6 Commits

Author SHA1 Message Date
user
ef08f42d84 methodical checklist pass: fix staccato bursts, triples, two-clause compounds, almost hedges, probably hedges throughout
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2026-03-04 14:35:45 -08:00
user
e09360b46d remove hedge from final line
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2026-03-04 14:31:19 -08:00
user
c4ae355189 restore em-dash in pivot section heading (it's an example)
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2026-03-04 14:29:26 -08:00
user
985c48bf19 replace semicolons with periods
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2026-03-04 14:27:50 -08:00
user
318da3666c add em-dash overuse tell, remove all em-dashes from prose, checklist now 25 items
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2026-03-04 14:24:50 -08:00
user
729fea84de update LLM prose tells: add compound sentence, almost-hedge, unnecessary contrast, lol section
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2026-03-04 14:21:22 -08:00
27 changed files with 269 additions and 2049 deletions

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@@ -1,97 +1,3 @@
# Docker matches this file with moby/patternmatcher: Go filepath.Match
# semantics plus a `**` extension, compiled to a regexp. Plain
# filepath.Match has no `**` at all. What follows from that: `*` does not
# cross `/`, and a pattern without a leading `**/` is anchored at the
# build-context root. Every depth-independent pattern therefore needs the
# `**/` prefix — without it `config/.env` and `certs/server.key` still
# ship while the file reads as solved.
#
# Root-anchored entries are for paths that occur exactly once, at the
# context root. A host-built binary is the usual case, and it must be
# written anchored: `/myapp`, never `**/myapp`. The prefixed form also
# matches `cmd/myapp/`, which deletes the package directory from the
# context. In-repo agent scratch is the other case, for the same reason
# — with the caveat recorded at that entry: anchoring is exact only
# where agents run at the repo root, and a repo where they do not must
# add its own entries.
#
# Matching is case-sensitive, so `**/*.key` does not match
# `certs/SERVER.KEY`, which is reachable on the case-insensitive
# filesystems most laptops use. Adding an ALL-CAPS twin per pattern is
# not the fix: it still misses `Server.Key` while reading as though case
# were handled. Character ranges cover every spelling in one line, so
# every secret name below is written that way — including the
# extensionless SSH keys and `.envrc`, because on those same
# case-insensitive filesystems direnv reads `.ENVRC` and ssh reads
# `ID_RSA`.
#
# `**/*.[eE][nN][vV]` also excludes a committed env template such as
# `example.env`. If the build genuinely needs one, re-include it with a
# negation after the pattern: `!docs/example.env`.
#
# Extend this file with the repo's own host-built artifacts (compiled
# binaries, test binaries, coverage output); those are per-repo and
# belong here because a host build otherwise drops them into the
# context.
# Repository metadata: exactly one, at the context root. Excluding it
# means `git describe` cannot run in any build stage, and it fails
# quietly there rather than erroring, so a version embedded that way
# comes out empty. Compute the version on the host and pass it in with
# `--build-arg VERSION=...`; see the version rule in REPO_POLICIES.md.
.git
# In-repo agent scratch: a directory holding a full additional checkout
# of the repo for each in-flight agent. Anchored because it occurs
# exactly once *where agents run at the repo root*, which is the
# convention this file assumes; the `**/` form would also match any
# nested directory of that name and delete it from the build.
#
# KNOWN GAP, and it is not hypothetical: the directory is created in the
# agent's working directory. If agents in this repo run in
# subdirectories — a monorepo with a per-service agent, say — then
# `services/api/.claude/` is NOT excluded by the line below and still
# reaches the build context and the image, which is the exposure this
# entry exists to close. A repo in that shape adds its own anchored
# entries (`/services/api/.claude`), or `**/.claude` after confirming no
# legitimately named nested directory would be caught.
#
# Not case-folded, unlike the secret patterns below: tooling creates
# this directory in exactly one spelling, so a folded pattern would add
# no coverage.
.claude
# Environment files. `*.env` covers both the bare `.env` name (`*` matches
# the empty string) and the `prod.env` convention.
**/*.[eE][nN][vV]
**/.[eE][nN][vV].*
**/.[eE][nN][vV][rR][cC]
# Private keys and the bundles that carry them. Public certificates
# (*.crt, *.cer) are deliberately absent: they are not secrets and are
# sometimes a legitimate build input.
**/*.[pP][eE][mM]
**/*.[kK][eE][yY]
**/*.[pP]12
**/*.[pP][fF][xX]
**/[iI][dD]_[rR][sS][aA]
**/[iI][dD]_[dD][sS][aA]
**/[iI][dD]_[eE][cC][dD][sS][aA]
**/[iI][dD]_[eE][dD]25519
# Dependencies: restored inside the image, never copied in.
**/node_modules
# OS metadata.
**/.DS_Store
**/Thumbs.db
# Editor state. Never a build input, and it churns under a developer's
# hands, so it invalidates COPY for reasons unrelated to the source.
**/*.swp
**/*.swo
**/*~
**/*.bak
**/.idea
**/.vscode
**/*.sublime-*
node_modules
.DS_Store

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@@ -6,4 +6,4 @@ jobs:
steps:
# actions/checkout v4.2.2, 2026-02-22
- uses: actions/checkout@11bd71901bbe5b1630ceea73d27597364c9af683
- run: script/cibuild
- run: docker build .

6
.gitignore vendored
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@@ -11,12 +11,6 @@ Thumbs.db
.vscode/
*.sublime-*
# Agent scratch (worktrees of this repo, created and destroyed by
# in-flight tooling). Unanchored: .gitignore patterns already match at
# every depth, so no prefix is wanted here. This is not a .dockerignore
# entry and must not be given a `**/` prefix on the way into one.
.claude/
# Node
node_modules/

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@@ -1,9 +1,5 @@
version: "2"
# Config schema uses the golangci-lint v2 layout (settings live under
# linters.settings, not top-level linters-settings) so that the
# thresholds below are actually applied by golangci-lint >= v2.
run:
timeout: 5m
modules-download-mode: readonly
@@ -18,7 +14,8 @@ linters:
- wsl # Deprecated, replaced by wsl_v5
- wrapcheck # Too verbose for internal packages
- varnamelen # Short names like db, id are idiomatic Go
settings:
linters-settings:
lll:
line-length: 88
funlen:
@@ -30,5 +27,6 @@ linters:
threshold: 100
issues:
exclude-use-default: false
max-issues-per-linter: 0
max-same-issues: 0

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@@ -1,37 +1,11 @@
# node 22-alpine, 2026-02-22
FROM node@sha256:e4bf2a82ad0a4037d28035ae71529873c069b13eb0455466ae0bc13363826e34
RUN apk add --no-cache make
WORKDIR /app
# script/bootstrap installs all prerequisites (make via apk here; node
# and yarn are already in the base image, so those steps are skipped).
# Dependency manifests are copied first so the bootstrap layer is
# cached until they change.
COPY script/ script/
COPY package.json yarn.lock ./
RUN script/bootstrap
RUN yarn install --frozen-lockfile
COPY . .
# CHECK_EPOCH is a per-invocation nonce supplied by script/cibuild and
# script/docker. Without it an unchanged tree serves this layer from
# cache and the build reports a green it never ran. ARG is stage-scoped,
# so it must be redeclared in every stage that runs checks. The guard
# makes a bare `docker build .` fail loudly instead of silently reusing
# the empty (and therefore stable) cache key. Expand the value into the
# command so the cache miss does not depend on BuildKit's handling of an
# unreferenced ARG. Both the guard and the check RUN reference the value,
# so both are value-keyed: there are two independent invalidation points
# here, not one. Keep both.
ARG CHECK_EPOCH
RUN [ -n "$CHECK_EPOCH" ] || exit 1
# The individual non-lint checks, NOT `make check`. Lint is deliberately
# absent here: `script/lint` is itself a `docker build` (of
# Dockerfile.lint), so running `make check` in this image would attempt
# a docker build inside a build step, where there is no daemon. Putting
# `make check` back reintroduces exactly that recursion. Lint is not
# skipped — script/cibuild runs script/lint first, in its own container,
# before this build starts.
RUN echo "check epoch: ${CHECK_EPOCH}" && script/test
RUN script/fmt-check
RUN make check

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@@ -1,41 +0,0 @@
# Lint-only image. `script/lint` builds this file and nothing else: the
# linter runs as a build step, so a successful build IS a clean lint.
# Building rather than bind-mounting is what makes it work where the
# docker daemon is remote and bind mounts are impossible.
#
# The linter is invoked directly below rather than through `make lint`.
# That is not a style choice: `script/lint` IS this build, so calling it
# from inside would recurse into a docker build with no daemon.
#
# This repo's linter is prettier over markdown. A Go repo's version of
# this file differs only in the base image and the two lint commands;
# see the containerised-lint rule in prompts/REPO_POLICIES.md.
#
# node 22-alpine, 2026-02-22
FROM node@sha256:e4bf2a82ad0a4037d28035ae71529873c069b13eb0455466ae0bc13363826e34
WORKDIR /app
# Dependency layer first, and deliberately above the ARG below, so it
# stays cached and only the lint steps re-run on every invocation.
# Without that ordering the cache-bust would reinstall dependencies on
# every lint and make linting network-dependent.
COPY script/ script/
COPY package.json yarn.lock ./
RUN script/bootstrap
COPY . .
# CHECK_EPOCH is a per-invocation nonce supplied by script/lint. Without
# it an unchanged tree serves the lint layer from cache and the build
# reports a lint it never ran — a green that proves nothing, which is
# the whole failure mode this file exists to avoid reintroducing. The
# guard makes a bare `docker build -f Dockerfile.lint .` fail loudly
# instead of silently reusing the empty (and therefore stable) cache
# key. The value is expanded into the lint command as well, so the cache
# miss does not depend on BuildKit's handling of an unreferenced ARG and
# the epoch is visible in the build log. Keep both references.
ARG CHECK_EPOCH
RUN [ -n "$CHECK_EPOCH" ] || exit 1
RUN echo "lint epoch: ${CHECK_EPOCH}" && \
yarn run prettier --check '**/*.md' --tab-width 4 --prose-wrap always

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@@ -1,32 +1,31 @@
.PHONY: bootstrap setup test lint fmt fmt-check check docker hooks
.PHONY: test lint fmt fmt-check check docker hooks
# Makefile targets are thin shims; the implementations live in script/
# per the scripts-to-rule-them-all pattern (see the Entrypoints section
# of README.md).
bootstrap:
@script/bootstrap
setup:
@script/setup
# flags are repeated here (also in .prettierrc) so this Makefile works
# standalone when copied as a template
PRETTIER := yarn run prettier
test:
@script/test
@echo "No tests defined."
lint:
@script/lint
@echo "Linting markdown files..."
@$(PRETTIER) --check '**/*.md' --tab-width 4 --prose-wrap always
fmt:
@script/fmt
@$(PRETTIER) --write '**/*.md' --tab-width 4 --prose-wrap always
fmt-check:
@script/fmt-check
@$(PRETTIER) --check '**/*.md' --tab-width 4 --prose-wrap always
check:
@script/check
check: test lint fmt-check
docker:
@script/docker
docker build -t prompts .
hooks:
@script/install-precommit
@printf '#!/bin/sh\nset -e\n' > .git/hooks/pre-commit
@if [ -f go.mod ]; then \
printf 'go mod tidy\ngo fmt ./...\ngit diff --exit-code -- go.mod go.sum || { echo "go mod tidy changed files; please stage and retry"; exit 1; }\n' >> .git/hooks/pre-commit; \
fi
@printf 'make check\n' >> .git/hooks/pre-commit
@chmod +x .git/hooks/pre-commit

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@@ -102,54 +102,6 @@ cd prompts
Prompts are stored as Markdown files in `prompts/`. Copy or reference them as
needed in your projects.
## Entrypoints
This repository adheres to the
[Scripts to Rule Them All](https://github.com/github/scripts-to-rule-them-all)
standard: normalized scripts in `script/` are the entrypoints for the
development workflow, and the Makefile targets are thin shims that call them.
The scripts are POSIX sh (not bash) so they run in minimal containers such as
alpine. We provide:
- `script/bootstrap` — install all dependencies (yarn install)
- `script/setup` — set up the repo for development after a fresh clone: runs
`script/bootstrap`, then `script/install-precommit`
- `script/projectname` — output the project name (our own extension); used by
`script/docker` for the image tag
- `script/test` — run the test suite (no tests defined here)
- `script/lint` — lint the markdown files, by building `Dockerfile.lint`. The
lint verdict comes only from the container; nothing on the host produces one.
(The prettier in `node_modules` that `script/fmt` and `script/fmt-check` use
is the same binary, which is why this says "verdict" rather than "never on the
host" — see the scope note in `prompts/REPO_POLICIES.md`.) Linting happens as
a build step, so a successful build is a clean lint, and the same
per-invocation `CHECK_EPOCH` nonce used elsewhere is what stops Docker serving
that lint from cache on an unchanged tree. A failure that names no finding —
daemon down, image unpullable — is not a lint result: read which build step
failed, fix that, and re-run
- `script/fmt` — format all markdown files with prettier (writes)
- `script/fmt-check` — check formatting (read-only)
- `script/check` — run all checks: `test`, `lint`, `fmt-check` (our own
extension). Needs a docker daemon, since `script/lint` is a container build
- `script/docker` — build the Docker image, tagged via `script/projectname`
(byte-identical across repos); passes the same `CHECK_EPOCH` nonce as
`script/cibuild`
- `script/cibuild` — cd to the repo root, run `script/lint` first, then assign
`epoch="$(date +%s%N)$$"` and `version="$(git describe ...)"` on their own
lines and
`docker build --build-arg CHECK_EPOCH="$epoch" --build-arg VERSION="$version" .`
(what CI runs; both build args are mandatory). Two container builds: the lint
image, then the main image, which runs `script/test` and `script/fmt-check`
but deliberately not `make check` — that would nest a docker build inside a
build step. So `script/cibuild` is what proves the branch green; a bare
`docker build .` never lints, and fails closed on purpose
- `script/precommit` — run by the git pre-commit hook (our own extension); calls
`script/check`
- `script/install-precommit` — installs the git pre-commit hook (our own
extension); `make hooks` shims to it
`make hooks` installs the pre-commit hook that runs `script/precommit`.
## Rationale
LLM prompts, especially development policies, benefit from version control and a

