flybrain/docs/design/session-framework
dev f43fd4d9ff session: supportedStimuli is enforced, and the query method names are provisional
An undeclared stimulus kind is refused before the model is touched, proved by an
injection through Agent.Commit rather than by a unit call, so the declaration a
descriptor publishes is the thing the worker enforces.

The publishing-v1 section 2 amendment now says in its own words that
Session.GetDescriptor and Session.GetSnapshot are internal and provisional names,
which the later public v2 step may rename or supersede.
2026-09-22 18:47:10 +00:00
..
bus-conformance.md media: no best-effort defaults in the audio path 2026-09-22 15:15:06 +00:00
bus-v1.md test(flybus): prove the two section 9 rows a review found cited but unproven 2026-09-22 12:39:07 +00:00
checkpoint-envelope-v1.md docs(session-framework): seed derivation v1 and the FLYSESS1 checkpoint envelope 2026-09-22 12:47:48 +00:00
implementation.md docs(design): session-framework specs (bus-v1, ipc-v1, step-v1, workers-v1, publishing-v1, state-media-v1) and the MaleCNS modular-session plans 2026-09-22 11:01:55 +00:00
ipc-v1.md session: resolve uncertain calls, and measure each mode in its own process 2026-09-22 15:41:42 +00:00
publishing-v1.md session: supportedStimuli is enforced, and the query method names are provisional 2026-09-22 18:47:10 +00:00
README.md Merge main: the bus slice, whose write-gate fix removes the flybus teardown flake under parallel load 2026-09-22 13:17:30 +00:00
seed-derivation-v1.md docs(session-framework): seed derivation v1 and the FLYSESS1 checkpoint envelope 2026-09-22 12:47:48 +00:00
state-media-v1.md session: the publication boundary, observer isolation and the repair path 2026-09-22 17:41:07 +00:00
step-v1.md session: both transports for every integration test, and the mid-step pause written into step-v1 2026-09-22 13:00:14 +00:00
workers-v1.md session: the publication boundary, observer isolation and the repair path 2026-09-22 17:41:07 +00:00

Application and session framework: architecture and contracts

Status: implementation specification, draft 2, 2026-09-18. This is a guide for future agents; none of the new runtime is implemented yet. Baseline code is 83090a9 on docs/improvement-suggestions. MUST/SHOULD requirements apply to the proposed new path, not retroactively to existing public feed, control API, or legacy numerical/checkpoint behavior.

Decisions from the architecture discussion

  1. Applications orchestrate components and develop their presentation alongside them. “Director” is application code, not a mandatory framework service. A tournament is an example application, not the system's organizing data model.
  2. One lightweight Rust bus supports RPC and pub/sub everywhere internally. Flybus replaces separate direct worker transports and an application broker. No NATS dependency.
  3. Messages stay small; large artifacts live in managed storage. Delivery guards and explicit cache/retention owners keep data alive until its last actual use, then GC reclaims it.
  4. The router moves messages and tracks generic ownership. It never schedules game frames, understands macro actions, composites video or operates a stream.
  5. Sessions synchronize worlds; agent workers compute in parallel. One logical clock is not one execution thread. The coordinator alone commits complete world-control batches.
  6. Game-aware executors receive current game state and task progress. Rich inspection data does not become undeclared neural input.
  7. Native observations are framework outputs. Resizing, overlays, browser delivery, audio mixing, encoding, narration and streaming belong to the application/presentation layer.

Read in this order

  1. Flybus v1 — authoritative wire/routing/RPC/pub-sub/artifact lifecycle contract.
  2. Session RPCs — domain payloads, worker capability negotiation and safe retries.
  3. Step protocol — session state machine, ordering and clocks.
  4. Worker/task interfaces — exact method bodies and game-aware executor boundary.
  5. Session media/state — observation timing and coherent recovery.
  6. Application/presentation boundary — snapshots, flexible data and effects.
  7. Implementation guide — sequenced build tasks and acceptance tests.
  8. Flybus conformance report — the flybus crate audited sentence by sentence against bus-v1, with the test that proves each row, the measurements and the draft's own contradictions. A review artifact, not a contract.

