Files
alkstore/docs/research/phase-0.md
T
glm-5.3-flash f4e24f321d docs: streams upgraded to in-scope (operator-authority record)
The inventory graded streams absent because no paused consumer document
names it; the operator correction: type-filtered event watching from
several places (e.g. repo-change subscriptions in a git app at
gitea/gitlab scale) is a basic reactivity requirement — and notify
(fire-and-forget, no replay) cannot serve subscriptions honestly.
The wanters are applications above the paused crates, which is why the
docs don't carry the row.

Inventory: streams row recorded on operator authority (the REQ-2
recording convention from alkblobs requirements.md), confidence system
gains the operator-authority grade; rate-limits becomes the sole
first-cut candidate. phase-0: OQ-ST-01 summary and OQ-ST-04's
contract-candidates updated to match.
2026-10-04 08:47:19 +00:00

549 lines
29 KiB
Markdown

---
status: draft
last_updated: 2026-10-04 (consumer inventory landed — OQ-ST-01 answered
per-feature from the paused consumers' documents; OQ-ST-02/07
sharpened; phase-0 plan step 1 done; streams upgraded to in-scope by
operator-authority record same day. Interface finding and driver
tension from 2026-10-03 remain trusted-but-unverified working input.)
---
# alkstore — Phase 0 (Exploration)
This document captures Phase 0 (Exploration) for the `alkstore` crate:
vision, guiding principles, prior art, and the open-question register
(OQ-ST-01..NN). Phase 0's objective per `docs/sdd_process.md`: *capture
vision and guiding principles; research options; validate approaches;
converge on a recommended approach.* The scope question (OQ-ST-01) has
been answered per-feature from the consumers' documents
(`consumer-inventory.md`); the driver and reactive-shape questions
(OQ-ST-03/04) are the open research; there is no POC register yet
(see `consumer-inventory.md` for the first cut candidates that keep its
register small).
Context for why this crate starts now: **alkblobs**
(`/workspace/@alkdev/alkblobs` — spec + POCs only, paused mid-planning)
hit repeated circular hedging in its Phase 0, and a root cause was that
the storage substrate it deploys onto was itself disjoint and fuzzy — a
repo pattern with a default in-memory adapter across the alk* ecosystem,
cache-invalidation patches in hot paths, non-invalidated caches where
delay was tolerable, no single definition of "how does a change in the
database become visible to other processes/connections?" alkblobs paused
partly to let this crate answer that first. alkstore is the attempt to
make that substrate real once, so downstream stores don't re-derive it.
## Vision and guiding principles
**One sentence (draft):** one reactive store interface over SQLite and
Postgres — durable pub/sub notify, queues, streams, and the transactional
integration (write + enqueue in one transaction) that honker delivers on
SQLite — with the Postgres side building on the natively-available
machinery (`pg_notify`/`LISTEN`, and the pgboss job-queue schema family)
rather than emulating it.
**The honker relationship.** `/workspace/honker` (reference checkout,
not for direct use as a dependency; alpha-quality per its own README,
MIT/Apache-2.0 dual) adds
Postgres-style `NOTIFY`/`LISTEN` semantics to SQLite without a broker:
durable at-least-once queues with retries/delay/priority/visibility
timeouts/dead-letter, durable streams with per-consumer offsets,
cron/`@every` scheduling, named locks, rate limits, transactional
outbox — all as INSERTs inside the caller's transaction, with the
cross-process wake delivered by a shared watcher that polls `PRAGMA
data_version` (default 1 ms → single-digit-ms delivery) and re-reads
indexed state after every wake. Its own Prior Art section names the
lineage: `pg_notify`, pg-boss, Oban, Huey.
**The interface finding (2026-10-03, from the four honker.dev guides +
`packages/honker-rs/src/lib.rs`, the Rust binding): honker's *surface*
is already the unified-interface candidate.** Its Rust binding exposes
exactly the surface this crate wants, engine-clean:
- `db.queue(name, QueueOpts)` → `enqueue / enqueue_tx / claim_one /
claim_batch / ack_batch / cancel / get_job / sweep_expired /
claim_waker`, with `job.ack / retry / fail / heartbeat` and
`EnqueueOpts {delay, priority, max_attempts, expires, ...}` —
semantically the pg-boss model (visibility timeouts, retries,
dead-letter via move-to-`_honker_dead`), not a LISTEN-emulation.
