry can only force the slow path, never corrupt the tree. *) wal : Granary_storage.Wal.t option ; (* When set, commits append to this WAL instead of writing to the main DB; reads route through it via the Pager hook. *) wal_close : (unit -> unit Lwt.t) option ; mutable wal_autocheckpoint_threshold : int ; (* When > 0 and committed WAL frames reach this number, the next commit triggers an inline checkpoint (still under [lock]) so the WAL stays bounded. 0 disables auto-checkpoint. Per-connection, not persisted. *) commit_queue : commit_queue ; (* WAL-mode group commit (#77). Used only when [wal] is [Some]; allocated unconditionally to keep [bt_state] uniform. *) active_reader_frames : (int, int) Hashtbl.t ; (* WAL committed_frames snapshot value -> refcount of RO snapshots captured at that value. Lets [min_active_ro_reader_frames] compute the lowest snapshot bound currently in flight in O(distinct snapshots) which is bounded by the number of concurrent readers. *) reader_done_cond : unit Lwt_condition.t ; (* Broadcast on every [ro_end] so a waiting checkpoint can re-check [min_active_ro_reader_frames] without busy-waiting. *) mutable autockpt_in_flight : bool (* True iff a background autocheckpoint fiber is currently running. Used to coalesce: if a commit crosses the threshold while a checkpoint is already running, we skip rescheduling. *) ; mutable replication_shipped_frames : int (* WAL frame index up to which the replication consumer (if any) has acknowledged shipment. Initialized to [max_int] so that when no consumer is active it does not gate checkpoint truncation. When a consumer registers it sets this to its shipped position; [checkpoint] then waits (subject to [replication_gate_max_yields]) for this to reach [committed_frames] via [wait_for_readers_past]. *) ; mutable replication_gate_max_yields : int (* Bounded-yield "timeout" for the checkpoint gate's wait on the replication floor (#207). When the floor (a standby's acked position, plumbed in by the app via [update_replication_position]) is below the checkpoint target, the gate yields up to this many times before proceeding anyway — a dead or slow standby must not wedge the master's WAL forever. Pure-Mirage has no ambient clock, so the "timeout" is a bounded count of cooperative [Lwt.pause] yields (the project's [wait_for] idiom), not wall-clock time. [max_int] (the default) means unbounded: wait indefinitely on the broadcast condition, exactly as before this knob existed. Local RO readers are NEVER abandoned by this budget — only the replication floor. On timeout the standby falls outside the live un-checkpointed window and must re-base (see #208). *) ; mutable backup_shipped_frames : int (* WAL frame index up to which the backup consumer (if any) has captured frames. Analogous to [replication_shipped_frames] but for incremental backup (#265). Initialized to [max_int] so that when no backup consumer is active it does not gate checkpoint truncation. The backup consumer calls {!update_backup_position} to advance this as frames are captured and stored. *) ; mutable backup_gate_max_yields : int (* Bounded-yield "timeout" for the checkpoint gate's wait on the backup floor (#265). Same semantics as [replication_gate_max_yields]: when the backup consumer has not yet captured frames up to the checkpoint target, the gate yields up to this many times before proceeding anyway. [max_int] (the default) means unbounded — wait indefinitely. A finite budget bounds the wait: once spent, the checkpoint proceeds and un-captured frames are recycled (the backup must re-base). Negative inputs clamp to [0]. *) ; mutable on_committed_frames : (epoch:int64 -> base_idx:int -> count:int -> unit Lwt.t) option (* Optional callback invoked asynchronously after each WAL commit batch. Receives ~epoch, ~base_idx (starting WAL frame index of the batch), ~count (number of frames in the batch). The application reads the individual frames via [Wal.read_frame] and ships them to the object store. Fired via [Lwt.async] so it never blocks the commit path. [None] when no sink is registered. *) ; mutable on_event : (Store_event.t -> unit) option (* #382: optional, synchronous, fire-and-forget observer for internal events (the internals monitor). [None] = zero overhead. Invoked via [emit_event], which swallows any exception so a faulty observer can never break a transaction. Btree backend only — Mem has no bt_state. *) ; history : History.sink option (* #266: append-only as-of commit log. [Some] iff the store was opened with [~as_of_history:true] AND a sink was supplied; [None] disables the whole feature (zero commit-path overhead). *) ; history_now : unit -> int64 (* #266: wall-clock (ms since epoch) stamped onto each commit-log record. Injected at open; defaults to a constant 0 when history is disabled. *) ; mutable history_floor : int64 option (* #266: retention floor. When [Some t], [min_safe] is capped at [t+1] so pages reachable from roots >= t are never reused. *) ; mutable current_tree : tree_id option (* #385: the tree id of the in-flight read/write/cursor op, set at the bt_get_tree(_ro) chokepoint and stamped onto page events by translate_pager_event. Best-effort (single mutable shared across fibers), same spirit as the pager's txn_id. [None] => stamp tree = -1. *) ; mutable follower : bool (* When true, [rw_begin] rejects with an error. Set by the standby consumer while following the master's WAL stream; cleared on promotion or when the follower loop exits. The in-memory backend ignores this flag (Mem stores have no standby semantics). *) ; mutable follower_ack_position : int option (* [Wal.committed_frames] at the time the last apply batch completed on this follower, or [None] when no position has been recorded yet. When [Some n], [ro_begin] caps the RO snapshot's visible WAL frames to [min committed_frames n] so readers never observe frames past the follower's last-applied commit (#263). Stored in local committed-frame count space so it compares correctly against [Wal.committed_frames] and survives local epoch resets. *) ; mutable sync_mode : [ `Full | `Batched | `Off ] (* #298: durability mode. [`Full] = fsync every group-commit (default). [`Batched] = defer fsync until [batch_commits] or [batch_interval_ms]. [`Off] = never fsync on commit. Only consulted in WAL mode. *) ; mutable batch_commits : int (* #298: batched N threshold (default 256) *) ; mutable batch_interval_ms : int (* #298: batched T threshold ms (default 100) *) ; mutable unsynced_commits : int (* #298: committed-but-unsynced batches since last fsync. *) ; mutable last_sync_time : float (* #298: clock () at last commit fsync; for the T trigger. *) ; mutable clock : unit -> float (* #298: wall-clock source; default returns 0. *) ; mutable sink_shipped_frames : int (* #298/#1: per-epoch count of WAL frames already shipped to the replication sink ([on_committed_frames]). The sink is fired ONLY for frames that have been fsynced, so a standby can never lead a crash-recovered master. Reset to 0 on checkpoint (new epoch). *) ; mutable closing : bool (* #338: set by [close] to signal teardown. [maybe_autockpt_after_commit] then dispatches no fresh checkpoint, and an in-flight/parked one unwinds without touching the pager/WAL fds ([checkpoint_unlocked] and [wait_for_readers_past] bail on it). Lets [close] drain checkpoints without acquiring [t.lock] — which an abandoned write txn holds until commit/rollback, so taking it would hang close. *) ; mutable ckpt_io_in_flight : int (* #338 (review r2): count of checkpoints that have passed the gate and are actively performing pager/WAL fd I/O ([checkpoint_unlocked], both the auto and manual paths). Incremented AFTER lock acquisition + the [closing] check, so a checkpoint merely parked on [acquire_write] (e.g. behind an abandoned write txn) is NOT counted — [close] therefore never waits on it (it aborts on [closing] if it ever acquires the lock). [close] drains this to 0 (together with [sink_ships_in_flight]) before fd teardown. Distinct from [autockpt_in_flight], which is dispatch-intent (coalescing) only. *) ; mutable sink_ships_in_flight : int (* #337: count of async sink ships dispatched but not yet completed. The ship callback reads WAL frame payloads LAZILY ([Wal.read_frame]); a checkpoint's [Wal.reset] would recycle/zero those frames and bump the epoch out from under an in-flight reader ([Corrupt_frame] / stale epoch). Incremented synchronously at dispatch (before the [Lwt.async]); decremented in the callback's finalize. [checkpoint_unlocked] waits for this to reach 0 before [Wal.reset]. *) } let default_wal_autocheckpoint_threshold = 1000 let default_batch_commits = 256 let default_batch_interval_ms = 100 (** #298: per-deployment durability mode. *) type durability = | Full | Batched of { commits : int ; interval_ms : int } | Off type backend = | Mem of (tree_id, Bytes.t Bytes_map.t ref) Hashtbl.t | Btree of bt_state type t = { backend : backend ; lock : Rwlock.t ; (* Shadow copies of Mem backend tree contents for the active RW txn. Writes during the txn go to the shadow — the live tree is NEVER modified until commit. This prevents readers (both RO snapshots and subsequent RW txns) from ever seeing uncommitted state. None when no RW transaction is active. #178: without shadow writes, concurrent RO reads could observe uncommitted mutations because Rwlock's acquire_read never blocks. *) mutable mem_rw_shadow : (tree_id * Bytes.t Bytes_map.t) list option ; (* Savepoint stack for the Mem backend; newest entry at front. Each entry is (savepoint_name, snapshot_of_shadow). *) mutable mem_savepoints : (string * (tree_id * Bytes.t Bytes_map.t) list) list } let pp fmt t = Format.fprintf fmt "Store.t { backend = %s }" (match t.backend with | Mem _ -> "Mem" | Btree _ -> "Btree") ;; (* #95/#176: the page geometry this store is backed by. The in-memory backend has no on-disk geometry, so it reports {!Geometry.default}; VACUUM uses this to rebuild the temp file at the source's page_size/reserved. *) let geometry t = match t.backend with | Mem _ -> Geometry.default | Btree st -> Pager.geom st.pager ;; type ro_snapshot = { rs_store : t ; rs_snap_txn_id : int64 ; rs_snap_meta_root : int64 ; rs_snap_trees : (tree_id, Btree.t) Hashtbl.t ; rs_snap_frames : int ; (* WAL committed_frames at ro_begin; 0 when no WAL is in effect. *) rs_pinned : (int64, unit) Hashtbl.t (* Page ids this snapshot has pinned in the Pager cache (#159). Every snapshot read records the pages it materialises here; [ro_end] releases them via [Pager.unpin_all]. Unused for the Mem backend. *) ; rs_mem_snap : (tree_id * Bytes.t Bytes_map.t) list option (** #178: for the in-memory backend, a deep copy of every tree's contents taken at [ro_begin] so RO reads never see uncommitted writes from a concurrent (but rollback-destined) writer. [None] for Btree backend. *) } type 'a txn = | Ro : ro_snapshot -> ro txn | Rw : t -> rw txn type seek_result = | Found of bytes | Not_found of [ `Greater of bytes | `End ] (* Cursor over either backend. For the in-memory backend, the cursor holds an immutable snapshot of the bindings as a list (matches Phase 0 semantics). For the B+-tree backend we similarly materialise a snapshot (list of (k,v) pairs) at cursor_open time. This is acceptable for Phase 1 and makes seek/next semantics identical to the in-memory implementation; true streaming cursors come later. In both cases [ready] and [remaining] together implement the "pre-positioned" semantics from [store.mli]: the first [cursor_next] after positioning returns the positioned entry without advancing. *) type cursor = { all : (bytes * bytes) list ; mutable remaining : (bytes * bytes) list ; mutable ready : bool } (* ------------------------------------------------------------------ *) (* Backend helpers — Mem *) (* ------------------------------------------------------------------ *) let mem_tree trees tid = match Hashtbl.find_opt trees tid with | Some r -> r | None -> let r = ref Bytes_map.empty in Hashtbl.add trees tid r; r ;; (* #178: look up a tree in the snapshot taken at [ro_begin] for the in-memory backend. Returns [Bytes_map.empty] when the tree didn't exist at snapshot time — an RO reader should see an empty tree, not the live (possibly uncommitted) contents. *) let mem_tree_snap (snap : (tree_id * Bytes.t Bytes_map.t) list) (tid : tree_id) = match List.assoc_opt tid snap with | Some map -> map | None -> Bytes_map.empty ;; (* Shadow helpers for the in-memory backend (#178). During a RW transaction, all writes go to a per-txn shadow. The live tree is never mutated until commit, so RO txn snapshots always capture committed-only state. *) (* Get a tree's content from the shadow, falling back to the live tree when the tree hasn't been touched by this txn yet. *) let shadow_get (shadow : (tree_id * Bytes.t Bytes_map.t) list) (trees : (tree_id, Bytes.t Bytes_map.t ref) Hashtbl.t) (tid : tree_id) = match List.assoc_opt tid shadow with | Some map -> map | None -> !