Adds an explicit Scope/Non-Goals section (curated personal package list, not adversarial-config or compromised-vendor-pipeline defense) and a post-build version sanity check as its own pipeline stage, distinct from the trust tiers — a correctness gate (does the build report the version we expected), not a security control. Trims the next-steps list to match. Co-Authored-By: Claude Sonnet 5 <noreply@anthropic.com> Claude-Session: https://claude.ai/code/session_01A2FEut5tVMNjeVjqhgVZbr
240 lines
12 KiB
Markdown
240 lines
12 KiB
Markdown
# pkgwatch — declarative package-update watcher/publisher (working name)
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Status: design draft, pre-PoC. Captures the design discussion as of 2026-09-11.
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## Problem
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Software not packaged by the distro (Arch/Manjaro here) usually gets installed
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one of a few ways:
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- `curl | sh` from the vendor's own install script — the classic "trust me,
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bro." The script and any checksum it embeds share a trust boundary, so it
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verifies nothing beyond transport corruption.
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- Manual download + manual checksum/signature verification, redone by hand
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every time you want to update. Tedious enough that people stop doing it.
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- A distro package (pacman `extra`, AUR) — trustworthy, but version-lagged
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behind upstream, and someone else has to maintain the PKGBUILD.
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There's no local, low-effort way to say "here's how to fetch and verify
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package X" once, and have that declaration stay live — checked periodically,
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re-verified on every new upstream release, and fed into a normal
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`pacman`-based workflow without hand-editing a PKGBUILD each time.
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## Scope
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This is a personal tool for a small, curated list of non-critical packages
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— not a general-purpose supply-chain-security framework. The concrete
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motivating case: software (especially fast-moving AI/ML tooling) that
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Manjaro's `extra` repo lags weeks behind upstream on, where raw AUR or a
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vendor's curl|sh script are the only faster alternatives today.
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**Goal**: a middle ground — fresher than Manjaro's lag, with real
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verification where the vendor actually offers something to check, safer
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than blindly piping an install script to `sh`.
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**Non-goals**:
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- Defending against a fully compromised vendor signing/release pipeline.
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If upstream's CI or signing key is itself compromised, pkgwatch cannot
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and does not try to catch that. Tiers 1–3 (below) raise the bar from
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"trust the domain" to "trust the vendor's actual release process"; they
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are not a guarantee against that process being subverted.
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- Defending against a malicious downgrade specifically. A compromised
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version-check source reporting an older version as "latest" is a
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downstream/distro-security problem, out of scope here. (See "post-build
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version check" below for a related but distinct sanity check — it is
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not a security control.)
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- Supporting an adversarial or multi-user config. The tracked-package list
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is curated by the one person running the daemon on their own machine;
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config/state file integrity relies on normal filesystem permissions, not
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a hardened trust boundary. Key-pinning friction on rotation (see tiers
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below) is acceptable, even desirable, at this scale — it's a personal,
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low-volume list, not something that needs to scale painlessly.
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## Vision
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A Rust binary, run as a systemd service (service + timer, periodic not
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persistent), that:
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1. Reads a declarative config of tracked packages — where to check for new
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versions, how to fetch the artifact, and how to verify it.
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2. On each run, checks each tracked package for a new upstream version.
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3. If a new version is found, fetches the artifact and runs the verification
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method declared for that package.
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4. If verification succeeds (per the package's trust tier — see below),
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updates/generates a local PKGBUILD (bump `pkgver`, refresh
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`sha256sums`/signature reference) and rebuilds it into a local pacman
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repo via `makepkg` + `repo-add`.
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5. The next `pacman -Syu` (with the local repo configured) picks up the new
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version normally — no separate tooling needed on the consuming side.
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This is conceptually `nvchecker` (version checking) + `updpkgsums` (checksum
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refresh) + `repo-add` (local repo publishing), fused into one daemon with a
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single declarative source of truth, plus an explicit, surfaced trust model
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that those tools don't provide.
