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plugmem_host/
db.rs

1//! `Database`: the engine + its file + the maintenance policy behind
2//! one lock (§3).
3//!
4//! The orchestration model in one paragraph: a `Database` handle is
5//! `Clone + Send + Sync` (an `Arc` around an `RwLock`-guarded engine), so
6//! any number of threads or agents in one process share one file by
7//! cloning the handle — the read verbs (`recall`/`get`/`stats`/…) run
8//! concurrently under a shared guard, the write verbs serialize under an
9//! exclusive one; at microsecond engine calls neither is a bottleneck. A
10//! second *process* (or a second `Database` on the same path) is refused
11//! with [`HostError::Locked`] by the file lock. Different files are fully
12//! independent — open as many `Database`s as you have files.
13//!
14//! Everything expensive and external — computing embeddings over HTTP —
15//! happens **before** the lock is taken: while one agent waits for its
16//! embedding provider, others keep reading and writing.
17//!
18//! (Under the `counters` perf-gate feature the engine's instrumentation
19//! `Cell`s are not `Sync`, so the lock falls back to a `Mutex` and reads
20//! serialize — a single-threaded measurement build; the public API is
21//! unchanged. See `StateLock`.)
22//!
23//! ## Overlay write path
24//!
25//! Opening a database does **not** copy its snapshot into RAM. `open`
26//! memory-maps the snapshot file and the engine *borrows* the mapped pages
27//! (an overlay over the base), replaying the journal into a small owned
28//! overlay; a mutation lands its appends in an owned tail and copies only
29//! the pages it rewrites (per-page copy-on-write in `plugmem-arena`). So a
30//! multi-gigabyte database is opened and written to while resident only in
31//! the pages it actually touches — the SQLite model. A snapshot
32//! materializes the base + overlay into a fresh file and **re-maps** it, so
33//! the overlay collapses and a long write session stays bounded. A brand-new
34//! database has no file to map yet: it opens *owned* and empty, and switches
35//! to the mapped overlay at its first snapshot.
36
37use std::cell::RefCell;
38use std::collections::BTreeMap;
39use std::fs::File;
40use std::path::{Path, PathBuf};
41#[cfg(feature = "counters")]
42use std::sync::MutexGuard;
43use std::sync::{Arc, Mutex};
44#[cfg(not(feature = "counters"))]
45use std::sync::{RwLock, RwLockReadGuard, RwLockWriteGuard};
46
47use memmap2::Mmap;
48use plugmem_core::{
49    Config, Error, FactFault, FactRecord, LinkInput, MaintainReport, MemStorage, Memory,
50    OpenReport, RecallQuery, RecallResult, RecallScratch, RememberInput, RememberOutcome, Stats,
51    Storage,
52};
53
54thread_local! {
55    /// Per-thread recall scratch. `recall` takes `&self` on the engine, so many
56    /// reader threads recall one [`Database`] at once; each reuses its own
57    /// scratch here (zero re-alloc after warm-up, no lock on the hot path).
58    static RECALL_SCRATCH: RefCell<RecallScratch> = RefCell::new(RecallScratch::new());
59}
60
61use crate::embedder::Embedder;
62use crate::error::HostError;
63use crate::readonly::ReadOnlyDatabase;
64use crate::storage::{FileScratch, FileStorage, FsyncPolicy};
65
66self_cell::self_cell!(
67    /// Owns the memory map and the overlay [`Memory`] that borrows it — the
68    /// read-write sibling of `readonly::MappedMemory`. `self_cell` keeps the
69    /// self-reference safe: the only `unsafe` on this path is the inherent
70    /// mmap call, not the borrow.
71    struct OverlayMap {
72        owner: Mmap,
73        #[covariant]
74        dependent: OverlayMemory,
75    }
76);
77
78/// The dependent type constructor `self_cell` reborrows per access.
79/// [`Memory`] is covariant in its lifetime (its byte pools are
80/// `Cow<'a, [u8]>`), so borrowing the map is sound.
81type OverlayMemory<'a> = Memory<'a>;
82
83/// The engine backing a live [`Database`]: either an owned in-RAM engine
84/// (a brand-new database with no snapshot file yet) or an overlay over a
85/// memory-mapped snapshot (the common case). Both are mutable; verbs reach
86/// the engine through [`Engine::with`] / [`Engine::read`], which unify the
87/// two lifetimes (`'static` vs the map's) behind one closure.
88enum Engine {
89    /// No snapshot file to map yet — owned and (initially) empty. Switches to
90    /// `Mapped` at the first snapshot, once the file exists. Boxed so the
91    /// common `Mapped` case does not carry the whole owned engine inline.
92    Owned(Box<Memory<'static>>),
93    /// Overlay over a memory-mapped snapshot: the base is borrowed, mutations
94    /// live in the overlay (owned tail + per-page copy-on-write).
95    Mapped(OverlayMap),
96}
97
98impl Engine {
99    /// Reads through an immutable borrow of the engine (owned or mapped).
100    fn read<R>(&self, f: impl for<'a> FnOnce(&Memory<'a>) -> R) -> R {
101        match self {
102            Engine::Owned(mem) => f(mem),
103            Engine::Mapped(map) => f(map.borrow_dependent()),
104        }
105    }
106
107    /// Mutates the engine and its store together (disjoint borrows). The
108    /// closure is higher-ranked over the engine's lifetime so one body serves
109    /// both the `'static` owned engine and the map-bound overlay.