(mem_tree trees tid) ;; (* Update a tree in the shadow. The tree is lazy-copied from the live tree on first access (via [shadow_get]). *) let shadow_update (shadow : (tree_id * Bytes.t Bytes_map.t) list) (trees : (tree_id, Bytes.t Bytes_map.t ref) Hashtbl.t) (tid : tree_id) (f : Bytes.t Bytes_map.t -> Bytes.t Bytes_map.t) = let map = shadow_get shadow trees tid in (tid, f map) :: List.remove_assoc tid shadow ;; (* ------------------------------------------------------------------ *) (* Backend helpers — Btree *) (* ------------------------------------------------------------------ *) (* tree_id <-> bytes encoding via varint (zigzag, since negative ids are reserved for internal use; we don't actually persist negative ids but using signed encoding lets us round-trip safely). *) let encode_tree_id (tid : tree_id) : bytes = let buf = Buffer.create 8 in Varint.encode_int64 buf (Int64.of_int tid); Buffer.to_bytes buf ;; let encode_root_page (pid : int64) : bytes = let buf = Buffer.create 8 in Varint.encode_uint64 buf pid; Buffer.to_bytes buf ;; let decode_root_page (b : bytes) : int64 = let v, _ = Varint.decode_uint64 b 0 in v ;; let map_btree_err : Btree.error -> error = function | Btree.Pager_error (Pager.Block_error s) -> Block_error s | Btree.Pager_error (Pager.Corruption s) -> Corruption s | Btree.Key_too_large n -> Key_too_large n | Btree.Value_too_large n -> Value_too_large n | Btree.Tree_corrupt s -> Corruption s ;; (* The B+-tree treats Bytes by [Bytes.compare]; cursor_seek consumes the raw bytes; everything is byte-clean. *) (* Lookup-or-build the Btree handle for a tree_id. Looks up the tree_id's root page in the meta-tree; if absent (new tree), creates a fresh empty Btree (root_page = 0L). *) let bt_get_tree st (tid : tree_id) : (Btree.t, error) result Lwt.t = (* #385/#174: meta-tree pages read while resolving the root are system pages — keep [current_tree] clear (stamps tree = -1) during the lookup, then stamp [tid] so the caller's subsequent data-page reads are attributed to it. *) st.current_tree <- None; let* r = match Hashtbl.find_opt st.trees tid with | Some bt -> Lwt.return_ok bt | None -> let key = encode_tree_id tid in let* r = Btree.get st.meta key in (match r with | Error e -> Lwt.return_error (map_btree_err e) | Ok None -> let bt = Btree.create st.pager ~root_page:0L in Hashtbl.replace st.trees tid bt; Lwt.return_ok bt | Ok (Some v) -> let root_page = decode_root_page v in let bt = Btree.create st.pager ~root_page in Hashtbl.replace st.trees tid bt; Lwt.return_ok bt) in st.current_tree <- Some tid; Lwt.return r ;; (* #174: the page-header stamp for [tid] (0 when untagged). *) let tree_tag st (tid : tree_id) : int32 = Option.value ~default:0l (Hashtbl.find_opt st.tree_tags tid) ;; (* Convert a result with [error] payload to an Lwt-failing version. The public [get/put/del/cursor_open] signatures don't return [result], so B+-tree errors are surfaced as Lwt exceptions. *) let unwrap_error r = match r with | Ok v -> Lwt.return v | Error e -> Lwt.fail_with (Format.asprintf "Store: %a" pp_error e) ;; let min_active_reader_txn st = Hashtbl.fold (fun txn_id _ acc -> match acc with | None -> Some txn_id | Some m -> Some (Int64.min m txn_id)) st.active_readers None ;; (* Lowest WAL frame index pinned by an in-flight RO snapshot, ignoring the replication floor. A checkpoint must NEVER recycle past this (the snapshot would observe a broken WAL), so this gate is honored unconditionally — unlike the replication floor, which the #207 timeout may abandon. *) let min_active_ro_reader_frames (st : bt_state) : int option = Hashtbl.fold (fun k _ acc -> match acc with | None -> Some k | Some m -> Some (min m k)) st.active_reader_frames None ;; (* True iff an in-flight RO snapshot still needs WAL frames below [target]. This gate is honored unconditionally by the checkpoint wait. *) let ro_readers_below (st : bt_state) ~target = match min_active_ro_reader_frames st with | Some m -> m < target | None -> false ;; (* True iff a replication consumer is active and its acked floor is below [target]. This gate is subject to the #207 bounded-yield timeout. *) let replication_floor_below (st : bt_state) ~target = st.replication_shipped_frames <> max_int && st.replication_shipped_frames < target ;; (* True iff a backup consumer is active and its captured floor is below [target]. Analogous to [replication_floor_below] but for the incremental backup watermark (#265). Subject to a bounded-yield timeout like the replication floor. *) let backup_floor_below (st : bt_state) ~target = st.backup_shipped_frames <> max_int && st.backup_shipped_frames < target ;; (* Lookup-or-build the Btree handle for a tree_id using a snapshot's pinned meta root page rather than the live meta tree. *) let bt_get_tree_ro (snap : ro_snapshot) (st : bt_state) (tid : tree_id) : (Btree.t, error) result Lwt.t = (* #385/#174: see bt_get_tree — meta reads stay unattributed (tree = -1); [tid] is stamped only after the handle is resolved. *) st.current_tree <- None; let* r = match Hashtbl.find_opt snap.rs_snap_trees tid with | Some bt -> Lwt.return_ok bt | None -> let snap_frames = if snap.rs_snap_frames = 0 then None else Some snap.rs_snap_frames in let snap_meta = Btree.create ?snapshot_frames:snap_frames ~pin_set:snap.rs_pinned st.pager ~root_page:snap.rs_snap_meta_root in let key = encode_tree_id tid in let* r = Btree.get snap_meta key in (match r with | Error e -> Lwt.return_error (map_btree_err e) | Ok None -> let bt = Btree.create ?snapshot_frames:snap_frames ~pin_set:snap.rs_pinned st.pager ~root_page:0L in Hashtbl.replace snap.rs_snap_trees tid bt; Lwt.return_ok bt | Ok (Some v) -> let root_page = decode_root_page v in let bt = Btree.create ?snapshot_frames:snap_frames ~pin_set:snap.rs_pinned st.pager ~root_page in Hashtbl.replace snap.rs_snap_trees tid bt; Lwt.return_ok bt) in st.current_tree <- Some tid; Lwt.return r ;; (* ------------------------------------------------------------------ *) (* Freelist page I/O helpers (forward-declared here; used by open_block *) (* and commit below) *) (* ------------------------------------------------------------------ *) (* Walk the freelist page chain starting at [first_page], collect all entries, and return a reconstructed [Freelist.t]. *) let read_freelist_pages pager ~first_page : Freelist.t Lwt.t = if Int64.equal first_page 0L then Lwt.return Freelist.empty else ( let rec loop pid acc = if Int64.equal pid 0L then Lwt.return (Freelist.of_list (List.rev acc)) else let* r = Pager.read pager pid in match r with | Error _ -> Lwt.return (Freelist.of_list (List.rev acc)) | Ok buf -> let common = Page.read_common buf in let n = min common.Page.n_keys (Pager.max_freelist_entries_per_page pager) in let next_pid = Int64.logand 0xFFFFFFFFL (Int64.of_int32 common.Page.right_page) in let entries = List.init n (fun i -> let e = Page.freelist_entry_at buf ~index:i in e.Page.page_id, e.Page.freed_at_txn_id) in loop next_pid (List.rev_append entries acc) in loop first_page []) ;; (* ------------------------------------------------------------------ *) (* create / open_block / close *) (* ------------------------------------------------------------------ *) let create () : t = { backend = Mem (Hashtbl.create 16) ; lock = Rwlock.create () ; mem_rw_shadow = None ; mem_savepoints = [] } ;; let map_header_err (e : Header.error) : error = match e with | Header.Io s -> Header_error s | Header.Both_headers_corrupt -> Header_error "both header pages corrupt" | Header.Unsupported_format v -> Header_error (Printf.sprintf "unsupported on-disk format_version %ld" v) ;; (* Build a fully-initialised [t] wrapping a B-tree-backed [bt_state] from the given pager/meta/header. [wal]/[wal_close] default to None (plain opens); WAL opens pass [Some _]. *) let make_btree_store ?(wal = None) ?(wal_close = None) ?(cipher = None) ?(history = None) ?(history_now = fun () -> 0L) ~close_fn ~pager ~meta ~(h : Header.t) () = let st = { close_fn ; pager ; cipher ; meta ; trees = Hashtbl.create 16 ; current_tree = None ; tree_tags = Hashtbl.create 16 ; current_header = h ; schema_version = h.schema_version ; txn_freelist_snapshot = None ; active_readers = Hashtbl.create 4 ; bt_savepoints = [] ; bt_append = Hashtbl.create 8 ; wal ; wal_close ; wal_autocheckpoint_threshold = default_wal_autocheckpoint_threshold ; commit_queue = create_commit_queue () ; active_reader_frames = Hashtbl.create 4 ; reader_done_cond = Lwt_condition.create () ; autockpt_in_flight = false ; replication_shipped_frames = max_int ; replication_gate_max_yields = max_int ; backup_shipped_frames = max_int ; backup_gate_max_yields = max_int ; on_committed_frames = None ; on_event = None ; history ; history_now ; history_floor = None ; follower = false ; follower_ack_position = None ; sync_mode = `Full ; batch_commits = default_batch_commits ; batch_interval_ms = default_batch_interval_ms ; unsynced_commits = 0 ; last_sync_time = 0. ; clock = (fun () -> 0.) ; sink_shipped_frames = 0 ; sink_ships_in_flight = 0 ; closing = false ; ckpt_io_in_flight = 0 } in { backend = Btree st ; lock = Rwlock.create () ; mem_rw_shadow = None ; mem_savepoints = [] } ;; (* #338 (review r2): event-driven wait until [pred] holds, parking on [reader_done_cond] (broadcast whenever an in-flight counter changes). Shared by [close] (drain checkpoint fd-I/O + sink ships) and [checkpoint_unlocked] (drain sink ships before [Wal.reset]). Cooperative Lwt: the pred check and the [Lwt_condition.wait] register with no yield between, so no wakeup is lost. *) let rec wait_until (st : bt_state) (pred : unit -> bool) : unit Lwt.t = if pred () then Lwt.return_unit else let* () = Lwt_condition.wait st.reader_done_cond in wait_until st pred ;; let close (t : t) : unit Lwt.t = match t.backend with | Mem _ -> Lwt.return_unit | Btree st -> (* #338: an async checkpoint or sink ship touches the pager/WAL fds; tearing them down underneath one corrupts it (a checkpoint's error is swallowed and relies on WAL-replay self-healing; a ship loses tail frames the standby then misses). Rather than take [t.lock] for teardown — which an abandoned write txn holds until commit/rollback, so [close] would hang on it (review r2 #3) — signal teardown via [st.closing]: - [maybe_autockpt_after_commit] dispatches no fresh checkpoint once set; - a checkpoint parked on the gate or [acquire_write] unwinds without fd I/O ([wait_for_readers_past]/[checkpoint_unlocked] bail on [closing]); - the broadcast wakes a checkpoint parked on the replication floor. We then drain — event-driven — the work that is ACTUALLY mid-fd-I/O: checkpoints past the gate ([ckpt_io_in_flight], covers the auto AND manual paths — review r2 #3) and async sink ships ([sink_ships_in_flight], whose lazy [Wal.read_frame] would hit a closed fd — review r2 #2). A checkpoint merely parked on [acquire_write] is invisible here (it never incremented), so an abandoned txn cannot wedge close (review r2 #1). Callers must still quiesce their own writers before [close] (see store.mli). *) st.closing <- true; Lwt_condition.broadcast st.reader_done_cond (); let* () = wait_until st (fun () -> st.ckpt_io_in_flight = 0 && st.sink_ships_in_flight = 0) in (* #298: in batched/off mode the last acked commits may never have been fsynced. Decide on the WAL's actual committed-frame state rather than the in-memory unsynced counter. A redundant fsync here (frames already durable) is cheap and safe; skipping a needed one is not. Full mode syncs every commit. *) let needs_final_sync = st.sync_mode <> `Full && match st.wal with | Some w -> Granary_storage.Wal.committed_frames w > 0 | None -> false in (* #298/#2: a failed final fsync still releases the fds (wal_close/close_fn) but THEN raises — close is a durability anchor, so silently reporting success on EIO/ENOSPC is wrong (matches the commit/checkpoint convention of surfacing sync errors). *) let* sync_err = if needs_final_sync then let* r = Pager.wal_sync st.pager in match r with | Ok () -> st.unsynced_commits <- 0; Lwt.return_none | Error e -> Lwt.return_some e else Lwt.return_none in let* () = match st.wal_close with | None -> Lwt.return_unit | Some f -> f () in let* () = st.close_fn () in (match sync_err with | None -> Lwt.return_unit | Some e -> Lwt.fail_with (Format.asprintf "Store.close: final wal_sync: %a" Pager.pp_error e)) ;; (* #95: discover the file's geometry by reading page 0's leading bytes through the raw block callback (page 0 is always at offset 0, so this works whatever the backend's addressing page size, and it bypasses the pager cache). Falls back to [fallback] for a fresh/empty/zeroed device, which a subsequent [Header.init] then stamps. *) let peek_geometry ~read_page ~fallback = let buf = Cstruct.create Geometry.default.page_size in let%lwt r = read_page ~page_id:0L buf in match r with | Ok () -> Lwt.return (Option.value (Header.peek_geometry buf) ~default:fallback) | Error _ -> Lwt.return fallback ;; (* ------------------------------------------------------------------ *) (* Opt-in page encryption (#84). *) (* *) (* The pager and B+-tree only ever see PLAINTEXT. A supplied key *) (* builds a cipher; we then (a) force the fresh-creation geometry to *) (* carve [Crypto.overhead] reserved bytes off each page's tail, (b) *) (* wrap the raw read/write callbacks so pages >= 2 are *) (* decrypted/encrypted (pages 0,1 are the headers and pass through *) (* plaintext), and (c) stamp / verify a key-check canary in the header. *) (* ------------------------------------------------------------------ *) let build_cipher = function | None -> Ok None | Some k -> (match Crypto.create ~key:k with | Ok c -> Ok (Some c) | Error `Bad_key_length -> Error (Block_error "encryption key must be 32 bytes")) ;; (* When a key is in play we draw a fresh nonce on every encrypted write (and one for the header canary at creation). [Mirage_crypto_rng.generate] raises if the application never seeded the RNG ([lib/] is Mirage-clean and never seeds): [No_default_generator] when no generator was installed at all (the common forgot-to-seed case) and [Unseeded_generator] when one was installed but not seeded. Either would otherwise surface as a raw exception on the first write rather than a [Store.error]. Probe once at open time so the foot-gun is caught at the entry point the caller controls; the RNG is process-global, so a seed present here is present for later writes. *) let ensure_rng_seeded = function | None -> Ok () | Some _ -> (try ignore (Mirage_crypto_rng.generate 1 : string); Ok () with | Mirage_crypto_rng.Unseeded_generator | Mirage_crypto_rng.No_default_generator -> Error Encryption_rng_unseeded) ;; (* Force a fresh-creation geometry to carry the crypto overhead in its reserved tail. If bumping [reserved] to [Crypto.overhead] is rejected we surface a clean error rather than silently proceeding with a geometry whose reserved tail is too small — encryption would then write nonce+tag into bytes the B+-tree believes are usable, corrupting the page. (Unreachable with the 4096-multiple page sizes [Geometry.create] permits, since they always leave >= 480 payload after reserving 32 bytes; kept as defense-in-depth.) *) let geom_for_cipher cipher (g : Geometry.t) = match cipher with | None -> Ok g | Some _ -> if g.reserved_bytes_per_page >= Crypto.overhead then Ok g else ( match Geometry.create ~page_size:g.page_size ~reserved_bytes_per_page:(max g.reserved_bytes_per_page Crypto.overhead) with | Ok g' -> Ok g' | Error e -> Error (Block_error (Format.asprintf "encryption needs %d reserved bytes/page, but the geometry rejects it: %a" Crypto.overhead Geometry.pp_error e))) ;; let wrap_callbacks cipher ~read_page ~write_page = match cipher with | None -> read_page, write_page | Some c -> let rd ~page_id buf = let* r = read_page ~page_id buf in match r with | Error _ as e -> Lwt.return e | Ok () -> if Int64.compare page_id 2L < 0 then Lwt.return_ok () else ( match Crypto.decrypt_page c ~page_id buf with | Ok () -> Lwt.return_ok () | Error `Tag_mismatch -> Lwt.return_error "decrypt: tag mismatch") in let wr ~page_id buf = if Int64.compare page_id 2L < 0 then write_page ~page_id buf else ( let tmp = Cstruct.create (Cstruct.length buf) in Cstruct.blit buf 0 tmp 0 (Cstruct.length buf); Crypto.encrypt_page c ~page_id tmp; write_page ~page_id tmp) in rd, wr ;; let make_enc_info = function | None -> None | Some c -> let nonce = Mirage_crypto_rng.generate Crypto.nonce_len in let tag = Crypto.make_canary c ~nonce in Some { Header.canary_nonce = nonce; canary_tag = tag } ;; let check_key (h : Header.t) cipher = match h.Header.enc, cipher with | None, None -> Ok () | Some _, None -> Error Encryption_key_required | None, Some _ -> Error Not_encrypted | Some e, Some c -> if Crypto.check_canary c ~nonce:e.Header.canary_nonce ~tag:e.Header.canary_tag then Ok () else Error Encryption_key_mismatch ;; let open_block ?