- plan 2026-08-21-db-bench.md: 6 tasks (time.ticks builtin, sample, concurrent modes, driver+gate, first baseline + gate-bites proof, closeout); words + verification commands per convention - spec banner APPROVED; story 22 to in-progress/ (frontmatter synced); marker doc created; board standup/rows/pending updated Co-Authored-By: Claude Fable 5 <noreply@anthropic.com>
8.8 KiB
| iteration | status | chain |
|---|---|---|
| 22 | in-progress | 2 |
Iteration 22 — durability proof, throughput, and scale under load
Format:
product/story-iteration-template. Part of Story — one language, one runtime, one database, one binary.Inserted 2026-08-15. The measurement backbone. Everything after the functional engine (9/9b) is an optimization, and an optimization without a number is a guess — this iteration is the number. It comes before the optimization iterations (7b GC, 8 shard-actor, 23 io_uring) reopen for performance work, because each of those must be gated by re-running THIS iteration's benchmark and showing the number moved the right way.
No spec exists yet. The forks in Info are genuine decisions.SPEC APPROVED 2026-08-21 — the four forks below are SETTLED as their recorded leanings (developer confirmation), plus two new decisions: the vehicle is a NEW sample
docs/examples/db-bench(employee stays a teaching sample) andtime.ticks(CLOCK_MONOTONIC µs) is the iteration's one runtime addition. Spec:2026-08-21-db-bench-design.md· plan:2026-08-21-db-bench.md— in progress (second slice of the chain).RE-SEQUENCED 2026-08-21 (developer decision): runs AFTER the arc's stage 3 — the transparent DB actor is a correctness hole (a multi-shard program touching the database traps
WO_T_DBtoday), and fixing it first lets ONE benchmark campaign cover single- and multi-shard honestly. The arc's stages 1+2 landed 2026-08-20 unmeasured; their delta is recorded retroactively against this iteration's first baseline. New measurement target since stage 2: the mutex-guarded inbox + eventfd (the plan's deviation — lock-free rings arrive only if this number says the mutex costs). Chain order: stage 3 → 22 → 31 → 24 → 23 → 32.
Goals
- Durability is proven by a restart, not asserted. The employee program (iteration 9b) runs, writes rows, is stopped and restarted, and every acknowledged write is present after replay — the WAL's promise turned into a scripted acceptance on a real program, not just the unit-level crash battery.
- Read and write throughput are measured, published, and defended. A repeatable benchmark drives the engine through the language (not the C API): inserts/sec, point-reads/sec, indexed-query/sec, each with p50/p99 latency, recorded in the tree so a regression is a diff.
- The scale target is a gate, not a slogan. "A million users can read and write" becomes a concrete load: a dataset of ~1M rows across the sample's tables, a mixed read/write workload at a stated concurrency, sustained for a stated duration, with throughput and tail latency inside a stated budget and RSS flat (the log-watcher soak discipline, at database scale).
- The benchmark is the contract every later optimization signs. 7b (GC), 8 (shard-actor threads), and 23 (io_uring) each re-run this and record the before/after — no optimization lands without a measured delta.
Acceptance Criteria
- What to achieve?
- Given the employee program seeded with data and then stopped,
- when it is restarted and queried,
- then every acknowledged row is present with its exact contents, the ids continue past the persisted maximum, and a query that used an index before the restart uses it after (the index was rebuilt on replay).
- What to achieve?
- Given the benchmark harness driving inserts, point reads, and
indexed queries through compiled
.wo, - when it runs to completion,
- then it reports ops/sec and p50/p99 for each operation class, writes the numbers to a tracked results file, and fails if any number crosses a recorded regression threshold.
- Given the benchmark harness driving inserts, point reads, and
indexed queries through compiled
- What to achieve?
- Given ~1M rows and a mixed read/write workload at the target concurrency held for the target duration,
- when it runs,
- then throughput stays above the floor, p99 stays under the ceiling, RSS is flat between a warmed baseline and the end (no growth beyond tolerance), zero descriptors leak, and — for a write-inclusive run under a durable configuration — a kill mid-load followed by replay loses no acknowledged write.