- `db.stream(name)` → `publish / publish_tx / publish_with_key /
read_since / read_from_consumer / save_offset(_tx) / get_offset /
subscribe(consumer)` — offsets are explicit, transaction-aware
(`save_offset_tx`) for the exactly-once-within-a-business-tx shape,
and replay-on-reconnect is the default.
- `db.notify(channel, payload)` / `notify_tx` / `db.listen(channel)` —
the `pg_notify`-analogue fire-and-forget signal layer ("fire-and-forget,
no replay, no guarantees" — streams are the durable cousin), listener
starts from `MAX(id)` at attach, no historical replay.
- `db.scheduler()` → `add/pause/resume/update/list/remove/tick/run` —
cron + `@every` enqueueing into named queues, leader-elected via
advisory lock with TTL heartbeat, missed-boundary catch-up.
- `db.outbox(name)` — the transactional outbox helper (enqueue +
`run_once` delivery worker).
- `db.try_lock / try_rate_limit / save_result / get_result /
sweep_results` — the coordination/adjacent-tools surface.
The implication flips the framing of the unified-API work: it is not
"invent a shape both engines fit" — it is **"this shape both engines
can fit"** (pg-boss's queue model is *already* the native Postgres
tooling model; streams/offsets and notify have direct Postgres
counterparts) **and the work is pinning which parts of the shape are
the crate's contract** — the delivery-guarantee differences honker's
own guide documents per-binding (auto-checkpoint cadence vs manual
offset save; the processing-guarantees table) are exactly the seams a
single-crate version must clean up. Honker-rs is the concrete prior
art for that pinning exercise.
Postgres side: `pg_notify` gives fast triggers with no retry or
visibility semantics; pg-boss/Oban are the durable-layer gold standards
— "If you already run Postgres, use the Postgres tools."
The goal is **not** "port honker to Postgres." The goal is the interface:
one store API whose consumer code (queues, streams, notify) looks the
same whether the backing engine is SQLite or Postgres, while each engine
uses its own native wake/delivery story under the hood. The honker docs
recommend pgboss + `pg_notify` for the Postgres equivalent — that
recommendation is the design brief for this crate's Postgres engine —
and honker's Rust binding (`honker-rs`, v0.5.0) is the concrete
candidate for what that unified interface literally looks like (§Interface
finding).
**Consumer shape (from the paused alkblobs planning):** any crate that
today uses the ecosystem's repo-pattern + in-memory adapter should be
able to swap in an alkstore-backed engine and get durability + true
cross-process/cross-instance reactivity. That means the reactive surface
must compose with *client-side* caching: a subscriber that also holds a
cache can invalidate on notification instead of re-querying or re-polling
— the hot-path pattern the ecosystem already uses, given a real
invalidation source.
Guiding principles:
1. **One interface, two engines, native underneath.** The abstraction
layer unifies the consumer-visible features; the engines stay
dialects, not two emulations of one dialect. SQLite follows honker's
design (queue in the same file, same transaction, watcher-based
wake); Postgres follows pg-boss' design (schema-based job tables +
`pg_notify`-driven wake). A "lowest common denominator" unification
(both sides polling, both sides emulating LISTEN) is explicitly the
failure mode to avoid — it would re-create the fuzziness this crate
exists to remove.
2. **Transactional local-adjacency is the load-bearing property.**
Honker's core claim: enqueue/publish/notify in the same transaction
as the business write; rollback drops both. The unified surface must
preserve this on any engine, because the ecosystem's repo pattern
assumes it (a business write that loses its side-effect notification
is the dual-write problem honker names).
3. **Ownership of the whole stack.** honker is third-party; pgboss-rs
is third-party. Whether any of them are adopted, forked, or used as
schema/design reference only is a deliberate per-question decision —
not inherited by adjacency. The workspace precedent is the targeted
fork (alksocks' fast-socks5 extraction: adopt the design, own the
code, port to our conventions).