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## Verification trust tiers
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Per the Scope above, the goal is to raise the bar above curl|sh where the
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vendor gives us something to check — not to build airtight supply-chain
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defense. The central design problem within that goal: from the install UX,
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a cryptographically strong
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verification and a "trust-me-bro" same-domain checksum look identical. The
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tool's job is to make that difference legible instead of laundering every
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package into an undifferentiated "verified" bucket.
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Tiers, strongest to weakest:
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1. **Pinned-key signature** — GPG/minisign/sigstore-cosign, where the
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signing key's fingerprint is pinned in *our* config (not fetched fresh
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from the vendor each time). Proves authorship, independent of the
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artifact's own hosting.
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2. **Build provenance attestation** — GitHub/GitLab attestations, SLSA
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provenance. Ties the artifact to a specific CI run and source commit.
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Strong, but only as trustworthy as that CI pipeline.
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3. **Registry-native signing** — crates.io, PyPI trusted publishing, npm
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provenance. Similar strength, scoped to that registry's trust model.
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4. **Same-origin checksum file** — a `.sha256`/`.sha256sum` served next to
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the artifact by the vendor. Proves transport integrity only. If the
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vendor's server or account is compromised, the attacker controls the
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artifact and the "verification" in the same move.
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5. **Checksum embedded in an install script** — the classic curl|sh case.
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The verifier and the thing being verified share a trust boundary.
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6. **Nothing** — bare TLS to a domain, no checksum or signature at all.
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### Automation posture per tier
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This is the load-bearing decision, not just a cosmetic label:
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- **Tiers 1–3**: a passing verification is a real trust signal. Safe to
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auto-bump, auto-verify, auto-publish unattended.
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- **Tiers 4–6**: a passing "verification" only proves internal consistency
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of one origin (the checksum and the artifact agree), which tells you
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nothing about whether that origin was compromised. For these tiers the
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tool should **not** treat a pass as "verified, ship it." Instead: treat a
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version/hash *change* as a flag-for-human-review event. The value pkgwatch
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adds at these tiers is diff-and-alert (notice something changed, surface
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the new hash for a human to look at), not verify-and-trust.
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The post-build version sanity check (see Architecture below) runs
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regardless of tier — it's a correctness gate on the build itself, not part
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of the trust-tier judgment, and doesn't change this tiering.
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### Surfacing trust, not just gating on it
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- Every tracked package carries an explicit tier + one-line justification
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(e.g. "minisign, key pinned 2024-03" vs. "same-domain sha256, no
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independent signer") in a metadata file alongside the generated PKGBUILD —
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something `repo-add`/pacman don't touch, but that a human or `pkgwatch
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audit` can read.
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- `pkgwatch audit` (or similar) lists all tracked packages sorted
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worst-tier-first, so weak links don't hide among strong ones in a repo
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that otherwise looks uniformly trustworthy.
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## Config schema (draft)
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```toml
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[package.uv]
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source = "github-release"
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repo = "astral-sh/uv"
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asset_pattern = "uv-x86_64-unknown-linux-gnu.tar.gz"
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[package.uv.verification]
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tier = 4
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method = "same-origin-sha256"
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checksum_asset_pattern = "uv-x86_64-unknown-linux-gnu.tar.gz.sha256"
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# Post-build sanity check — correctness only, not a security control.
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# Runs the built binary and confirms it reports the version pkgwatch
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# believes it just built; mismatch blocks publish.
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[package.uv.sanity_check]
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command = "uv --version"
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version_regex = 'uv (\d+\.\d+\.\d+)'
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# Tier 1 example:
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[package.somepkg]
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source = "url-with-version-regex"
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url = "https://example.com/downloads/"
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version_regex = 'somepkg-(\d+\.\d+\.\d+)\.tar\.gz'
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[package.somepkg.verification]
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tier = 1
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method = "minisign"
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pinned_key = "RWQ...base64pubkey..."
