# Build and supply-chain gate ## Local blocking controls - `pnpm install --frozen-lockfile --ignore-scripts` and a real manifest/lock mismatch fixture; contract loading applies the root-only graph and lifecycle policy to every registered command before the gate runner can spawn one, and rejects nested installs without effective `--ignore-scripts`; npm script traversal includes existing pre/post hooks unless an ordered bare or explicit true `--ignore-scripts` suppresses them. Workspace/prefix and indirect user/global config authority are rejected in npm options, direct or dynamic assignments, exact `command`/`exec`/`env` prefix chains, cross-segment shell state, and the inherited runner environment. Unknown or cwd-changing `env` options and unquoted pre-delimiter pathname expansion fail closed, while the explicitly modeled non-scope `env` options remain usable - all direct and transitive lockfile rows with package SHA-512 integrity - production/development, direct/transitive and platform-optional classification - package-manifest license allow/deny policy - approved inventory baseline digest and actual add/remove/change/upgrade diff - independent review for new direct production dependencies - CycloneDX 1.6 SBOM and inventory component/edge coherence - source/lock/SBOM/dist-linked local provenance statement - source, opt-in recipes, scripts, tests, tracked config/schema, public, built asset and generated release metadata secret scan - two-build `SOURCE_DATE_EPOCH` reproducibility check The canonical commands are: ```bash corepack pnpm verify:lockfile corepack pnpm verify:reproducible-build corepack pnpm build:release-candidate corepack pnpm verify:local-evidence corepack pnpm check:supply-chain:fixtures ``` `config/security/dependency-baseline.json` is the approved local baseline. Changing it requires `DEPENDENCY_BASELINE_OWNER` and `DEPENDENCY_BASELINE_REASON`; editing the digest or hardcoding an empty diff is rejected. ## External promotion controls Promotion reads the provider files named by `VULNERABILITY_REPORT_PATH` and `PROVENANCE_ATTESTATION_PATH`. The vulnerability report must bind both the exact lockfile digest and candidate `distSha256`; the provenance attestation must name `dist` with that same digest. Both documents use strict schemas and Ed25519 signatures verified with separately configured trusted public keys and key IDs (`VULNERABILITY_PUBLIC_KEY_PATH`, `VULNERABILITY_KEY_ID`, `PROVENANCE_PUBLIC_KEY_PATH`, and `PROVENANCE_KEY_ID`). Keys of another curve, including Ed448, are rejected even if a document labels its algorithm `Ed25519`. The two roles must use different key IDs and different canonical DER-SPKI key bytes; giving the same key two IDs is rejected. `immutable_build` archives the raw `pnpm-lock.yaml`, `dist` (including hidden `.vite` files), the build manifest, module inventory, release verification, secret-scan result, and local supply-chain evidence once. The candidate manifest hashes the raw lockfile bytes and requires that digest to equal the dependency inventory's `lockfileSha256`. Before upload, the producer validates the manifest-bound exact archive member set and every member digest, then publishes the archive SHA-256 as an immutable job output. The two provider jobs download this same archive separately, compare that output digest, validate the exact member set before extracting only into isolated roots, and receive `CANDIDATE_LOCKFILE_PATH` and `CANDIDATE_DIST_SHA256`; configured `VULNERABILITY_PROVIDER_COMMAND` and `PROVENANCE_PROVIDER_COMMAND` must emit the signed reports. After each external command returns, provider upload validation rechecks the unchanged archive and extracted candidate, parses the provider JSON with its strict schema, and binds its dist and lockfile digests before upload. If either provider input is absent, local verification remains meaningful but `artifacts/security/supply-chain-verification.json` records `promotionStatus: FAIL_UNVERIFIED`. The finalizer and downstream `verify:promotion` exact-five validator then exit non-zero. Promotion derives the candidate file set and digests only from the captured tar bytes, then read-only revalidates archived executable schemas, archived policy/verifier source bytes, raw lockfile, module inventory, build outputs, release coherence, SBOM, provenance and supply-chain coherence. Candidate-internal checks are recomputed; for the checkout-dependent secret scan, promotion independently checks the archived policy, exact rule set, strict SARIF, zero findings and all manifest/assessment digest bindings. It does not claim to rescan source bytes that are not candidate members. It never rebuilds or rewrites candidate evidence and never falls back