4. **Substrate-agnostic consumer API, engine-specific setup.** A
consumer opens a `Store` from a connection string / file path and
gets the same trait surface. Which engine is behind what can vary
(per-deployment config), but consumer code must not branch on
engine type.
5. **No panics, `tokio`, `thiserror`, lean base crate, feature-gated
optional engines** — family-standard, pre-committed (AGENTS.md).
## The driver conflict (Phase 0's central tension)
The immediate design fork, flagged by the user:
- **The alkblobs POCs used `tokio-postgres` + `deadpool-postgres`**
(validated in `poc-postgres-kv-findings.md`, `poc-pglo-findings.md` —
including Large Objects work).
- **pgboss-rs (`/workspace/pgboss-rs` @ 98f7d9e) uses `sqlx`** (`sqlx Postgres
runtime-tokio`).
- honker-core uses `rusqlite`.
A single crate with both engines means a driver decision, and the
reactivity story is entangled with it:
- **pgboss-rs currently has no `LISTEN`/`NOTIFY` at all** (verified
2026-10-03 against the checkout — `src/` contains no LISTEN/NOTIFY
usage; consumption is `fetch_job` polling). The node original relies
on `pg-boss`'s own maintenance/polling; the port did not pick up a
push channel. So *even* "use pgboss for the queue" does not deliver
reactivity — LISTEN/NOTIFY wiring would be new work either way, and
the driver choice determines *whose* LISTEN plumbing (sqlx's
`PgListener` is built-in; tokio-postgres uses its `Connection`
notifications).
- **Honker's reactivity on SQLite is a watcher polling `PRAGMA
data_version`** — a fundamentally different mechanism from
LISTEN/NOTIFY. The unified reactive trait must abstract over both
without collapsing to the polling behavior of the weaker side.
Two corrections to the original framing (2026-10-03, after reading
honker-rs and the honker.dev guides):
1. **The honker-rs *interface* is largely driver-independent.** The
Queue/Stream/notify/scheduler surface (§Interface finding) speaks in
domain terms (channels, offsets, job ids, visibility timeouts), not
driver terms. What *is* driver-coupled is the transactional seam:
`enqueue_tx`/`publish_tx`/`save_offset_tx` and the extension's
notify-in-transaction all assume the caller can hand the engine a
live transaction handle from *its* driver. The unified trait's
transactional seam is therefore the driver-sensitive design point —
and it interacts with the engines' different transaction models
(SQLite: single writer, synchronous; Postgres: interactive
transactions over a pool, transaction-scoped LISTEN).
2. **honker-rs is sync (`std` threads + blocking iterators) — parking_lot
+ rusqlite, no tokio.** The family standard is tokio-async. So even
the SQLite side is a *port-and-adapt* (sync → async), not an adopt;
and the driver question for SQLite is also entangled with whether
tokio-native sqlite drivers (sqlx sqlite) change the queue/wake
machinery's shape versus rusqlite-in-a-pool.
This tension is OQ-ST-04 below. It is *not* resolved by "pgboss is well
written so start there" — that is exactly the inherited-assumption
shape the SDD process flags. What pgboss-rs genuinely offers (schema
DDL, job states, retry semantics, the node-compatible API) is design
reference regardless of driver. The reactivity gap is the concrete,
verified difference between pgboss-rs and what this crate needs —
whether forked or re-derived, the push channel is work this crate
builds itself (OQ-ST-05).
## Prior art
Notes below are from reading the checkouts on 2026-10-03; both external
projects are reference checkouts — read freely, but not for direct use
as a dependency. We use the published version of anything that lives in
the global workspace unless we vendor or fork it (the alksocks
fast-socks5 precedent); if adoption ever requires a fork, forking is
normal work we own, not an exception. Provenance/licensing gets
recorded per AGENTS.md §3 when code is adopted, not while only reading.