179
TODO.md
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@@ -1,179 +0,0 @@
# Workflow
- branch (from `main`)
- do the work in Next Step
- move Next Step to the top of Completed Steps
- move the top item of Future Steps into Next Step
- commit (`TODO.md` changes in the same commit as the work)
- merge to `main` if the branch is not protected, otherwise open a PR
- push
# Status
pre-1.0
# Next Step
Finish the two draft prompt documents in the working tree and commit them:
prompts/FIXUP_CLEAN.md (currently a near-empty stub) and prompts/FIXUP_REPORT.md
(a rough draft). Write the missing content, run `make fmt` so they pass
fmt-check, and commit.
# Completed Steps
- 2026-08-10: Moved every lint run into a container, on the owner's ruling, and
made this repo do it rather than merely document it. `script/lint` is now
`docker build -f Dockerfile.lint .` and nothing else; the linter is never
installed on the host and never invoked there, so a run cannot inherit another
checkout's content-keyed result cache, the host-global
`$TMPDIR/golangci-lint.lock`, or a host toolchain that differs from the pinned
one — the three mechanisms behind a confirmed false green, a string of
findings reported against other agents' checkouts, and a container that saw
thirteen findings the host missed. Linting runs as a build step, so a
successful build is a clean lint, which also works where the docker daemon is
remote and bind mounts are impossible. The recursion this creates is resolved
by direction rather than by detection: the main `Dockerfile` runs the
individual non-lint checks instead of `make check`, and `script/cibuild` runs
`script/lint` first, so no build ever nests a build. `Dockerfile.lint` carries
the same `CHECK_EPOCH` guard as the main image, with the `ARG` below the
dependency layer so only the lint steps re-run — blanket `--no-cache` was
rejected because it makes every lint reinstall its dependencies over the
network. Two canonical forms were superseded rather than left standing beside
the new one, since consuming repos read this document literally: the
`script/bootstrap` golangci-lint install (nothing runs a host linter now, so
it can only reintroduce skew; the version-enforcement principle stays
documented for other pinned host tools) and the per-checkout
cache/lock/`.lint-cache` wrapper (its whole subject was making a host run
trustworthy). The Go multistage lint stage goes with them: it ran `make lint`,
which is now a docker build. `golangci-lint config verify` was kept on
measurement, not preference — a bogus config key passes `golangci-lint run`
with `0 issues` and fails `config verify`, and every case reproduced
byte-identically under `docker run --network none`, so the schema is embedded
in the pinned binary and the line costs no network. Two positions are stated
rather than left as gaps, because canon that omits them gets re-derived
wrongly: `docker build` returns 1 both for findings and for a build that never
reached the lint step, and the exit-75 VOID machinery is deliberately not
restored — the dangerous direction is closed since an unrunnable lint fails
closed, BuildKit already names the failing step, and the failure is not
transient, so what survives is the reading rule that a run which did not lint
is not a verdict. And the rule is about linters: `script/fmt` and
`script/fmt-check` run on the host by necessity, which in a repo whose
formatter is its linter — this one — means that exact command does run there,
recorded as a known and bounded gap rather than papered over. Verified with
two consecutive runs on an unchanged tree both executing the linter, a planted
violation caught and reverted, the bare-build guard firing, and the main image
building without attempting a nested build.
- 2026-08-09: Made a golangci-lint result belong to the tree that asked for it.
REPO_POLICIES.md now carries the canonical Go `script/lint`, which gives the
linter per-checkout `GOLANGCI_LINT_CACHE` and per-checkout `TMPDIR`. The two
are separate defects and the second is the one that gets dropped: the result
cache is keyed on file content rather than location, so checkouts holding
identical files serve each other's findings under the other's path, while the
concurrency lock is `$TMPDIR/golangci-lint.lock` — host-global, independent of
the cache, and unaffected by isolating it. Moving workers from worktrees to
their own clones does not help either half; it only removes the foreign-path
artefact that made the defect visible. The lock error is retried rather than
surfaced, because it is not a result: it exits non-zero exactly as findings
do, and reporting it as findings sends a correct branch back for rework.
Detection is on the stderr stream and never on exit status, so a finding
quoting the lock message in source cannot be retried away, and exhaustion
exits 75 with a VOID message rather than passing or failing quietly.
`--allow-serial-runners` (which keeps the guard and queues) covers the
same-checkout overlap that `TMPDIR` scoping cannot; `--allow-parallel-runners`
is rejected outright. The stdout and stderr capture files are per invocation
rather than per checkout, because serialising the linter does not serialise
the shell's redirections: two runs in one checkout — the overlap the flag
exists to support — would otherwise truncate and read each other's output,
which is the same defect one layer above where it was fixed. Both checklists
gained the corresponding items, since a half-fix that sets only the cache
reads as complete. `GOCACHE` was measured and does not need isolating.
Verified with the snippet extracted from the committed document and executed
as a consuming repo would adopt it, against paired controls: contamination
reproduced on the pre-fix form and absent on the adopted one, retry engaged,
exhaustion loud, a genuine finding still reported, and a held host lock
failing the pre-fix script while leaving the adopted one untouched.
- 2026-08-09: Kept in-repo agent scratch out of the Docker build context and out
of version control. `.claude/` holds one worktree — an entire additional
checkout of the repo — per in-flight agent, and under `COPY . .` all of it was
reaching the image: another session's unreviewed, sometimes uncommitted work,
inflating the context by a multiple of the repo and invalidating `COPY` for
reasons unrelated to the repo's own content. The `.dockerignore` entry is
root-anchored, because the directory occurs exactly once where agents run at
the repo root and the `**/` form additionally deletes any nested directory of
that name — with the residual gap that follows from anchoring (a monorepo
running agents in subdirectories still ships `services/api/.claude/`) stated
in the canonical `.dockerignore`, the policy and the existing-repo checklist,
since consuming repos receive the files rather than the tracker; the
`.gitignore` entry is unanchored, because `.gitignore` patterns already match
at every depth, and each file is written to its own semantics rather than
derived from the other. Also closed the consequence that ships broken
silently: excluding `.git` means `git describe` cannot run in any build stage
and yields an empty version without erroring, so `script/docker` and
`script/cibuild` now compute the version on the host and pass
`--build-arg VERSION`, and `REPO_POLICIES.md` states where `VERSION` comes
from instead of leaving the reader to fill the gap with `git describe` inside
the build. The two Go documents that carry the `GOLDFLAGS` pattern were
corrected in the same pass, from `:=` to `?=`, since a `$(shell git describe)`
evaluated inside a build stage is exactly the empty version this closes.
Verified by enumerating a probe image before, after, and against the
`**/`-prefixed form, with a positive control and the `CHECK_EPOCH` cache
verification re-run under the changed build context.
- 2026-08-09: Closed the secret exposure in the canonical `.dockerignore`: a
developer's local `.env`, `*.pem` or `*.key` was reaching the Docker build
context under `COPY . .`, invisible to every git-based check because
`.gitignore` covers it. The patterns are written to `.dockerignore`'s own
`moby/patternmatcher` semantics — `**/`-prefixed so they hold at every depth,
which also fixes nested `node_modules` — rather than transplanted from
`.gitignore`, whose unprefixed form protects only the repository root while
reading as solved. Coverage extends past the `.env`/`.pem`/`.key` trio to the
`prod.env` convention, `.envrc`, PKCS#12 bundles and extensionless SSH keys,
every one of them case-folded with character ranges because matching is
case-sensitive and an ALL-CAPS twin per pattern still misses `Server.Key`.
`REPO_POLICIES.md` and both repo checklists now state that asymmetry and
require verification by enumerating the image rather than by reading the
patterns. Verified with a probe image before, against three naive forms
(unprefixed, lowercase-only, ALL-CAPS-doubled), and after.
- 2026-08-09: Made the pinned golangci-lint actually propagate: REPO_POLICIES.md
now carries the canonical `script/bootstrap` snippet for Go repos, which
installs when the installed version does not match the pin (the old
`if missing` guard tested PATH presence only, so pins were inert on any
provisioned machine and CI silently disagreed with local) and then re-resolves
the binary through `PATH` and fails loudly, naming the shadowing path, when
the install did not take effect — the failure mode the naive
compare-then-install fix leaves behind while reporting success.
- 2026-08-09: Fixed the false green in the canonical CI gate: `script/cibuild`
and `script/docker` now pass a per-invocation `CHECK_EPOCH` nonce, and the
`Dockerfile` (plus the Go multistage template in REPO_POLICIES.md, in both its
lint and builder stages) declares `ARG CHECK_EPOCH` with a guard that makes a
bare `docker build .` fail closed. Corrected the org-canonical text that
asserted a successful build implies all checks pass, across every document
carrying it: `REPO_POLICIES.md`, both repo checklists (which still told agents
to write the pre-fix `script/cibuild` and ended on an acceptance item the
guard makes unsatisfiable), and the Go styleguide.
- 2026-08-07: Set the canonical `.golangci.yml` to the org-standard v2-schema
config already deployed byte-identical across the org's Go repos (settings
under `linters.settings` so thresholds like lll/funlen/cyclop/dupl actually
apply under golangci-lint v2). Recorded the canonical golangci-lint version
(v2.12.2, commit-pinned) in REPO_POLICIES.md.
- 2026-03-20: Strengthened constructor naming and Params struct rules in the Go
styleguide.
- 2026-03-18: Documented fail-fast Dockerfile lint stage and conditional -v test
rerun patterns in REPO_POLICIES.md.
- 2026-03-11: Added HTTP service hardening policy for 1.0 releases.
- 2026-03-10: Added policy: no build artifacts in repos.
- 2026-03-04: Added LLM prose tells reference and copyediting checklist, then
several self-applied revision passes.
- 2026-02-28: Expanded the pre-1.0 schema migration rule; added clawpub
reference.
- 2026-02-23: Added Go style rules (no type-only packages, Stringer for
string-based types); template repos section in README.
- 2026-02-22: Initial policy corpus: REPO_POLICIES.md, code styleguides
(general, Go, JS, Python), repo checklists, CI policy, hash pinning, Go HTTP
server conventions, repo scaffolding.
# Future Steps
- Finish, format, and commit FIXUP_CLEAN.md and FIXUP_REPORT.md (the Next Step).
- Commit this TODO.md at the repo root; it is the last missing policy file.
- Decide the fate of untracked resume.sh: commit it or delete it.
- Add more prompt templates for common development tasks (from README TODO).