110    fn with<R>(
111        &mut self,
112        store: &mut FileStorage,
113        f: impl for<'a> FnOnce(&mut Memory<'a>, &mut FileStorage) -> R,
114    ) -> R {
115        match self {
116            Engine::Owned(mem) => f(mem, store),
117            Engine::Mapped(map) => map.with_dependent_mut(|_owner, mem| f(mem, store)),
118        }
119    }
120}
121
122/// Opens the engine at `store`'s path: memory-maps the snapshot
123/// and borrows it as an overlay, replaying the journal. A missing snapshot
124/// file (a brand-new database) opens owned and empty — the file appears at the
125/// first snapshot. `store` must already hold the exclusive lock.
126fn open_engine(store: &mut FileStorage, cfg: &Config) -> Result<(Engine, OpenReport), HostError> {
127    let journal = store.read_journal()?;
128    let Some(genp) = store.current_snapshot_path()? else {
129        // No published generation yet. The database is owned until the first
130        // checkpoint publishes one — but a journal may already exist (mutations
131        // before any snapshot), so still replay it into the owned engine.
132        let (mem, report) = Memory::from_bytes(None, &journal, cfg.clone())?;
133        return Ok((Engine::Owned(Box::new(mem)), report));
134    };
135    let file = File::open(&genp).map_err(|e| HostError::io(&genp, e))?;
136    // SAFETY: mapping a file is inherently unsafe — a concurrent truncate or
137    // overwrite of the mapped file would fault the process (SIGBUS/exception)
138    // on the next page access. Our correctness argument: the
139    // generation file is **immutable** (a checkpoint publishes a new one and
140    // never rewrites this), and the `store` holds the exclusive writer lock, so
141    // nothing overwrites it under the map. A foreign `truncate`/`rm` under a
142    // live handle is out of contract — the same caveat as corrupting any
143    // database file under a running engine.
144    let map = unsafe { Mmap::map(&file) }.map_err(|e| HostError::io(&genp, e))?;
145    // The `File` handle is no longer needed: `Mmap` owns the mapping.
146    drop(file);
147    // Replay the journal into the overlay: no whole-arena clone, only the
148    // touched pages copy up. `self_cell` builds the engine borrowing the map;
149    // the replay report is captured out of the constructor closure.
150    let mut report = None;
151    let mapped = OverlayMap::try_new(map, |m| {
152        let (mem, rep) = Memory::from_bytes_overlay(&m[..], &journal, cfg.clone())?;
153        report = Some(rep);
154        Ok::<_, Error>(mem)
155    })?;
156    Ok((Engine::Mapped(mapped), report.unwrap_or_default()))
157}
158
159/// An owned view of one fact — [`Memory::get`] returns borrows that
160/// cannot cross the lock, so the database hands out copies.
161#[derive(Clone, Debug, PartialEq)]
162#[cfg_attr(feature = "serde", derive(serde::Serialize, serde::Deserialize))]
163pub struct FactSnapshot {
164    /// The raw record (temporality, flags, references).
165    pub record: FactRecord,
166    /// The fact text.
167    pub text: String,
168    /// The fact's metadata as a sorted key→value map (empty when the fact
169    /// carries none). The engine stores it opaquely; this is the decoded view.
170    pub metadata: BTreeMap<String, String>,
171}
172
173/// One exported fact — the human-readable, id-free shape [`Database::export`]
174/// dumps and an importer re-`remember`s. Internal ids and
175/// `recorded_at` are the engine's bookkeeping and are *not* preserved across
176/// a round-trip; the knowledge itself (text, subject name, tags, validity
177/// start) is.
178#[derive(Clone, Debug, PartialEq)]
179#[cfg_attr(feature = "serde", derive(serde::Serialize, serde::Deserialize))]
180pub struct ExportedFact {
181    /// The fact text.
182    pub text: String,
183    /// Subject entity name, if the fact had one.
184    pub entity: Option<String>,
185    /// Tag strings.
186    pub tags: Vec<String>,
187    /// Metadata as a sorted key→value map (empty when none) — preserved on
188    /// import.
189    pub metadata: BTreeMap<String, String>,
190    /// When the memory learned it (informational; not restorable on import).
191    pub recorded_at: u64,
192    /// Validity start — preserved on import.
193    pub valid_from: u64,
194}
195
196/// The outcome of a [`Database::recover`] salvage.
197#[derive(Clone, Copy, Debug, PartialEq, Eq)]
198#[cfg_attr(feature = "serde", derive(serde::Serialize, serde::Deserialize))]
199pub struct RecoverReport {
200    /// Facts written to the destination (the survivors after the purge).
201    pub kept: usize,
202    /// Facts dropped because their stored text was not valid UTF-8.
203    pub dropped_text: usize,
204    /// Facts dropped because their vector slot was out of range or mismatched.
205    pub dropped_vector: usize,
206    /// Facts dropped because their metadata blob did not decode to a
207    /// well-formed key→value map.
208    pub dropped_metadata: usize,
209}
210
211/// Visits the currently-open facts (skipping closed revisions and tombstones),
212/// resolving each subject name and tag string, calling `f` once per fact. The
213/// streaming core of export: a caller that writes each fact out (CLI `export`)
214/// never materializes the whole dump, so a huge database exports without a RAM
215/// spike. Shared by the read-write and read-only handles.