### honker — the SQLite-side template
`/workspace/honker` (checkout @ f4e53c6; SQLite extension +
bindings). What matters for
this crate:
- **The full feature set to match on Postgres** (its §What It Does):
notify/listen across processes, durable at-least-once queues
(retries, delayed jobs, priority, visibility timeouts, dead-letter
rows, result storage), durable streams with per-consumer offsets,
cron/`@every` scheduling, named locks, rate limits, transactional
outbox helpers. Deliberately excluded there: workflow DAGs, task
chains/chords, multi-writer replication, cross-machine locking —
scope line likely inherited, to be confirmed.
- **The wake mechanism** — `PRAGMA data_version` polling watcher
(default 1 ms; raise for idle CPU), re-read indexed state after
wake, overtriggering on purpose ("one indexed SELECT is cheap; a
missed wake is a correctness bug."). Optional kernel-events and WAL
shared-memory backends exist in source builds.
- **Single-machine honesty** — file-backed, one host; NFS-two-writers
explicitly not supported. This posture needs an explicit Postgres
counterpart (multi-host is Postgres' normal case, so the interface
must not bake SQLite's single-host assumption into the shared
surface).
- **The transactional enqueue shape** — every feature is an INSERT
inside the caller's transaction. This is the pattern the unified API
must keep visible and cheap.
- **The honker-rs binding is the concrete interface prior art** (v0.5.0,
`packages/honker-rs`, read 2026-10-03): the full surface per §Interface
finding. Notable honest limitations documented by its own guides —
the per-binding processing-guarantees table (auto-checkpoint cadence
vs manual offset save; several bindings "may persist an offset on a
cadence... without knowing whether downstream application work
committed"), the Node reverse-order consumer-checkpoint bug, per-
binding feature gaps (JVM missing cancel/get_job, Go/Bun/C++
missing typed pruning) — are exactly the seams a single-crate version
designed-for-the-contract from day one can clean up. Its sync-only
shape (std threads, blocking iterators, no tokio) is a
port-and-adapt constraint, not an adopt candidate as-is.
### pgboss-rs — the Postgres queue family reference
`/workspace/pgboss-rs` (checkout @ 98f7d9e; v0.1.0-rc6, MIT/Apache-2.0 dual). Ported from
node pg-boss: builder-based queue/job API, retry/delay/priority/
singleton/dead-letter concepts, `sqlx` 0.8, schema-scoped DDL.
- Verified gap (2026-10-03): **no LISTEN/NOTIFY** anywhere in `src/`
— consumption is polling `fetch_job`. Any push-reactivity is new
work, not an adoption freebie. This is the substantive difference
between pgboss-rs and what alkstore needs: regardless of fork vs
re-derive, reactivity is ours to build on the Postgres side either
way.
- Its value as reference: the pg-boss schema family (job states,
maintenance/dead-letter behavior) is battle-tested against real
Postgres semantics — worth borrowing *as design*, independent of the
driver decision.
- The node original (pg-boss) is the upstream of record for semantics
the port may have dropped; compare against it when adopting queue
semantics.
### Honker's Postgres-side recommendation
The honker README's own posture: if you run Postgres, use the Postgres
tools. `pg_notify` + pgboss is the recommended assembly. The design
brief: the queue machinery from the pg-boss family, the push semantics
from LISTEN/NOTIFY, the unified API shape from honker's Rust binding.
### The alk* repo pattern — what this crate replaces
The ecosystem's current shape: a repository trait with a default
in-memory adapter; cache-invalidation wiring in hot paths; uninvalidated
(non-reactive) caches where delay was acceptable; each project
composing these slightly differently. No persistence-backed reactive
substrate exists in the family — alkblobs was the first project to try
to plan against one, found it missing, and paused. This crate's reason
to exist is precisely that that substrate should exist once, well,
instead of per-project approximations.
### alkcall — the substrate (not a dependency of the store layer)
`/workspace/@alkdev/alkcall` (pure protocol crate, no transport). The
alk* crates (alktty, alktunnels, alksocks) are its consumers; a future
alkstore ops/protocol surface (if this crate ever exposes store access
over alkcall channels) rides the same substrate. Like the alkblobs
split (store layer stays substrate-free), the store layer here stays
alkcall-free; any networked surface is an ops module/sibling concern
and a separate decision.