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@@ -1,6 +1,6 @@
---
title: Code Styleguide — Go
last_modified: 2026-08-10
last_modified: 2026-02-22
---
1. Try to hard wrap long lines at 77 characters or less.
@@ -49,20 +49,7 @@ last_modified: 2026-08-10
```
```make
# ?= rather than := because this `$(shell git describe ...)` is only
# correct on the host. `.dockerignore` excludes `.git`, so evaluated
# inside a build stage it expands to the empty string without failing
# and the binary reports no version at all. The version is computed on
# the host by `script/docker` / `script/cibuild` and passed with
# `--build-arg VERSION=...`. If this repo's Dockerfile compiles by
# invoking make (`RUN make build`), `ARG VERSION` in that stage puts the
# value in the environment and `?=` defers to it. The canonical Go
# template in REPO_POLICIES.md instead runs `go build` directly with
# `-ldflags "... -X main.Version=${VERSION}"`, so there this Makefile is
# a host-only path — but it is still `?=`, because a repo that later
# moves the build behind make must not silently start shipping an empty
# version. See the git-describe rule in REPO_POLICIES.md.
VERSION ?= $(shell git describe --always --dirty)
VERSION := $(shell git describe --always --dirty)
BUILDARCH := $(shell uname -m)
GOLDFLAGS += -X main.Version=$(VERSION)
@@ -111,29 +98,12 @@ last_modified: 2026-08-10
1. For anything beyond a simple script or tool, or anything that is going to
run in any sort of "production" anywhere, make sure it passes
`golangci-lint`. Run it with `make lint`, which builds `Dockerfile.lint`:
the linter runs in a container, always, and `golangci-lint` is not installed
on the host at all — no repo's `script/bootstrap` installs it any more. A
`golangci-lint` invoked directly on a shared host reads a result cache keyed
on file content rather than location and a host-global lock, so its answer
may belong to another checkout entirely, and a `make lint` is the only
verdict worth recording. A failure that names no finding is not a verdict
either: read which build step failed before concluding anything.
`golangci-lint`.
1. Write a `Dockerfile` for every repo, even if it only runs the tests. It runs
the non-lint checks; linting lives in `Dockerfile.lint` and is run by
`script/cibuild` before the main build, because `script/lint` is itself a
`docker build` and cannot run inside one. So `script/cibuild` is what
guarantees the code is in an able-to-be-compiled state, linted, and tested —
**a successful `docker build .` on its own does not, because it never
lints.** That guarantee holds only because each build passes a
per-invocation `CHECK_EPOCH` build arg that busts its check layers out of
the Docker cache; without it an unchanged tree serves those layers from
cache and the build reports a green it never ran. A bare `docker build .`
fails closed by design, on the `[ -n "$CHECK_EPOCH" ]` guard — always go
through `script/cibuild`, `script/docker` or `script/lint`. See
[Repository Policies](https://git.eeqj.de/sneak/prompts/raw/branch/main/prompts/REPO_POLICIES.md)
for the canonical form.
1. Write a `Dockerfile` for every repo, even if it only runs the tests and
linting. `docker build .` should always make sure that the code is in an
able-to-be-compiled state, linted, and any tests run. The Docker build
should fail if linting doesn't pass.
1. Every repo must have a `Makefile`. See
[Repository Policies](https://git.eeqj.de/sneak/prompts/raw/branch/main/prompts/REPO_POLICIES.md)
@@ -166,15 +136,8 @@ last_modified: 2026-08-10
1. Provide a .gitignore file that ignores at least `*.log`, `*.out`, and
`*.test` files, as well as any binaries.
1. Constructors **must** be called `New()`. `modulename.New()` works great if
you name the packages properly. If the constructor creates an instance from
an existing value or representation, `From<Something>()` (e.g.
`FromBytes()`, `FromConfig()`) is also acceptable. If the package contains
multiple types and `New()` is ambiguous, `NewThing()` is occasionally
acceptable — but prefer restructuring packages so each type gets its own
package and a plain `New()`. Do not invent creative constructor names like
`Create()`, `Make()`, `Build()`, `Open()` (unless wrapping an OS resource),
or `Init()`. If you see a constructor with a non-standard name, rename it.
1. Constructors should be called `New()` whenever possible. `modulename.New()`
works great if you name the packages properly.
1. Don't make packages too big. Break them up.
@@ -186,15 +149,9 @@ last_modified: 2026-08-10
1. Use descriptive names for modules and filenames. Avoid generic names like
`server`. `util` is banned.
1. Constructors **must** take a `Params` struct (or `ThingParams` when
`NewThing()` is used), even for a single argument. Named fields in a Params
struct are always clearer than positional arguments. Positional arguments
for constructors are an endless source of bugs — they make call sites
unreadable, invite wrong-order errors that the compiler can't catch when
types coincide, and force every caller to update when a new field is added.
The only exception is when the single argument is stupidly obvious from
context — e.g. `featureflag.New(true)` or `thing.NewFromReader(r)`. When in
doubt, use a Params struct.
1. Constructors should take a Params struct if they need more than 1-2
arguments. Positional arguments are an endless source of bugs and should be
avoided whenever possible.
1. Use `context.Context` for all functions that need it. If you don't need it,
you can pass `context.Background()`. Anything long-running should get and

View File

@@ -1,6 +1,6 @@
---
title: Existing Repo Checklist
last_modified: 2026-08-10
last_modified: 2026-02-22
---
Use this checklist when beginning work in a repo that may not yet conform to our
@@ -24,68 +24,15 @@ with your task.
- [ ] `LICENSE` file exists and matches the README
- [ ] `REPO_POLICIES.md` exists and version date is current — fetch from
`https://git.eeqj.de/sneak/prompts/raw/branch/main/prompts/REPO_POLICIES.md`
- [ ] `.gitignore` is comprehensive (OS, editor, agent scratch, language
artifacts, secrets) — fetch from
`https://git.eeqj.de/sneak/prompts/raw/branch/main/.gitignore` if missing.
An existing repo usually has a hand-written one that is never re-fetched,
so check the entries rather than the file's presence: `.claude/` in
particular, unanchored, so agent worktrees cannot be committed by
accident. Do not give it a `**/` prefix — that is a `.dockerignore` form
and is wrong here.
- [ ] `.gitignore` is comprehensive (OS, editor, language artifacts, secrets) —
fetch from `https://git.eeqj.de/sneak/prompts/raw/branch/main/.gitignore`
if missing
- [ ] `.editorconfig` exists — fetch from
`https://git.eeqj.de/sneak/prompts/raw/branch/main/.editorconfig`
- [ ] `Dockerfile` and `.dockerignore` exist (fetch `.dockerignore` from
`https://git.eeqj.de/sneak/prompts/raw/branch/main/.dockerignore`);
Dockerfile runs the **non-lint** checks as build steps (`script/test`,
`script/fmt-check`), and every stage containing a check-running `RUN`
declares `ARG CHECK_EPOCH` with the `RUN [ -n "$CHECK_EPOCH" ] || exit 1`
guard immediately below it — see the `CHECK_EPOCH` rule in
`REPO_POLICIES.md`. Without them the check layer is served from cache on
an unchanged tree and the build reports a green it never ran.
- [ ] The `Dockerfile` no longer runs `make check`, and no longer has a `lint`
stage or a `COPY --from=lint ... /dev/null` ordering line. This is the
item an existing repo most often fails: `script/lint` is now a
`docker build`, so both of those nest a docker build inside a build step.
Delete the stage; `script/cibuild` running `script/lint` first is what
replaces its fail-fast purpose.
- [ ] `Dockerfile.lint` exists and `script/lint` builds it — see the
containerised-lint rule in `REPO_POLICIES.md` for the canonical file. Its
base image is pinned by sha256 with a version/date comment, it carries
`ARG CHECK_EPOCH` **after** the dependency layer with the guard below it,
and it invokes the linter directly rather than through `make lint`.
- [ ] `.dockerignore` excludes the repo's own host-built artifacts (compiled
binaries, test binaries, coverage output), written root-anchored —
`/myapp`, never `**/myapp`, which would also match `cmd/myapp/`. An
existing repo is where such a binary is likeliest to already be sitting in
the build context, invisible to git.
- [ ] `.dockerignore` excludes `.claude`, root-anchored and with no `**/`
prefix. Agent worktrees are entire checkouts of the repo, so they inflate
the context by a multiple of it and can copy another session's unreviewed
work into an image layer. Confirm by enumerating the image, not by reading
the file — `.gitignore` hides these from `git status` too.
- [ ] **Do agents in this repo run anywhere other than the repo root?** The
scratch directory is created in the agent's working directory, so the
canonical anchored entry misses `services/api/.claude/` in a monorepo with
a per-service agent — it still reaches the build context and the image. An
existing repo is where such a layout already exists, so check it here
rather than assuming the canonical entry covers you: add anchored entries
for the subdirectories that have one (`/services/api/.claude`), or
`**/.claude` once you have confirmed no legitimately named nested
directory would be caught.
- [ ] If the repo embeds a version in a binary, that version is computed on the
host and passed with `--build-arg VERSION=...` by `script/docker` and
`script/cibuild`. No stage calls `git describe`: `.dockerignore` excludes
`.git`, so it yields an empty version without failing the build. A
tag-derived version additionally needs `fetch-depth: 0` on the CI checkout
step, which clones shallow and fetches no tags by default.
- [ ] Every depth-independent pattern in `.dockerignore` carries a `**/` prefix;
only genuinely root-anchored entries such as `.git` are unprefixed, and
`.gitignore`'s patterns have not been transplanted unmodified.
`.dockerignore` anchors an unprefixed pattern at the context root, so the
transplanted form leaves `config/.env` and `certs/server.key` in the build
context while reading as solved — see the `.dockerignore` rule in
`REPO_POLICIES.md`.
- [ ] Gitea Actions workflow in `.gitea/workflows/` runs `script/cibuild` on
- [ ] `Dockerfile` and `.dockerignore` exist; Dockerfile runs `make check` as a
build step — fetch `.dockerignore` from
`https://git.eeqj.de/sneak/prompts/raw/branch/main/.dockerignore`
- [ ] Gitea Actions workflow in `.gitea/workflows/` runs `docker build .` on
push — reference
`https://git.eeqj.de/sneak/prompts/raw/branch/main/.gitea/workflows/check.yml`
- [ ] Language-specific config:
@@ -98,46 +45,12 @@ with your task.
- [ ] Python: `pyproject.toml`
- [ ] Docs/writing: `.prettierrc`, `.prettierignore` (same URLs as above)
# Makefile and script/ Entrypoints
# Makefile
- [ ] `Makefile` exists in root — reference
`https://git.eeqj.de/sneak/prompts/raw/branch/main/Makefile`
- [ ] Has targets: `test`, `lint`, `fmt`, `fmt-check`, `check`, `docker`,
`hooks`
- [ ] Target implementations live in `script/` (scripts-to-rule-them-all);
Makefile targets are thin shims calling them — model scripts at
`https://git.eeqj.de/sneak/prompts/raw/branch/main/script/<name>`
- [ ] `script/precommit` exists and the pre-commit hook (installed by
`script/install-precommit`, shimmed by `make hooks`) runs it
- [ ] README has an **Entrypoints** section documenting the `script/`
entrypoints and linking the standard
- [ ] `script/lint` is the canonical container build and nothing else, and no
host invocation anywhere in the repo can produce a lint **verdict** — grep
for the linter's own name across `script/`, the `Makefile` and CI config,
not just in `script/lint`. An existing repo is where a second path to the
linter is likeliest to exist: a `make lint-fast`, a container-versus-host
branch, or a CI step that calls the binary directly. **Two hits are
expected and are not the defect**, so triage rather than delete: any
`script/fmt` (a formatter must run on the host — that is its job), and, in
a repo whose formatter is also its linter, `script/fmt-check`, whose
command will be the same string as the one in `Dockerfile.lint`. See the
scope note in the containerised-lint rule. Everything else the grep finds
is a real second path and goes.
- [ ] `script/bootstrap` installs no linter **for the purpose of linting**.
Delete a dedicated install — the golangci-lint block, its version and ref
variables, and its call site: nothing invokes a host linter any more, so
all it can still do is put a differently versioned binary where somebody
runs it by hand and believes the result. A JS repo's `yarn install` stays;
it brings a linter along with every other dependency, which is unavoidable
and harmless as long as no verdict is taken from it.
- [ ] The per-checkout lint state is gone: no `GOLANGCI_LINT_CACHE` or `TMPDIR`
exports, no `--allow-serial-runners`, and `.lint-cache/` removed from
`.gitignore` and `.dockerignore`. A container has its own cache and its
own lock, so keeping the wrapper leaves two contradictory `script/lint`
forms in the fleet.
- [ ] `script/cibuild` runs `script/lint` before the main `docker build`.
Without that line CI never lints at all, because the main image
deliberately does not.
- [ ] `make check` does not modify any files in the repo
- [ ] `make test` has a 30-second timeout
- [ ] `make test` runs real tests, not a no-op (at minimum, import/compile
@@ -165,28 +78,8 @@ with your task.
`internal/`, `static/`, etc.)
- [ ] Go migrations in `internal/db/migrations/` and embedded in binary
# HTTP Service Hardening (if targeting 1.0 and the repo is an HTTP/web service)
- [ ] Security headers set on all responses (HSTS, CSP, X-Frame-Options,
X-Content-Type-Options, Referrer-Policy, Permissions-Policy)
- [ ] Request body size limits enforced on all endpoints
- [ ] Read/write/idle timeouts configured on the HTTP server (slowloris defense)
- [ ] Per-handler execution time limits in place
- [ ] Password-based auth endpoints are rate-limited
- [ ] CSRF tokens on all state-mutating HTML forms
- [ ] Passwords hashed with bcrypt, scrypt, or argon2
- [ ] Session cookies use HttpOnly, Secure, and SameSite attributes
- [ ] True client IP correctly detected behind reverse proxy (trusted proxy
allowlist configured)
- [ ] CORS restricted to explicit origin allowlist for authenticated endpoints
- [ ] Error responses do not leak stack traces, SQL queries, or internal paths
# Final
- [ ] `make check` passes
- [ ] `make lint` runs twice on an unchanged tree with the lint layer `DONE`
both times, never `CACHED` and never sub-second
- [ ] `script/cibuild` succeeds and runs both container builds (a bare
`docker build .` or `docker build -f Dockerfile.lint .` fails closed by
design, on the `CHECK_EPOCH` guard)
- [ ] `docker build` succeeds
- [ ] Commit and merge fixes before starting your actual task