216/// Decodes a fact's metadata into an owned, sorted key→value map (empty when
217/// the fact carries none). Shared by `get` (read-write and read-only) and
218/// `export`; the pairs come back from the engine in canonical order, so the
219/// resulting `BTreeMap` matches the raw core view key-for-key.
220pub(crate) fn metadata_map(mem: &Memory, id: plugmem_core::FactId) -> BTreeMap<String, String> {
221    let mut pairs = Vec::new();
222    mem.metadata_of(id, &mut pairs);
223    pairs
224        .into_iter()
225        .map(|(k, v)| (k.to_string(), v.to_string()))
226        .collect()
227}
228
229pub(crate) fn export_facts_each(mem: &Memory, mut f: impl FnMut(ExportedFact)) {
230    use plugmem_core::{EntityId, FactId, VALID_TO_OPEN};
231    let next = mem.stats().next_fact;
232    let mut terms = Vec::new();
233    for i in 0..next {
234        let id = FactId(i);
235        let Some(view) = mem.get(id) else {
236            continue; // unknown or tombstoned
237        };
238        if view.record.valid_to != VALID_TO_OPEN {
239            continue; // a closed revision — export the current state only
240        }
241        let entity = (view.record.entity != EntityId::NONE)
242            .then(|| mem.entity_name(view.record.entity))
243            .flatten()
244            .map(str::to_string);
245        terms.clear();
246        mem.tags_of(id, &mut terms);
247        let tags = terms.iter().map(|t| mem.term(*t).to_string()).collect();
248        f(ExportedFact {
249            text: view.text.to_string(),
250            entity,
251            tags,
252            metadata: metadata_map(mem, id),
253            recorded_at: view.record.recorded_at,
254            valid_from: view.record.valid_from,
255        });
256    }
257}
258
259/// Collects the currently-open facts into a `Vec` (the owning form of
260/// [`export_facts_each`]). Used where the whole dump is wanted in memory.
261pub(crate) fn export_facts(mem: &Memory) -> Vec<ExportedFact> {
262    let mut out = Vec::new();
263    export_facts_each(mem, |e| out.push(e));
264    out
265}
266
267/// Tuning knobs of a [`Database`]. Construct through
268/// [`Database::builder`].
269pub struct DatabaseBuilder {
270    cfg: Config,
271    fsync: FsyncPolicy,
272    snapshot_every_ops: u64,
273    snapshot_journal_bytes: u64,
274    maintain_every_forgets: Option<u64>,
275    embedder: Option<Box<dyn Embedder>>,
276}
277
278impl DatabaseBuilder {
279    /// Journal fsync policy (default: every operation).
280    pub fn fsync(mut self, policy: FsyncPolicy) -> Self {
281        self.fsync = policy;
282        self
283    }
284
285    /// Auto-snapshot after this many mutations (default 1024; `0`
286    /// disables the count trigger).
287    pub fn snapshot_every_ops(mut self, ops: u64) -> Self {
288        self.snapshot_every_ops = ops;
289        self
290    }
291
292    /// Auto-snapshot when the journal outgrows this many bytes (default
293    /// 4 MiB; `0` disables the size trigger).
294    pub fn snapshot_journal_bytes(mut self, bytes: u64) -> Self {
295        self.snapshot_journal_bytes = bytes;
296        self
297    }
298
299    /// Optional auto-`maintain` after this many forgets (default off —
300    /// maintenance is O(database) and the first pass beyond the HNSW
301    /// threshold pays the graph build).
302    pub fn maintain_every_forgets(mut self, forgets: u64) -> Self {
303        self.maintain_every_forgets = Some(forgets);
304        self
305    }
306
307    /// The embedding provider. When set (and its `dim() > 0`),
308    /// `remember` without a vector embeds the fact text and `recall`
309    /// with a text but no vector embeds the query — both outside the
310    /// database lock. `Config::dim` must equal the embedder's dimension.
311    pub fn embedder(mut self, embedder: Box<dyn Embedder>) -> Self {
312        self.embedder = Some(embedder);
313        self
314    }
315
316    /// Opens (or creates) the database at `path`.
317    ///
318    /// # Errors
319    ///
320    /// [`HostError::Locked`] when the file is owned elsewhere;
321    /// [`HostError::Engine`] for config/snapshot/journal problems
322    /// (including an embedder dimension that disagrees with
323    /// `Config::dim`); [`HostError::Io`] for filesystem failures.
324    pub fn open(self, path: impl Into<PathBuf>) -> Result<(Database, OpenReport), HostError> {
325        if let Some(embedder) = &self.embedder {
326            let dim = embedder.dim();
327            if dim != 0 && dim != self.cfg.dim {
328                return Err(HostError::Engine(Error::ConfigMismatch(
329                    "embedder dimension must equal Config::dim",
330                )));
331            }
332        }
333        let mut store = FileStorage::open(path, self.fsync)?;
334        let (engine, report) = open_engine(&mut store, &self.cfg)?;
335        let db = Database {
336            inner: Arc::new(Inner {
337                state: StateLock::new(State {
338                    engine,
339                    store,
340                    ops: 0,
341                    forgets: 0,
342                }),
343                embedder: self.embedder.map(Mutex::new),
344                cfg: self.cfg,
345                snapshot_every_ops: self.snapshot_every_ops,
346                snapshot_journal_bytes: self.snapshot_journal_bytes,
347                maintain_every_forgets: self.maintain_every_forgets,
348            }),
349        };
350        Ok((db, report))
351    }
352}
353
354/// The engine lock. Normally an `RwLock` so read-only verbs run concurrently
355/// (the whole point of Variant 1). Under `counters`, `State` embeds the arena's
356/// non-`Sync` instrumentation `Cell`s, and `RwLock<T>` needs `T: Sync` to hand
357/// out shared guards — so there we fall back to a `Mutex`. `counters` is a
358/// single-threaded perf-gate build, so serialized readers cost nothing there,
359/// and the `Mutex` keeps `Database: Send + Sync` so every test still builds.