to the checkout tree. Promotion uploads the already verified archive itself with the two provider reports and generated verification records; it does not create a replacement archive from extracted files. Scanner or signing outages are not converted to an empty PASS. The generated workflow is also a supply-chain control. `config/ci/gates.json` is its sole typed authority. Run `corepack pnpm generate:ci-workflow` after a contract change and `corepack pnpm check:ci-workflow` (or the encompassing `corepack pnpm check:ci`) to reject byte drift in the checked-in Gitea adapter. Action resolution is separately closed over one typed, runtime-frozen registry in `scripts/contracts/ci-gates.ts`. Every generated `uses:` value is an absolute upstream URL pinned to a full commit SHA: - `https://github.com/actions/checkout@34e114876b0b11c390a56381ad16ebd13914f8d5` (`v4.3.1`) - `https://github.com/actions/setup-node@49933ea5288caeca8642d1e84afbd3f7d6820020` (`v4.4.0`) - `https://github.com/ChristopherHX/gitea-upload-artifact@81f940d004763f986ba3582c007fd842dd5cb0d7` (patched `v4` branch) - `https://github.com/ChristopherHX/gitea-download-artifact@75635f32b4c1c41c4b3d64e8f85210112ed4c9c7` (patched `v4` branch) Unknown actions, relative repositories, tags/branches and short SHAs are rejected. Gitea 1.22's official Actions documentation recommends the `ChristopherHX` patched artifact forks for v4 compatibility; the supported deployment baseline is nevertheless Gitea 1.26.4+ with Gitea Runner 1.0.0+. A real end-to-end provider smoke on the staging Gitea instance remains mandatory before any generated job becomes a required check. External provider supervision is fail-closed and requires a Linux runner with executable `/usr/bin/bwrap`, `/usr/bin/prlimit`, `/usr/bin/systemd-run`, and `/usr/bin/systemctl`, bubblewrap support for `--size`, an active user bus, a systemd user manager version 254 or newer, unified cgroup v2, and delegated memory, pids, and CPU controllers. Executable access, user-manager/version, trust, archive, and path failures are rejected before raw creation. Bubblewrap `--size` acceptance and effective delegated controller values can only be verified after the owned raw inode exists inside a new scope; failures there remove that inode by identity and fail closed. Each invocation runs in a unique collected user scope and verifies its effective cgroup membership and limits before bubblewrap starts: memory is exactly 1 GiB, swap is zero, `TasksMax` is 64, and CPU quota is 100% per 100 ms. The inner process also has zero core size, a 8,388,607-byte file-size limit, 64 open files and at most 1,200 CPU seconds. `TasksMax=64` is the authoritative aggregate PID boundary; no per-provider `RLIMIT_NPROC=32` claim is made because that limit is counted across the runner's same-UID process population. Bubblewrap uses a private network namespace (`--unshare-net`), mounts the workspace and verified candidate read-only, hides `.git`, and read-only binds the trusted `process.execPath` at `/tmp/node`. The supervisor creates and pins the exact configured raw-report inode only after sandbox/trust/archive preflight; that inode is the only provider evidence path mounted read-write. The provider cannot write the surrounding `untrusted` directory, workspace, candidate, host home/toolcache, sealed evidence path, or general temporary filesystem. Pre-execution and provider failures remove only the supervisor- owned raw inode so the same job can retry without a stale empty report. The complete bwrap argument/environment vector, including the provider command and provider-prefixed environment, is carried in a bounded length-prefixed frame over `systemd-run` stdin rather than placed in the supervisor, systemd, or bwrap wrapper argv. This prevents credentials from entering unit metadata and wrapper command lines. The final provider executable and its ordinary arguments remain visible to same-UID process inspection, so commands must never contain tokens or secrets. The same stdin remains open as a parent-liveness channel until normal provider exit; EOF caused by supervisor death makes the in-scope wrapper kill the provider process group and remove only the dev/inode-matched raw report. Supply credentials only through the provider-kind prefix (`VULNERABILITY_PROVIDER_*` or `PROVENANCE_PROVIDER_*`, excluding `*_COMMAND`). A separate trusted guardian starts outside the provider scope and owns the filesystem transaction. Before spawn, the client opens and identity-checks the canonical raw and evidence directories with `O_DIRECTORY|O_NOFOLLOW`, derives the exact canonical and nonce-private leaves, and exclusively allocates empty mode-`0600` raw-staging and sealed-temp files. It