View File

@@ -1,6 +1,6 @@
---
title: Go HTTP Server Conventions
last_modified: 2026-08-09
last_modified: 2026-02-22
---
This document defines the architectural patterns, design decisions, and
@@ -991,14 +991,7 @@ func main() {
Use ldflags to inject version information at build time:
```makefile
# ?= rather than := because this `$(shell git describe ...)` is only correct
# on the host: `.dockerignore` excludes `.git`, so evaluated inside a build
# stage it expands to the empty string without failing and the binary reports
# no version. The version is computed on the host by `script/docker` /
# `script/cibuild` and passed with `--build-arg VERSION=...`; where the build
# stage invokes make, `ARG VERSION` puts it in the environment and `?=` defers
# to it. See the git-describe rule in REPO_POLICIES.md.
VERSION ?= $(shell git describe --tags --always)
VERSION := $(shell git describe --tags --always)
BUILDARCH := $(shell go env GOARCH)
build:

View File

@@ -1,6 +1,9 @@
# LLM Prose Tells
A catalog of patterns found in LLM-generated prose.
All of these show up in human writing occasionally. No single one is conclusive
on its own. The difference is concentration. A person might lean on one or two
of these habits across an entire essay, but LLM output will use fifteen of them
per paragraph, consistently, throughout the entire piece.
---
@@ -13,11 +16,19 @@ A negation followed by an em-dash and a reframe.
> "It's not just a tool—it's a paradigm shift." "This isn't about
> technology—it's about trust."
The single most recognizable LLM construction. Models produce this at roughly 10
to 50x the rate of human writers. Four of them in one essay and you know what
you're reading.
### Em-Dash Overuse Generally
Even outside the "not X but Y" pivot, models substitute em-dashes for commas,
semicolons, parentheses, colons, and periods. The em-dash can replace any other
punctuation mark, so models default to it.
Even outside the "not X but Y" pivot, models use em-dashes at far higher rates
than human writers. They substitute em-dashes for commas, semicolons,
parentheses, colons, and periods, often multiple times per paragraph. A human
writer might use one or two in an entire piece for a specific parenthetical
effect. Models scatter them everywhere because the em-dash can stand in for any
other punctuation mark, so they default to it. More than two or three per page
is a meaningful signal on its own.
### The Colon Elaboration
@@ -25,25 +36,33 @@ A short declarative clause, then a colon, then a longer explanation.
> "The answer is simple: we need to rethink our approach from the ground up."
Models reach for this in every other paragraph. The construction is perfectly
normal. The frequency gives it away.
### The Triple Construction
> "It's fast, it's scalable, and it's open source."
Three parallel items in a list, usually escalating. Always exactly three (rarely
two, never four) with strict grammatical parallelism.
two, never four) with strict grammatical parallelism that human writers rarely
bother maintaining.
### The Staccato Burst
> "This matters. It always has. And it always will." "The data is clear. The
> trend is undeniable. The conclusion is obvious."
Runs of very short sentences at the same cadence and matching length.
Runs of very short sentences at the same cadence. Human writers use a short
sentence for emphasis occasionally, but stacking three or four of them in a row
at matching length creates a mechanical regularity that reads as generated.
### The Two-Clause Compound Sentence
An independent clause, a comma, a conjunction ("and," "but," "which,"
"because"), and a second independent clause of similar length. Every sentence
becomes two balanced halves.
Possibly the most pervasive structural tell, and easy to miss because each
individual instance looks like normal English. The model produces sentence after
sentence where an independent clause is followed by a comma, a conjunction
("and," "but," "which," "because"), and a second independent clause of similar
length. Every sentence becomes two balanced halves joined in the middle.
> "The construction itself is perfectly normal, which is why the frequency is
> what gives it away." "They contain zero information, and the actual point
@@ -53,62 +72,61 @@ becomes two balanced halves.
Human prose has sentences with one clause, sentences with three, sentences that
start with a subordinate clause before reaching the main one, sentences that
embed their complexity in the middle.
embed their complexity in the middle. When every sentence on the page has that
same two-part structure, the rhythm becomes monotonous in a way that's hard to
pinpoint but easy to feel.
### Uniform Sentences Per Paragraph
Model-generated paragraphs contain between three and five sentences, a count
that holds steady across a piece. If the first paragraph has four sentences,
every subsequent paragraph will too.
Model-generated paragraphs contain between three and five sentences. This count
holds steady across an entire piece. If the first paragraph has four sentences,
every subsequent paragraph will too. Human writers are much more varied (a
single sentence followed by one that runs eight or nine) because they follow the
shape of an idea, not a template.
### The Dramatic Fragment
Sentence fragments used as standalone paragraphs for emphasis.
> "Full stop." "Let that sink in."
Sentence fragments used as standalone paragraphs for emphasis, like "Full stop."
or "Let that sink in." on their own line. Using one in an entire essay is a
reasonable stylistic choice, but models drop them in once per section or more,
at which point it becomes a habit rather than a deliberate decision.
### The Pivot Paragraph
> "But here's where it gets interesting." "Which raises an uncomfortable truth."
One-sentence paragraphs that exist only to transition between ideas, containing
zero information. The actual point is always in the next paragraph.
One-sentence paragraphs that exist only to transition between ideas. They
contain zero information. The actual point is always in the next paragraph.
Delete every one of these and the piece reads better.
### The Parenthetical Qualifier
> "This is, of course, a simplification." "There are, to be fair, exceptions."
Parenthetical asides inserted to perform nuance without changing the argument.
Parenthetical asides inserted to look thoughtful. The qualifier never changes
the argument that follows it. Its purpose is to perform nuance, not to express a
real reservation about what's being said.
### The Unnecessary Contrast
A contrasting clause appended to a statement that doesn't need one, using
"whereas," "as opposed to," "unlike," or "except that."
Models append a contrasting clause to statements that don't need one, tacking on
"whereas," "as opposed to," "unlike," or "except that" to draw a comparison the
reader could already infer.
> "Models write one register above where a human would, whereas human writers
> tend to match register to context."
The contrasting clause restates what the first clause already said. If you
delete the "whereas" clause and the sentence still says everything it needs to,
the contrast was filler.
### Unnecessary Elaboration
Models keep going after the sentence has already made its point.
> "A person might lean on one or two of these habits across an entire essay, but
> LLM output will use fifteen of them per paragraph, consistently, throughout
> the entire piece."
This sentence could end at "paragraph." The words after it repeat what "per
paragraph" already means. If you can cut the last third of a sentence without
losing meaning, the last third shouldn't be there.
The first clause already makes the point. The contrasting clause restates it
from the other direction. If you delete the "whereas" clause and the sentence
still says everything it needs to, the contrast was filler.
### The Question-Then-Answer
> "So what does this mean for the average user? It means everything."
A rhetorical question immediately followed by its own answer.
A rhetorical question immediately followed by its own answer. Models do this two
or three times per piece because it fakes forward momentum. A human writer might
do it once.
---
@@ -116,38 +134,44 @@ A rhetorical question immediately followed by its own answer.
### Overused Intensifiers
"Crucial," "vital," "robust," "comprehensive," "fundamental," "arguably,"
The following words appear at dramatically elevated rates in model output:
"crucial," "vital," "robust," "comprehensive," "fundamental," "arguably,"
"straightforward," "noteworthy," "realm," "landscape," "leverage" (as a verb),
"delve," "tapestry," "multifaceted," "nuanced" (applied to the model's own
analysis), "pivotal," "unprecedented" (applied to things with plenty of
precedent), "navigate," "foster," "underscores," "resonates," "embark,"
"streamline," "spearhead."
"delve," "tapestry," "multifaceted," "nuanced" (which models apply to their own
analysis with startling regularity), "pivotal," "unprecedented" (frequently
applied to things with plenty of precedent), "navigate," "foster,"
"underscores," "resonates," "embark," "streamline," and "spearhead." Three or
more on the same page is a strong signal.
### Elevated Register Drift
Models write one register above where a human would, replacing "use" with
"utilize," "start" with "commence," "help" with "facilitate," "show" with
"demonstrate," "try" with "endeavor," "change" with "transform," and "make" with
"craft."
Models write one register above where a human would. "Use" becomes "utilize."
"Start" becomes "commence." "Help" becomes "facilitate." "Show" becomes
"demonstrate." "Try" becomes "endeavor." "Change" becomes "transform." "Make"
becomes "craft." The tendency holds regardless of topic or audience.
### Filler Adverbs
"Importantly," "essentially," "fundamentally," "ultimately," "inherently,"
"particularly," "increasingly." Dropped in to signal that something matters when
the writing itself should make the importance clear.
"particularly," "increasingly." Dropped in to signal that something matters,
which is unnecessary when the writing itself already makes the importance clear.
### The "Almost" Hedge
Instead of saying a pattern "always" or "never" does something, models write
"almost always," "almost never," "almost certainly," "almost exclusively." A
micro-hedge, less obvious than the full hedge stack.
Models rarely commit to an unqualified statement. Instead of saying a pattern
"always" or "never" does something, they write "almost always," "almost never,"
"almost certainly," "almost exclusively." The word "almost" shows up at
extraordinary density in model-generated analytical prose. It's a micro-hedge,
less obvious than the full hedge stack but just as diagnostic when it appears
ten or fifteen times in a single document.
### "In an era of..."
> "In an era of rapid technological change..."
Used to open an essay. The model is stalling while it figures out what the
actual argument is.
A model habit as an essay opener. The model uses it to stall while it figures
out what the actual argument is. Human writers don't begin a piece by zooming
out to the civilizational scale before they've said anything specific.
---
@@ -158,20 +182,24 @@ actual argument is.
> "While X has its drawbacks, it also offers significant benefits."
Every argument followed by a concession, every criticism softened. A direct
artifact of RLHF training, which penalizes strong stances.
artifact of RLHF training, which penalizes strong stances. Models reflexively
both-sides everything even when a clear position would serve the reader better.
### The Throat-Clearing Opener
> "In today's rapidly evolving digital landscape, the question of data privacy
> has never been more important."
The first paragraph adds no information. Delete it and the piece improves.
The first paragraph of most model-generated essays adds no information. Delete
it and the piece improves immediately. The actual argument starts in paragraph
two.
### The False Conclusion
> "At the end of the day, what matters most is..." "Moving forward, we must..."
The high school "In conclusion,..." dressed up for a professional audience.
Signals that the model is wrapping up without actually landing on anything.
### The Sycophantic Frame
@@ -192,13 +220,15 @@ the key considerations:"
> cases it can potentially offer significant benefits."
Five hedges in one sentence ("worth noting," "while," "may not be," "in many
cases," "can potentially"), communicating nothing.
cases," "can potentially"), communicating nothing. The model would rather be
vague than risk being wrong about anything.
### The Empathy Performance
> "This can be a deeply challenging experience." "Your feelings are valid."
Generic emotional language that could apply to anything.
Generic emotional language that could apply equally to a bad day at work or a
natural disaster. That interchangeability is what makes it identifiable.
---
@@ -206,28 +236,35 @@ Generic emotional language that could apply to anything.
### Symmetrical Section Length
If the first section runs about 150 words, every subsequent section will fall
between 130 and 170.
If the first section of a model-generated essay runs about 150 words, every
subsequent section will fall between 130 and 170. Human writing is much more
uneven, with 50 words in one section and 400 in the next.
### The Five-Paragraph Prison
Model essays follow a rigid introduction-body-conclusion arc even when nobody
asked for one. The introduction previews the argument, the body presents 3 to 5
points, the conclusion restates the thesis.
points, and then the conclusion restates the thesis using slightly different
words.
### Connector Addiction
The first word of each paragraph forms an unbroken chain of transition words:
"However," "Furthermore," "Moreover," "Additionally," "That said," "To that
end," "With that in mind," "Building on this."
Look at the first word of each paragraph in model output. You'll find an
unbroken chain of transition words: "However," "Furthermore," "Moreover,"
"Additionally," "That said," "To that end," "With that in mind," "Building on
this." Human prose moves between ideas without announcing every transition.
### Absence of Mess
Model prose doesn't contradict itself mid-paragraph and then catch the
contradiction, go on a tangent and have to walk it back, use an obscure idiom
without explaining it, make a joke that risks falling flat, leave a thought
genuinely unfinished, or keep a sentence the writer liked the sound of even
though it doesn't quite work.
contradiction. It doesn't go on a tangent and have to walk it back, use an
obscure idiom without explaining it, make a joke that risks falling flat, leave
