MechaCat02 155c5471b7 fix(quota): measure the per-group byte projection with one consistent metric
The §11.6 M4 byte quota mixed two incompatible byte measures: `used` came from
Postgres as `octet_length(value::text)` (jsonb CANONICAL text — whitespace after
`:` and `,`, keys normalized), while `old_len`/`new_len` were computed in Rust
with `serde_json::to_vec` (COMPACT, no spaces). The projection
`used - old_len + new_len` therefore subtracted and added a *smaller* measure
than what is actually stored, so a group could be admitted over its ceiling —
the cap drifted permissive. The two forms are not reconcilable in Rust (jsonb
also reorders/dedups keys), so the projection has to be measured by Postgres.

Add `projected_total_bytes` to `GroupKvRepo` (keyed by collection+key) and
`GroupDocsRepo` (keyed by the replaced doc id, `None` on create). Each computes
`SUM(canonical) - existing_row(canonical) + new_value(canonical)` in ONE query,
binding the new value as compact TEXT and re-parsing it through `::jsonb::text`
so PG measures it in exactly the form it stores. All three terms now share one
metric. The services call it instead of the mixed Rust math; the near-cap
fast-path (`rows_after * max_value_bytes <= ceiling` → skip the SUM) is kept, so
the common case still does no extra work. The docs `update` path no longer needs
its old-doc fetch (the subtraction happens in SQL), removing a read.

The in-memory test repos implement the same projection with their own (compact)
metric, so the quota unit tests keep their exact byte arithmetic. No schema
change.

Note: the check-then-write TOCTOU (concurrent writers can each pass and
collectively overshoot) is NOT addressed here — it needs a transaction spanning
the check and the write, the same missing infrastructure as the transactional
outbox. Tracked separately.

Co-Authored-By: Claude Opus 4.8 (1M context) <noreply@anthropic.com>
2026-07-14 07:18:14 +02:00

PiCloud

A lightweight, self-hosted, event-driven serverless compute platform. Upload a Rhai script, get an HTTP endpoint. Designed to run on a single modest server with no idle CPU cost, and to scale out to a small cluster when you need it.

Status: Phase 1 — MVP scaffolding in progress.

The authoritative design lives in serverless_cloud_blueprint.md.

Why

Existing serverless platforms are either cloud-locked, heavyweight, or both. PiCloud aims for the opposite end of the spectrum: one binary, one database, one reverse proxy — running on hardware you already own.

Architecture (one paragraph)

PiCloud splits into three logical services — manager (control plane: scripts, schedules, dashboard), orchestrator (per-node event ingress and dispatch), and executor (per-node Rhai sandbox) — each backed by a *-core Rust library. In MVP they run in a single process; in cluster mode they run as three binaries with one manager and one orchestrator + executor per node. Caddy fronts everything; PostgreSQL is the single source of truth.

See CLAUDE.md for working notes and serverless_cloud_blueprint.md for the full design.

Quick Start

Coming as scaffolding lands. For now:

# Rust toolchain (pinned via rust-toolchain.toml)
cargo check --workspace

# Run the all-in-one MVP binary (once main.rs is wired up)
cargo run -p picloud

Repository Layout

crates/
  shared/                 cross-cutting types
  executor-core/          Rhai engine + sandbox
  orchestrator-core/      event ingress, dispatch
  manager-core/           control plane
  picloud/                MVP all-in-one binary
  picloud-{manager,orchestrator,executor}/   cluster-mode binaries (skeleton)
dashboard/                SvelteKit
caddy/                    Caddyfile
docker/                   Dockerfiles
docs/
  git-workflow.md         Trunk-based workflow

Contributing

See docs/git-workflow.md for the branching and commit conventions. TL;DR: trunk-based, short-lived branches, Conventional Commits, no force-pushing main.

License

TBD.

Description
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