writeonce/docs/stories/databasev2/11-bounded-delta-chains.md
shoney.arickathil 710325b94a docs(db2-chain): close out iteration 11 on the board
- status: done in the story frontmatter (was the non-conventional
  "complete"; the board's axis uses done/in-progress/pending/hold)
- board row 11: what landed, the WO_WAL_UPDATE correction, the ceiling
  removed as unreachable, and the one criterion still weaker than
  written (expected value, not a resident: all oracle)

Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com>
(cherry picked from commit de39a88e81e97bf6f8b75e9f15331aae20f7ab29)
2026-08-30 20:38:03 +02:00

9.5 KiB

track iteration status readiness
databasev2 11 done ready

databasev2 11 — bounding a keys-resident row's delta chain

Part of Story — databasev2: the database beyond RAM. Spec: 2026-08-30-bounded-delta-chains-design.md.

Why this exists. Iteration 2 shipped delta updates with a deliberate decision not to cap chain length, on the reasoning that compaction bounds it. A whole-branch review showed that reasoning does not hold for the one workload the feature is motivated by. This iteration closes it. readiness: ready — every fork is settled in the spec.

The finding this iteration answers

A read of a keys-resident row costs 1 + chain length preads, and replay costs O(N²) per chain. The shipped mitigation is compaction, which flattens chains to zero. But wo_wal_should_compact triggers on used > last * ratio — a byte ratio over the whole log — and cannot see that one row has a very long chain.

One popular SKU whose stock moves on every order, in a catalogue that is otherwise quiet, grows an unbounded chain without ever moving that ratio. The guard that bounds replay in general is structurally blind to the single case that makes replay quadratic.

The design, in one sentence each

Tier 1 — flatten on update. The update path already folds the row, because it needs the old values for index maintenance, and the fold already walks the chain hop by hop; so it reports the depth for free, and when that depth reaches K the update appends a full-row record instead of a delta. Read cost becomes at most K + 1 reads and replay O(K²) per row, independent of when a checkpoint fires.

Tier 2 — give the compaction policy an absolute term and a ceiling. Our current policy has a proportional term and a suppressor misleadingly named a floor; it lacks the triggering floor and the ceiling that keep a size-based policy honest.

Where the design came from

Read from PostgreSQL's source at .dev/reference/postgresql, not recalled:

  • heap_page_prune_opt collapses HOT chains opportunistically, on a page the process already holds, gated by an O(1) on-page hint and then by page fullness against Max(fillfactor, BLCKSZ/10). Tier 1 is this shape: do the work while you already hold the thing, using a signal you already computed.
  • autovacuum thresholds on vac_base_thresh + vac_scale_factor * reltuples, clamped by a maximum — defaults 50, 0.2, 100 000 000. A count with a floor, a proportion and a ceiling, per table. Tier 2 borrows the floor and the ceiling.
  • Postgres never thresholds on new-bytes-versus-old-bytes, despite knowing exactly what a chain costs. Its space test is "will the next version fit" — an operational constraint, not an economic comparison. That ruled out the byte-ratio shape here too.

Progress

Part State
Tier 1 — the fold reports hop count ✅ wo_wal_fold_row_at takes hops_out; the walk already visited each hop, so it costs nothing
Tier 1 — the update branches on depth ✅ row_apply_field_keys writes a full-row image past WO_DELTA_MAX_HOPS (16) instead of a delta
Tier 1 — the chain-terminating write ✅ wo_wal_append_row_image, encoded as WO_WAL_UPDATE — see the correction below
Tier 2 — absolute garbage term ✅ WO_CKPT_ABS_BYTES (64 MiB) triggers regardless of proportion
Tier 2 — proportional ceiling ✅ removed as dead code — the absolute term already does this job
Tests ✅ four tests; test_wal 5700 pass / 0 fail, just wovm-test and just woc-test green

Two corrections the tests forced, both worth recording.

The flattened record is a WO_WAL_UPDATE, not an INSERT. The reasoning for INSERT was that a chain's base must be a full row, and INSERT is what compaction writes. That holds for compaction, which builds a fresh log. It is wrong for an update appending into a live one: the row's original INSERT is already in that log, so a second INSERT for the same id is a duplicate, and replay correctly refuses it as corruption. test_delta_chain_flatten_replays failed on exactly that. UPDATE replays as remove-then-recreate and the fold terminates on either full-row kind, so nothing else changed.