a thought genuinely unfinished, or keep a sentence the writer liked the sound of
even though it doesn't quite work.
Human writing does all of those things regularly. That total absence of rough
patches and false starts is one of the strongest signals that text was
machine-generated.
---
@@ -237,27 +274,45 @@ though it doesn't quite work.
> "This has implications far beyond just the tech industry."
Zooming out to claim broader significance without substantiating it.
Zooming out to claim broader significance without substantiating it. The model
has learned that essays are supposed to gesture at big ideas, so it gestures.
Nothing concrete is behind the gesture.
### "It's important to note that..."
This phrase and its variants ("it's worth noting," "it bears mentioning," "it
should be noted") function as verbal tics before a qualification the model
believes someone expects.
should be noted") appear at absurd rates in model output. They function as
verbal tics before a qualification the model believes someone expects.
### The Metaphor Crutch
Models rely on a small, predictable set of metaphors: "double-edged sword," "tip
Models rely on a small, predictable set of metaphors ("double-edged sword," "tip
of the iceberg," "north star," "building blocks," "elephant in the room,"
"perfect storm," "game-changer."
"perfect storm," "game-changer") and reach for them with unusual regularity
across every topic. The pool is noticeably smaller than what human writers draw
from.
---
## How to Actually Spot It
No single pattern on this list proves anything by itself. Humans use em-dashes.
Humans write "crucial." Humans ask rhetorical questions.
What gives it away is how many of these show up at once. Model output will hit
10 to 20 of these patterns per page. Human writing might trigger 2 or 3,
distributed unevenly, mixed with idiosyncratic constructions no model would
produce. When every paragraph on the page reads like it came from the same
careful, balanced, slightly formal, structurally predictable process, it was
generated by one.
---
## Copyediting Checklist: Removing LLM Tells
Follow this checklist when editing any document to remove machine-generated
patterns. Do at least two full passes, because fixing one pattern often
introduces another.
patterns. Go through the entire list for every piece. Do at least two full
passes, because fixing one pattern often introduces another.
### Pass 1: Word-Level Cleanup
@@ -271,7 +326,8 @@ introduces another.
2. Search for filler adverbs ("importantly," "essentially," "fundamentally,"
"ultimately," "inherently," "particularly," "increasingly") and delete every
instance where the sentence still makes sense without it.
instance where the sentence still makes sense without it. That will be most
of them.
3. Look for elevated register drift ("utilize," "commence," "facilitate,"
"demonstrate," "endeavor," "transform," "craft" and similar) and replace with
@@ -279,6 +335,7 @@ introduces another.
4. Search for "it's important to note," "it's worth noting," "it bears
mentioning," and "it should be noted" and delete the phrase in every case.
The sentence that follows always stands on its own.
5. Search for the stock metaphors ("double-edged sword," "tip of the iceberg,"
"north star," "building blocks," "elephant in the room," "perfect storm,"
@@ -287,114 +344,97 @@ introduces another.
6. Search for "almost" used as a hedge ("almost always," "almost never," "almost
certainly," "almost exclusively") and decide in each case whether to commit
to the unqualified claim or to drop the sentence entirely.
to the unqualified claim or to drop the sentence entirely. If the claim needs
"almost" to be true, it might not be worth making.
7. Search for em-dashes and replace each one with the punctuation mark that
would normally be used in that position (comma, semicolon, colon, period, or
parentheses). If you can't identify which one it should be, the sentence
needs to be restructured.
8. Remove redundant adjectives. For each adjective, ask whether the sentence
changes meaning without it. "A single paragraph" means the same as "a
paragraph." "An entire essay" means the same as "an essay." If the adjective
doesn't change the meaning, cut it.
9. Remove unnecessary trailing clauses. Read the end of each sentence and ask
whether the last clause restates what the sentence already said. If so, end
the sentence earlier.
### Pass 2: Sentence-Level Restructuring
10. Find every em-dash pivot ("not Xbut Y," "not just XY," "more than X—Y")
and rewrite it as two separate clauses or a single sentence that makes the
point without the negation-then-correction structure.
8. Find every em-dash pivot ("not X...but Y," "not just X...Y," "more than
X...Y") and rewrite it as two separate clauses or a single sentence that
makes the point without the negation-then-correction structure.
11. Find every colon elaboration and check whether it's doing real work. If the
9. Find every colon elaboration and check whether it's doing real work. If the
clause before the colon could be deleted without losing meaning, rewrite the
sentence to start with the substance that comes after the colon.
12. Find every triple construction (three parallel items in a row) and either
10. Find every triple construction (three parallel items in a row) and either
reduce it to two, expand it to four or more, or break the parallelism so the
items don't share the same grammatical structure.
13. Find every staccato burst (three or more short sentences in a row at similar
11. Find every staccato burst (three or more short sentences in a row at similar
length) and combine at least two of them into a longer sentence, or vary
their lengths so they don't land at the same cadence.
14. Find every unnecessary contrast ("whereas," "as opposed to," "unlike," "as
12. Find every unnecessary contrast ("whereas," "as opposed to," "unlike," "as
compared to," "except that") and check whether the contrasting clause adds
information not already obvious from the main clause. If the sentence says
the same thing twice from two directions, delete the contrast.
15. Check for the two-clause compound sentence pattern. If most sentences in a
passage follow the "\[clause\], \[conjunction\] \[clause\]" structure, first
try removing the conjunction and second clause entirely, since it's often
redundant. If the second clause does carry meaning, break it into its own
sentence, start the sentence with a subordinate clause, or embed a relative
clause in the middle instead of appending it at the end.
13. Check for the two-clause compound sentence pattern. If most sentences in a
passage follow the "\[clause\], \[conjunction\] \[clause\]" structure,
rewrite some of them. Break a few into two sentences. Start some with a
subordinate clause. Embed a relative clause in the middle of one instead of
appending it at the end. The goal is variety in sentence shape, not just
sentence length.
16. Find every rhetorical question that is immediately followed by its own
14. Find every rhetorical question that is immediately followed by its own
answer and rewrite the passage as a direct statement.
17. Find every sentence fragment being used as its own paragraph and either
delete it or expand it into a complete sentence that adds information.
15. Find every sentence fragment being used as its own paragraph and either
delete it or expand it into a complete sentence that adds actual
information.
18. Check for unnecessary elaboration. Read every clause, phrase, and adjective
in each sentence and ask whether the sentence loses meaning without it. If
you can cut it and the sentence still says the same thing, cut it.
19. Check each pair of adjacent sentences to see if they can be merged into one
sentence cleanly. If a sentence just continues the thought of the previous
one, combine them using a participle, a relative clause, or by folding the
second into the first. Don't merge if the result would create a two-clause
compound.
20. Find every pivot paragraph ("But here's where it gets interesting." and
similar) and delete it.
16. Find every pivot paragraph ("But here's where it gets interesting." and
similar) and delete it. The paragraph after it always contains the actual
point.
### Pass 3: Paragraph and Section-Level Review
21. Review the last sentence of each paragraph. If it restates the point the
paragraph already made, delete it.
22. Check paragraph lengths across the piece and verify they actually vary. If
17. Check paragraph lengths across the piece and verify they actually vary. If
most paragraphs have between three and five sentences, rewrite some to be
one or two sentences and let others run to six or seven.
23. Check section lengths for suspicious uniformity. If every section is roughly
18. Check section lengths for suspicious uniformity. If every section is roughly
the same word count, combine some shorter ones or split a longer one
unevenly.
24. Check the first word of every paragraph for chains of connectors ("However,"
19. Check the first word of every paragraph for chains of connectors ("However,"
"Furthermore," "Moreover," "Additionally," "That said"). If more than two
transition words start consecutive paragraphs, rewrite those openings to
start with their subject.
25. Check whether every argument is followed by a concession or qualifier. If
20. Check whether every argument is followed by a concession or qualifier. If
the piece both-sides every point, pick a side on at least some of them and
cut the hedging.
26. Read the first paragraph and ask whether deleting it would improve the
21. Read the first paragraph and ask whether deleting it would improve the
piece. If it's scene-setting that previews the argument, delete it and start
with paragraph two.
27. Read the last paragraph and check whether it restates the thesis or uses a
22. Read the last paragraph and check whether it restates the thesis or uses a
phrase like "at the end of the day" or "moving forward." If so, either
delete it or rewrite it to say something the piece hasn't said yet.
### Pass 4: Overall Texture
28. Read the piece aloud and listen for passages that sound too smooth, too
23. Read the piece aloud and listen for passages that sound too smooth, too
even, or too predictable. Human prose has rough patches. If there aren't
any, the piece still reads as machine output.
29. Check that the piece contains at least a few constructions that feel
24. Check that the piece contains at least a few constructions that feel
idiosyncratic: a sentence with unusual word order, a parenthetical that goes
on a bit long, an aside only loosely connected to the main point, a word
choice that's specific and unexpected.
choice that's specific and unexpected. If every sentence is clean and
correct and unremarkable, it will still read as generated.
30. Verify that you haven't introduced new patterns while fixing the original
ones. Run the entire checklist again from the top on the revised version.
25. Verify that you haven't introduced new patterns while fixing the original
ones. This happens constantly. Run the entire checklist again from the top
on the revised version.
---
@@ -441,9 +481,16 @@ roughly like this:
>
> **model:** _(rewrites entire document without em-dashes while describing
> em-dash overuse)_
>
> **human:** now run the checklist methodically on each paragraph
>
> **model:** _(finds staccato burst in the section about triple constructions, a
> triple in the section about absence of mess, two-clause compounds everywhere,
> and "almost" hedges in its own prose about em-dash overuse)_
The human compared this process to the deleted scene in Terminator 2 where John
Connor switches the T-800's CPU to learning mode. The model compared it to a
physician trying to heal itself. Both are accurate.
This document has been through ten editing passes and it still has tells in it.
This document has been through eight editing passes and it still has tells in
it.

View File

@@ -1,6 +1,6 @@
---
title: New Repo Checklist
last_modified: 2026-08-10
last_modified: 2026-02-22
---
Use this checklist when creating a new repository from scratch. Follow the steps
@@ -35,11 +35,7 @@ Template files can be fetched from:
- [ ] `.gitignore` — fetch from
`https://git.eeqj.de/sneak/prompts/raw/branch/main/.gitignore`, extend for
language-specific artifacts. Extensions are written to `.gitignore`'s own
semantics, where an unanchored pattern already matches at every depth:
never add a `**/` prefix here, which is a `.dockerignore` form. The
canonical file already carries `.claude/` so agent worktrees cannot be
committed by accident.
language-specific artifacts
- [ ] `.editorconfig` — fetch from
`https://git.eeqj.de/sneak/prompts/raw/branch/main/.editorconfig`
- [ ] `Makefile` — fetch from
@@ -56,46 +52,12 @@ Template files can be fetched from:
`https://git.eeqj.de/sneak/prompts/raw/branch/main/prompts/REPO_POLICIES.md`
- [ ] `Dockerfile` and `.dockerignore` — fetch `.dockerignore` from
`https://git.eeqj.de/sneak/prompts/raw/branch/main/.dockerignore`
- Extend `.dockerignore` with the repo's own host-built artifacts, giving
every depth-independent pattern a `**/` prefix — but write a repo-root
binary anchored, `/myapp` and never `**/myapp`, which would also match
`cmd/myapp/` and delete the package directory. Do not transplant
`.gitignore`'s patterns: `.dockerignore` anchors an unprefixed pattern at
the context root, so the copied form leaves `config/.env` in the build
context while reading as solved. See the `.dockerignore` rule in
`REPO_POLICIES.md`. The canonical file's `.claude` entry is anchored for
the same reason as a repo-root binary; leave it that way, but note it only
covers agents running at the repo root — if this repo will run them in
subdirectories, `services/api/.claude/` is not excluded and needs its own
anchored entry.
- If the image embeds a version in a binary, the version is computed on the
host and passed with `--build-arg VERSION=...`. `ARG VERSION=dev` is
declared in the stage that compiles, and **no stage calls `git describe`**
`.dockerignore` excludes `.git`, so it yields an empty version without
failing the build.
- The `Dockerfile` runs the **non-lint** checks as build steps —
`script/test` and `script/fmt-check`, never `make check`. `script/lint` is
a `docker build` of `Dockerfile.lint`, so `make check` here nests a build
inside a build step, where there is no daemon. Put a comment above those
`RUN` lines saying so. Every stage containing a check-running `RUN` must
declare `ARG CHECK_EPOCH` with the `RUN [ -n "$CHECK_EPOCH" ] || exit 1`
guard immediately below it — see the `CHECK_EPOCH` rule in