(as_of_history = false) ?(history : History.sink option) ?(now : (unit -> int64) option) ?(key : string option) ?(geom = Geometry.default) ~(init_if_corrupt : bool) ~(read_page : page_id:int64 -> Cstruct.t -> (unit, string) result Lwt.t) ~(write_page : page_id:int64 -> Cstruct.t -> (unit, string) result Lwt.t) ~(sync : unit -> (unit, string) result Lwt.t) ~(resize : n_pages:int64 -> (unit, string) result Lwt.t) ~(n_pages : int64) ~(close : unit -> unit Lwt.t) () : (t, error) result Lwt.t = (* #266: guard the misconfig FIRST, before opening any device/fds, so a bad request can never leak resources. *) if as_of_history && Option.is_none history then Lwt.return_error History_misconfigured else ( let history = if as_of_history then history else None in let history_now = match now with | Some f -> f | None -> fun () -> 0L in match let ( let* ) = Result.bind in let* cipher = build_cipher key in let* () = ensure_rng_seeded cipher in let* geom = geom_for_cipher cipher geom in Ok (cipher, geom) with | Error e -> Lwt.return_error e | Ok (cipher, geom) -> let read_page, write_page = wrap_callbacks cipher ~read_page ~write_page in let pager = Pager.create ~read_page ~write_page ~sync ~resize ~n_pages ~freelist:Freelist.empty in (* Adopt the file's real geometry (peeked for an existing file, [geom] for a fresh one) before any header read so buffers are sized correctly (#95). *) let%lwt eff_geom = peek_geometry ~read_page ~fallback:geom in Pager.set_geom pager eff_geom; let%lwt hr = Header.read_live pager in (match hr with | Error Header.Both_headers_corrupt when init_if_corrupt -> (* Fresh device — initialise headers. Disabled via [~init_if_corrupt:false] so an existing-but-corrupt device surfaces [Header_error] instead of being silently re-initialised (a Unix-file open must not clobber). *) let%lwt ir = Header.init ~enc:(make_enc_info cipher) pager in (match ir with | Error e -> Lwt.return_error (map_header_err e) | Ok () -> Pager.set_n_pages pager 2L; let%lwt hr2 = Header.read_live pager in (match hr2 with | Error e -> Lwt.return_error (map_header_err e) | Ok h -> let meta = Btree.create pager ~root_page:0L in Lwt.return_ok (make_btree_store ~cipher ~history ~history_now ~close_fn:close ~pager ~meta ~h ()))) | Error e -> Lwt.return_error (map_header_err e) | Ok h -> (match check_key h cipher with | Error e -> Lwt.return_error e | Ok () -> Pager.set_n_pages pager h.n_pages_total; let%lwt fl = read_freelist_pages pager ~first_page:h.freelist_page in Pager.set_freelist pager fl; let meta = Btree.create pager ~root_page:h.root_page in Lwt.return_ok (make_btree_store ~cipher ~history ~history_now ~close_fn:close ~pager ~meta ~h ())))) ;; (* ------------------------------------------------------------------ *) (* WAL-mode opens *) (* ------------------------------------------------------------------ *) module Wal = Granary_storage.Wal let install_wal_hook (pager : Pager.t) (wal : Wal.t) = let cb : Pager.wal_callbacks = { wal_find_page = (fun pid -> Wal.find_page wal pid) ; wal_find_page_at = (fun pid ~max_frame -> Wal.find_page_at wal pid ~max_frame) ; wal_read_frame = (fun idx -> let* r = Wal.read_frame wal idx in match r with | Ok page -> Lwt.return_ok page | Error e -> Lwt.return_error (Format.asprintf "%a" Wal.pp_error e)) ; wal_append_commit = (fun pages -> let* r = Wal.append_commit wal pages in match r with | Ok () -> Lwt.return_ok () | Error e -> Lwt.return_error (Format.asprintf "%a" Wal.pp_error e)) ; wal_append_commit_no_sync = (fun pages -> let* r = Wal.append_commit_no_sync wal pages in match r with | Ok () -> Lwt.return_ok () | Error e -> Lwt.return_error (Format.asprintf "%a" Wal.pp_error e)) ; wal_sync = (fun () -> let* r = Wal.flush_sync wal in match r with | Ok () -> Lwt.return_ok () | Error e -> Lwt.return_error (Format.asprintf "%a" Wal.pp_error e)) } in Pager.set_wal pager (Some cb) ;; (* After the WAL hook is installed, re-read the (now WAL-aware) header, reconcile [n_pages] for a freshly-initialised DB, load the freelist, and build the WAL-backed store. *) let finish_wal_open ~cipher ~history ~history_now ~close ~wal_close ~pager ~wal ~was_fresh = let%lwt hr2 = Header.read_live pager in match hr2 with | Error e -> Lwt.return_error (map_header_err e) | Ok h -> (match check_key h cipher with | Error e -> Lwt.return_error e | Ok () -> (* If the header n_pages_total is below the pager's current allocation, prefer the pager's value (freshly-init'd headers carry n_pages_total = 0). *) let chosen_n_pages = if was_fresh then Int64.max h.n_pages_total (Pager.n_pages pager) else h.n_pages_total in Pager.set_n_pages pager chosen_n_pages; let%lwt fl = read_freelist_pages pager ~first_page:h.freelist_page in Pager.set_freelist pager fl; let meta = Btree.create pager ~root_page:h.root_page in Lwt.return_ok (make_btree_store ~cipher ~history ~history_now ~wal:(Some wal) ~wal_close:(Some wal_close) ~close_fn:close ~pager ~meta ~h ())) ;; let open_block_wal ?(as_of_history = false) ?(history : History.sink option) ?(now : (unit -> int64) option) ?(key : string option) ?(geom = Geometry.default) ~(read_page : page_id:int64 -> Cstruct.t -> (unit, string) result Lwt.t) ~(write_page : page_id:int64 -> Cstruct.t -> (unit, string) result Lwt.t) ~(sync : unit -> (unit, string) result Lwt.t) ~(resize : n_pages:int64 -> (unit, string) result Lwt.t) ~(n_pages : int64) ~(wal_read_at : offset:int64 -> Cstruct.t -> (unit, string) result Lwt.t) ~(wal_write_at : offset:int64 -> Cstruct.t -> (unit, string) result Lwt.t) ~(wal_sync : unit -> (unit, string) result Lwt.t) ~(wal_size_bytes : int64) ~(close : unit -> unit Lwt.t) ~(wal_close : unit -> unit Lwt.t) () : (t, error) result Lwt.t = (* #266: guard the misconfig FIRST, before opening any device/fds, so a bad request can never leak resources. *) if as_of_history && Option.is_none history then Lwt.return_error History_misconfigured else ( let history = if as_of_history then history else None in let history_now = match now with | Some f -> f | None -> fun () -> 0L in match let ( let* ) = Result.bind in let* cipher = build_cipher key in let* () = ensure_rng_seeded cipher in let* geom = geom_for_cipher cipher geom in Ok (cipher, geom) with | Error e -> Lwt.return_error e | Ok (cipher, geom) -> let read_page, write_page = wrap_callbacks cipher ~read_page ~write_page in let pager = Pager.create ~read_page ~write_page ~sync ~resize ~n_pages ~freelist:Freelist.empty in (* Adopt the file's real geometry before any header read or WAL open so the main-DB buffers and the WAL frame size both match it (#95). *) let%lwt eff_geom = peek_geometry ~read_page ~fallback:geom in Pager.set_geom pager eff_geom; (* Step 1: read the main-DB header (or initialise if fresh). The WAL hook is NOT installed yet, so writes go directly to the main DB. [was_fresh] flag preserves the post-init n_pages override below. *) let%lwt hr = Header.read_live pager in let%lwt init_result = match hr with | Error Header.Both_headers_corrupt -> let%lwt ir = Header.init ~enc:(make_enc_info cipher) pager in (match ir with | Error e -> Lwt.return_error (map_header_err e) | Ok () -> Pager.set_n_pages pager 2L; Lwt.return_ok true) | Error e -> Lwt.return_error (map_header_err e) | Ok _ -> Lwt.return_ok false in (match init_result with | Error e -> Lwt.return_error e | Ok was_fresh -> (* Step 2: open the WAL and recover its index. *) let%lwt wr = Wal.open_ ~cipher ~page_size:(Pager.page_size pager) ~read_at:wal_read_at ~write_at:wal_write_at ~sync:wal_sync ~size_bytes:wal_size_bytes () in (match wr with | Error e -> Lwt.return_error (Block_error (Format.asprintf "wal open: %a" Wal.pp_error e)) | Ok wal -> (* Step 3: install the hook so subsequent reads consult the WAL. *) install_wal_hook pager wal; (* Step 4: re-read the header (now WAL-aware) and build the store. *) finish_wal_open ~cipher ~history ~history_now ~close ~wal_close ~pager ~wal ~was_fresh))) ;; (* ------------------------------------------------------------------ *) (* Transactions *) (* ------------------------------------------------------------------ *) (* Build an RO snapshot against an explicit (txn_id, meta_root). [ro_begin] passes the live header; [ro_begin_as_of] passes a retained historical root. Registers the snapshot in [active_readers]/[active_reader_frames] so reclamation respects it, exactly as the live path does. Uses the CURRENT committed-frames horizon: CoW never rewrites a retained page-id, so each retained page has exactly one WAL frame and "latest up to head" == the historical content (the floor/reader pin prevents reuse). *) let ro_begin_at t st ~snap_txn_id ~snap_meta_root = let committed_frames = match st.wal with | None -> 0 | Some w -> Wal.committed_frames w in let snap_frames = if st.follower then ( match st.follower_ack_position with | Some n -> min committed_frames n | None -> committed_frames) else committed_frames in let count = Option.value ~default:0 (Hashtbl.find_opt st.active_readers snap_txn_id) in Hashtbl.replace st.active_readers snap_txn_id (count + 1); let frame_count = Option.value ~default:0 (Hashtbl.find_opt st.active_reader_frames snap_frames) in Hashtbl.replace st.active_reader_frames snap_frames (frame_count + 1); Ro { rs_store = t ; rs_snap_txn_id = snap_txn_id ; rs_snap_meta_root = snap_meta_root ; rs_snap_trees = Hashtbl.create 4 ; rs_snap_frames = snap_frames ; rs_pinned = Hashtbl.create 64 ; rs_mem_snap = None } ;; let ro_begin t = (* [Rwlock.acquire_read] is a counter bump, not an exclusion: under snapshot isolation readers and writers don't conflict, so the call never blocks regardless of writer state. It only matters for the checkpoint coordinator that wants to know "are any RO snapshots still in flight?" *) let* () = Rwlock.acquire_read t.lock in let is_closing = match t.backend with | Btree st -> st.closing | Mem _ -> false in if is_closing then ( (* #338 (review r3): fail fast on a snapshot begun after [close] signalled teardown — matches [rw_begin], avoiding an obscure pager EBADF later. *) Rwlock.release_read t.lock; Lwt.fail_with "Store.ro_begin: store is closing — read transactions are rejected") else ( match t.backend with | Mem trees -> (* #178: snapshot every tree so RO reads never observe uncommitted writes from a concurrent writer that later rolls back. The Btree backend gets snapshot isolation from the pager/WAL layer; the mem backend must provide it here. *) let snap = Hashtbl.fold (fun tid r acc -> (tid, !r) :: acc) trees [] in Lwt.return (Ro { rs_store = t ; rs_snap_txn_id = 0L ; rs_snap_meta_root = 0L ; rs_snap_trees = Hashtbl.create 1 ; rs_snap_frames = 0 ; rs_pinned = Hashtbl.create 1 ; rs_mem_snap = Some snap }) | Btree st -> Lwt.return (ro_begin_at t st ~snap_txn_id:st.current_header.txn_id ~snap_meta_root:st.current_header.root_page)) ;; (* #266: as-of retention API + time-travel read path. [History_error] carries an {!error} out to the caller (the SQL layer maps it to a friendly message). *) exception History_error of error let bt_of t = match t.backend with | Btree s -> Some s | Mem _ -> None ;; let history_pin t ~txn_id = match bt_of t with | Some st -> st.history_floor <- Some txn_id | None -> () ;; let history_floor t = match bt_of t with | Some st -> st.history_floor | None -> None ;; let history_release t = match bt_of t with | Some st -> st.history_floor <- None | None -> () ;; let history_log t = match bt_of t with | Some { history = Some sink; _ } -> sink.History.load () | _ -> Lwt.return [] ;; let history_enabled t = match bt_of t with | Some { history = Some _; _ } -> true | _ -> false ;; let ro_begin_as_of t (target : History.target) = (* #266 (review): resolve the historical target — which requires loading the history log from the sink (real I/O for the Unix file sink: openfile/fstat/ read, any of which may reject with EIO/EMFILE/…) — BEFORE acquiring the read lock. Holding the read lock across a rejecting [load] would leak it (the coordinator would then never see the reader drain, stalling checkpoint and [close]). Only the snapshot registration in [ro_begin_at] and the [closing] recheck need the lock, exactly as [ro_begin] holds it during registration. *) match bt_of t with | None -> Lwt.fail (History_error History_unavailable) | Some { history = None; _ } -> Lwt.fail (History_error History_unavailable) | Some ({ history = Some sink; _ } as st) -> let* records = sink.History.load () in (match History.resolve records target with | None -> Lwt.fail (History_error History_pruned) | Some r -> let pruned = match st.history_floor with | Some f -> Int64.compare r.History.txn_id f < 0 | None -> (* #266 (review): no floor ⇒ nothing is retained; refuse rather than serve recycled pages. Without a pin, [rw_begin] leaves [min_safe] uncapped, so the freelist recycles the resolved root's pages and the snapshot would read garbage. *) true in if pruned then Lwt.fail (History_error History_pruned) else let* () = Rwlock.acquire_read t.lock in if st.closing then ( Rwlock.release_read t.lock; Lwt.fail_with "Store.ro_begin_as_of: store is closing") else Lwt.return (ro_begin_at t st ~snap_txn_id:r.History.txn_id ~snap_meta_root:r.History.root_page)) ;; let emit_event (st : bt_state) (ev : Store_event.t) = match st.on_event with | None -> () | Some f -> (try f ev with | _ -> ()) ;; (* The id the currently-active rw txn will commit as. The header is not bumped until commit, so every event of one txn shares this id (one writer at a time under the write lock). *) let active_txn_id (st : bt_state) = Int64.add st.current_header.txn_id 1L let rw_begin t = let* () = Rwlock.acquire_write t.lock in let is_follower = match t.backend with | Btree st -> st.follower | Mem _ -> false in let is_closing = match t.backend with | Btree st -> st.closing | Mem _ -> false in if is_closing then ( (* #338 (review r2 #4): fail fast on a write begun after [close] signalled teardown, rather than letting the commit surface an obscure EBADF from a torn-down fd. [close] does not take [t.lock], so a write can still race in here; this is best-effort, paired with the quiesce-before-close contract documented on [close]. *) Rwlock.release_write t.lock; Lwt.fail_with "Store.rw_begin: store is closing — write transactions are rejected") else if is_follower then ( Rwlock.release_write t.lock; Lwt.fail_with "Store.rw_begin: store is in follower mode — write transactions are rejected while \ following") else ( (match t.backend with | Mem trees -> let snap = Hashtbl.fold (fun tid r acc -> (tid, !r) :: acc) trees [] in t.mem_rw_shadow <- Some snap; t.mem_savepoints <- [] | Btree st -> let current_rw_txn_id = Int64.add st.current_header.txn_id 1L in emit_event st (Store_event.Txn_begin { txn_id = current_rw_txn_id }); Pager.set_txn_id st.pager current_rw_txn_id; let min_safe = match min_active_reader_txn st with | None -> current_rw_txn_id | Some m -> Int64.min current_rw_txn_id m in (* #266: cap [min_safe] at the retention floor so pages reachable from roots >= the floor are never reused by the allocator. *) let min_safe = match st.history_floor with | None -> min_safe | Some f -> Int64.min min_safe (Int64.add f 1L) in Pager.set_alloc_min_safe st.pager min_safe; (* #297: same-txn page reuse happens via the txn_owned_pool (pages allocated above n_pages_at_rw_begin), NOT the main freelist, so alloc_min_safe is unchanged from the pre-#297 baseline. The None branch (no readers) and Some m branch (reader exists) both keep the original guard — committed-tree pages freed at current_rw_txn_id are never eligible for same-txn reuse via the main freelist regardless of reader state. The txn_owned_pool, checked before the main freelist by Pager.alloc, provides same-txn reuse independently of the freelist guard. *) Pager.set_n_pages_at_rw_begin st.pager (Pager.n_pages st.pager); (* #297: defensive reset — any leftover from the previous txn is stale. *) Pager.txn_owned_pool_set st.pager []; st.txn_freelist_snapshot <- Some (Pager.freelist st.pager)); Lwt.return (Rw t)) ;; let ro_end (Ro snap : ro txn) = (match snap.rs_store.backend with | Mem _ -> () | Btree st -> let tid = snap.rs_snap_txn_id in (match Hashtbl.find_opt st.active_readers tid with | None | Some 1 -> Hashtbl.remove st.active_readers tid | Some n -> Hashtbl.replace st.active_readers tid (n - 1)); (match Hashtbl.find_opt st.active_reader_frames snap.rs_snap_frames with | None | Some 1 -> Hashtbl.remove st.active_reader_frames snap.rs_snap_frames | Some n -> Hashtbl.replace st.active_reader_frames snap.rs_snap_frames (n - 1)); (* Release the pages this snapshot pinned (#159) so they become evictable again. *) Pager.unpin_all st.pager snap.rs_pinned; Lwt_condition.broadcast st.reader_done_cond ()); Rwlock.release_read snap.rs_store.lock; Lwt.return_unit ;; let with_ro t f = let* tx = ro_begin t in Lwt.finalize (fun () -> f tx) (fun () -> ro_end tx) ;; (* Free the previous freelist page chain back into the pager's in-memory freelist (stamped with the current txn_id). *) let free_old_freelist_pages pager ~first_page = let rec loop pid = if Int64.equal pid 0L then Lwt.return_unit else let* r = Pager.read pager pid in let next_pid = match r with | Error _ -> 0L | Ok buf -> let c = Page.read_common buf in Int64.logand 0xFFFFFFFFL (Int64.of_int32 c.Page.right_page) in (* Note: if read fails mid-chain, remaining pages beyond this point are orphaned (leaked). This is acceptable only because a corrupt freelist page implies a deeper storage invariant violation. *) Pager.free pager ~page_id:pid ~freed_at_txn_id:(Pager.get_txn_id pager); loop next_pid in loop first_page ;; (* Serialize the current pager freelist to a new page chain. Returns the first page id (0L if the freelist is empty). *) (* Build and write a single freelist page holding [chunk] (possibly empty), chaining to [next]. *) let write_one_freelist_page pager ~pid ~next ~chunk = let buf = Cstruct.create (Pager.page_size pager) in Cstruct.memset buf 0; Page.write_common buf { Page.kind = Page.Freelist ; flags = 0 ; n_keys = List.length chunk ; right_page = Int64.to_int32 next ; crc32 = 0l }; List.iteri (fun j (page_id, freed_at_txn_id) -> Page.freelist_set_entry buf ~index:j ~page_id ~freed_at_txn_id) chunk; Pager.write pager pid buf ;; let write_freelist_pages pager : int64 Lwt.t = let entries_before = Freelist.to_list (Pager.freelist pager) in let n_entries = List.length entries_before in let max_per = Pager.max_freelist_entries_per_page pager in let n_fl_pages = (n_entries + max_per - 1) / max_per in if n_fl_pages = 0 then Lwt.return 0L else (* Allocate all needed pages *) let* page_ids = Lwt_list.map_s (fun () -> let* r = Pager.alloc pager in match r with | Ok pid -> Lwt.return pid | Error e -> Lwt.fail_with (Format.asprintf "write_freelist_pages: %a" Pager.pp_error e)) (List.init n_fl_pages (fun _ -> ())) in (* Get FINAL freelist state after allocations *) let final_entries = Freelist.to_list (Pager.freelist pager) in (* Split into chunks of max_per *) let rec chunkify = function | [] -> [] | lst -> let chunk = List.filteri (fun i _ -> i < max_per) lst in let rest = List.filteri (fun i _ -> i >= max_per) lst in chunk :: chunkify rest in let chunks = chunkify final_entries in let n_chunks = List.length chunks in let pid_arr = Array.of_list page_ids in let next_of i = if i + 1 < Array.length pid_arr then pid_arr.(i + 1) else 0L in (* Write each chunk to a freelist page *) List.iteri (fun i chunk -> write_one_freelist_page pager ~pid:pid_arr.(i) ~next:(next_of i) ~chunk) chunks; (* Any extra allocated pages (n_fl_pages > n_chunks) get empty freelist pages *) for i = n_chunks to n_fl_pages - 1 do write_one_freelist_page pager ~pid:pid_arr.(i) ~next:(next_of i) ~chunk:[] done; Lwt.return pid_arr.(0) ;; (* Block until it is safe to recycle WAL frames below [target]. Used by [checkpoint_unlocked] before [Wal.reset] truncates the index — otherwise an in-flight reader's [find_page_at] would resolve to a recycled frame index after the next writer's append. Two distinct gates, with different urgency (#207): - RO snapshots ([ro_readers_below]): a local reader still needs frames below [target]. Recycling past it corrupts its snapshot, so this gate is honored UNCONDITIONALLY — we wait on the broadcast, which a local reader always eventually fires via [ro_end]. - Replication floor ([replication_floor_below]): a standby's acked position, plumbed in by the app. A dead or slow standby must not wedge the master's WAL forever, so when this is the SOLE remaining blocker we honor a bounded-yield budget [max_floor_yields] and then proceed anyway (the standby falls outside the live window and must re-base — #208). [max_floor_yields = max_int] means unbounded: we wait on the broadcast ([update_replication_position] fires it when the floor advances), exactly as before this knob existed — no busy-poll. A finite budget polls via [Lwt.pause] (the project's [wait_for] idiom) because a dead standby produces no broadcast to wake on. No [~mutex] is passed to [Lwt_condition.wait]: under cooperative Lwt the gate check + wait register atomically (no yield between them), so the standard POSIX condvar mutex pairing isn't needed. Would need revisiting under a preemptive or effect-based multicore runtime. *) (** Body of [checkpoint] without mutex management. Caller MUST already hold [t.lock] (e.g. during [commit]). Defined here so [commit] can invoke it via [maybe_autocheckpoint] below. *) let rec wait_for_readers_past (st : bt_state) ~target ~replication_max_yields ~backup_max_yields = if st.closing then (* #338: close is tearing down — stop gating so a parked checkpoint unwinds; [checkpoint_unlocked] then aborts before any fd I/O. *) Lwt.return_unit else if ro_readers_below st ~target then (* A local reader blocks: wait unconditionally on the broadcast. *) let* () = Lwt_condition.wait st.reader_done_cond in wait_for_readers_past st ~target ~replication_max_yields ~backup_max_yields else if replication_floor_below st ~target && replication_max_yields > 0 then (* Replication floor is behind and budget remains. Guard with > 0 so an exhausted budget falls through to the backup floor check below (review #2); the <= 0 sub-branch is therefore never entered. *) if replication_max_yields = max_int then (* Unbounded: efficient event-driven wait, no busy-poll. *) let* () = Lwt_condition.wait st.reader_done_cond in wait_for_readers_past st ~target ~replication_max_yields ~backup_max_yields else let* () = Lwt.pause () in wait_for_readers_past st ~target ~replication_max_yields:(replication_max_yields - 1) ~backup_max_yields else if backup_floor_below st ~target then if backup_max_yields = max_int then let* () = Lwt_condition.wait st.reader_done_cond in wait_for_readers_past st ~target ~replication_max_yields ~backup_max_yields else if backup_max_yields <= 0 then Lwt.return_unit else let* () = Lwt.pause () in wait_for_readers_past st ~target ~replication_max_yields ~backup_max_yields:(backup_max_yields - 1) else Lwt.return_unit ;; let checkpoint_unlocked (st : bt_state) (wal : Wal.t) : unit Lwt.t = let target = Wal.committed_frames wal in (* #382: [Checkpoint_begin] is a best-effort signal — if the checkpoint aborts early (store closing, or an I/O error before [Wal.reset]), no matching [Checkpoint_end] is emitted. Monitor consumers must tolerate an unbalanced begin. *) emit_event st (Store_event.Checkpoint_begin { target_frames = target }); let* () = wait_for_readers_past st ~target ~replication_max_yields:st.replication_gate_max_yields ~backup_max_yields:st.backup_gate_max_yields in if st.closing then (* #338: [close] signalled teardown while we were gated — abort before any pager/WAL fd I/O. [close] fsyncs the WAL itself; the un-migrated frames replay on next open. No data loss. *) Lwt.return_unit else ( (* #338 (review r2): past the gate and about to touch fds — register as in-flight so [close] drains us before teardown (covers BOTH the auto path and the manual [checkpoint] path, which share this function). A checkpoint still parked above on [acquire_write]/the gate is NOT yet counted, so it cannot wedge close. *) st.ckpt_io_in_flight <- st.ckpt_io_in_flight + 1; Lwt.finalize (fun () -> let pairs = ref [] in Wal.iter_index wal (fun pid idx -> pairs := (pid, idx) :: !pairs); (* #382: count the pages actually migrated to the main file so the [Checkpoint_end] event reports the real work done. *) let migrated = ref 0 in let rec write_each = function | [] -> Lwt.return_unit | (pid, idx) :: rest -> let* r = Wal.read_frame wal idx in (match r with | Error e -> Lwt.fail_with (Format.asprintf "checkpoint read: %a" Wal.pp_error e) | Ok page -> let* wr = Pager.flush_one_to_main st.pager ~page_id:pid ~buf:page in (match wr with | Error e -> Lwt.fail_with (Format.asprintf "checkpoint write: %a" Pager.pp_error e) | Ok () -> incr migrated; write_each rest)) in let* () = write_each !pairs in let* sr = Pager.flush_sync_main st.pager in match sr with | Error e -> Lwt.fail_with (Format.asprintf "checkpoint sync: %a" Pager.pp_error e) | Ok () -> (* #337: an async sink ship dispatched from [commit_wal] reads its frame payloads LAZILY. [Wal.reset] below recycles/zeroes those frames and bumps the epoch, so wait for any in-flight ship to finish reading first. The ship runs without [t.lock] (it only reads frames), so it makes progress while this fiber holds the lock and parks here. The check-then-reset is yield-free, so no ship dispatched after the count reaches 0 can slip in before reset. *) let* () = wait_until st (fun () -> st.sink_ships_in_flight = 0) in Wal.reset wal; (* #382: WAL is reset to a fresh epoch and the migration is done. Read [Wal.epoch] AFTER reset for the new epoch. *) emit_event st (Store_event.Wal_reset { epoch = Wal.epoch wal }); emit_event st (Store_event.Checkpoint_end { pages_migrated = !migrated }); (* #298/#1: checkpoint is a full-sync durability anchor — everything is now durable and the WAL starts a fresh epoch at frame 0. Reset the sink ship counter (new epoch) and the batched durability counters so a long unsynced window doesn't carry stale state across the anchor. *) st.sink_shipped_frames <- 0; st.unsynced_commits <- 0; st.last_sync_time <- st.clock (); (* Re-pin the replication floor for the new epoch. [Wal.reset] zeroes committed_frames, but [replication_shipped_frames] still refers to the old epoch's absolute count. Without re-pinning, the next checkpoint would see a stale floor that appears to be past the new target, silently allowing frame recycling before the sink ships them. *) if st.on_committed_frames <> None then st.replication_shipped_frames <- Wal.committed_frames wal; (* Re-pin the backup floor for the new epoch (#265). Same reasoning: without re-pinning, the next checkpoint would see a stale backup floor from the old epoch and recycle frames before the backup consumer has captured them. *) if st.backup_shipped_frames <> max_int then st.backup_shipped_frames <- Wal.committed_frames wal; Lwt.return_unit) (fun () -> st.ckpt_io_in_flight <- st.ckpt_io_in_flight - 1; Lwt_condition.broadcast st.reader_done_cond (); Lwt.return_unit)) ;; (** Called from [commit] while [lock] is still held (exclusive). If the WAL has grown past the per-connection threshold, migrate it inline so subsequent commits start fresh. Best-effort: a checkpoint failure is swallowed (the commit itself already succeeded). *) let maybe_autocheckpoint (st : bt_state) : unit Lwt.t = match st.wal with | None -> Lwt.return_unit | Some wal -> let thr = st.wal_autocheckpoint_threshold in if thr <= 0 then Lwt.return_unit else if Wal.committed_frames wal < thr then Lwt.return_unit else Lwt.catch (fun () -> checkpoint_unlocked st wal) (fun _ -> Lwt.return_unit) ;; (* Group-commit coordinator (#77, #151). One fiber per [commit_queue] runs the actual fsync via [sync_fn]; concurrent writers register a per-batch resolver and block until the drainer wakes them with the sync result. Returns the role this fiber played so the caller can attach drainer-only side work (e.g. autocheckpoint). Each joiner pushes a [(unit, exn) result Lwt.u] resolver onto [waiters] and increments [pending] so the drainer can detect concurrent arrivals. The drainer yields via [Lwt.pause] once to let any ready-to-write fibers reach the queue, then loops pausing while [pending] keeps growing. This widens the batch from "2 commits per fsync" (one Lwt.pause yields one continuation) to "N concurrent writers per fsync" while adding only one tick of latency to a lone writer. Failure semantics (#151): if [sync_fn] raises, the drainer wakes every joiner's resolver with [Error exn] (so each joiner re-raises the same exception via [Lwt.fail]) and then re-raises to its own caller. All N writers in the current batch observe the failure; none see a spurious [Ok]. Late joiners that arrive while [sync_fn] is in flight register on the same [waiters] list (since [q.drainer] is still [true]) and so ride along with the current sync's result — matching the pre-#151 broadcast behaviour. Whether those late frames are physically flushed by the in-flight fsync is timing-dependent at the kernel level (POSIX only guarantees flushing of writes queued before the fsync syscall); this is