## Open Questions
Register in `docs/research/phase-0.md`; IDs OQ-ST-NN (stable, append
only). Promotion target: Phase 1 `docs/architecture/open-questions.md`.
### OQ-ST-01: Scope boundary — which honker features are in-scope?
**Answered by the consumer inventory (2026-10-04) —
`docs/research/consumer-inventory.md`; scope votes now shrink to named
rows, not the whole feature list.** The original framing ("blocked on a
consumer-driven inventory pass") was circular hedging: the consumers
are paused, so the input would never arrive — but their *documents*
are stable evidence, and the inventory walks them per feature.
In-short: notify/listen and named locks are pinned or ADR-shaped
(alkfs path-tree invalidation; alkblobs fleet sweeper lock; alkfs
OQ-FS-05 writer coordination); queues and the outbox helper are
documented needs (alkfs sync/fetch-on-miss outbox; alkblobs
embedder-owned maintenance cadence); the scheduler is documented-thin
(the family-wide "who sweeps/renews/reaps" problem, possibly collapsing
into queues); streams was upgraded by an operator-authority record
(the 2026-10-04 correction to the inventory's initial read:
type-filtered event watching from several places — repo-change
subscriptions in a git app, cross-app event watching — a reactivity
requirement notify cannot serve honestly, being fire-and-forget);
rate limits and result storage have **no
named consumer** — carried per the keep-until-implementation posture
with cut-flags visible, cut later rather than silently included.
Per-feature exclusion lines (honker's own: DAGs, task chains/chords,
multi-writer replication, distributed locking) have no consumer either;
they stay out unless a consumer document grows one. New consumers
(alksftp, the alknet rewrite) add a row to the inventory *before* being
assumed into scope.
### OQ-ST-02: Crate scope — one store crate, or reactive-core + engines?
Options include: single crate with feature-gated engines (the alk*
feature-gate pattern); a core trait crate + per-engine crates; engine
crates consuming a thin core. The answer constrains the driver decision
(OQ-ST-03) and the base-crate-lean invariant.
Input from the inventory (2026-10-04): the confirmed features
(notify/locks/queues/outbox/scheduler) are the same feature family on
both engines — the feature sets do not diverge sharply, which argues
for the single-crate-with-feature-gated-engines shape; a reactive-core
+ per-engine-crate split buys something only when engines' surfaces
diverge. Not yet decidable without the first engine implementation
forcing the shape; the inventory removed the "no concrete use case"
half of the deferral, the remaining half is real. Deferred(scope),
narrowed.
### OQ-ST-03: Driver story — sqlx, tokio-postgres, or per-engine drivers?
The named tension (§The driver conflict), restated as the decision:
- **One driver across engines**: sqlx (both sqlite + postgres native
support, one API — but the alkblobs POC evidence is tokio-postgres)
vs tokio-postgres per-engine (sqlite story unclear — tokio-postgres
is pg-only; rusqlite is the sqlite native).
- **Per-engine drivers under a unified trait**: tokio-postgres +
deadpool-postgres (POC-validated in alkblobs findings) + rusqlite
(honker's choice, so honker's SQLite machinery ports cleanly).
- **Adopt/fork pgboss-rs**: brings sqlx along where the queue lives.
Honest unknowns worth surfacing: does sqlx support SQLite
`data_version`/extension-style machinery equally well? Does a unified
trait over `(tokio-postgres, rusqlite)` pay more trait-fitting cost
than sqlx's single-API convenience costs elsewhere? What does
SQLITE_ENABLE/extension loading look like under sqlx vs rusqlite?
(And the async question honker-rs forces, §driver-conflict correction
2: is rusqlite-in-a-pool the right tokio shape, or does sqlx-sqlite's
native async change the watcher machinery's design?)
Genuinely open; needs research rounds (library capabilities vs the
unified-trait shape) and possibly a POC. Not deferred — this is the
central Phase 0 research question.
### OQ-ST-04: The reactive abstraction — what does the unified notify surface look like?
The two engines' mechanisms are structurally different: SQLite =
watcher polling `PRAGMA data_version` (deliver on commit; no
server-side push exists), Postgres = LISTEN/NOTIFY (server push,
connection-bound, no retry/visibility semantics). The reactive trait
must have a shape both implement without one emulating the other's
weaknesses.