`REPO_POLICIES.md`. Without them the check layer is served from cache on
an unchanged tree and the build reports a green it never ran.
- All Dockerfiles must run `make check` as a build step
- Server: also builds and runs the application
- Non-server: brings up dev environment and runs those checks
- Non-server: brings up dev environment and runs `make check`
- Image pinned by sha256 hash with version/date comment
- [ ] `Dockerfile.lint` — the lint-only image that `script/lint` builds. Same
`ARG CHECK_EPOCH` + guard + expanded-value discipline as above, with the
`ARG` placed **after** the dependency layer so only the lint steps re-run.
Base image pinned by sha256 with a version/date comment. Go repos use
`golangci/golangci-lint` and run both `golangci-lint config verify` and
`golangci-lint run`; other repos use the same pattern around their own
linter (eslint, ruff, prettier). Copy the canonical file from
`REPO_POLICIES.md`. The linter is invoked directly there, never via
`make lint`, which would recurse.
- [ ] Gitea Actions workflow at `.gitea/workflows/check.yml` that runs
`script/cibuild` on push — reference
`docker build .` on push — reference
`https://git.eeqj.de/sneak/prompts/raw/branch/main/.gitea/workflows/check.yml`
- [ ] Language-specific:
- [ ] Go: `go mod init sneak.berlin/go/<name>`, `.golangci.yml` (fetch from
@@ -103,82 +65,20 @@ Template files can be fetched from:
- [ ] JS: `yarn init`, `yarn add --dev prettier`
- [ ] Python: `pyproject.toml`
## Configure script/ Entrypoints and Makefile
## Configure Makefile
Implementations live in `script/` (scripts-to-rule-them-all); Makefile targets
are thin shims calling them. Model scripts:
`https://git.eeqj.de/sneak/prompts/raw/branch/main/script/<name>`
- [ ] scripts are POSIX sh (`#!/bin/sh`, `set -eu`, no bashisms) so they run on
alpine images without bash
- [ ] `script/bootstrap` / `make bootstrap` — installs all dependencies,
idempotently, assuming nothing (pkg manager detection nix/apt/brew/apk;
node used if present, else pinned version via nvm from a hash-verified
archive; pinned yarn via corepack); Dockerfile runs it instead of inline
installs
- [ ] `script/setup` / `make setup` — readies a fresh clone: runs `bootstrap`,
then `install-precommit`, plus repo-specific init
- [ ] `script/test` / `make test` — runs real tests, not a no-op (30-second
timeout)
- [ ] `script/lint` / `make lint` — builds `Dockerfile.lint` and nothing else:
`epoch="$(date +%s%N)$$"` on its own line, then
`docker build --build-arg CHECK_EPOCH="$epoch" -f Dockerfile.lint .`. No
lint verdict may come from a host invocation. Copy the canonical script
from `REPO_POLICIES.md`; its executable lines are identical across repos.
Without the nonce this script exits 0 on an unchanged tree having linted
nothing, and without `-f Dockerfile.lint` it builds the main image and
lints nothing at all.
- [ ] `script/fmt` / `make fmt` — formats code (writes)
- [ ] `script/fmt-check` / `make fmt-check` — checks formatting (read-only)
- [ ] `script/check` / `make check` — runs `test`, `lint`, `fmt-check`; must not
modify files. It needs a docker daemon, because `script/lint` is a
container build, and it must never be called from inside a build stage
- [ ] `script/projectname` — outputs the project name (used by `script/docker`
for the image tag)
- [ ] `script/docker` / `make docker` — builds Docker image, tagged via
`script/projectname` (byte-identical across repos); carries the same three
version lines as `script/cibuild` below, and passes
`--build-arg CHECK_EPOCH="$epoch"` and `--build-arg VERSION="$version"`
- [ ] `script/cibuild` — cd to repo root, run `script/lint` **first** for
fail-fast feedback, then, each on its own line:
```sh
epoch="$(date +%s%N)$$"
version="$(git describe --tags --always --dirty 2>/dev/null || true)"
[ -n "$version" ] || version="unknown"
docker build \
--build-arg CHECK_EPOCH="$epoch" \
--build-arg VERSION="$version" \
.
```
(what CI runs). The `script/lint` call is not optional: the main image does
not lint, so without it CI never lints. Both build args are mandatory, and
both assignments must be on their own line: a failing command substitution
inside an argument does not trip `set -e`, so the inline form degrades
silently to an empty constant. The `[ -n "$version" ]` line is a live check
that fires on an export with no `.git` and on a repo with no commits — keep
it, and do not collapse it into `|| echo unknown`, which makes it
unreachable. See the `CHECK_EPOCH` and git-describe rules in
`REPO_POLICIES.md` for why each element is load-bearing. A bare
`docker build .` fails closed by design, and so does a bare
`docker build -f Dockerfile.lint .`.
- [ ] `script/precommit` — called by the pre-commit hook; runs `script/check`
- [ ] `script/install-precommit` — installs the pre-commit hook that runs
`script/precommit`
- [ ] `make hooks` — shims to `script/install-precommit`
- [ ] README **Entrypoints** section documents the scripts and links the
standard
- [ ] `make test` — runs real tests, not a no-op (30-second timeout)
- [ ] `make lint` — runs linter
- [ ] `make fmt` — formats code (writes)
- [ ] `make fmt-check` — checks formatting (read-only)
- [ ] `make check` — prereqs: `test`, `lint`, `fmt-check`; must not modify files
- [ ] `make docker` — builds Docker image
- [ ] `make hooks` — installs pre-commit hook
# 4. Verify
- [ ] `make check` passes
- [ ] `make lint` demonstrably runs the linter rather than returning a cached
build: run it twice on an unchanged tree and confirm the lint layer says
`DONE`, never `CACHED`, both times
- [ ] `make docker` succeeds
- [ ] `script/cibuild` succeeds and runs both container builds
- [ ] No secrets in repo
- [ ] No mutable image/package references
- [ ] No unnecessary files in repo root

View File

@@ -1,6 +1,6 @@
---
title: Repository Policies
last_modified: 2026-08-10
last_modified: 2026-02-22
---
This document covers repository structure, tooling, and workflow standards. Code
@@ -34,51 +34,10 @@ style conventions are in separate documents:
every file before committing. There are zero exceptions to this rule.
- Every repo with software must have a root `Makefile` with these targets:
`make bootstrap`, `make setup`, `make test`, `make lint`, `make fmt` (writes),
`make fmt-check` (read-only), `make check` (runs `test`, `lint`, `fmt-check`),
`make docker`, and `make hooks` (installs pre-commit hook). A model Makefile
is at `https://git.eeqj.de/sneak/prompts/raw/branch/main/Makefile`.
- Repos follow the
[Scripts to Rule Them All](https://github.com/github/scripts-to-rule-them-all)
pattern: the implementation of each Makefile target lives in an executable
script in `script/` (`script/bootstrap`, `script/setup`, `script/test`,
`script/lint`, `script/fmt`, `script/fmt-check`, `script/check`,
`script/docker`), and the Makefile targets are thin shims that call them. The
scripts must be POSIX sh (`#!/bin/sh`, `set -eu`, no bashisms) so they run in
minimal containers (e.g. alpine images have no bash); locate the repo root
with `$(cd "$(dirname "$0")/.." && pwd -P)` and `cd` there before acting. From
the standard's canonical set we use `bootstrap`, `setup` (make the repo ready
for development after a fresh clone: runs `bootstrap`, then
`install-precommit`, plus any repo-specific initialization), `test`, and
`cibuild`. `script/bootstrap` installs all dependencies idempotently and
assumes nothing is present: base tools come from nix, apt, brew, or apk
(detected in that order; apt runs noninteractive). For node it uses the
installed node if present; otherwise it installs a PINNED node version via
nvm, first installing nvm itself if missing — from a hash-verified GitHub
release archive (never `curl | sh`), with bash installed as an explicit
prerequisite since nvm requires bash. yarn is then pinned via
`corepack prepare yarn@<version> --activate`. Never install "latest" or "lts";
always exact versions. `script/cibuild` runs the CI build: it changes to the
repo root, runs `script/lint` first for fail-fast feedback (that is itself a
container build — see the containerised-lint rule below), and then runs
`docker build --build-arg CHECK_EPOCH="$epoch" --build-arg VERSION="$version" .`,
where `epoch` is a per-invocation nonce (see the `CHECK_EPOCH` rule below) and
`version` is computed on the host because `.git` is not in the build context
(see the git-describe rule below); the Gitea workflow calls it. Four further
scripts are our own extensions to the standard: `script/check` runs
`script/test`, `script/lint`, and `script/fmt-check`; `script/precommit` is
what the git pre-commit hook runs, and it calls `script/check`;
`script/install-precommit` installs the git pre-commit hook (the `make hooks`
target shims to it); and `script/projectname` (literally that filename) simply
outputs the project's name. Scripts that need the name call
`script/projectname` — e.g. `script/docker` assembles its image tag from it —
so those scripts stay byte-identical across all repos. Repo-type-specific
pre-commit extras (e.g. `go mod tidy` verification in Go repos) belong in
`script/precommit`, not in the hook itself. Model scripts are at
`https://git.eeqj.de/sneak/prompts/raw/branch/main/script/<name>`. The README
must document the provided scripts in an **Entrypoints** section (see the
README requirements below).
`make test`, `make lint`, `make fmt` (writes), `make fmt-check` (read-only),
`make check` (prereqs: `test`, `lint`, `fmt-check`), `make docker`, and
`make hooks` (installs pre-commit hook). A model Makefile is at
`https://git.eeqj.de/sneak/prompts/raw/branch/main/Makefile`.
- Always use Makefile targets (`make fmt`, `make test`, `make lint`, etc.)
instead of invoking the underlying tools directly. The Makefile is the single
@@ -94,425 +53,15 @@ style conventions are in separate documents:
contributor should be able to understand the entire development workflow by
reading the Makefile.
- Every repo should have a `Dockerfile`. It must run the repo's **non-lint**
checks as build steps, so the build fails on a branch those checks reject —
which requires `ARG CHECK_EPOCH` and its guard in every stage containing a
check-running `RUN`, per the `CHECK_EPOCH` rule below. Without them a
Dockerfile satisfies this criterion while its check layers are served from
cache, so it cannot fail on a branch those checks would have rejected.
**A green `docker build .` does not mean the branch is green**, because this
file does not lint. Only `script/cibuild` carries that meaning: it runs
`script/lint` and then this build. Do not restate the older, stronger claim
anywhere — it was true only while lint ran inside this image.
**It runs the individual non-lint checks — `script/test` and
`script/fmt-check` — and never `make check`.** `script/lint` is itself a
`docker build` (of `Dockerfile.lint`, per the containerised-lint rule
below), so a `RUN make check` in this file attempts a docker build inside a
build step, where there is no daemon. Lint is not skipped by this: it runs
in its own container, and `script/cibuild` runs it first. Put a comment to
that effect directly above those `RUN` lines, because `make check` is what
the next person will reach for.
For non-server repos, the Dockerfile should bring up a development
environment and run those checks. For server repos, they should run as an
early build stage before the final image is assembled. Dockerfiles install
development prerequisites by running `script/bootstrap` rather than
duplicating installs inline; COPY `script/` and the dependency manifests
(`package.json` + `yarn.lock`, `go.mod` + `go.sum`, etc.) before running it
so the bootstrap layer stays cached until dependencies change.
- **Every check-running `RUN` must be cache-busted with `CHECK_EPOCH`.** Docker
invalidates a `COPY` layer only when the copied content changes, so on an
unchanged tree the check layer is served from cache, the suite never runs, and
the build still exits 0. A sub-second `docker build` reporting success is a
cache hit, not a result. This applies to **every** file that runs checks in a
build step, which since linting moved into its own container means
`Dockerfile` and `Dockerfile.lint` both — a `Dockerfile.lint` without the
cache-bust is a lint that never ran, reported as a pass. The canonical form,
in **every** stage containing a check-running `RUN`, placed **after** the
dependency-install layer so that layer stays cached:
```dockerfile
ARG CHECK_EPOCH
RUN [ -n "$CHECK_EPOCH" ] || exit 1
RUN echo "check epoch: ${CHECK_EPOCH}" && <the check command>
```
and in both `script/cibuild` and `script/docker`:
```sh
epoch="$(date +%s%N)$$"
version="$(git describe --tags --always --dirty 2>/dev/null || true)"
[ -n "$version" ] || version="unknown"
docker build \
--build-arg CHECK_EPOCH="$epoch" \
--build-arg VERSION="$version" \
.
```
`script/lint` needs the same nonce but is **not** this command: it builds a
different file and passes no version. Do not copy the block above into it —
a `docker build` with no `-f Dockerfile.lint` builds the main image instead,
which is a lint that silently lints nothing. Its canonical form is in the
containerised-lint rule below; copy that one.
The `VERSION` lines are there for a different reason, covered by the
git-describe rule below; they are shown here so the two rules do not each
document half a command. All four `CHECK_EPOCH` elements are load-bearing;
none is optional, and each guards a failure mode that otherwise fails green:
- `ARG` is stage-scoped, so a single declaration leaves the other check
stages frozen while the fix reviews as complete. Declare it in every stage
that runs checks, immediately above the first such `RUN`.
- Expand the value into the command. This makes the cache miss contractual
rather than dependent on BuildKit's handling of an unreferenced `ARG`, and
it puts the epoch in the build log. The guard is itself value-keyed, for
the same reason: it references `$CHECK_EPOCH`, so BuildKit renders the
epoch into that layer's description (rendered as
`RUN [ -n "<epoch>" ] || exit 1`) and re-runs it whenever the value
changes. Each stage therefore has two independent invalidation points, and
the guard always precedes the check `RUN`. Keep both: the expansion is
defence in depth, and it is what makes the epoch visible in the build
output.
- The `[ -n ... ]` guard is required: an unset `ARG` is empty, and empty is
a stable cache key, so without it a bare `docker build .` still produces
the false green. Failed steps are never cached, so the guard fails on
every such invocation, loudly. A bare `docker build .` failing is by
design.
- Assign `epoch=` on its own line, never inline in the `--build-arg`