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```
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Open questions on the schema:
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- How much of `nvchecker`'s source-type taxonomy (github, gitlab, pypi,
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crates.io, regex, htmlparser, ...) to reimplement vs. shell out to
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`nvchecker` itself for the version-check step and own only the
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verification + publish pipeline.
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- PKGBUILD generation: full Jinja-style templates per package vs. a small
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fixed set of PKGBUILD "shapes" (single binary tarball, cargo-install,
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etc.) parameterized by the config.
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- Where the local pacman repo lives and how it's registered in
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`pacman.conf` (one-time manual setup step vs. something pkgwatch manages).
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- Failure/alerting channel for tier 4–6 change events — log only, or a
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notification hook (this box already has a wofi/Mako notification setup —
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see `project_wofi_notification_picker` in Claude's memory).
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## Architecture sketch
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- **Config loader**: parses the TOML above into an in-memory package list.
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- **Checker**: per source type, resolves "what's the latest version" —
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likely reuses `nvchecker`'s logic/sources conceptually, possibly shells
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out to it initially for the PoC rather than reimplementing every source
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type in Rust.
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- **Fetcher**: downloads the artifact (and any checksum/signature/
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attestation companion) for a resolved version.
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- **Verifier**: tier-specific verification implementations behind a common
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trait; returns a tier + pass/fail + justification string.
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- **Builder**: for tiers 1–3 on pass, generates/updates the PKGBUILD
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(strict validation on any upstream-controlled string — version, filename
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— before it touches generated shell content; never unescaped
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interpolation) and runs `makepkg`.
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- **Sanity checker**: after a successful build, runs the package's
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declared `sanity_check.command` against the built artifact and confirms
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the reported version matches what pkgwatch believes it just built.
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Mismatch = fail loud, do not publish. This is a correctness check, not a
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security control — it catches checker bugs and mangled/wrong-artifact
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downloads, not malicious releases.
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- **Publisher**: runs `repo-add` against the local repo, only after the
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sanity check passes.
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- **Reviewer queue**: for tiers 4–6, records the detected change instead of
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auto-building; a separate `pkgwatch review` command lets a human
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approve/reject, which then triggers the build → sanity-check → publish
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steps above.
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- **Scheduling**: systemd `.service` (oneshot) + `.timer` running it
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periodically, matching the pattern already used for other periodic tasks
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on this box.
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## Prior art / reference points
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- `nvchecker` — version-check-only, no verification or publish step.
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- `updpkgsums` (pacman-contrib/devtools) — checksum refresh only, manual
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trigger.
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- `aurutils` — local repo + AUR build automation, but AUR itself carries no
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stronger verification guarantee than what each PKGBUILD maintainer does.
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- `repology` — cross-distro version tracking, no verification/publish.
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- GitHub artifact attestations (`gh attestation verify`) — tier 2 building
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block for GitHub-hosted releases.
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## Status / next steps
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- [x] Scope decided: personal middle-ground tool for a curated package
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list, not a general supply-chain-security framework (see Scope
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above). Downgrade attacks and compromised-vendor-pipeline defense
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are explicit non-goals.
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- [ ] Refine config schema further (see open questions above), including
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the `sanity_check` block per package.
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- [ ] Decide version-check strategy: shell out to `nvchecker` vs. own
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implementation, for the PoC.
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- [ ] Implement PKGBUILD generation with strict upstream-string validation
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from day one (see Builder, above) — cheap to do right up front,
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expensive to retrofit.
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- [ ] PoC scope: single tier-4 package (e.g. `uv`, ironically) end-to-end —
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check, fetch, same-origin-checksum verify, flag-for-review, manual
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approve, build, post-build version sanity check, local repo publish.
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- [ ] Decide on project home: local-only for now, or push to
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code.austinschaefer.com (Forgejo) once the spec settles.
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