- `readiness: ready | refine` is a SECOND axis, orthogonal to status.
`ready` = the brainstorm is complete and the decisions are LOCKED (a spec
approved, or the forks explicitly confirmed). `refine` = open forks remain
and it cannot be planned yet
- `status: refine` RETIRED because it carried both meanings at once, so a held
iteration with an approved spec (language 18, 26) was indistinguishable from
one nobody had thought about. status is now purely where the WORK is:
done | in-progress | pending | hold — `pending` was already the board's own
rendering word, so nothing new was invented
- all 47 iterations classified from EVIDENCE in their own text, not by guess:
"the four forks are SETTLED" / "spec + plan approved" / "Approved spec:" for
ready; "Forks the spec must settle" / "no spec exists yet" for refine. Every
shipped iteration is ready by definition. 19 done, 5 in-progress, 15
pending, 8 hold; 27 ready, 20 refine
- two iterations moved refine -> in-progress rather than -> pending: language
31 and 34 are absorbed into 24 and work on them is literally happening, which
the board already showed as 🔄 while their frontmatter said otherwise. That
disagreement is now gone
- board legend, board-views' frontmatter contract, and two new Dataview
queries updated — the useful one being `readiness: ready AND status:
pending`, the startable set
WHAT THE NEW AXIS IMMEDIATELY SURFACED: of 15 pending iterations, exactly ONE
is startable — databasev2 4, io_uring group-commit, whose forks were confirmed
settled 2026-08-20. Everything else pending needs a brainstorm first. That was
invisible while one key carried both meanings, and it is now on the board.
Also caught by the sweep, unrelated to readiness but found by cross-checking
frontmatter against the board: SIX duplicate rows. Every iteration moved into
databasev2 was still listed in the LANGUAGE pending table under its retired id
(23, 32, 33, 20, 21, 27) as well as its new one. Stale copies removed. And two
databasev2 rows made claims the sweep contradicts — iteration 1 was billed
"startable today" while its forks are open, and 6 still called itself the
ceiling-raiser after 2 took that role.
Docs only. linkcheck 0 broken / 0 anchors.
Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com>
5 KiB
| track | iteration | was_language_iteration | status | readiness | chain |
|---|---|---|---|---|---|
| databasev2 | 3 | 32 | pending | refine | 6 |
databasev2 3 — WAL checkpoint: disk space reclamation and bounded replay
Moved 2026-08-26 from the language track, where this was iteration 32. Part of Story — databasev2: the database beyond RAM. Content unchanged by the move; its dependencies are restated in that track index.
Format:
product/story-iteration-template. Part of Story — one language, one runtime, one database, one binary — the track this iteration was authored in before the 2026-08-26 move.Inserted 2026-08-21 (stage-3 guarantee refinement found the hole): the WAL is append-only FOREVER — no checkpoint, no truncation exists in the engine or anywhere on the roadmap. Disk grows without bound and replay time grows with history, so restart cost rises with every write the program ever made. RAM reclamation already exists (deleted rows free their slot —
04-db-binding.md: "Ids are never reused; slots are"); this iteration is the DISK half. LAST in the concurrency chain: stage 3 → 22 → 31 → 24 → 23 → 32 — it wants 22's measured replay/restart numbers to justify its policy and must compose with 23's group-commit write path.
Goals
- Disk space is reclaimed. A checkpoint writes the live store as a snapshot and truncates the WAL behind it; deleted rows and overwritten versions stop occupying disk forever.
- Replay is bounded. Startup replays snapshot + WAL tail, not the program's whole write history — restart time becomes a function of store size, not store age.
- Every existing guarantee holds byte-for-byte. Ack-after-durable, replay-whole-or-not-at-all, torn-tail drop, ids never reused — a checkpoint changes where bytes live, never what an ack means. A crash DURING checkpoint recovers from the previous snapshot + full tail: the old WAL is not truncated until the new snapshot is durable.
Acceptance Criteria (draft — the spec refines)
- Given a store with N rows after many writes and deletes, when a checkpoint completes, then disk usage reflects the live rows (plus the WAL tail), and a restart replays snapshot + tail to the byte-identical store.
- Given kill -9 at ANY instant during a checkpoint, when the process restarts, then recovery produces the same consistent store as if the checkpoint had never started — no acknowledged write lost, no partial snapshot ever read.
- Given the iteration-22 restart benchmark re-run after checkpoint lands, when replay time is measured on an aged store, then the bounded-replay improvement is recorded as a before/after delta.
- Given writes arriving while a checkpoint runs (the DB actor serializes statements; the checkpoint must not stall them beyond the stated budget), when the mixed load completes, then every ack held its durability contract and the tail contains exactly the post-snapshot writes.
Out Of Scope
- MVCC / multi-version reads — the store is update-in-place RAM; "old versions" exist only as WAL history, which is exactly what truncation reclaims.
- Incremental/streaming backup, point-in-time recovery — a snapshot is a recovery artifact here, not a backup product.
- Cross-shard checkpoint coordination — the WAL is owner-shard-only (stage 3's rule); one shard, one checkpoint.
- Compression, dedup, tiering — measure first (22), add only what a number justifies.
Info
Forks the spec must settle:
- Snapshot format — a row-image dump of the live store (simple, O(live rows)) vs a rewritten-compacted WAL (reuses replay machinery, O(live rows) too but stays in one format). Leaning: row-image dump in the WAL's existing record grammar, so replay needs no second decoder.
- Trigger policy — size threshold (WAL bytes vs snapshot bytes ratio), boot-time compaction, explicit call, or some mix. Leaning: ratio threshold checked at commit, plus manual trigger for tests; decided against 22's numbers.
- Write availability during checkpoint — stop-the-world dump (simplest; the DB actor just runs one long "statement") vs fork-and-dump vs incremental copy. Leaning: measure the stop-the-world pause on the 1M-row store first (22); complexity only if the pause breaks a stated budget.
- Composition with 23 — the snapshot's durability barrier rides
the same per-shard ring (WRITE+FSYNC chain, then the truncate);
ordering vs in-flight group commits must be stated normatively in
04-db-binding.md's WAL section.
Proposed Solution
Brainstorm → spec → plan after 23 lands (the write path it composes
with) using 22's aged-store replay numbers as the policy input; extend
04-db-binding.md's WAL section with the snapshot format the way the
record grammar is documented today.