argument: a failing command substitution inside an argument does not trip
`set -e`, so the inline form silently degrades to an empty constant. The
`$$` suffix is required because busybox `date` drops `%N` and exits 0, so
on an alpine host the epoch would degrade to second granularity and
concurrent invocations would collide.
This invalidates the check layers and everything after them while leaving
`go mod download`, `script/bootstrap`, and the pinned toolchain install
cached, so it does not push against the five-minute Docker build ceiling.
Blanket `--no-cache` is **not** an acceptable substitute, on `Dockerfile` or
on `Dockerfile.lint`: it re-runs `go mod download` / `yarn install` on every
invocation, so a lint that should take seconds pays a dependency install
each time and reaches the network on **every** run rather than only on the
first and after a manifest change. It is a difference of degree, not an
absolute — a container build is never fully offline-independent — but it is
the difference between a lint that usually needs nothing and one that always
does. Never reach for `docker builder prune` to achieve the same end: the
build cache is shared with every other build on the host, including other
people's.
- **Every lint run happens in a container, and `script/lint` is that container
build.** The precise claim, because it is the one that has to survive contact
with a repo whose formatter and linter are the same binary: **no lint verdict
may come from a host invocation.** No `script/`, no `Makefile` target and no
CI step may produce a lint result by running a linter on the host. That is
stronger than it sounds and weaker than "the binary is never on the host" —
see the scope note at the end of this rule, which says exactly which host
invocations remain legitimate and why. Every repo carries a `Dockerfile.lint`
next to its `Dockerfile`; the linter runs as a **build step**, so a successful
build _is_ a clean lint. Building rather than bind-mounting is deliberate: it
is what makes the pattern work unchanged where the docker daemon is remote and
bind mounts are impossible. Docker is assumed available in every environment.
Discarding the linter's cache on every run is the point of this rule, not a
cost it pays.
This closes a family of defects, every one of them an artefact of running
the linter on a shared host, and every one of them observed rather than
hypothesised:
- **A confirmed false green.** An implementer reported `0 issues` on a
branch that was genuinely red with a `goconst` finding. golangci-lint keys
cached results on file **content, not location**, so a second checkout of
the same commit holds byte-identical files and serves its result. Note
what content-keying implies: moving agents from worktrees into their own
clones does **not** help, because two clones are byte-identical exactly as
two worktrees were. It removes the foreign-path symptom and leaves the
mechanism live, which makes the defect quieter rather than rarer.
- **False reds**, repeatedly: findings reported against `../wt82-lint/...`,
against another agent's checkout, and against a worktree that had already
been deleted; in one case 399 issues returned to a clean clone that
genuinely lints 0.
- **Lock contention that cannot be distinguished from findings.**
golangci-lint flocks `$TMPDIR/golangci-lint.lock` (`pkg/commands/run.go`,
`acquireFileLock()`) — host-global, keyed on the temp directory, entirely
independent of `GOLANGCI_LINT_CACHE`, with a 5-second acquire timeout, so
it fails precisely when the host is busiest. On failure it prints
`parallel golangci-lint is running`, analyzes nothing, and exits non-zero.
**Proven not fixed by per-cache isolation**: two concurrent runs with
entirely separate cache directories still collided.
- **Version skew.** A host linter differing from the pinned one, with the
container surfacing thirteen findings the host missed on one repo, and a
local `make check` green against a `make docker` that rejected the same
commit with six `goconst` findings.
A container per run has its own cache, its own `TMPDIR` and therefore its
own lock, and a binary pinned by digest, so none of the above is reachable.
That is also why the per-checkout `GOLANGCI_LINT_CACHE`/`TMPDIR` wrapper
that used to be canonical here is **gone rather than kept alongside this**:
its entire subject was making a host run trustworthy, and there are no host
runs. Consuming repos delete it when they adopt this; see the adoption list
at the end of this rule.
The canonical `Dockerfile.lint` for a Go repo:
```dockerfile
# Lint-only image. `script/lint` builds this file and nothing else: the
# linter runs as a build step, so a successful build IS a clean lint.
#
# The linter is invoked directly below rather than through `make lint`.
# That is not a style choice: `script/lint` IS this build, so calling it
# from inside would recurse into a docker build with no daemon.
#
# golangci/golangci-lint:v2.12.2 (Debian-based), 2026-08-07
FROM golangci/golangci-lint@sha256:5cceeef04e53efe1470638d4b4b4f5ceefd574955ab3941b2d9a68a8c9ad5240
WORKDIR /src
# Dependency layer first, and deliberately above the ARG below, so it
# stays cached and only the lint steps re-run on every invocation.
COPY go.mod go.sum ./
RUN go mod download
COPY . .
ARG CHECK_EPOCH
RUN [ -n "$CHECK_EPOCH" ] || exit 1
RUN echo "lint epoch: ${CHECK_EPOCH}" && \
golangci-lint config verify --config .golangci.yml
RUN golangci-lint run --config .golangci.yml ./...
```
and the canonical `script/lint`, whose executable lines are identical in
every repo (only the comment wording is a repo's own):
```sh
#!/bin/sh
# script/lint: run the linter. This is the ONLY source of a lint verdict
# in this repo — the linter runs in a container, one way, everywhere, so
# a run cannot inherit another checkout's cache, another process's lock,
# or a host toolchain that differs from the pinned one.
#
# A failure here that names no finding is NOT a lint result: docker
# build exits 1 both for findings and for a build that never reached
# the lint step. BuildKit names the failing step; read it, fix the
# environment, and re-run.
set -eu
ROOT="$(cd "$(dirname "$0")/.." && pwd -P)"
main() {
cd "$ROOT"
# Own line: a failing command substitution inside an argument does
# not trip `set -e`, and `$$` is required because busybox `date`
# drops %N without erroring. Without a fresh nonce the lint layer is
# served from cache and this script exits 0 having linted nothing.
epoch="$(date +%s%N)$$"
docker build \
--build-arg CHECK_EPOCH="$epoch" \
-f Dockerfile.lint \
.
}
main "$@"
```
Load-bearing properties:
- **`CHECK_EPOCH`, not `--no-cache`.** `docker build -f Dockerfile.lint .`
on an unchanged tree returns a sub-second cached success having linted
nothing — the same false green the `CHECK_EPOCH` rule above exists to
close, arriving through a new file. The `ARG` goes **after** the
dependency layer so `go mod download` / `yarn install` stay cached and
only the lint steps re-run. Blanket `--no-cache` also busts the dependency
layer, so every lint reaches the network instead of only the first one.
- **Non-Go repos get the same pattern around their own linter** — `eslint`,
`ruff`, `prettier`, `shellcheck` — because the ruling is every lint run,
not every Go lint run. Only the base image and the lint commands change;
the `WORKDIR`, dependency layer, `ARG CHECK_EPOCH`, guard and
expanded-value `RUN` are identical. A JS or docs repo bases on its pinned
node image, runs `script/bootstrap` as the dependency layer **inside the
image**, and lints with the linter from that image's `node_modules`. Note
what this does not claim: a developer also runs `script/bootstrap` on the
host, so a copy of that linter exists there too. What the rule forbids is
taking a **verdict** from it.
- **Keep `golangci-lint config verify`, and it costs no network.** The two
commands catch **disjoint** classes of defect, measured under the pinned
v2.12.2 against a config carrying one planted defect at a time: a bogus
top-level key and a bogus key nested under `linters.settings.lll` both
pass `golangci-lint run` with **exit 0 and `0 issues`** while
`config verify` exits 3 and names the key; an invalid value type fails
both; an unknown linter name fails `run` and passes `config verify`. So
`run` alone silently ignores an unknown key, which is exactly the mode
where a threshold reads as configured and is not applied. The earlier
caution that `config verify` resolves its JSON schema over a live HTTPS
fetch does **not** hold for this pinned version: every case above was
re-run under `docker run --network none` and produced byte-identical
diagnostics and exit statuses, in a container where
`getent hosts golangci-lint.run` exits 2. The schema is embedded in the
pinned binary. Re-run that control when bumping the pin rather than
treating the result as permanent.
- **No repo installs a linter on the host _in order to lint_ — remove any
such install from `script/bootstrap`.** A dedicated linter install (the
`go install` of golangci-lint is the case that existed) is now dead weight
whose only remaining effect is to reintroduce the version skew above. This
does not forbid a host dependency install that happens to bring a linter
along with everything else, which is unavoidable in a JS repo and is fine
as long as no verdict is taken from it.
- **A failed `script/lint` that names no finding is not a lint result.** The
exit status alone cannot tell you which happened: `docker build` returns 1
both when the lint step fails on findings and when the build never got
that far — daemon unreachable, base image unpullable, disk full,
dependency layer failing. The per-checkout wrapper this rule replaced drew
that line explicitly, exiting 75 for a run that analysed nothing, and that
machinery is deliberately **not** restored. Three reasons, and they are a
position rather than an omission:
- **The dangerous direction is already closed.** The wrapper's exit 75
existed because a lock collision could be read as a _result_ on a run
that analysed nothing. A build that cannot run fails **closed**: it
can never read as clean. What is lost is diagnosability, not safety.
- **The failure is self-describing, where the lock collision was not.**
BuildKit prints the failing step verbatim —
`ERROR: failed to solve: process "/bin/sh -c <the lint command>"` for
a genuine finding, against a named earlier step or a daemon error for
anything else. The discriminator is already in the output and needs no
code. The lock message, by contrast, went to stderr while findings
went to stdout and was easy to lose.
- **It is not transient, so retrying is wrong.** The lock collision
cleared on a retry, which is what made an automatic retry worth
building. A dead daemon or a full disk does not, and a retry loop over
a failing dependency fetch hides a real reproducibility problem.
Rebuilding the distinction in the script would also mean reintroducing
per-invocation capture files and traps to get the exit status out from
under a pipe, plus matching on BuildKit's message format, which is not
a stable interface — and a mis-match in the "treat it as
infrastructure" direction would be the false green this whole rule
exists to prevent.
The substance of the VOID rule survives as a reading rule, and it is
binding: **do not record a lint verdict from a run that did not reach
the lint step, and do not "fix" anything on the strength of one.** Read
which step failed, fix the environment, and re-run.
- **`script/check` still runs `test`, `lint` and `fmt-check`**, so a
developer and the pre-commit hook get all three. It therefore requires a
docker daemon, and it must never be invoked from inside a build stage —
see the `Dockerfile` rule above.
- If the project uses `//go:embed` directives referencing build artifacts
(e.g. a web frontend compiled elsewhere), `Dockerfile.lint` must create
placeholder files so the directives resolve:
`RUN mkdir -p web/dist && touch web/dist/index.html`. It must not depend
on the real build output; it exists to fail fast.
- If linting requires CGO or system libraries (e.g. `vips-dev`), install
them in `Dockerfile.lint`.
**Scope: this rule is about linters, and a formatter is not one.**
`script/fmt` writes to your working tree, so it can only run on the host;
`script/fmt-check` is its read-only twin and runs on the host too, as well
as inside the main image. Neither is a lint run and neither is in scope.
**The awkward case, stated rather than left for an adopter to trip over: in
a repo whose formatter _is_ its linter** — prettier over a markdown or docs
repo is the standard shape, and this repo is one — the command in
`Dockerfile.lint` and the command in `script/fmt-check` are the same string,
so that exact command does still run on the host. That is a real gap in the
absolute reading and it is accepted for two reasons: the mechanisms this
rule exists to close do not reach it (prettier's version is pinned in
`package.json` and installed into the repo's own `node_modules`, so there is
no shared content-keyed cache, no host-global lock, and no version to skew
against), and CI's verdict is containerised regardless, because
`script/fmt-check` also runs inside the main image build. What is **not**
acceptable is taking a lint verdict from the host copy: `script/lint` stays
the only source of one. If a repo's linter and formatter ever diverge in
version or configuration, this gap becomes a real defect and the check-mode
invocation has to move into the container too.
**What a consuming repo does to adopt this**, in order: add
`Dockerfile.lint`; replace `script/lint` with the build above; delete the
`lint` stage from its `Dockerfile` along with the
`COPY --from=lint ... /dev/null` ordering line; change that `Dockerfile`'s
`RUN make check` to `script/test` and `script/fmt-check` with the comment
explaining why; add `script/lint` as the first step of `script/cibuild`;
delete any golangci-lint install from `script/bootstrap`; and delete the
`.lint-cache/` entries from `.gitignore` and `.dockerignore` together with
the per-checkout cache/lock wrapper they served.
**The separate lint _stage_ is superseded by this and must not survive
alongside it.** It ran `make lint`, which is now a docker build, so keeping
it is not a stylistic preference but a recursion. Its purpose — fail-fast
feedback before the slow build — is served by `script/cibuild` running
`script/lint` first, and its `COPY --from=lint /src/go.sum /dev/null`
ordering trick, along with the warm-cache re-proof that trick required, is
no longer needed because the ordering is now sequential in the shell.
- **The canonical Go repo `Dockerfile`**, which builds and tests but does not