360#[cfg(not(feature = "counters"))]
361type StateLock = RwLock<State>;
362#[cfg(feature = "counters")]
363type StateLock = Mutex<State>;
364
365struct Inner {
366    state: StateLock,
367    embedder: Option<Mutex<Box<dyn Embedder>>>,
368    /// Kept to rebuild the overlay engine after a re-map on snapshot.
369    cfg: Config,
370    snapshot_every_ops: u64,
371    snapshot_journal_bytes: u64,
372    maintain_every_forgets: Option<u64>,
373}
374
375struct State {
376    engine: Engine,
377    store: FileStorage,
378    /// Mutations since the last snapshot.
379    ops: u64,
380    /// Forgets since the last maintain.
381    forgets: u64,
382}
383
384/// A clonable, thread-safe handle to one database file. See the module
385/// docs for the concurrency model.
386#[derive(Clone)]
387pub struct Database {
388    inner: Arc<Inner>,
389}
390
391impl Database {
392    /// Opens `path` with every knob at its default and no embedder.
393    pub fn open(path: impl Into<PathBuf>, cfg: Config) -> Result<(Self, OpenReport), HostError> {
394        Self::builder(cfg).open(path)
395    }
396
397    /// Opens `path` read-only over a memory-mapped snapshot:
398    /// the engine borrows the mapped pages instead of copying the file
399    /// into RAM, so a large read-mostly database residents only the pages
400    /// `recall`/`get` touch. Requires a checkpointed database (empty
401    /// journal) and takes a shared lock (N readers or one writer).
402    /// See [`ReadOnlyDatabase`].
403    ///
404    /// # Errors
405    ///
406    /// [`HostError::Locked`], [`HostError::NeedsCheckpoint`],
407    /// [`HostError::Io`], [`HostError::Engine`] — see
408    /// [`ReadOnlyDatabase::open`] semantics.
409    pub fn open_readonly(
410        path: impl Into<PathBuf>,
411        cfg: Config,
412    ) -> Result<ReadOnlyDatabase, HostError> {
413        ReadOnlyDatabase::open(path, cfg)
414    }
415
416    /// Starts a configured open (knobs).
417    pub fn builder(cfg: Config) -> DatabaseBuilder {
418        DatabaseBuilder {
419            cfg,
420            fsync: FsyncPolicy::default(),
421            snapshot_every_ops: 1024,
422            snapshot_journal_bytes: 4 * 1024 * 1024,
423            maintain_every_forgets: None,
424            embedder: None,
425        }
426    }
427
428    /// A shared (read) guard — for the read-only verbs (`recall`/`get`/
429    /// `stats`/`export`/`verify`). Many run at once; they exclude only writers.
430    /// (Under `counters` the lock is a `Mutex`, so reads serialize — see
431    /// [`StateLock`].) A panicked verb cannot leave the engine half-mutated
432    /// (check first, mutate last is the engine's own law), so a poisoned lock
433    /// is recoverable.
434    #[cfg(not(feature = "counters"))]
435    fn read(&self) -> RwLockReadGuard<'_, State> {
436        self.inner.state.read().unwrap_or_else(|e| e.into_inner())
437    }
438
439    /// An exclusive (write) guard — for the mutating verbs. Serializes writers
440    /// against each other and against every concurrent reader.
441    #[cfg(not(feature = "counters"))]
442    fn write(&self) -> RwLockWriteGuard<'_, State> {
443        self.inner.state.write().unwrap_or_else(|e| e.into_inner())
444    }
445
446    /// Under `counters` the engine lock is a `Mutex`: `read` and `write` both
447    /// take the one exclusive guard (readers serialize — acceptable for the
448    /// single-threaded perf-gate build). See [`StateLock`].
449    #[cfg(feature = "counters")]
450    fn read(&self) -> MutexGuard<'_, State> {
451        self.inner.state.lock().unwrap_or_else(|e| e.into_inner())
452    }
453
454    #[cfg(feature = "counters")]
455    fn write(&self) -> MutexGuard<'_, State> {
456        self.inner.state.lock().unwrap_or_else(|e| e.into_inner())
457    }
458
459    /// Embeds `text` outside the state lock, when an embedder is
460    /// configured. `None` = leave the input as it was.