a pre-existing concern, not introduced by the error-channel rework. *) let group_commit_sync (q : commit_queue) (sync_fn : unit -> unit Lwt.t) : [ `Drainer | `Joiner ] Lwt.t = if q.drainer then ( let p, u = Lwt.wait () in q.waiters <- u :: q.waiters; q.pending <- q.pending + 1; let* r = p in match r with | Ok () -> Lwt.return `Joiner | Error exn -> Lwt.fail exn) else ( q.drainer <- true; (* Gather: one initial pause to let the next-in-line writer reach the queue; then keep pausing while [pending] keeps growing. Stops as soon as a pause completes without seeing any new arrival — keeping per-commit overhead bounded for solo writers. *) let* () = Lwt.pause () in let rec gather last_seen = let now_seen = q.pending in if now_seen > last_seen then let* () = Lwt.pause () in gather now_seen else Lwt.return_unit in let* () = gather 0 in (* Run sync first, capturing success or failure; then atomically snapshot the (possibly grown) waiter list, clear queue state for the next batch, and wake each joiner with the same result. Cooperative scheduling guarantees no yield between try_bind's handler and the iter, so no joiner can register after the snapshot. *) Lwt.try_bind sync_fn (fun () -> let waiters = q.waiters in q.waiters <- []; q.pending <- 0; q.drainer <- false; List.iter (fun u -> Lwt.wakeup_later u (Ok ())) waiters; Lwt.return `Drainer) (fun exn -> let waiters = q.waiters in q.waiters <- []; q.pending <- 0; q.drainer <- false; List.iter (fun u -> Lwt.wakeup_later u (Error exn)) waiters; Lwt.fail exn)) ;; (* Prepare phase of [commit] for the Btree backend. Pushes every tree's latest root_page through the meta-tree, writes the freelist pages, and invokes [~header_commit] (either {!Header.commit} for the inline- sync path or {!Header.commit_no_sync} for group commit). On success advances [st.current_header] and resets per-txn state. On failure raises via [Lwt.fail_with] without touching the mutex. *) let commit_prepare_btree ~(header_commit : Pager.t -> prev_header:Header.t -> new_state:Header.t -> (unit, Header.error) result Lwt.t) (st : bt_state) : unit Lwt.t = let* () = free_old_freelist_pages st.pager ~first_page:st.current_header.freelist_page in let bindings = Hashtbl.fold (fun tid bt acc -> (tid, bt) :: acc) st.trees [] in (* #174: meta-tree pages are system pages — never stamped with a tree tag. *) Pager.set_write_tag st.pager 0l; let* () = Lwt_list.iter_s (fun (tid, bt) -> let key = encode_tree_id tid in let v = encode_root_page (Btree.root_page bt) in let* r = Btree.put st.meta key v in match r with | Ok meta' -> st.meta <- meta'; Lwt.return_unit | Error e -> Lwt.fail_with (Format.asprintf "Store.commit: %a" pp_error (map_btree_err e))) bindings in let* freelist_first_page = write_freelist_pages st.pager in let new_state : Header.t = { txn_id = 0L ; (* overwritten by header_commit *) root_page = Btree.root_page st.meta ; freelist_page = freelist_first_page ; n_pages_total = Pager.n_pages st.pager ; schema_version = st.schema_version ; (* Preserve the on-disk format version this db was opened with (#174); never silently upgrade or downgrade it here. *) format_version = st.current_header.format_version ; (* Preserve the file's page geometry (#95); fixed at creation. *) geom = st.current_header.geom ; (* Preserve the encryption marker/canary across commits (#84). *) enc = st.current_header.enc } in let* r = header_commit st.pager ~prev_header:st.current_header ~new_state in match r with | Error e -> Lwt.fail_with (Format.asprintf "Store.commit: %a" pp_error (map_header_err e)) | Ok () -> st.current_header <- { new_state with txn_id = Int64.add st.current_header.txn_id 1L }; st.txn_freelist_snapshot <- None; st.bt_savepoints <- []; (* #297: discard the txn-owned pool — these pages are now part of the committed tree (freed file-extension pages reuse within the txn; any not reused by commit are orphans). *) Pager.txn_owned_pool_set st.pager []; (* #266: record this committed root in the as-of commit log. Shared by both the inline-sync and WAL group-commit paths (both call this function). *) (match st.history with | None -> Lwt.return_unit | Some sink -> let r = { History.txn_id = st.current_header.txn_id ; timestamp = st.history_now () ; root_page = st.current_header.root_page } in (* Best-effort: a failed append must never fail a durable commit. *) Lwt.catch (fun () -> sink.History.append r) (fun _ -> Lwt.return_unit)) ;; (* commit: - Mem backend: no I/O, just release the writer lock. - Btree backend without WAL: flush all currently-open trees' root_pages into the meta-tree, then write a new header pointing at the new meta root, sync inline, autocheckpoint, release. - Btree backend with WAL: same prepare phase but using [Header.commit_no_sync] so the writer can release [lock] before the fsync. Writers then converge on a per-store [commit_queue]; one drainer fsyncs and resolves all waiters. Only the drainer attempts the autocheckpoint (single check per fsync covers the whole batch). Note: the Btree.create/put/del API returns a NEW Btree.t after every mutation (root_page may have changed). We update [st.trees] each time; here we additionally persist the latest root_page for each touched tree into the meta-tree (whose own root we then commit via the header alternating-pages protocol). *) (* After a WAL group-commit, the drainer kicks off an async autocheckpoint if the WAL has grown past the threshold and none is already in flight. *) let maybe_autockpt_after_commit t st = if st.closing (* #338: no fresh checkpoint once close has signalled teardown. *) || st.wal_autocheckpoint_threshold <= 0 || Wal.committed_frames (match st.wal with | Some w -> w | None -> assert false) < st.wal_autocheckpoint_threshold || st.autockpt_in_flight then Lwt.return_unit else ( st.autockpt_in_flight <- true; Lwt.async (fun () -> Lwt.finalize (fun () -> Lwt.catch (fun () -> let* () = Rwlock.acquire_write t.lock in Lwt.finalize (fun () -> match st.wal with | None -> Lwt.return_unit | Some wal -> checkpoint_unlocked st wal) (fun () -> Rwlock.release_write t.lock; Lwt.return_unit)) (fun _ -> Lwt.return_unit)) (fun () -> st.autockpt_in_flight <- false; (* #338: wake a [close] awaiting the in-flight checkpoint to drain. *) Lwt_condition.broadcast st.reader_done_cond (); Lwt.return_unit)); Lwt.return_unit) ;; (* WAL-mode commit: prepare the btree (no sync), release the write lock early, then group-commit-sync the WAL. The elected drainer may autocheckpoint. *) let commit_wal t st = let unlocked = ref false in let unlock_once () = if not !unlocked then ( unlocked := true; Rwlock.release_write t.lock) in let wal = match st.wal with | Some w -> w | None -> assert false in (* #382: capture the cumulative committed frame count and this txn's id BEFORE the append/commit work, so the [Wal_append] emitted at the end reports the authoritative batch this commit produced (relative to nothing — an absolute base/count pair), independent of the replication cursor. *) let frames_before = Wal.committed_frames wal in let append_txn_id = active_txn_id st in Lwt.catch (fun () -> let* () = commit_prepare_btree ~header_commit:Header.commit_no_sync st in (* #382: capture the appended frame count under the write lock, before [unlock_once] and the group-commit yields — a concurrent auto-checkpoint can [Wal.reset] (zeroing committed_frames) during those yields, which would make the count negative if read later. *) let frames_after = Wal.committed_frames wal in (* #298: decide the sync policy under the write lock so the counter is race-free across concurrent writers, then release the lock. *) let do_sync = match st.sync_mode with | `Full -> true (* always sync; unsynced_commits is not tracked in Full mode *) | `Off -> st.unsynced_commits <- st.unsynced_commits + 1; false | `Batched -> st.unsynced_commits <- st.unsynced_commits + 1; (* #298/#8: a non-positive threshold DISABLES that trigger (the codebase's [0 = disabled] convention), rather than firing every commit. If BOTH are 0, batched never syncs on commit. *) let n_trig = st.batch_commits > 0 && st.unsynced_commits >= st.batch_commits in let t_trig = st.batch_interval_ms > 0 && (st.clock () -. st.last_sync_time) *. 1000. >= float_of_int st.batch_interval_ms in n_trig || t_trig in (* #338/#2: reset the batched loss-window counters HERE, under the write lock, at the moment we decide to sync — not after [unlock_once] post fsync. The old unlocked post-fsync write raced both the locked checkpoint reset and a concurrent committer's increment, drifting the batched-N trigger by one. The frames become durable when the fsync below completes; a failed fsync raises (the counter is then moot). *) if do_sync then ( st.unsynced_commits <- 0; st.last_sync_time <- st.clock ()); unlock_once (); let* () = if do_sync then ( let* role = group_commit_sync st.commit_queue (fun () -> let* r = Pager.wal_sync st.pager in match r with | Ok () -> Lwt.return_unit | Error e -> Lwt.fail_with (Format.asprintf "Store.commit: wal_sync: %a" Pager.pp_error e)) in (* #298/#1: ship synced frames to the replication sink. The sink must NEVER see a frame that has not been fsynced, so this fires ONLY here (in the sync success branch), shipping the whole synced range since the last ship. In Full mode this fires every commit (one batch each); in Batched it fires at each sync (the whole accumulated batch). In Off it never fires on commit — only checkpoint/close make frames durable. *) (match st.on_committed_frames with | None -> () | Some cb -> let synced = Wal.committed_frames wal in (* #338 (review r3): do NOT dispatch a fresh ship once [close] has signalled teardown — its lazy [Wal.read_frame] would race [wal_close] (a commit mid-fsync when close starts can reach here AFTER close's drain saw [sink_ships_in_flight = 0]). The frames are already fsynced; the standby re-syncs from the WAL on reconnect, same recovery story as an aborted checkpoint. The check is yield-free up to [Lwt.async], so close cannot set [closing] between this check and the dispatch. *) if (not st.closing) && synced > st.sink_shipped_frames then ( let base = st.sink_shipped_frames in let count = synced - base in st.sink_shipped_frames <- synced; let epoch = Wal.epoch wal in (* #337: register the ship as in-flight SYNCHRONOUSLY (before the [Lwt.async] yields) so a checkpoint dispatched right after sees the count and waits in [checkpoint_unlocked] before [Wal.reset]; decrement + wake the gate when the lazy reader completes. *) st.sink_ships_in_flight <- st.sink_ships_in_flight + 1; Lwt.async (fun () -> Lwt.finalize (fun () -> cb ~epoch ~base_idx:base ~count) (fun () -> st.sink_ships_in_flight <- st.sink_ships_in_flight - 1; Lwt_condition.broadcast st.reader_done_cond (); Lwt.return_unit)))); match role with | `Joiner -> Lwt.return_unit | `Drainer -> maybe_autockpt_after_commit t st) else (* No fsync this commit: still bound the WAL via autocheckpoint (checkpoint is a full-sync durability anchor). *) maybe_autockpt_after_commit t st in (* #382: emit the authoritative frame batch for this commit. Uses [frames_after] captured under the write lock (above) rather than re-reading [Wal.committed_frames] here — a concurrent auto-checkpoint could have [Wal.reset] during the group-commit yields, which would make a re-read count negative. Synchronous and lock-free, consistent with the [Txn_commit] emit that runs after lock release. *) let appended = frames_after - frames_before in emit_event st (Store_event.Wal_append { txn_id = append_txn_id; base_idx = frames_before; count = appended }); Lwt.return appended) (fun exn -> unlock_once (); Lwt.fail exn) ;; let commit (Rw t : rw txn) : unit Lwt.t = match t.backend with | Mem trees -> (* #178: merge the shadow back into the live tree. The live tree was never mutated during the txn — only the shadow was touched — so commit is the first and only time the live tree sees the txn's writes. *) (match t.mem_rw_shadow with | None -> () | Some shadow -> List.iter (fun (tid, map) -> let r = mem_tree trees tid in r := map) shadow); t.mem_rw_shadow <- None; t.mem_savepoints <- []; Rwlock.release_write t.lock; Lwt.return_unit | Btree st -> (* #356: the append cursor is only valid within a txn (its leaf is dirty); commit flushes dirty pages, so drop it. *) Hashtbl.clear st.bt_append; (* #382/#386: capture the id this txn commits as BEFORE the header is bumped (commit_prepare_btree advances [st.current_header.txn_id]). [frames] is the authoritative WAL-appended count returned by [commit_wal] (0 for the non-WAL path, which appends no WAL frames). *) let committed_id = active_txn_id st in let* frames = match st.wal with | None -> let* () = Lwt.finalize (fun () -> let* () = commit_prepare_btree ~header_commit:Header.commit st in maybe_autocheckpoint st) (fun () -> Rwlock.release_write t.lock; Lwt.return_unit) in Lwt.return 0 (* non-WAL: no WAL frames appended *) | Some _ -> commit_wal t st in emit_event st (Store_event.Txn_commit { txn_id = committed_id; frames }); Lwt.return_unit ;; (* rollback: - Mem: discard the per-txn shadow. With shadow writes (#178) the live tree is never mutated during a RW txn, so rollback does not need to restore anything — it just drops the uncommitted shadow. - Btree: drop cached tree handles so subsequent reads pick up last-committed roots from the meta-tree, then restore the freelist snapshot taken at rw_begin and clear dirty pages. Discard dirty pages from the aborted txn: clear_dirty removes them from both the dirty set and the read cache, so subsequent reads see committed data from disk. The freelist snapshot ensures no aborted CoW frees corrupt future allocations. *) let rollback (Rw t : rw txn) : unit Lwt.t = let to_emit = ref None in (match t.backend with | Mem _ -> (* #178: just discard the shadow — the live tree was never touched. *) t.mem_rw_shadow <- None; t.mem_savepoints <- [] | Btree st -> (* Drop the per-tree cache so subsequent reads pick up the last-committed roots from the meta-tree. Note: the meta-tree itself may have been mutated during this txn (uncommitted puts to it); we revert it to the last-committed root from the header. *) Hashtbl.clear st.trees; Hashtbl.clear st.bt_append (* #356: dirty pages discarded below. *); st.meta <- Btree.create st.pager ~root_page:st.current_header.root_page; (match st.txn_freelist_snapshot with | Some fl -> Pager.set_freelist st.pager fl; Pager.clear_dirty st.pager; st.txn_freelist_snapshot <- None | None -> ()); st.bt_savepoints <- []; (* #382: rollback does not change [st.current_header.txn_id], so [active_txn_id] still reads the id this aborted txn would have used. We capture the event here (where [st] is in scope) but emit it after the write lock is released, for parity with [commit] — a future observer doing real work