The honker-rs surface (§Interface finding) is the concrete starting
point — the question decomposes into contract-pinning rather than
shape-invention:
- Which parts of the honker-rs surface become the crate's *contract*:
the `notify`/`listen` pair, the stream/offset/consumer model (in
scope per the inventory — subscriptions are the durable reactivity
half notify can't serve), the queue claim/ack/visibility model,
locks, outbox, scheduler — all have named consumers now; rate-limits
have an in-crate alternative mechanism (alkgit's wire layer) —
subset, renamed/regrouped, decided against the inventory
rows rather than against the whole honker menu.
- What is the delivery-guarantee contract, per mechanism (honker's
own guide table shows how easily per-binding auto-checkpoint vs
manual-save ambiguity produces *different* guarantees under one
function name — the single-crate version must pick one answer, not
inherit the table)?
- Listener semantics: honker starts from `MAX(id)` and replays
nothing; Postgres LISTEN has no replay either but delivers via a
dedicated connection with its own lifecycle. Does `listen()`
abstract over both honestly (opaque wake + re-read contract) or
promise durability it only has on one engine (that's what streams
are for)?
- The transactional seam (`enqueue_tx`/`publish_tx`/`save_offset_tx`)
across two transaction models — the driver-coupled point (§driver-
conflict correction 1).
How does a caching subscriber (the ecosystem's hot-path pattern)
receive sufficient invalidation information (keys? table/channel
names? opaque wake + re-read contract?) — rides the same contract
decision.
Open; this is the second central research question, coupled to OQ-ST-03
(the driver determines what LISTEN plumbing exists).
### OQ-ST-05: Queue semantics — adopt, fork, or re-derive?
If queues land in scope (OQ-ST-01), the pg-boss schema family is the
Postgres-side incumbent and honker's queue design is the SQLite-side
one. Options: adopt pgboss-rs as a dependency (new feature-gated
option); targeted-fork the relevant subsystem (alksocks precedent,
ported to our conventions); schema/design-reference only (re-derive on
our driver). Fork-vs-derive depends on how much of pgboss-rs is
queue-machinery vs driver-wiring (the sqlx coupling — OQ-ST-03), on
our tolerance for the alpha-state rc port, and on the verified gap
(§pgboss-rs): the push-reactivity half has to be built on top of any
choice, so the queue-machinery reuse value is the honest comparison
point, not the whole.
Open; inputs: OQ-ST-01's scope vote on queues (inventory: documented
need) + OQ-ST-03 resolution.
### OQ-ST-06: Honker relationship — reference, fork, or vendor?
Design-reference only (read, don't copy), targeted fork of
honker-core's engine machinery, or vendor the extension? Honker is
alpha-quality per its own README, MIT/Apache-2.0 dual-licensed, and
covers only the SQLite side — but it embodies exactly the watcher/
transactional design this crate wants on SQLite, and honker-rs
demonstrates the interface shape is sound. Three refinements from the
2026-10-03 reading:
- honker-rs is **sync-only** (std threads, blocking iterators) — the
tokio port is required work under any fork posture, which changes
the fork-vs-reference calculus (a fork is already a serious port).
- The crate likely needs only the core engine machinery (honker-core
minus the extension C surface — see OQ-ST-07), a smaller extraction
than the whole project.
- Honker's own documented per-binding inconsistencies (the
processing-guarantees table, OQ-ST-04) suggest extracting *design+
semantics* with our contract pinned, rather than preserving its
behavior verbatim — closer to the alkblobs "borrow conclusions, not
wire surface" principle than to alksocks' verbatim extraction.
Open; needs the license/provenance check (AGENTS.md §3) and a quality
assessment of honker-core's watcher/transactional core.
### OQ-ST-07: SQLite-side scope — loadable extension, embedded rusqlite, or both?
Honker ships as a loadable extension usable by *any* SQLite client,
plus per-language bindings. This crate (a Rust library) may not need
the loadable-extension surface at all — embedding the engine machinery
in-process may be the whole story (the honker-core shape minus the
extension/binding packaging). Determines how much of honker is even
candidate material.