461    fn embed_one(&self, text: &str) -> Result<Option<Vec<f32>>, HostError> {
462        let Some(embedder) = &self.inner.embedder else {
463            return Ok(None);
464        };
465        let mut embedder = embedder.lock().unwrap_or_else(|e| e.into_inner());
466        if embedder.dim() == 0 {
467            return Ok(None);
468        }
469        let mut vs = embedder.embed(&[text])?;
470        Ok(Some(vs.remove(0)))
471    }
472
473    /// Embeds a whole batch of texts in a **single** embedder call — outside the
474    /// lock, like [`embed_one`](Self::embed_one). `Ok(None)` when no embedder is
475    /// configured or `dim == 0`; otherwise a vector aligned one-to-one with
476    /// `texts` (the provider contract, checked by [`OpenAiCompatEmbedder`]). An
477    /// empty `texts` yields an empty vector without a round-trip. This is the one
478    /// HTTP that [`remember_many`](Self::remember_many) makes for a bulk write.
479    fn embed_many(&self, texts: &[&str]) -> Result<Option<Vec<Vec<f32>>>, HostError> {
480        let Some(embedder) = &self.inner.embedder else {
481            return Ok(None);
482        };
483        let mut embedder = embedder.lock().unwrap_or_else(|e| e.into_inner());
484        if embedder.dim() == 0 {
485            return Ok(None);
486        }
487        if texts.is_empty() {
488            return Ok(Some(Vec::new()));
489        }
490        Ok(Some(embedder.embed(texts)?))
491    }
492
493    /// Writes a full snapshot and re-maps the fresh file.
494    ///
495    /// Materializes the borrowed base + overlay into an owned buffer, drops
496    /// the current map, writes the buffer (tmp + fsync + rename) and clears
497    /// the journal, then maps the new file into a fresh overlay. The re-map
498    /// collapses the overlay so a long write session stays bounded, and
499    /// dropping the map **before** the rename keeps the write portable
500    /// (a mapped file cannot be renamed over on Windows).
501    fn resnapshot(&self, st: &mut State, now: u64) -> Result<(), HostError> {
502        // Stream the image straight to the tmp file — never a full-image Vec
503        // This reads through the live map, so it happens
504        // **before** the map is dropped.
505        {
506            let State { engine, store, .. } = &mut *st;
507            store.stage_snapshot(|sink| {
508                engine
509                    .read(|mem| mem.write_snapshot_to(now, &mut *sink))
510                    .map_err(HostError::from)
511            })?;
512        }
513        // Drop the current map before the rename: park a cheap empty engine.
514        // It is replaced by the fresh overlay below — or, if the commit fails,
515        // rebuilt from the intact on-disk snapshot + journal.
516        st.engine = Engine::Owned(Box::new(Memory::new(self.inner.cfg.clone())?));
517        let write = st
518            .store
519            .commit_snapshot()
520            .and_then(|()| st.store.clear_journal());
521        // Re-open regardless: on success the fresh file, on failure the
522        // untouched old file + journal (journal replay is idempotent, so a
523        // failed `clear_journal` does not corrupt state). Then surface the
524        // commit error, if any.
525        let (engine, _) = open_engine(&mut st.store, &self.inner.cfg)?;
526        st.engine = engine;
527        write
528    }
529
530    /// The post-mutation policy hook: counts the op, fires auto-maintain
531    /// and auto-snapshot inside the same critical section.
532    fn after_mutation(&self, st: &mut State, now: u64) -> Result<(), HostError> {
533        st.ops += 1;
534        if let Some(threshold) = self.inner.maintain_every_forgets
535            && st.forgets >= threshold
536        {
537            let State { engine, store, .. } = &mut *st;
538            engine.with(store, |mem, store| mem.maintain(store, now))?;
539            st.forgets = 0;
540        }
541        let by_ops = self.inner.snapshot_every_ops > 0 && st.ops >= self.inner.snapshot_every_ops;
542        let by_bytes = self.inner.snapshot_journal_bytes > 0
543            && st.store.journal_bytes() >= self.inner.snapshot_journal_bytes;
544        if by_ops || by_bytes {
545            self.resnapshot(st, now)?;
546            st.ops = 0;
547        }
548        Ok(())
549    }
550
551    /// Remembers a fact. Without an explicit vector and with an embedder
552    /// configured, the text is embedded first — outside the lock.
553    pub fn remember(&self, input: RememberInput<'_>) -> Result<RememberOutcome, HostError> {
554        let embedded = match input.vector {
555            Some(_) => None,
556            None => self.embed_one(input.text)?,
557        };
558        let input = RememberInput {
559            vector: embedded.as_deref().or(input.vector),
560            ..input
561        };
562        let mut st = self.write();
563        let State { engine, store, .. } = &mut *st;
564        let out = engine.with(store, |mem, store| mem.remember(store, input))?;
565        self.after_mutation(&mut st, input.now)?;
566        Ok(out)
567    }
568
569    /// Remembers a **batch** of facts in one shot — the bulk-write path (CLI
570    /// `import`). Equivalent to [`remember`](Self::remember) on each input in
571    /// order, but far cheaper for a batch: the texts that need embedding are
572    /// embedded together in **one** embedder round-trip (outside the lock), and
573    /// all facts are written under **one** write-guard with **one** post-mutation
574    /// policy pass — instead of N HTTP calls and N critical sections.
575    ///
576    /// Inputs that already carry a `vector` are not re-embedded. **Chunking is
577    /// the caller's job**: this writes the whole slice it is given, so a caller
578    /// that needs bounded memory / a bounded HTTP body passes fixed-size batches
579    /// (CLI `import` streams the file in `--batch`-sized slices).
580    ///
581    /// **Fail-fast:** the first engine error returns `Err`; the facts written
582    /// before it stay written (exactly as separate `remember`s — the journal
583    /// replay is idempotent, so a retried bulk load is safe). Returns one
584    /// [`RememberOutcome`] per input, in order.