must not stall writers while we hold the global write lock. *) to_emit := Some (st, Store_event.Txn_rollback { txn_id = active_txn_id st })); Rwlock.release_write t.lock; (match !to_emit with | Some (st, ev) -> emit_event st ev | None -> ()); Lwt.return_unit ;; (* ------------------------------------------------------------------ *) (* WAL checkpoint *) (* ------------------------------------------------------------------ *) (** Migrate every page currently in the WAL index to the main DB, sync the main DB, then reset the WAL. Holds the RW mutex so no concurrent commit can append fresh frames while we read the index. On Mem stores or non-WAL Btree stores this is a no-op. *) let checkpoint (t : t) : unit Lwt.t = match t.backend with | Mem _ -> Lwt.return_unit | Btree st -> (match st.wal with | None -> Lwt.return_unit | Some wal -> let* () = Rwlock.acquire_write t.lock in Lwt.finalize (fun () -> checkpoint_unlocked st wal) (fun () -> Rwlock.release_write t.lock; Lwt.return_unit)) ;; let wal_autocheckpoint (t : t) : int = match t.backend with | Mem _ -> 0 | Btree st -> st.wal_autocheckpoint_threshold ;; let set_wal_autocheckpoint (t : t) (n : int) : unit = match t.backend with | Mem _ -> () | Btree st -> st.wal_autocheckpoint_threshold <- max 0 n ;; let durability (t : t) : durability = match t.backend with | Mem _ -> Full | Btree st -> (match st.sync_mode with | `Full -> Full | `Off -> Off | `Batched -> Batched { commits = st.batch_commits; interval_ms = st.batch_interval_ms }) ;; (* #298/#9: durability <-> string helpers for the PRAGMA layer (Group B). *) let durability_of_string (s : string) : durability option = match String.lowercase_ascii s with | "full" -> Some Full | "off" -> Some Off | "batched" -> Some (Batched { commits = default_batch_commits; interval_ms = default_batch_interval_ms }) | _ -> None ;; let string_of_durability (d : durability) : string = match d with | Full -> "full" | Batched _ -> "batched" | Off -> "off" ;; let set_durability (t : t) (d : durability) : unit = match t.backend with | Mem _ -> () | Btree st -> let requested_non_full = match d with | Full -> false | _ -> true in if requested_non_full && st.on_committed_frames <> None then ( (* #298: a sink mandates Full — ignore the relax request but still record any Batched params for when the sink is later removed. The checkpoint replica-floor gate requires every committed frame to be shipped, which only holds under Full. *) match d with | Batched { commits; interval_ms } -> st.batch_commits <- max 0 commits; st.batch_interval_ms <- max 0 interval_ms | _ -> ()) else ( let new_mode = match d with | Full -> `Full | Off -> `Off | Batched _ -> `Batched in (* #298/#4: when the mode actually changes, reset the batched durability counters so a long [Off] period doesn't carry a huge stale [unsynced_commits] into [Batched] (which would immediately fsync), and the T window restarts at mode entry. Safe because [close]/[checkpoint] (frame-state based) remain the durability anchors; the counter is only a trigger heuristic. *) if st.sync_mode <> new_mode then ( st.unsynced_commits <- 0; st.last_sync_time <- st.clock ()); match d with | Full -> st.sync_mode <- `Full | Off -> st.sync_mode <- `Off | Batched { commits; interval_ms } -> st.sync_mode <- `Batched; st.batch_commits <- max 0 commits; st.batch_interval_ms <- max 0 interval_ms) ;; (* #298: True iff a replication commit-sink is currently registered. While active, durability is pinned to [Full]. *) let commit_callback_active (t : t) : bool = match t.backend with | Mem _ -> false | Btree st -> st.on_committed_frames <> None ;; (* #298/#3: force any committed-but-unsynced WAL frames to disk now. No-op in [Full] mode, on the in-memory backend, or when nothing is pending. Group B calls this when tightening durability so already-acked commits become durable immediately rather than only on the next commit. *) let flush_unsynced (t : t) : unit Lwt.t = match t.backend with | Mem _ -> Lwt.return_unit | Btree st -> let pending = st.sync_mode <> `Full && match st.wal with | Some w -> Wal.committed_frames w > 0 | None -> false in if not pending then Lwt.return_unit else (* #298/#5: route the fsync through the group-commit serializer rather than calling [Pager.wal_sync] unlocked, which raced [commit_wal]'s post-unlock fsync + cursor. A sink now forces Full, so [flush_unsynced] only runs when NO sink is active — the previous sink-ship block here is dead and has been removed. *) let* (_ : [ `Drainer | `Joiner ]) = group_commit_sync st.commit_queue (fun () -> let* r = Pager.wal_sync st.pager in match r with | Ok () -> Lwt.return_unit | Error e -> Lwt.fail_with (Format.asprintf "Store.flush_unsynced: wal_sync: %a" Pager.pp_error e)) in st.unsynced_commits <- 0; st.last_sync_time <- st.clock (); Lwt.return_unit ;; let sync_batch_commits (t : t) : int = match t.backend with | Mem _ -> default_batch_commits | Btree st -> st.batch_commits ;; let set_sync_batch_commits (t : t) (n : int) : unit = match t.backend with | Mem _ -> () | Btree st -> st.batch_commits <- max 0 n ;; let sync_batch_interval_ms (t : t) : int = match t.backend with | Mem _ -> default_batch_interval_ms | Btree st -> st.batch_interval_ms ;; let set_sync_batch_interval_ms (t : t) (n : int) : unit = match t.backend with | Mem _ -> () | Btree st -> st.batch_interval_ms <- max 0 n ;; let set_clock (t : t) (c : unit -> float) : unit = match t.backend with | Mem _ -> () | Btree st -> st.clock <- c; st.last_sync_time <- c () ;; (* Number of fsyncs the WAL has performed since open. Exposed for #77 group-commit testing: lets the test assert that N concurrent autocommit fibers issue ≪ N fsyncs (proof of coalescing). *) let wal_sync_count (t : t) : int = match t.backend with | Mem _ -> 0 | Btree st -> (match st.wal with | None -> 0 | Some w -> Granary_storage.Wal.sync_count w) ;; (* Diagnostic/testing accessors for #164: observe that ending a snapshot releases its bookkeeping even when its reader closure raised. *) let active_reader_count (t : t) : int = match t.backend with | Mem _ -> 0 | Btree st -> Hashtbl.fold (fun _ c acc -> acc + c) st.active_readers 0 ;; let pinned_page_count (t : t) : int = match t.backend with | Mem _ -> 0 | Btree st -> Pager.pinned_count st.pager ;; let live_read_locks (t : t) : int = Rwlock.readers t.lock (* ------------------------------------------------------------------ *) (* Savepoints (both Mem and B-tree backends) *) (* ------------------------------------------------------------------ *) (** Push a named savepoint: snapshot the current shadow state (#178). *) let savepoint_begin (Rw t : rw txn) name = match t.backend with | Mem trees -> let snap = match t.mem_rw_shadow with | None -> Hashtbl.fold (fun tid r acc -> (tid, !r) :: acc) trees [] | Some shadow -> shadow in t.mem_savepoints <- (name, snap) :: t.mem_savepoints; Lwt.return_unit | Btree st -> let tree_roots = Hashtbl.fold (fun tid bt acc -> (tid, Btree.root_page bt) :: acc) st.trees [] in let sp = { sp_name = name ; sp_meta_root = Btree.root_page st.meta ; sp_tree_roots = tree_roots ; sp_freelist = Pager.freelist st.pager ; sp_n_pages = Pager.n_pages st.pager ; sp_dirty = Pager.dirty_clone st.pager ; sp_txn_pool = Pager.txn_owned_pool_get st.pager } in st.bt_savepoints <- sp :: st.bt_savepoints; emit_event st (Store_event.Savepoint_begin { txn_id = active_txn_id st; name }); Lwt.return_unit ;; (** Release the named savepoint and all newer ones (writes are kept). *) let savepoint_release (Rw t : rw txn) name = match t.backend with | Mem _ -> let rec drop = function | [] -> [] | (n, _) :: rest when String.equal n name -> rest | _ :: rest -> drop rest in t.mem_savepoints <- drop t.mem_savepoints; Lwt.return_unit | Btree st -> let rec drop = function | [] -> [] | sp :: rest when String.equal sp.sp_name name -> rest | _ :: rest -> drop rest in st.bt_savepoints <- drop st.bt_savepoints; emit_event st (Store_event.Savepoint_release { txn_id = active_txn_id st; name }); Lwt.return_unit ;; (** Rollback to the named savepoint: restore snapshot, drop newer savepoints, keep the named savepoint so it can be rolled back to again. *) let savepoint_rollback (Rw t : rw txn) name = match t.backend with | Mem _ -> (* #178: restore the shadow to the savepoint snapshot. The live tree was never mutated, so we just replace the shadow. *) let rec find = function | [] -> () (* savepoint not found — no-op *) | (n, snap) :: rest when String.equal n name -> t.mem_rw_shadow <- Some snap; t.mem_savepoints <- (name, snap) :: rest | _ :: rest -> find rest in find t.mem_savepoints; Lwt.return_unit | Btree st -> let rec find = function | [] -> () | sp :: rest when String.equal sp.sp_name name -> (* Restore meta-tree root *) st.meta <- Btree.create st.pager ~root_page:sp.sp_meta_root; (* Restore per-tree roots: drop the cache, re-populate from snapshot. *) Hashtbl.clear st.trees; List.iter (fun (tid, root) -> let bt = Btree.create st.pager ~root_page:root in Hashtbl.replace st.trees tid bt) sp.sp_tree_roots; (* Restore freelist + n_pages + dirty set. Pages above sp.sp_n_pages that were freshly allocated in the rolled-back range become orphans in the file but are not in any tree, freelist, or dirty set — harmless storage leak. *) Pager.set_freelist st.pager sp.sp_freelist; Pager.set_n_pages st.pager sp.sp_n_pages; Pager.dirty_restore st.pager sp.sp_dirty; Pager.txn_owned_pool_set st.pager sp.sp_txn_pool; (* #356: the restored dirty pages may be an earlier version of the cached rightmost leaf; drop the append cursor so it re-primes. *) Hashtbl.clear st.bt_append; (* Keep the named savepoint at the top so it can be re-used. *) st.bt_savepoints <- sp :: rest | _ :: rest -> find rest in find st.bt_savepoints; emit_event st (Store_event.Savepoint_rollback { txn_id = active_txn_id st; name }); Lwt.return_unit ;; (* ------------------------------------------------------------------ *) (* get / put / del *) (* ------------------------------------------------------------------ *) let txn_store : type a. a txn -> t = function | Ro snap -> snap.rs_store | Rw s -> s ;; let get : type a. a txn -> tree_id -> bytes -> bytes option Lwt.t = fun tx tid key -> match tx with | Ro snap -> (match snap.rs_store.backend with | Mem _ -> (* #178: read from the snapshot captured at ro_begin so this reader never sees uncommitted writes from a concurrent writer that may later roll back. *) let map = match snap.rs_mem_snap with | Some snap -> mem_tree_snap snap tid | None -> Bytes_map.empty in Lwt.return (Bytes_map.find_opt key map) | Btree st -> let* r = bt_get_tree_ro snap st tid in let* bt = unwrap_error r in let* g = Btree.get bt key in (match g with | Ok v -> Lwt.return v | Error e -> Lwt.fail_with (Format.asprintf "Store.get(ro): %a" pp_error (map_btree_err e)))) | Rw t -> (match t.backend with | Mem trees -> (* #178: read from the active RW shadow, not the live tree. The shadow contains the txn's own writes layered on top of the pre-txn committed state; the live tree is never mutated until commit. *) let map = match t.mem_rw_shadow with | None -> !(mem_tree trees tid) | Some shadow -> shadow_get shadow trees tid in Lwt.return (Bytes_map.find_opt key map) | Btree st -> let* r = bt_get_tree st tid in let* bt = unwrap_error r in let* g = Btree.get bt key in (match g with | Ok v -> Lwt.return v | Error e -> Lwt.fail_with (Format.asprintf "Store.get(rw): %a" pp_error (map_btree_err e)))) ;; let put (Rw t : rw txn) tid key value : unit Lwt.t = match t.backend with | Mem trees -> (* #178: write to the shadow, not the live tree. *) (match t.mem_rw_shadow with | None -> let r = mem_tree trees tid in r := Bytes_map.add key value !r | Some shadow -> t.mem_rw_shadow <- Some (shadow_update shadow trees tid (Bytes_map.add key value))); Lwt.return_unit | Btree st -> let* r = bt_get_tree st tid in let* bt = unwrap_error r in Pager.set_write_tag st.pager (tree_tag st tid); (* #356: [put] may replace or split anywhere; invalidate the append cursor for this tree so a subsequent append re-primes from the live rightmost. *) Hashtbl.remove st.bt_append tid; let* p = Btree.put bt key value in (match p with | Ok bt' -> Hashtbl.replace st.trees tid bt'; Lwt.return_unit | Error e -> Lwt.fail_with (Format.asprintf "Store.put: %a" pp_error (map_btree_err e))) ;; let put_x (Rw t : rw txn) tid key value : bytes option Lwt.t = match t.backend with | Mem trees -> let map = match t.mem_rw_shadow with | None -> !(mem_tree trees tid) | Some shadow -> shadow_get shadow trees tid in (match Bytes_map.find_opt key map with | Some _ -> Lwt.return (Some Bytes.empty) | None -> (match t.mem_rw_shadow with | None -> let r = mem_tree trees tid in r := Bytes_map.add key value !r | Some shadow -> t.mem_rw_shadow <- Some (shadow_update shadow trees tid (Bytes_map.add key value))); Lwt.return None) | Btree st -> let* r = bt_get_tree st tid in let* bt = unwrap_error r in Pager.set_write_tag st.pager (tree_tag st tid); (* #356 append fast path: O(1) in-place append to the cached rightmost leaf when [key] is strictly greater than the cursor's max. *) let* fast = match Hashtbl.find_opt st.bt_append tid with | Some ac when Bytes.compare key (Btree.append_cursor_max_key ac) > 0 -> let* outcome = Btree.try_inplace_append bt ac ~key ~value in (match outcome with | Btree.Appended ac' -> Hashtbl.replace st.bt_append tid ac'; Lwt.return (Some None) | Btree.Not_applicable -> Lwt.return None | Btree.Append_failed e -> Lwt.fail_with (Format.asprintf "Store.put_x: %a" pp_error (map_btree_err e))) | _ -> Lwt.return None in (match fast with | Some old_opt -> Lwt.return old_opt | None -> (* General path. Remember the prior cursor max to decide whether this insert was an append worth re-priming the cursor for. *) let prev_max = Option.map Btree.append_cursor_max_key (Hashtbl.find_opt st.bt_append tid) in let* p = Btree.put_x bt key value in (match p with | Error e -> Lwt.fail_with (Format.asprintf "Store.put_x: %a" pp_error (map_btree_err e)) | Ok (bt', old_opt) -> Hashtbl.replace st.trees tid bt'; (match old_opt with | Some _ -> (* Conflict: nothing inserted; leave the cursor as-is. *) Lwt.return old_opt | None -> (* Inserted. If [key] extends the tree to the right (an append), re-prime the cursor from the new rightmost leaf; otherwise it was a middle insert and the cursor is invalidated. *) let append_like = match prev_max with | None -> true (* cold start: probe whether it was an append *) | Some m -> Bytes.compare key m > 0 in if not append_like then ( Hashtbl.remove st.bt_append tid; Lwt.return None) else let* rc = Btree.rightmost_append_cursor bt' in (match rc with | Ok (Some ac) when Bytes.equal (Btree.append_cursor_max_key ac) key -> Hashtbl.replace st.bt_append tid ac; Lwt.return None | Ok _ -> Hashtbl.remove st.bt_append