The proportional ceiling was unreachable, and is gone. With the absolute term at 64 MiB and the ceiling at 256 MiB, any garbage large enough to reach the ceiling had already tripped the absolute term — the branch could never execute. Found by trying to write a test that exercised the ceiling and discovering no input could. PostgreSQL needs both constants because it thresholds on tuples with its pair at opposite ends (base 50, max 1e8); this thresholds on bytes, where one constant does both jobs. Any ceiling above the absolute term is dead, and any below it would simply be the trigger.

Verified by construction where tests do not reach. Both update entry points converge on row_apply_field_keys (table.c:1039 and :1319), so one branch covers both. The re-point is transparent to flattening because db.c captures wo_wal_next_offset(w) before calling into table.c — it targets wherever the next record lands, delta or full row alike.

Acceptance Criteria

All verified but one, which is narrowed rather than dropped. Tests live in runtime/test/test_wal.c.

  • ✅ Given a row updated K times, when updated once more, then the record its offset names is a full row and its chain length is zero. test_delta_chain_flattens_at_k.
  • ✅ Given a row updated far more than K times, when it is read, then it performs at most K + 1 record reads, asserted by counting rather than timing. Both chain tests assert scratch_hops <= WO_DELTA_MAX_HOPS on every read, which is the count itself, not a proxy for it.
  • ✅ Given the same row, when the process restarts, then replay is correct and its cost does not grow with the total updates ever applied. test_delta_chain_flatten_replays.
  • ⚠️ Given a flattening update, when replayed, then the row matches the same row in a resident: all table under the same update sequence. Asserted against an expected value, not against a resident: all oracle table. Weaker than written: it catches a wrong value, but it would not catch the two modes disagreeing in a way that also fooled the expectation.
  • ✅ Given a flattening update to an indexed column, when queried through that index, then the row is found by its new value and not its old, before and after a restart. test_keys_resident_indexed_across_flatten, checked at every step across the bound, not only at the end.
  • ✅ Given reclaimable bytes past the absolute threshold but inside the ratio, when the policy is evaluated, then compaction fires. test_should_compact_absolute_and_ceiling, which also pins the boundary just under the term and the small-log case where the ratio still governs.
  • ✅ Given a resident: all table, when any of this runs, then nothing about its behaviour or log records changes. Regression only: the existing 856 test_table and 5700 test_wal assertions pass, and a resident: all table never reaches row_apply_field_keys.

Honest note on what the new tests found: no product defect in the indexed-column path. Both failures during that test's development were bugs in the test itself — reading a folded row as a wo_str when the fold yields engine db_text, and probing a database whose WAL had been closed. The result is still worth having: it is the only coverage that the index and the flatten branch compose, and it now pins that.

Out Of Scope

  • Varying K by row width. Hop count is what bounds read and replay cost; width would optimise only write amplification. Revisit with a measurement, not before.
  • A time-based compaction trigger. Records are durable at commit, so an idle log does not grow.
  • Whether resident: keys earns its place at all. That is iteration 2's task 7, and it should arguably run before this work — see below.

Info — the forks, settled

  1. Where to fix it: the update path, not the checkpoint. Making compaction depth-aware would mean one hot row triggering a stop-the-world rewrite of the entire log — a 2 651 µs pause that scales with total live rows, not with the row that misbehaved. Postgres reaches for the local, opportunistic fix first for the same reason.
  2. The metric is hop count, not bytes. Each hop is one pread whose cost barely varies with the bytes it carries, so hops are what our read cost is made of. Bytes govern write amplification, which is the secondary concern.
  3. K is a fixed constant and does not scale with table size. Postgres scales by reltuples because it thresholds a table-level aggregate with proportional harm. Ours is per-row with additive cost — reading one product costs the same whether the catalogue holds a hundred rows or ten million, and total replay is the sum across rows. Scaling K up with size would make the largest databases boot worst.

Sequencing note

This iteration is ready but arguably should not be next. Iteration 2's task 7 has still never measured whether resident: keys beats the kernel's own paging, and everything built on it — including this — assumes it does. If that measurement comes back poorly, this work is optimising something that should be deleted. Recommended order: measure first, then this.