585    pub fn remember_many(
586        &self,
587        inputs: Vec<RememberInput<'_>>,
588    ) -> Result<Vec<RememberOutcome>, HostError> {
589        if inputs.is_empty() {
590            return Ok(Vec::new());
591        }
592        // One embedder round-trip for every vector-less input's text, outside the
593        // lock. `to_embed` is the vector-less inputs in order, so its result maps
594        // back onto them by a running cursor below.
595        let to_embed: Vec<&str> = inputs
596            .iter()
597            .filter(|i| i.vector.is_none())
598            .map(|i| i.text)
599            .collect();
600        let embedded = if to_embed.is_empty() {
601            None
602        } else {
603            self.embed_many(&to_embed)?
604        };
605
606        let mut st = self.write();
607        // Batch mode: journal appends skip their per-record fsync; one
608        // `sync_journal` at the end makes the whole batch durable at once.
609        st.store.set_batch(true);
610        let mut out = Vec::with_capacity(inputs.len());
611        let mut cursor = 0usize; // into `embedded`, over vector-less inputs in order
612        let mut latest = 0u64;
613        let mut failed = None;
614        for input in inputs {
615            latest = latest.max(input.now);
616            let vector = if input.vector.is_some() {
617                input.vector
618            } else if let Some(embedded) = &embedded {
619                let v = embedded[cursor].as_slice();
620                cursor += 1;
621                Some(v)
622            } else {
623                None // no embedder — lexical/structural only, as single remember
624            };
625            let input = RememberInput { vector, ..input };
626            let State { engine, store, .. } = &mut *st;
627            match engine.with(store, |mem, store| mem.remember(store, input)) {
628                Ok(o) => out.push(o),
629                Err(e) => {
630                    failed = Some(HostError::from(e));
631                    break;
632                }
633            }
634        }
635        // Always leave batch mode and fsync — this is the batch's durability
636        // point. On fail-fast it makes the facts written before the error durable
637        // (they stay, exactly like separate remembers).
638        st.store.set_batch(false);
639        st.store.sync_journal()?;
640        if let Some(e) = failed {
641            return Err(e);
642        }
643        // One policy pass for the whole batch. The op counter advances by one per
644        // batch; the journal-bytes threshold still fires on a large batch, so a
645        // snapshot is not starved.
646        self.after_mutation(&mut st, latest)?;
647        Ok(out)
648    }
649
650    /// Runs a recall. With a text, no vector and an embedder configured,
651    /// the query text is embedded first — outside the lock.
652    pub fn recall(&self, q: RecallQuery<'_>) -> Result<RecallResult, HostError> {
653        let embedded = match (q.vector, q.text) {
654            (None, Some(text)) => self.embed_one(text)?,
655            _ => None,
656        };
657        let q = RecallQuery {
658            vector: embedded.as_deref().or(q.vector),
659            ..q
660        };
661        // A shared guard: concurrent recalls run in parallel. `recall_into`
662        // takes `&self` on the engine and a per-thread scratch, so there is no
663        // writer path and no cross-reader contention on the hot path.
664        let st = self.read();
665        RECALL_SCRATCH.with(|scratch| {
666            let mut scratch = scratch.borrow_mut();
667            let mut out = RecallResult::default();
668            st.engine
669                .read(|mem| mem.recall_into(q, &mut scratch, &mut out))?;
670            Ok(out)
671        })
672    }
673
674    /// Revises `target` (same auto-embedding rule as `remember`).
675    pub fn revise(
676        &self,
677        target: plugmem_core::FactId,
678        input: RememberInput<'_>,
679    ) -> Result<RememberOutcome, HostError> {
680        let embedded = match input.vector {
681            Some(_) => None,
682            None => self.embed_one(input.text)?,
683        };
684        let input = RememberInput {
685            vector: embedded.as_deref().or(input.vector),
686            ..input
687        };
688        let mut st = self.write();
689        let State { engine, store, .. } = &mut *st;
690        let out = engine.with(store, |mem, store| mem.revise(store, target, input))?;
691        self.after_mutation(&mut st, input.now)?;
692        Ok(out)
693    }
694
695    /// Tombstones a fact.
696    pub fn forget(&self, now: u64, id: plugmem_core::FactId) -> Result<bool, HostError> {
697        let mut st = self.write();
698        let State { engine, store, .. } = &mut *st;
699        let fresh = engine.with(store, |mem, store| mem.forget(store, now, id))?;
700        st.forgets += 1;
701        self.after_mutation(&mut st, now)?;
702        Ok(fresh)
703    }
704
705    /// Upserts a typed edge.
706    pub fn link(&self, input: LinkInput<'_>) -> Result<(), HostError> {
707        let mut st = self.write();
708        let State { engine, store, .. } = &mut *st;
709        engine.with(store, |mem, store| mem.link(store, input))?;
710        self.after_mutation(&mut st, input.now)?;
711        Ok(())
712    }
713
714    /// An owned copy of one fact, or `None` for unknown/tombstoned ids.
715    pub fn get(&self, id: plugmem_core::FactId) -> Option<FactSnapshot> {
716        self.read().engine.read(|mem| {
717            mem.get(id).map(|v| FactSnapshot {
718                record: v.record,
719                text: v.text.to_string(),
720                metadata: metadata_map(mem, id),
721            })
722        })
723    }
724
725    /// Engine size counters.