tid; Lwt.return None | Error e -> Lwt.fail_with (Format.asprintf "Store.put_x: %a" pp_error (map_btree_err e)))))) ;; let del (Rw t : rw txn) tid key : unit Lwt.t = match t.backend with | Mem trees -> (* #178: remove from the shadow, not the live tree. *) (match t.mem_rw_shadow with | None -> let r = mem_tree trees tid in r := Bytes_map.remove key !r | Some shadow -> t.mem_rw_shadow <- Some (shadow_update shadow trees tid (Bytes_map.remove key))); Lwt.return_unit | Btree st -> let* r = bt_get_tree st tid in let* bt = unwrap_error r in Pager.set_write_tag st.pager (tree_tag st tid); (* #356: a delete may free or restructure the rightmost leaf; invalidate. *) Hashtbl.remove st.bt_append tid; let* d = Btree.del bt key in (match d with | Ok bt' -> Hashtbl.replace st.trees tid bt'; Lwt.return_unit | Error e -> Lwt.fail_with (Format.asprintf "Store.del: %a" pp_error (map_btree_err e))) ;; (* #174: register the page-header stamp (low 32 bits of the schema fingerprint) for [tid]. Subsequently-written Branch/Leaf pages of that tree carry the tag in their reserved header bytes. No-op on the in-memory backend (no pages). *) let set_tree_tag (t : t) (tid : tree_id) (tag : int32) : unit = match t.backend with | Mem _ -> () | Btree st -> Hashtbl.replace st.tree_tags tid tag ;; (* ------------------------------------------------------------------ *) (* Cursors *) (* ------------------------------------------------------------------ *) (* Drain a B+-tree cursor into an in-memory snapshot list. Phase 1 cursors are materialised; streaming cursors arrive later. *) let drain_btree_cursor (c : Btree.cursor) : (bytes * bytes) list Lwt.t = let rec loop acc = let* r = Btree.cursor_next c in match r with | Error e -> Lwt.fail_with (Format.asprintf "Store.cursor: %a" pp_error (map_btree_err e)) | Ok None -> Lwt.return (List.rev acc) | Ok (Some kv) -> loop (kv :: acc) in loop [] ;; let cursor_open : type a. a txn -> tree_id -> cursor Lwt.t = fun tx tid -> match tx with | Ro snap -> (match snap.rs_store.backend with | Mem _ -> (* #178: materialise from the snapshot captured at ro_begin. Without this, a concurrent writer's uncommitted modifications would leak into the cursor — and survive even if the writer later rolls back. *) let map = match snap.rs_mem_snap with | Some snap -> mem_tree_snap snap tid | None -> Bytes_map.empty in let entries = Bytes_map.bindings map in Lwt.return { all = entries; remaining = []; ready = false } | Btree st -> let* r = bt_get_tree_ro snap st tid in let* bt = unwrap_error r in let* co = Btree.cursor_open bt in (match co with | Error e -> Lwt.fail_with (Format.asprintf "Store.cursor_open(ro): %a" pp_error (map_btree_err e)) | Ok c -> let* entries = drain_btree_cursor c in Btree.cursor_close c; Lwt.return { all = entries; remaining = []; ready = false })) | Rw _ -> let t = txn_store tx in (match t.backend with | Mem trees -> (* #178: cursor materialises from the active RW shadow. *) let map = match t.mem_rw_shadow with | None -> !(mem_tree trees tid) | Some shadow -> shadow_get shadow trees tid in let entries = Bytes_map.bindings map in Lwt.return { all = entries; remaining = []; ready = false } | Btree st -> let* r = bt_get_tree st tid in let* bt = unwrap_error r in let* co = Btree.cursor_open bt in (match co with | Error e -> Lwt.fail_with (Format.asprintf "Store.cursor_open: %a" pp_error (map_btree_err e)) | Ok c -> let* entries = drain_btree_cursor c in Btree.cursor_close c; Lwt.return { all = entries; remaining = []; ready = false })) ;; let cursor_close _ = () let cursor_first c = c.remaining <- c.all; match c.all with | [] -> c.ready <- false; Not_found `End | (k, _) :: _ -> c.ready <- true; Found k ;; let cursor_seek c key = let rec find = function | [] -> c.remaining <- []; c.ready <- false; Not_found `End | (k, _) :: _ as cur -> let cmp = Bytes.compare k key in if cmp >= 0 then ( c.remaining <- cur; c.ready <- true; if cmp = 0 then Found k else Not_found (`Greater k)) else find (List.tl cur) in find c.all ;; let cursor_next c = match c.remaining with | [] -> None | entry :: rest -> if c.ready then ( c.ready <- false; Some entry) else ( c.remaining <- rest; match rest with | [] -> None | next :: _ -> Some next) ;; let cursor_value c = match c.remaining with | (_, v) :: _ when c.ready -> Some v | _ -> None ;; (* ------------------------------------------------------------------ *) (* Native streaming seek (#228, #229) *) (* *) (* The materialised [cursor] above drains the WHOLE tree at open time so *) (* it can offer a synchronous [cursor_seek]/[cursor_next] API. For *) (* point/prefix probes (index lookups, UNIQUE pre-checks, FK checks) *) (* that O(n) drain dominates — it turns an O(log n) seek into a full *) (* table scan, and an n-row bulk insert into O(n^2). [seek_ge] instead *) (* descends the B+-tree natively in O(log n) and streams matches lazily, *) (* never materialising more than the entries the caller actually reads. *) (* Semantics match [cursor_open]+[cursor_seek]+[cursor_next]: the first *) (* [seek_next] returns the first entry with key >= [key], then ascending.*) (* ------------------------------------------------------------------ *) type seek_impl = | SC_mem of (bytes * bytes) Seq.t ref | SC_bt of Btree.cursor (* #235: when the backing promise is already determined — the [Mem] backend, or *) (* a B+-tree page already resident in the pager cache — [Lwt.bind] runs the *) (* caller's continuation synchronously, so a recursive [seek_next] consumer *) (* (the [gather]/[scan] loops in exec.ml) nests one OCaml frame per call *) (* instead of returning to a trampoline. Streaming a pathologically common *) (* term/value (millions of cache-resident postings) would then overflow the *) (* stack. To bound stack growth regardless of consumer shape, [seek_next] *) (* splices an [Lwt.pause] every [seek_pause_interval] calls: that defers the *) (* continuation to the scheduler, unwinding the stack. The cost is one *) (* cooperative yield per N calls — negligible. *) type seek_cursor = { mutable sc_calls : int ; sc_impl : seek_impl } (* Bounds the synchronous recursion depth to <= this many frames; the yield then amortises to one [Lwt.pause] per that many reads. 256 trades a tiny, fixed per-scan overhead for a shallow stack ceiling. *) let seek_pause_interval = 256 let mk_seek_cursor sc_impl = { sc_calls = 0; sc_impl } let seek_ge : type a. a txn -> tree_id -> bytes -> seek_cursor Lwt.t = fun tx tid key -> match tx with | Ro snap -> (match snap.rs_store.backend with | Mem _ -> let map = match snap.rs_mem_snap with | Some snap -> mem_tree_snap snap tid | None -> Bytes_map.empty in Lwt.return (mk_seek_cursor (SC_mem (ref (Bytes_map.to_seq_from key map)))) | Btree st -> let* r = bt_get_tree_ro snap st tid in let* bt = unwrap_error r in let* co = Btree.cursor_open bt in (match co with | Error e -> Lwt.fail_with (Format.asprintf "Store.seek_ge(ro): %a" pp_error (map_btree_err e)) | Ok c -> let* sr = Btree.cursor_seek c key in (match sr with | Error e -> Lwt.fail_with (Format.asprintf "Store.seek_ge(ro): %a" pp_error (map_btree_err e)) | Ok _ -> Lwt.return (mk_seek_cursor (SC_bt c))))) | Rw _ -> let t = txn_store tx in (match t.backend with | Mem trees -> let map = match t.mem_rw_shadow with | None -> !(mem_tree trees tid) | Some shadow -> shadow_get shadow trees tid in Lwt.return (mk_seek_cursor (SC_mem (ref (Bytes_map.to_seq_from key map)))) | Btree st -> let* r = bt_get_tree st tid in let* bt = unwrap_error r in let* co = Btree.cursor_open bt in (match co with | Error e -> Lwt.fail_with (Format.asprintf "Store.seek_ge: %a" pp_error (map_btree_err e)) | Ok c -> let* sr = Btree.cursor_seek c key in (match sr with | Error e -> Lwt.fail_with (Format.asprintf "Store.seek_ge: %a" pp_error (map_btree_err e)) | Ok _ -> Lwt.return (mk_seek_cursor (SC_bt c))))) ;; (* Return the next (key, value) >= the seek key in ascending order, or [None] when exhausted. The first call returns the positioned entry. *) let seek_next : seek_cursor -> (bytes * bytes) option Lwt.t = fun sc -> let result = match sc.sc_impl with | SC_mem r -> (match !r () with | Seq.Nil -> Lwt.return_none | Seq.Cons (kv, rest) -> r := rest; Lwt.return_some kv) | SC_bt c -> let* r = Btree.cursor_next c in (match r with | Ok kv -> Lwt.return kv | Error e -> Lwt.fail_with (Format.asprintf "Store.seek_next: %a" pp_error (map_btree_err e))) in (* The cursor is advanced eagerly above; [result] already holds this call's entry (or [None]), so splicing a pause here only defers the *return*, never reordering or dropping a match (#235). We count calls, not matches: every recursive consumer call nests a frame whether or not it yields a row, so the terminal [None] call is counted too. Yielding mid-stream is safe under the current concurrency model: a paused RO seek streams from an immutable snapshot, and a paused RW seek holds the single-writer lock — so no other fiber can mutate the tree under the cursor between pause and resume. If that invariant is ever relaxed (concurrent writers), revisit this yield point. *) sc.sc_calls <- sc.sc_calls + 1; if sc.sc_calls mod seek_pause_interval = 0 then Lwt.bind (Lwt.pause ()) (fun () -> result) else result ;; let seek_close : seek_cursor -> unit = fun sc -> match sc.sc_impl with | SC_mem _ -> () | SC_bt c -> Btree.cursor_close c ;; let wal_mode t = match t.backend with | Mem _ -> false | Btree st -> st.wal <> None ;; let freelist_size t = match t.backend with | Mem _ -> 0 | Btree st -> Freelist.size (Pager.freelist st.pager) ;; let freelist_entries t = match t.backend with | Mem _ -> [] | Btree st -> Freelist.to_list (Pager.freelist st.pager) ;; let n_pages t = match t.backend with | Mem _ -> 0L | Btree st -> Pager.n_pages st.pager ;; (* Enumerate all tree_ids known to the meta tree. For VACUUM. *) let list_tree_ids t : tree_id list Lwt.t = match t.backend with | Mem trees -> Lwt.return (Hashtbl.fold (fun tid _ acc -> tid :: acc) trees []) | Btree st -> let* r = Btree.cursor_open st.meta in (match r with | Error e -> Lwt.fail_with (Format.asprintf "Store.list_tree_ids: %a" pp_error (map_btree_err e)) | Ok cur -> let rec loop acc = let* r = Btree.cursor_next cur in match r with | Error e -> Lwt.fail_with (Format.asprintf "Store.list_tree_ids: %a" pp_error (map_btree_err e)) | Ok None -> Lwt.return (List.rev acc) | Ok (Some (k, _v)) -> let tid, _ = Varint.decode_int64 k 0 in loop (Int64.to_int tid :: acc) in let* result = loop [] in Btree.cursor_close cur; Lwt.return result) ;; type page_sink = page_id:int64 -> page:Cstruct.t -> unit Lwt.t (* Shared page-image iteration for [copy_to]/[rekey_to]. Under an RO snapshot, yields each PLAINTEXT page (page_id, buf) for page_id in [0, n), resolving the WAL overlay (bounded to the committed_frames horizon captured at ro_begin) before the main DB. The iteration is bounded by the snapshot-time page count so growth during the copy does not pull pages outside the snapshot. The buffer handed to [f] may be owned by the pager cache — a caller that mutates it MUST copy first. *) let iter_snapshot_pages st (Ro snap) ~(f : page_id:int64 -> page:Cstruct.t -> unit Lwt.t) : unit Lwt.t = (* Read the page count INSIDE the snapshot (after ro_begin) so that the loop bound n is consistent with the snapshot's WAL horizon. If a writer commits between ro_begin and reading n_pages, the snapshot's WAL horizon already includes those new pages; reading n_pages after ro_begin ensures we copy them too. *) let n = Pager.n_pages st.pager in let horizon = snap.rs_snap_frames in let rec loop (page_id : int64) = if Int64.compare page_id n >= 0 then Lwt.return_unit else let* page_buf = match st.wal with | None -> (* Non-WAL path: pass ~snapshot_frames:0 so the read path skips the dirty set entirely (pager.ml:274-276), avoiding any concurrent-writer uncommitted data. With no WAL the resolve_wal_page returns Ok None, falling through to load_main_page which reads the committed on-disk state. Also pin the page so the writer's eviction pressure doesn't drop our copy. *) let* r = Pager.read ~snapshot_frames:0 ~pin_set:snap.rs_pinned st.pager page_id in (match r with | Ok buf -> Lwt.return buf | Error e -> Lwt.fail_with (Format.asprintf "Store.iter_snapshot_pages(pg=%Ld): %a" page_id Pager.pp_error e)) | Some wal -> (* WAL-mode path: snapshot overlay (WAL first, then main DB). *) (match Wal.find_page_at wal page_id ~max_frame:horizon with | Some idx -> let* r = Wal.read_frame wal idx in (match r with | Ok buf -> Lwt.return buf | Error e -> Lwt.fail_with (Format.asprintf "Store.iter_snapshot_pages(pg=%Ld,frame=%d): %a" page_id idx Wal.pp_error e)) | None -> let* r = Pager.read ~snapshot_frames:horizon ~pin_set:snap.rs_pinned st.pager page_id in (match r with | Ok buf -> Lwt.return buf | Error e -> Lwt.fail_with (Format.asprintf "Store.iter_snapshot_pages(pg=%Ld): %a" page_id Pager.pp_error e))) in let* () = f ~page_id ~page:page_buf in loop (Int64.add page_id 1L) in loop 0L ;; (* One-shot consistent full copy via an RO snapshot + page sink (#93). When the source is encrypted (#84), data pages (>= 2) are re-encrypted under the source's own key before reaching the sink, so the destination is a faithful, self-contained encrypted DB (open it with the same key) and no user-data plaintext transits the sink. Pages 0 and 1 are plaintext headers (carrying the enc marker + canary) and are copied verbatim. On the Mem backend this is a no-op (there are no pages to copy). *) let copy_to (t : t) (sink : page_sink) : unit Lwt.t = match t.backend with | Mem _ -> Lwt.return_unit | Btree st -> with_ro t (fun ro -> iter_snapshot_pages st ro ~f:(fun ~page_id ~page -> match st.cipher with | Some c when Int64.compare page_id 2L >= 0 -> (* Copy first — [page] may be the pager's cached buffer. *) let tmp = Cstruct.create (Cstruct.length page) in Cstruct.blit page 0 tmp 0 (Cstruct.length page); Crypto.encrypt_page c ~page_id tmp; sink ~page_id ~page:tmp | _ -> sink ~page_id ~page)) ;; (* #215: offline key rotation. [t] must have been opened WITH THE OLD KEY so reads decrypt to plaintext; every data page (>= 2) is re-encrypted under a fresh cipher built from [new_key], and each header page (0, 1) has its canary rewritten under the new key (txn parity and all other fields preserved) and its CRC resealed. The sunk page image is a self-contained encrypted DB under [new_key] with no WAL. Rejects a plaintext source ([Not_encrypted]) and a wrong-length key ([Block_error]). *) let rekey_to (t : t) ~(new_key : string) (sink : page_sink) : (unit, error) result Lwt.t = match t.backend with | Mem _ -> Lwt.return_ok () | Btree st -> (match st.cipher with | None -> Lwt.return_error Not_encrypted | Some _old -> (match Crypto.create ~key:new_key with | Error `Bad_key_length -> Lwt.return_error (Block_error "encryption key must be 32 bytes") | Ok c' -> let nonce = Mirage_crypto_rng.generate Crypto.nonce_len in let canary_tag = Crypto.make_canary c' ~nonce in let* () = with_ro t (fun ro -> iter_snapshot_pages st ro ~f:(fun ~page_id ~page -> let len = Cstruct.length page in let tmp = Cstruct.create len in Cstruct.blit page 0 tmp 0 len; if Int64.compare page_id 2L < 0 then ( (* header page: rewrite the canary under the new key, leaving enc_magic + every structural field intact, then reseal CRC. *) let f = Page.read_header_fields tmp in Page.write_header_fields tmp { f with Page.canary_nonce = nonce; canary_tag }; Page.seal tmp; sink ~page_id ~page:tmp) else ( Crypto.encrypt_page c' ~page_id tmp; sink ~page_id ~page:tmp))) in Lwt.return_ok ())) ;; (* ------------------------------------------------------------------ *) (* Replication consumer integration (#92) *) (* ------------------------------------------------------------------ *) (** Register the replication consumer's shipped position so checkpoint truncation waits for frames to be shipped before recycling them. *) let update_replication_position (t : t) ~shipped = match t.backend with | Mem _ -> () | Btree st -> st.replication_shipped_frames <- shipped; Lwt_condition.broadcast st.reader_done_cond () ;; (** Bounded-yield "timeout" for the checkpoint gate's wait on the replication floor (#207). Returns [max_int] (unbounded) by default. [0] on the in-memory backend (no checkpoint gating). *) let replication_gate_max_yields (t : t) : int = match t.backend with | Mem _ -> 0 | Btree st -> st.replication_gate_max_yields ;; (** Set the bounded-yield budget the checkpoint gate will spend waiting for the replication floor (a standby's acked position) to reach the checkpoint target before proceeding anyway. See {!update_replication_position}. Pure-Mirage has no ambient clock, so this "timeout" is a count of cooperative [Lwt.pause] yields rather than wall-clock time. [max_int] (the default) means wait indefinitely — a dead standby wedges the WAL, matching the behavior before this knob existed. A finite value bounds the wait: once spent, the checkpoint proceeds and the now-stranded standby must re-base (#208). Negative inputs clamp to [0] (proceed immediately if the floor is behind). Local RO readers are never abandoned by this budget — only the replication floor. No-op on the in-memory backend. *) let set_replication_gate_max_yields (t : t) (n : int) : unit = match t.backend with | Mem _ -> () | Btree st -> st.replication_gate_max_yields <- max 0 n ;; (** Get (epoch, committed_frames) for the active WAL; [None] if no WAL. *) let replication_state (t : t) = match t.backend with | Mem _ -> None | Btree st -> (match st.wal with | None -> None | Some wal -> Some (Wal.epoch wal, Wal.committed_frames wal)) ;; (* ------------------------------------------------------------------ *) (* Incremental backup (#265) *) (* ------------------------------------------------------------------ *) (** Register the backup consumer's captured position so checkpoint truncation waits for frames to be backed up before recycling them. Analogous to {!update_replication_position} but for the incremental backup watermark. *) let update_backup_position (t : t) ~shipped = match t.backend with | Mem _ -> () | Btree st -> st.backup_shipped_frames <- shipped; Lwt_condition.broadcast st.reader_done_cond () ;; (** Get (epoch, committed_frames) for the active WAL; [None] if no WAL. Review #8: delegates to {!replication_state} — the two functions share the same body because both track the same WAL position. *) let backup_state (t : t) = replication_state t (** Return the backup floor's bounded-yield budget for the checkpoint gate. Defaults to [max_int] (unbounded) on the B+-tree backend, [0] on the in-memory backend (no checkpoint gating). *) let backup_gate_max_yields (t : t) : int = match t.backend with | Mem _ -> 0 | Btree st -> st.backup_gate_max_yields ;; (** Set the bounded-yield budget the checkpoint gate will spend waiting for the backup floor to reach the checkpoint target before proceeding anyway (#265). Same semantics as {!set_replication_gate_max_yields}. Negative inputs clamp to [0]. No-op on the in-memory backend. *) let set_backup_gate_max_yields (t : t) (n : int) : unit = match t.backend with | Mem _ -> () | Btree st -> st.backup_gate_max_yields <- max 0 n ;; (** A captured WAL frame for incremental backup (#265). Contains the full frame metadata and page payload needed to reconstruct the database at a later point. The {!checksum} field covers the decrypted page payload (transport integrity for the backup frame), matching the same scheme used by {!Granary_replication.replicated_frame}. For unencrypted WALs the plaintext equals the on-disk page; for encrypted WALs the checksum guards against corruption of the decrypted content during transport or storage, not the on-disk ciphertext. *) type backup_frame = { epoch : int64 ; frame_idx : int ; page_id : int64 ; is_commit : bool ; page : Cstruct.t ; checksum : int64 ; source_salt : int64 ; source_seed : int64 } (* NOTE (review #8): backup_frame and Granary_replication.replicated_frame are structurally identical. A future consolidation could merge them into a shared frame type, but the two modules have no common dependency today and the duplication is small enough to live with. *) (** Capture the committed WAL frames since a given watermark position, returning them as a list of {!backup_frame}. [~since_epoch] and [~since_idx] identify the watermark: frames with indices strictly greater than [since_idx] in the current epoch are returned. If the WAL's epoch has advanced past [since_epoch], no frames can be captured (the caller must take a fresh base snapshot). Returns [None] when the WAL's epoch has changed (meaning the caller's watermark is stale and a re-base is needed). Returns [Some []] when the watermark is current but no new frames have been committed. *) let capture_frames_since (t : t) ~since_epoch ~since_idx : (backup_frame list, [> `Capture_error of string ]) result option Lwt.t = match t.backend with | Mem _ -> Some (Ok []) |> Lwt.return | Btree st -> (match st.wal with | None -> Lwt.return (Some (Error (`Capture_error "no WAL active"))) | Some wal -> let current_epoch = Wal.epoch wal in if not (Int64.equal current_epoch since_epoch) then (* Epoch changed: the watermark is stale and the caller must re-base (take a fresh full snapshot). *) Lwt.return None else ( let committed = Wal.committed_frames wal in (* max_int = "no floor" sentinel; increment would overflow to min_int *) let start = if since_idx = max_int then max_int else since_idx + 1 in if start >= committed then Lwt.return (Some (Ok [])) else ( let salt = Wal.salt wal in let seed = Wal.seed wal in let rec loop idx acc = if idx >= committed then Lwt.return (Some (Ok (List.rev acc))) else ( (* A concurrent checkpoint can bump the epoch while we yield on I/O. If the epoch changed, the watermark is stale — signal through [None] so the caller re-bases cleanly instead of getting an I/O error. *) let current_epoch = Wal.epoch wal in if not (Int64.equal current_epoch since_epoch) then Lwt.return None else let* r = Wal.read_committed_frame wal idx in match r with | Error _ when not (Int64.equal (Wal.epoch wal) since_epoch) -> Lwt.return None | Error e -> Lwt.return (Some (Error (`Capture_error (Format.asprintf "read frame %d: %a" idx Wal.pp_error e)))) | Ok f -> if not (Int64.equal (Wal.epoch wal) since_epoch) then Lwt.return None else ( let flags = if f.is_commit then 1L else 0L in let checksum = Wal.frame_checksum ~salt ~seed ~page_id:f.page_id ~flags ~page:f.page in let bf : backup_frame = { epoch = current_epoch ; frame_idx = idx ; page_id = f.page_id ; is_commit = f.is_commit ; page = f.page ; checksum ; source_salt = salt ; source_seed = seed } in loop (idx + 1) (bf :: acc))) in (* loop already returns the exact type of this branch — None for epoch-changed, Some (Ok frames) for success, Some (Error _) for I/O failure. Direct return. *) loop start []))) ;; (** Install an asynchronous callback invoked after each WAL commit batch. The callback receives ~epoch, ~base_idx (starting WAL frame index), and ~count (number of committed frames). Fired via [Lwt.async] so the commit path is never blocked by replication I/O. When a callback is registered, the replication shipped-position floor is initialised to the WAL's current [committed_frames] so that checkpoint cannot recycle already-acknowledged frames before the async sink ships its first batch. The consumer must still call {!update_replication_position} to advance the floor as frames are shipped. Pass [None] to unregister (resets the floor to [max_int]). *) let set_commit_callback (t : t) (cb : (epoch:int64 -> base_idx:int -> count:int -> unit Lwt.t) option) = match t.backend with | Mem _ -> Lwt.return_unit | Btree st -> (match cb with | None -> st.on_committed_frames <- None; st.replication_shipped_frames <- max_int; Lwt.return_unit | Some _ -> (* #336/1 + review #1: do the flush AND the pin atomically under the write lock. [flush_unsynced] yields (group-commit drain); without the lock a concurrent commit could interleave in the OLD mode (no fsync, no ship — cb not yet set), and the subsequent [sink_shipped_frames <- committed_frames] pin would then bury those frames below the ship cursor forever (silent standby divergence). The lock blocks new commits ([rw_begin]) for the brief flush+pin so the cursor pins exactly the pre-registration frontier. *) let* () = Rwlock.acquire_write t.lock in Lwt.finalize (fun () -> (* Flush while still in the old mode — [flush_unsynced] is a no-op once we pin [Full] below. A store opened [off]/[batched] may have acked commits in the OS page cache; the sink ships only NEW frames, so these historical frames would otherwise linger crash-exposed until the next commit/checkpoint/close despite the sink implying synchronous=full. *) let* () = flush_unsynced t in st.on_committed_frames <- cb; (* #298: a replication commit-sink requires Full durability — the checkpoint replica-floor gate assumes every committed frame is shipped, which only holds when every commit fsyncs. Force Full on registration; relaxing durability is rejected while a sink is active (see set_durability / the PRAGMA handler). *) st.sync_mode <- `Full; (match st.wal with | None -> () | Some wal -> st.replication_shipped_frames <- Wal.committed_frames wal; (* #298/#1: a sink registered mid-life ships only NEW synced frames, not history — start the ship cursor at the current count. *) st.sink_shipped_frames <- Wal.committed_frames wal); Lwt.return_unit) (fun () -> Rwlock.release_write t.lock; Lwt.return_unit)) ;; (* #384: map a storage-level [Pager_event.t] to a [Store_event.t], stamping the txn id from the pager. Write-path events (alloc/write/free) always fire inside an active RW txn, so they carry the exact id; [Page_read] may fire outside a write txn, where [get_txn_id] returns 0 before the first txn and the most-recent txn id between txns (best-effort). #385: also stamps the [tree] id from [st.current_tree], set at the [bt_get_tree]/[bt_get_tree_ro] chokepoint by the op that triggered the I/O. Meta/system pages read while resolving a tree handle are stamped [tree = -1] (per #174, system pages are never tagged with a user tree); a tree's own data-page [Page_read]/[Page_alloc]/[Page_free] carry the exact tree id. [Page_write] is best-effort: emitted at WAL-flush time, it carries whichever tree was most recently active. *) let translate_pager_event (st : bt_state) (pev : Pager_event.t) : Store_event.t = let txn_id = Pager.get_txn_id st.pager in let tree = Option.value st.current_tree ~default:(-1) in match pev with | Pager_event.Page_read { page_id } -> Store_event.Page_read { txn_id; tree; page = page_id } | Pager_event.Wal_read { page_id } -> Store_event.Wal_read { txn_id; tree; page = page_id } | Pager_event.Page_write { page_id } -> Store_event.Page_write { txn_id; tree; page = page_id } | Pager_event.Page_alloc { page_id; reused } -> Store_event.Page_alloc { txn_id; tree; page = page_id; reused } | Pager_event.Page_free { page_id } -> Store_event.Page_free { txn_id; tree; page = page_id } ;; let set_event_callback (t : t) (cb : (Store_event.t -> unit) option) = match t.backend with | Mem _ -> () (* Mem backend has no bt_state; emits no events (#382). *) | Btree st -> st.on_event <- cb; (match cb with | None -> Pager.set_page_event_callback st.pager None | Some f -> Pager.set_page_event_callback st.pager (Some (fun pev -> (* Same guarantee as [emit_event]: a faulty observer must never break a transaction. *) try f (translate_pager_event st pev) with | _ -> ()))) ;; module Event = Store_event (* ------------------------------------------------------------------ *) (* Follower mode (#172) *) (* ------------------------------------------------------------------ *) (** Enable or disable follower mode on the store. When [true], [rw_begin] rejects write transactions so the standby's WAL does not diverge from the master's stream. No-op on the in-memory backend. *) let set_follower (t : t) (on : bool) = match t.backend with | Mem _ -> () | Btree st -> st.follower <- on; if not on then st.follower_ack_position <- None ;; (** True iff follower mode is active (writes are rejected). *) let is_follower (t : t) = match t.backend with | Mem _ -> false | Btree st -> st.follower ;; (** Record a local [Wal.committed_frames] count as the follower's last-applied commit boundary. [ro_begin] will cap RO snapshots to this position so readers never observe WAL frames past what has been applied on this node (#263). The caller should supply the count from the WAL handle it applied into, so the value lives in local committed-frame count space (no coordinate mismatch vs. master epoch indices) without depending on WAL instance identity between the caller and the store. No-op on the in-memory backend. *) let set_follower_ack_position (t : t) ~(frames : int) = match t.backend with | Mem _ -> () | Btree st -> st.follower_ack_position <- Some frames ;; (** Get the recorded follower ack position (a local [Wal.committed_frames] count), or [None] if not following or no position has been recorded yet. *) let follower_ack_position (t : t) = match t.backend with | Mem _ -> None | Btree st -> st.follower_ack_position ;; let wait_for_readers_past (t : t) ~target = match t.backend with | Mem _ -> Lwt.return_unit | Btree st -> wait_for_readers_past st ~target ~replication_max_yields:st.replication_gate_max_yields ~backup_max_yields:st.backup_gate_max_yields ;; [@@@ai_disclosure "ai-generated"] [@@@ai_model "claude-opus-4-7"] [@@@ai_provider "Anthropic"]
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