Two derived specifications, written by CONTRACT-01 because the slices that need them cannot be built without them:

  • Seed derivation v1 — independent per-agent seeds from one recorded master seed and stable agent ids, with test vectors in both languages.
  • Checkpoint envelope v1 — the exact bytes of the new FLYSESS1 envelope and the durable commit sequence. FLYSIM01 is unchanged and stays separately readable.

For context: modular-session analysis and Melee audit. Each contract owns its named subject; step ordering wins over an informal diagram, and Flybus owns transport/resource rules. Resolve contradictions before implementation. The existing HTML report is an overview, not a contract.

1. Composition and processes

Application / supervisor                 Application presentation
  run policies, identity, history           UI, media composition, audience, stream
                \                           /
                   Flybus: RPC + pub/sub
                /          |              \
        Session        Agent workers      Environment worker
      coordinator      brain + encoder    emulator/world + native observations
      task/executors    + fixed readout
                           |
                  artifact store (same bus API)

This diagram is connectivity, not execution order. The step contract defines causal order. One router can host several independent sessions and application consumers; a deployment may choose one router per application for fault isolation. A router crash affects all its clients, so choose that boundary deliberately. In-process mode still exercises routing and ownership.

Defaults: coordinator per session, worker per fly, environment worker per world. Task and per-agent executors begin as coordinator-local libraries. An environment helper may own a separate emulator child process and adapt its native protocol. There is no second framework socket/lease API between those logical components.

Multiple players in one game share one environment/barrier. Independent games use independent sessions. Linked emulators require a composite backend with link-appropriate timing.

2. Ownership and authority

Owner State and responsibility
Application Composition, persistent personas/brain lineage, lifecycle policies, supported interventions, application schema/history
Session Clock/epoch, port assignments, admission, task ledger, executor state, barriers and coherent recovery
Agent Private membrane, RNG, rates, learning, sensory encoding, decoder and tick remainder
Environment World, actual controller application, backend parser, native media and state capabilities
Flybus Opaque endpoint/topic routing, delivery/call correlation, bounded queues, artifact-owner graph and GC
Storage client Durable event/checkpoint writes and replay APIs; owns artifact handles during writes
Presentation Application UI, display focus, clocks/buffers, media processing, audio/stream output and narrative cues

Immutable graph data can be shared; neural mutable state cannot. Do not concurrently dispatch the existing single-job WorkerPool through cloned handles from different brains.

Applications use declared session capabilities, not arbitrary emulator writes. Bus registration and method privileges preserve a single controller authority for a session. Browser/audience clients do not gain controller access by knowing a service name. Existing public rules remain.

3. Domain independence

The kernel knows no task or bus. The environment knows no neuron populations. A task interprets game state and requests outcomes/recovery; its executor translates a selected decision using read-only current game/progress context. The coordinator orders and applies these results. The bus handles no such semantics. Presentation combines framework observations with an application-owned schema and can change without changing simulation behavior.

Persistent AssetRefs identify installed release content. Transient Flybus ArtifactRefs identify live bytes with ownership. Domain epoch/step identity and bus route/store incarnation are different: the first protects simulation order, the second protects delivery/resource validity. Never substitute game-frame number, persona identity or array position for either.

4. Initial scope and compatibility

First build a generic bus example (RPC + pub/sub + artifact retained beyond message lifetime), then a synthetic two-agent session using it. One local machine, Unix sockets/in-memory parity, immutable file-backed artifacts, fixed cadence, 1-ms LIF, direct control and exact-checkpoint synthetic backend are sufficient. Dolphin, MaleCNS and richer effects are later integrations.

Deferred: cross-machine artifact access, durable broker queues, wildcard/queue-group routing, dynamic native plugins, hot-join, speculative netplay rollback and pooled GPU buffers.

Keep legacy-gameboy-v1 distinct from lockstep-v1. Preserve TypeScript as oracle, existing default versions, historical arithmetic/fingerprints and FLYSIM01 reader. New identities include sensor, readout/executor/task/scheduler semantics. New public feed v2 is an application/presentation gateway contract built on the same internal bus; it does not replace the bus or expose it raw.

5. Reuse criterion

Adding a third environment/application requires a backend, task/profile, composition and application presentation. It must not require game-specific edits to the coordinator, router, artifact manager, kernel, generic stores or transport. Schematized task extensions are valid; an unchecked data blob or universal tournament schema is not a substitute for interfaces.