726    pub fn stats(&self) -> Stats {
727        self.read().engine.read(|mem| mem.stats())
728    }
729
730    /// Dumps the currently-open facts for a human-readable backup
731    /// See [`ExportedFact`]. Collects the whole set; for a large
732    /// database prefer [`export_each`](Self::export_each), which streams.
733    pub fn export(&self) -> Vec<ExportedFact> {
734        self.read().engine.read(export_facts)
735    }
736
737    /// Streams the currently-open facts, calling `f` once per fact under the
738    /// read guard — the whole dump is never materialized, so a huge database
739    /// exports without a RAM spike (CLI `export` writes each line straight out).
740    /// See [`ExportedFact`].
741    pub fn export_each(&self, f: impl FnMut(ExportedFact)) {
742        self.read().engine.read(|mem| export_facts_each(mem, f));
743    }
744
745    /// Runs a maintenance pass now (purge, compaction, HNSW build past the
746    /// threshold — for the cost model).
747    ///
748    /// **Disk-first** (milestone H): the compacted image is written by streaming
749    /// the two big pools (vectors, text) through temp files and then re-mapped,
750    /// so peak RAM tracks the record count (metadata + graph), not the image
751    /// size — a database larger than RAM can be maintained. It writes a fresh
752    /// snapshot and clears the journal (like a checkpoint). The optional
753    /// auto-maintain policy (`maintain_every_forgets`) still runs in RAM inline
754    /// — it is for databases that fit.
755    ///
756    /// The report's byte counts are the on-disk image size before and after.
757    pub fn maintain(&self, now: u64) -> Result<MaintainReport, HostError> {
758        let mut st = self.write();
759        // The image size is the current snapshot generation's, not the tiny
760        // manifest at the base path.
761        let snap_len = |store: &FileStorage| -> usize {
762            store
763                .current_snapshot_path()
764                .ok()
765                .flatten()
766                .and_then(|p| std::fs::metadata(&p).ok())
767                .map(|m| m.len() as usize)
768                .unwrap_or(0)
769        };
770        let bytes_before = snap_len(&st.store);
771        let text_tmp = tmp_sibling(st.store.path(), "mtext");
772        let vec_tmp = tmp_sibling(st.store.path(), "mvec");
773
774        // Stage a compacted snapshot, streaming the big pools through scratch;
775        // this reads through the live map, so it happens before the map is
776        // dropped (as in `resnapshot`).
777        let mut purged = 0usize;
778        {
779            let State { engine, store, .. } = &mut *st;
780            store.stage_snapshot(|sink| {
781                engine.read(|mem| {
782                    let mut text_scratch = FileScratch::create(&text_tmp)?;
783                    let mut vec_scratch = FileScratch::create(&vec_tmp)?;
784                    purged = mem
785                        .snapshot_disk_first(now, &mut text_scratch, &mut vec_scratch, &mut *sink)
786                        .map_err(HostError::from)?;
787                    Ok(())
788                })
789            })?;
790        }
791        // Drop the current map before the rename (park a cheap empty engine),
792        // commit, clear the journal, then re-map the compacted file — exactly
793        // the `resnapshot` dance, so the map is never renamed over on Windows.
794        st.engine = Engine::Owned(Box::new(Memory::new(self.inner.cfg.clone())?));
795        st.store
796            .commit_snapshot()
797            .and_then(|()| st.store.clear_journal())?;
798        let (engine, _) = open_engine(&mut st.store, &self.inner.cfg)?;
799        st.engine = engine;
800        st.forgets = 0;
801        st.ops = 0;
802        let bytes_after = snap_len(&st.store);
803        Ok(MaintainReport {
804            purged,
805            bytes_before,
806            bytes_after,
807        })
808    }
809
810    /// Writes a full snapshot and clears the journal now (re-mapping the
811    /// fresh file — see [`Database::resnapshot`]).
812    pub fn checkpoint(&self, now: u64) -> Result<(), HostError> {
813        let mut st = self.write();
814        self.resnapshot(&mut st, now)?;
815        st.ops = 0;
816        Ok(())
817    }
818
819    /// Runs the on-demand integrity check — the equivalent of
820    /// SQLite's `integrity_check`. An open validates only the metadata, so the
821    /// large byte pools stay non-resident on an mmap'd base; this sweeps them
822    /// (text UTF-8, vector self-consistency and the fact↔slot bijection) and
823    /// reports any latent corruption. Skipping it is safe — the accessors never
824    /// panic on bad bytes; `verify` only turns corruption into an explicit
825    /// error.
826    ///
827    /// # Errors
828    ///
829    /// [`HostError::Engine`] wrapping [`Error::Corrupt`](plugmem_core::Error)
830    /// for the first inconsistency found.
831    pub fn verify(&self) -> Result<(), HostError> {
832        Ok(self.read().engine.read(|mem| mem.verify())?)
833    }
834
835    /// Salvages a content-corrupt database (Tier 2): opens `src`,
836    /// drops the facts that fail the per-fact content checks (`verify`'s
837    /// predicate), compacts the survivors and their indexes, and writes a clean
838    /// image to `dst`. `src` on disk is left untouched — the evidence is
839    /// preserved.