- What to achieve?
- Given any later optimization iteration (7b, 8, 23),
- when it claims a speedup,
- then this benchmark's before/after numbers are in that iteration's record, and a claim with no measured delta is not accepted.
Out Of Scope
- The optimizations themselves. This iteration MEASURES; 7b/8/23 change. A single-thread RAM-authoritative baseline is a legitimate first number — the point is to have one before anyone tunes.
- Distributed / multi-machine load. Same-machine, one process (or one process per shard once iteration 8 lands). Cross-host is the network layer's concern, much later.
- Micro-optimizing the benchmark harness. It must be honest and repeatable, not itself fast; if the harness is the bottleneck the spec says so and fixes that, but a perfect load generator is not the deliverable.
- A cost-based query planner. Index selection is 9b's; this iteration measures what 9b lowers, it does not make the planner smarter.
Info
Forks the spec must settle:
1. What generates the load, and in what language? The doctrine is "the
sample is the test", so the honest generator drives compiled .wo — a
benchmark mode in the employee program (or a sibling sample) that loops
inserts/reads/queries and times them. The alternative — a C harness calling
the engine API directly — measures the engine but skips the compiler's
lowering, which is exactly the layer a language-integrated query has to pay
for. Leaning: .wo benchmark mode for the headline numbers (the number that
matters is end to end), with the C-API microbench kept only to attribute a
regression to engine vs lowering.
2. What are the actual budgets? Throughput floors and latency ceilings
have to be numbers, and the first run sets them — but the spec must decide
whether the gate is absolute (">= N ops/sec on the reference machine") or
relative ("no worse than the last recorded run by more than X%"). Absolute
gates rot across machines; relative gates need a committed baseline file.
Leaning: relative gates against a tracked bench/baseline.json, refreshed
deliberately with a commit that says why, plus a loud absolute floor so a
catastrophic regression fails even on a slow machine.
3. What does "1M users read and write" concretely mean? A million long-lived idle connections is a different test from a million rows under a churning read/write mix from a bounded connection pool. The sample's shape (departments, employees) suggests rows, not connections, as the scale axis for THIS iteration; the connection-scale test belongs with the shard-actor runtime (iteration 8) and the eventual network layer. Leaning: ~1M rows + a bounded concurrent read/write workload here; connection scale deferred to 8 with a cross-reference.
4. Durable or RAM-only for the throughput headline? fsync-per-commit
(the current per-statement durability) will dominate write throughput and is
the honest number for a durable workload; RAM-only (no WO_DATA) measures
the engine's ceiling. Both matter and mean different things. Leaning:
publish both, labeled — durable is the number an operator plans against, and
the gap between them is precisely what iteration 23 (io_uring group-commit)
exists to close.
Proposed Solution
- Brainstorm the spec, settling the four forks; then a plan whose first task is the harness and the baseline file, because nothing downstream means anything without them.
- Sequence the performance chain around this iteration (rewritten
2026-08-21 — the first version predated 7b and the arc landing first):
- Already landed unmeasured: 9b, 7b (inferred GC + mark-sweep, 2026-08-18), the arc's stages 1+2 (fibers + shards, 2026-08-20). Their deltas are owed retroactively against the first baseline.
- Arc stage 3 (transparent DB actor) lands → 22 runs: restart-persistence proof + baseline benchmark, durable and RAM-only, single- AND multi-shard, plus the mutex-inbox number.
- 31 (actor lifecycle), then 24 (chat) → re-run the concurrency-facing numbers at the connection scale chat unlocks.
- 23 (io_uring group-commit) → re-run 22's durable write number, record the delta against the fsync-per-commit baseline — the payoff.
- The benchmark harness and its baseline live under
bench/(or the existingruntime/bench/), andjustgets adb-benchrecipe kept off the fast path, exactly likelog-watcher::soak.