records both dev/inode pairs before spawn and inherits the directory descriptors as guardian fd 3/fd 4 and the private file descriptors as fd 5/fd 6. Its argv contains only the trusted Node and helper paths. A bounded canonical v2 request carries only provider kind, an absolute deadline, and a random 32-byte control nonce. At bootstrap the guardian fstats fd 5/fd 6 before reading their procfs links. Each procfs target is accepted only as a direct-child alias whose exact grammar, descriptor-relative lstat, type, mode, size, link count, and dev/inode match the already-recorded descriptor identity. The guardian publishes raw staging to the fixed raw leaf with a no-overwrite hard link, verifies both aliases at link count two, removes the private raw alias, syncs the raw directory, and verifies the canonical raw alias at link count one before authenticated READY. If startup ends before READY is accepted, the client cleans raw staging/canonical only when they match its pre-spawn raw identity and sealed temp/final only when they match its pre-spawn sealed identity. It never derives cleanup ownership by opening a current canonical pathname, so an external file or a concurrent same-kind winner is preserved. Provider execution starts only after the supervisor confirms that the returned identities and canonical targets match exactly. After evidence validation, the supervisor writes schema-validated bytes to the pinned temp inode, changes it to `0400`, fsyncs it, and sends authenticated size/hash/identity metadata. The guardian verifies the held descriptor and pathname, publishes without replacement using same-directory `link`, removes the temp name, fsyncs the directory, and returns authenticated PUBLISHED. Only after successful `GITHUB_OUTPUT` append does the supervisor send commit. Commit removes the raw inode and enters `commitPending`; clean control EOF is the sole success terminal and preserves the sealed final. EOF without that terminal, deadline expiry, malformed/trailing control data, a wrong nonce, or premature guardian exit cleans every matching raw/temp/final identity and fails closed. Guardian loss while the provider scope is active also triggers whole-scope kill and collection. `GITHUB_OUTPUT` is assumed to be a runner-owned regular file. This protocol does not claim OS-level cancellation of sealing or output I/O. If the guardian exits after scope collection, the scope-active latch records the lifecycle error without starting a late kill. Publication or terminal commit observes the nonzero exit and the client removes every identity-pinned raw/temp/final fallback before failing closed. The lease is bounded by the 30-minute provider wall limit plus a fixed ten-minute post-processing allowance. A client hard stop after private allocation but before guardian spawn can leave only empty mode-`0600` nonce-private leaves. Automatic sweeping is intentionally omitted because an unrecorded pathname does not prove ownership; these private leaves cannot occupy the fixed raw or final names and do not block a retry. Provider stdout and stderr are untrusted secret-bearing bytes. The supervisor does not retain or forward them to CI logs; it counts them only to enforce one 1 MiB aggregate limit. Guardian diagnostics are best effort, so closed stderr or control descriptors cannot bypass cleanup or the required nonzero exit. The provider wall-clock limit is 30 minutes. Wall timeout, output overflow, parent-liveness loss, and active-scope guardian loss explicitly SIGKILL the whole provider process group. Ordinary command and RLIMIT failures complete through systemd with their concrete exit/signal; every path still waits for wrapper closure and requires the systemd unit/cgroup to be collected before returning. Provider adapters must therefore operate entirely from pre-populated offline data, consume the supplied candidate bindings, and write exactly the pinned report inode. Missing prerequisites, cgroup drift, stale or misplaced outputs, post-command candidate drift, and residual scope cleanup all stop publication. Provider documents are strict schema v2. Their Ed25519 signature covers the supervisor-supplied evidence type, validity window, run ID/attempt, independent 32-byte invocation nonce, archived source identity, and all four candidate digests. Each provider job exposes its supervisor-generated nonce as a job output; promotion treats those outputs as the independent expected values and never lets a report define its own expected nonce. A report from another attempt, source, archive, nonce, or key fingerprint is fail-closed even when it has been correctly re-signed. The immutable archive contains a strict producer-local assessment plus the policy