840    ///
841    /// It is **disk-first** (milestone H): `src` is opened as an mmap overlay
842    /// (its pages are reclaimable) and the compacted image is written by
843    /// streaming the two big pools (vectors, text) through temp files, so peak
844    /// RAM tracks the record count (metadata + HNSW graph), not the image size.
845    /// A database far larger than RAM can be recovered, as long as its graph
846    /// fits.
847    ///
848    /// This handles *content* corruption (bad text bytes, a broken fact↔slot
849    /// vector bijection). *Structural* damage — a snapshot that will not parse
850    /// — is not salvageable here: `src` fails to open and recover returns the
851    /// engine's typed error; restore from a backup instead (Tier 0).
852    ///
853    /// # Errors
854    ///
855    /// [`HostError::Locked`] if `src` or `dst` is owned elsewhere;
856    /// [`HostError::Engine`] if `src` will not parse (structural corruption) or
857    /// `dst` equals `src`; [`HostError::Io`] for filesystem failures.
858    pub fn recover(
859        src: impl AsRef<Path>,
860        dst: impl AsRef<Path>,
861        cfg: Config,
862        now: u64,
863    ) -> Result<RecoverReport, HostError> {
864        let src = src.as_ref();
865        let dst = dst.as_ref();
866
867        // Lock the source exclusively for the salvage's whole life. We never
868        // write it — the lock only excludes a cooperating writer while we read.
869        let mut src_store = FileStorage::open(src, FsyncPolicy::OnSnapshot)?;
870        let src_base = src_store.path().to_path_buf();
871
872        // The destination must be a different file: recover preserves the source
873        // as evidence and writes the clean image elsewhere.
874        let same = dst == src_base
875            || matches!(
876                (std::fs::canonicalize(dst), std::fs::canonicalize(&src_base)),
877                (Ok(a), Ok(b)) if a == b
878            );
879        if same {
880            return Err(HostError::Engine(Error::Invalid(
881                "recover destination must differ from the source",
882            )));
883        }
884
885        // Open the source as an overlay: borrow the mmap base (reclaimable
886        // pages) and replay its journal into a small owned overlay — never an
887        // owned copy of the image. A structurally corrupt image fails here —
888        // that is Tier 0, not salvageable content corruption.
889        let journal = src_store.read_journal()?;
890        let Some(genp) = src_store.current_snapshot_path()? else {
891            return Err(HostError::Engine(Error::Corrupt(
892                "source database has no published snapshot to recover",
893            )));
894        };
895        let file = File::open(&genp).map_err(|e| HostError::io(&genp, e))?;
896        // SAFETY: as in `open_engine` — the generation file is immutable and
897        // `src_store` holds the exclusive lock, so nothing touches it under us.
898        let map = unsafe { Mmap::map(&file) }.map_err(|e| HostError::io(&genp, e))?;
899        drop(file);
900        let (mut mem, _report) = Memory::from_bytes_overlay(&map[..], &journal, cfg.clone())?;
901
902        // Drop each content-faulty fact into a throwaway store, so the source
903        // file is never written. The disk-first rebuild below then physically
904        // purges them and rebuilds clean indexes + HNSW from the survivors.
905        let mut scratch = MemStorage::new();
906        let mut dropped_text = 0usize;
907        let mut dropped_vector = 0usize;
908        let mut dropped_metadata = 0usize;
909        for (id, fault) in mem.faulty_facts() {
910            mem.forget(&mut scratch, now, id)?;
911            match fault {
912                FactFault::Text => dropped_text += 1,
913                FactFault::Vector => dropped_vector += 1,
914                FactFault::Metadata => dropped_metadata += 1,
915            }
916        }
917
918        // Write the compacted image to `dst`, streaming the big pools through
919        // temp scratch files (metadata + graph are the only things resident).
920        let mut dst_store = FileStorage::open(dst, FsyncPolicy::OnSnapshot)?;
921        let text_tmp = tmp_sibling(dst_store.path(), "rectext");
922        let vec_tmp = tmp_sibling(dst_store.path(), "recvec");
923        let mut purged = 0usize;
924        dst_store.stage_snapshot(|sink| {
925            let mut text_scratch = FileScratch::create(&text_tmp)?;
926            let mut vec_scratch = FileScratch::create(&vec_tmp)?;
927            purged = mem
928                .snapshot_disk_first(now, &mut text_scratch, &mut vec_scratch, &mut *sink)
929                .map_err(HostError::from)?;
930            Ok(())
931        })?;
932        dst_store.commit_snapshot()?;
933
934        let kept = mem.stats().facts.saturating_sub(purged);
935        Ok(RecoverReport {
936            kept,
937            dropped_text,
938            dropped_vector,
939            dropped_metadata,
940        })
941    }
942}
943
944/// A temp-file path beside `base` with the given tag (for disk-first scratch).
945fn tmp_sibling(base: &Path, tag: &str) -> PathBuf {
946    let mut p = base.as_os_str().to_os_string();
947    p.push(".");
948    p.push(tag);
949    p.push(".tmp");
950    PathBuf::from(p)
951}
952
953impl std::fmt::Debug for Database {
954    /// Summary only — the contents are the user's memory.
955    fn fmt(&self, f: &mut std::fmt::Formatter<'_>) -> std::fmt::Result {
956        let stats = self.stats();
957        f.debug_struct("Database")
958            .field("facts", &stats.facts)
959            .field("entities", &stats.entities)
960            .finish()
961    }
962}