**Sharpened by the inventory (2026-10-04):** every identified consumer
is in-process Rust attaching to its own connection (the
`honker-core`/`attach_honker_functions` shape — the alknet-filesystem
POC's actual usage). No consumer needs the loadable-extension surface.
The question is now cut-only: loadable extension is out unless a
consumer appears; the open residue is just how much of honker-core's
machinery survives the extraction.
### OQ-ST-08: Multi-host / deployment posture
Honker is explicitly single-machine (file-backed SQLite). Postgres is
natively multi-host. The unified surface must not pretend SQLite is
multi-host, but where does the honest boundary live — per-engine
capability flags? A documented deployment matrix? Does the trait need
to expose engine capabilities at all?
Open; partially rides OQ-ST-04 (the trait's shape constrains where
capability differences can surface).
## Phase 0 plan
Iteration expected; this register grows as research rounds land.
Expected sequence (deliberately rough):
1. ~~Consumer-driven scope inventory (OQ-ST-01)~~ — **done
(2026-10-04)**: `consumer-inventory.md`, run against the paused
consumers' documents (alkfs phase-0, alkgit architecture, alkblobs
architecture + the alknet-filesystem POC). OQ-ST-01 answered down
to named per-feature rows; OQ-ST-02/07 sharpened by it.
2. Research rounds on OQ-ST-03/04 (drivers + reactive shape) — library
capability matrices, then a POC if the unified-trait shape needs
validation (likely, given the structural mismatch noted in OQ-ST-04).
The honker-rs surface (§Interface finding) is the concrete starting
artifact for the OQ-ST-04 work: pinning its contract costs less and
is more honest than inventing a parallel shape — now scoped against
the inventory's confirmed features rather than the full honker menu.
3. Ownership decisions (OQ-ST-05/06) — adopt/fork/derive per subsystem,
after the driver and shape questions narrow the option space.
4. Converge; Phase 1 opens with the ADR backlog this register becomes.
## References
- honker — `/workspace/honker` (git checkout @ f4e53c6 of
github.com/russellromney/honker; README +
`honker-core/src/` read 2026-10-03): the SQLite-side
feature/wake template. The four
guides (queues/streams/pubsub/scheduler on honker.dev) +
`packages/honker-rs/src/lib.rs` (v0.5.0) are the interface prior art
(§Interface finding).
- pgboss-rs — `/workspace/pgboss-rs` (git checkout @ 98f7d9e of
github.com/rustworthy/pgboss-rs, v0.1.0-rc6; read 2026-10-03,
LISTEN/NOTIFY-absence verified): the Postgres queue-family reference.
- honker's own prior-art section: pg_notify, pg-boss, Oban, Huey — the
external lineage this crate inherits from both sides.
- alkblobs — `/workspace/@alkdev/alkblobs` (spec+POCs, paused): the
paused planning this crate unblocks; its POC findings
(`poc-postgres-kv-findings.md`, `poc-pglo-findings.md`) are the
tokio-postgres evidence base.
- alkgit — `/workspace/@alkdev/alkgit` (paused mid-Phase-1,
architecture reviewed): its backend.md trait seam and ADR set are
consumer evidence for the inventory (queues/locks rows).
- alkfs — `/workspace/@alkdev/alkfs` (Phase 0 drafted, 2026-09-23): its
phase-0 OQs (OQ-FS-05/07/14/16/17) are consumer evidence for the
inventory (notify/locks/queues rows).
- alknet-filesystem POC —
`/workspace/@alkdev/alknet/docs/research/alknet-filesystem/
poc-summary.md`: the ran-once evidence that the honker-coordination
layer works (notify-on-commit test; named-locks and outbox usage
identified).
- consumer-inventory.md (`docs/research/consumer-inventory.md`) — the
per-feature synthesis (2026-10-04) answering OQ-ST-01 from the above.
- alkcall — `/workspace/@alkdev/alkcall`: the family substrate;
referenced for the store-layer-isolation principle only.