and verifier source bytes needed to validate its archived relationships. Promotion recomputes candidate-internal checks and validates the captured secret-scan policy/rules/SARIF/digest relationships from an isolated extraction root; it does not reopen checkout policy or source paths or claim to rescan unarchived checkout source. The finalizer captures the archive, both reports, and both public keys once, generates both verification v3 records in memory, and writes exactly five mode-`0400` files beneath a random mode-`0700` directory in `RUNNER_TEMP`, independently of a restrictive runner umask. The exact five are the captured archive, captured vulnerability report, captured provenance attestation, generated provider-verification v3, and generated promotion-verification v3. Before returning, the finalizer validates those exact bytes again with live-time provider signature/freshness checks. The promotion record binds the exact provider-record hash, local-assessment hash, both report hashes, run/source/candidate identities, both nonces, both key IDs/fingerprints, canonical trust-policy hash, and the vulnerability provider's signed `secretScanAttestation`. That strict attestation says `PASS` and binds the captured local-assessment, source-set, secret-scan policy, SARIF, and actual scan-input digests. The supervisor derives the expected tuple from the captured archive and exact equality is rechecked at upload and finalization. The trusted vulnerability provider remains responsible for independently scanning that source set and refusing to sign a forged empty SARIF or incomplete scan input; the signature proves the provider made the claim, not that an untrusted provider performed the scan honestly. It never creates or reuses `.release/promoted-staging`. The final promotion verification/staging step must be immediately adjacent to the promoted-release upload, and that upload must not use `always()`. This reduces the post-verification mutation window but does not seal a pathname across two action steps. The runner is therefore required to be trusted, exclusive and single-tenant, with no provider command or other same-UID process surviving from staging into the immediately following upload. The artifact service and transfer actions also remain outside the candidate's cryptographic identity: every downstream consumer must revalidate the downloaded archive, manifest member digests and signed provider evidence. Producer-side adjacency does not provide consumer-side digest revalidation. The promotion job has no job-level `if`: ordinary `needs` success semantics require immutable build and both provider jobs to succeed, and cancellation is not overridden with `always()` or `cancelled()`. Cleanup alone uses bare `always()` and is guarded by all six finalizer outputs: staging path, token, parent device/inode, and staging-leaf device/inode. Cleanup opens the pinned leaf, requires the exact five names, unlinks only those known files through the descriptor, and uses a non-recursive `rmdir`; an exchanged directory or canary is never recursively removed. The immediately following upload action still reopens pathnames. The descriptor-relative staging and cleanup code does not claim an atomic `renameat2` handoff or close a malicious same-UID Gitea upload adapter; the staging Gitea smoke/native platform adapter remains the required closure for that boundary. That smoke must exercise exact-five upload and download plus cleanup on success, validation failure, upload failure, and cancellation. No native uploader or `renameat2` guarantee exists in this repository today. Portable Node also cannot make `mkdir` plus the first pathname `lstat` atomic. The implementation compares the immediate post-`mkdir` identity with the subsequent `O_DIRECTORY|O_NOFOLLOW` descriptor before changing permissions, but a malicious same-UID actor that wins before that first `lstat` remains part of the native/privilege boundary. The private `0700` runner-temp ancestor and single-tenant runner requirement are therefore security controls, not merely hardening. Failure cleanup is armed only after that created device/inode matches the opened descriptor. If the opened descriptor is a replacement, it is closed without unlinking or removing anything; the visible replacement is likewise untouched. Portable Node cannot safely rediscover an attacker-moved original directory by scanning the parent, so that residual must be removed by the isolated test fixture or trusted runner/native cleanup after the attacker is excluded. Approved vulnerability exceptions require vulnerability/package identity, owner, a different reviewer, reason and expiry. Expired or self-approved exceptions are blocking.