lint:
```dockerfile
# Build stage
# golang:1.x-alpine, YYYY-MM-DD
FROM golang@sha256:... AS builder
WORKDIR /src
COPY go.mod go.sum ./
RUN go mod download
COPY . .
ARG CHECK_EPOCH
RUN [ -n "$CHECK_EPOCH" ] || exit 1
# The individual non-lint checks, NOT `make check`: script/lint is a
# docker build (Dockerfile.lint), so `make check` here would nest a
# build inside a build step, where there is no daemon. Lint is not
# skipped — script/cibuild runs it first, in its own container.
RUN echo "check epoch: ${CHECK_EPOCH}" && script/fmt-check
RUN script/test
# VERSION comes from the host via --build-arg; see the git-describe rule
# below. Never run `git describe` here: .dockerignore excludes .git, so
# it yields an empty version without failing the build.
ARG VERSION=dev
RUN CGO_ENABLED=0 go build -trimpath \
-ldflags="-s -w -X main.Version=${VERSION}" \
-o /app ./cmd/app/
# Runtime stage
FROM alpine@sha256:...
COPY --from=builder /app /usr/local/bin/app
ENTRYPOINT ["app"]
```
Key points:
- Tests run in the build stage because they may require compiled artifacts
or heavier dependencies.
- `ARG CHECK_EPOCH` must be declared in **every** stage containing a
check-running `RUN`, because `ARG` is stage-scoped: declaring it in one
stage leaves the others frozen at their last cached result while the fix
reviews as complete. In each such stage the guard sits immediately below
the `ARG`, and the value is expanded into the first check `RUN` so the
cache miss does not rely on BuildKit's unreferenced-`ARG` handling. Both
lines reference `$CHECK_EPOCH`, so each stage has two independent
invalidation points. Later `RUN`s in the same stage need no expansion of
their own: their parent layer is already busted.
- `ARG VERSION=dev` is declared in the build stage, and its value is
supplied on the host by `script/docker` and `script/cibuild` via
`--build-arg VERSION=...`. The `dev` default is a placeholder for a local
build, not a source of truth. **No stage may call `git describe`**:
`.dockerignore` excludes `.git`, so it yields an empty version without
failing. See the git-describe rule further down.
- Every repo should have a `Dockerfile`. All Dockerfiles must run `make check`
as a build step so the build fails if the branch is not green. For non-server
repos, the Dockerfile should bring up a development environment and run
`make check`. For server repos, `make check` should run as an early build
stage before the final image is assembled.
- Every repo should have a Gitea Actions workflow (`.gitea/workflows/`) that
runs `script/cibuild` on push. `script/cibuild` runs **two** container builds:
`script/lint` (`Dockerfile.lint`) first, then
`docker build --build-arg CHECK_EPOCH="$epoch" --build-arg VERSION="$version" .`
for the main image, which runs the non-lint checks. A successful
`script/cibuild` therefore implies all checks pass; **a successful
`docker build .` on its own does not, because it never lints.** That is the
one claim to be careful with when reading these files: the guarantee belongs
to `script/cibuild`, not to any single Dockerfile. Both halves of it hold only
because each build passes its own `CHECK_EPOCH` nonce — without it an
unchanged tree serves the layers from cache and the build reports a green it
never earned. A bare `docker build .` or `docker build -f Dockerfile.lint .`
fails closed by design, on the `[ -n "$CHECK_EPOCH" ]` guard; always go
through `script/cibuild`, `script/docker` or `script/lint`. Never accept a
pass as evidence without confirming it ran: a sub-second wall time, or
`CACHED` on a check or lint layer, means nothing was executed.
runs `docker build .` on push. Since the Dockerfile already runs `make check`,
a successful build implies all checks pass.
- Use platform-standard formatters: `black` for Python, `prettier` for
JS/CSS/Markdown/HTML, `go fmt` for Go. Always use default configuration with
@@ -520,11 +69,9 @@ style conventions are in separate documents:
Markdown (hard-wrap at 80 columns). Documentation and writing repos (Markdown,
HTML, CSS) should also have `.prettierrc` and `.prettierignore`.
- Pre-commit hook: runs `script/precommit`, which calls `script/check`. If local
testing is not possible in the repo, `script/precommit` may skip `script/test`
and run only `script/lint` and `script/fmt-check`. The hook is installed by
`script/install-precommit`; the Makefile must provide a `make hooks` target
that shims to it.
- Pre-commit hook: `make check` if local testing is possible, otherwise
`make lint && make fmt-check`. The Makefile should provide a `make hooks`
target to install the pre-commit hook.
- All repos with software must have tests that run via the platform-standard
test framework (`go test`, `pytest`, `jest`/`vitest`, etc.). If no meaningful
@@ -535,42 +82,6 @@ style conventions are in separate documents:
- `make test` must complete in under 20 seconds. Add a 30-second timeout in the
Makefile.
- **`make test` should use the conditional verbose rerun pattern.** Run tests
without `-v` (verbose) first. If tests fail, automatically rerun with `-v` to
show full output. This keeps CI logs and `docker build` output clean on
success (just package/suite summaries) while providing full diagnostic detail
on failure (every test case, every assertion). The general shell pattern:
```makefile
test:
@<test-command> || \
{ echo "--- Rerunning with -v for details ---"; \
<test-command-with-v>; exit 1; }
```
Go example:
```makefile
test:
@go test -timeout 30s -race -cover ./... || \
{ echo "--- Rerunning with -v for details ---"; \
go test -timeout 30s -race -v ./...; exit 1; }
```
Python example:
```makefile
test:
@python -m pytest || \
{ echo "--- Rerunning with -v for details ---"; \
python -m pytest -v; exit 1; }
```
The `exit 1` ensures the target always fails after a rerun — the first run
already proved the tests are broken, so the build must not pass even if a
flaky test happens to succeed on the second attempt. The rerun exists solely
for diagnostic output.
- Docker builds must complete in under 5 minutes.
- `make check` must not modify any files in the repo. Tests may use temporary
@@ -582,147 +93,10 @@ style conventions are in separate documents:
must be in `.gitignore`. No exceptions.
- `.gitignore` should be comprehensive from the start: OS files (`.DS_Store`),
editor files (`.swp`, `*~`), in-repo agent scratch directories (`.claude/`,
which holds one worktree — an entire additional checkout of the repo — per
in-flight agent), language build artifacts, and `node_modules/`. Fetch the
standard `.gitignore` from
editor files (`.swp`, `*~`), language build artifacts, and `node_modules/`.
Fetch the standard `.gitignore` from
`https://git.eeqj.de/sneak/prompts/raw/branch/main/.gitignore` when setting up
a new repo. These patterns are written to `.gitignore`'s own semantics, in
which an unanchored pattern already matches at every depth. They are not a
`.dockerignore` and must not be transplanted into one unmodified — see the
next rule.
- **`.dockerignore` does not use `.gitignore` semantics, and copying patterns
across unmodified leaves secrets in the build context.** Docker matches with
`moby/patternmatcher`: Go `filepath.Match` semantics plus a `**` extension,
compiled to a regexp — plain `filepath.Match` has no `**` at all. So `*` does
not cross `/`, and a pattern without a leading `**/` is anchored at the
build-context root. A `.dockerignore` listing `.env`, `*.pem` and `*.key`
therefore excludes only the copies at the repository root; `config/.env` and
`certs/server.key` still reach the context and can land in an image layer.
That file is more dangerous than a short one with no secret patterns at all,
because it reads as solved and stops anyone looking. Give every
depth-independent pattern the `**/` prefix — `**/node_modules`,
`**/.DS_Store`, and the secret patterns in the canonical file, which are
additionally case-folded per the rule below — and leave only genuinely
root-anchored entries unprefixed: `.git`, the in-repo agent scratch directory
`.claude`, and the repo's own host-built binary. The inverse move is equally
wrong: never apply `**/` to `.gitignore`, where it is redundant and produces a
file that is wrong in a way that looks careful. Each file is written to its
own semantics; neither is derived from the other. Fetch the standard
`.dockerignore` from
`https://git.eeqj.de/sneak/prompts/raw/branch/main/.dockerignore` and extend
it with the repo's own host-built artifacts — a host `make build` that leaves
a compiled binary in the repo root puts that binary in the build context,
where `.gitignore` hides it from every git-based check. Write that binary
anchored, `/myapp` and never `**/myapp`: the prefixed form also matches
`cmd/myapp/` and deletes the package directory from the context.
- **In-repo agent scratch belongs in both files, written to each file's own
semantics.** `.claude/` holds one worktree per in-flight agent — an entire
additional checkout of the repo — so with `COPY . .` the build context
inflates by a multiple of the repo, and another session's unreviewed,
sometimes uncommitted work can be copied into an image layer. The directory is
also created and destroyed constantly, so it invalidates `COPY . .` for
reasons that have nothing to do with the repo's own content. In `.gitignore`
the entry is `.claude/`, unanchored, which already matches at every depth. In
`.dockerignore` it is `.claude`, anchored and with **no** `**/` prefix: the
directory occurs exactly once **where agents run at the repo root**, and the
prefixed form would also match any nested directory of that name and delete it
from the build. It is not case-folded the way the secret patterns are, because
tooling creates it in exactly one spelling, so a folded pattern would add no
coverage.
**Known gap that comes with the anchored form.** The directory is created in
the agent's working directory, so the "exactly once, at the root" premise is
a property of how agents are run and not of the tooling. Where agents run in
subdirectories — a monorepo with a per-service agent is the ordinary case —
`services/api/.claude/` is **not** excluded by the canonical entry and still
reaches the build context and the image, which is the exposure the entry
exists to close. A repo in that shape adds its own anchored entries
(`/services/api/.claude`), or `**/.claude` once it has confirmed no
legitimately named nested directory would be caught. This is stated in the
canonical `.dockerignore` itself, since that file is what consuming repos
receive.
- **`.dockerignore` matching is case-sensitive, so cover capitalisation with
character classes rather than by doubling patterns.** `**/*.key` does not
match `certs/SERVER.KEY`, which is reachable on the case-insensitive
filesystems most laptops use. Adding an ALL-CAPS twin for each pattern is not
the fix: it still misses `Server.Key` and `Ca.Pem` while reading as though
case were handled — the same manufactured confidence as the root-anchored
form. The matcher supports character ranges, so one line covers every
spelling: `**/*.[kK][eE][yY]`, `**/*.[pP][eE][mM]`. Apply this to every secret
name, not only to extensions: the extensionless SSH keys and `.envrc` need it
for the same reason, since on the very filesystems that make `SERVER.KEY`
reachable, direnv reads `.ENVRC` and ssh reads `ID_RSA`. Note that `*` matches
the empty string, so `**/*.[eE][nN][vV]` already covers a bare `.ENV` and no
separate literal `.env` entry is needed.
- **A pattern that also catches something the build needs is re-included with a
negation, not deleted.** The canonical `**/*.[eE][nN][vV]` excludes a
committed env template such as `example.env`; a repo whose build genuinely
reads one adds `!docs/example.env` after the pattern. Deleting the pattern
instead reopens the exposure for every other file it covers.
- **Verify `.dockerignore` by enumerating the image, not by reading the
patterns.** Plant files at the root _and_ at least two directories deep, build
a probe image that does `COPY . .`, and list what actually landed
(`docker run --rm --entrypoint find IMAGE /app`). Reading the patterns and
agreeing they look right is exactly what lets the root-only form through. The
`transferring context` size is not a substitute: a nested secret is a few
bytes, and BuildKit transfers only the delta from the previous build, so the
reported size describes the transfer and not the contents of the image.
- **Excluding `.git` means `git describe` cannot run inside any build stage, and
it fails quietly there.** The `GOLDFLAGS` version-embedding pattern assumes
`.git` is present; in a build stage there is no repository, so `git describe`
writes nothing to stdout and the `-X main.Version=` value comes out **empty**
rather than erroring. The binary then reports no version at all and the build
still exits 0. Compute the version **on the host** and thread it in as a build
arg. `script/docker` and `script/cibuild` do this, byte-identically across
repos:
```sh
# Assign on its own line: a failing command substitution inside an
# argument does not trip `set -e`, so the inline form degrades to an
# empty constant — the same silent-empty failure this rule is about.
version="$(git describe --tags --always --dirty 2>/dev/null || true)"
[ -n "$version" ] || version="unknown"
docker build \
--build-arg CHECK_EPOCH="$epoch" \
--build-arg VERSION="$version" \
.
```
`--always` makes an untagged repo yield the abbreviated commit hash instead
of failing. `|| true` keeps a failing `git describe` from tripping `set -e`
and leaves the value empty, so the `[ -n "$version" ]` line is the single
place the fallback is applied — and it is a **live** check, not defence in
depth: it fires on a build from an export with no `.git`, and on a
repository with no commits yet. Do not fold the fallback into the
substitution as `|| echo unknown`; that makes the guard unreachable, and a
guard that cannot fire is indistinguishable from one that works to everyone
who copies it. The result is non-empty by construction either way, which is
the point: an empty version reads as a successful one, while `unknown` is
visibly wrong. The Dockerfile's side is `ARG VERSION=dev` in the stage that
compiles, declared there and not inherited, because `ARG` is stage-scoped
exactly as `CHECK_EPOCH` is. Passing `VERSION` to a repo whose Dockerfile
declares no such `ARG` is silently ignored by BuildKit and costs nothing,
which is why the scripts stay byte-identical rather than growing a per-repo
variant.
One consequence for CI: the standard checkout action clones shallow and
fetches no tags, so `git describe --tags` there falls back to a bare commit
hash. A repo that embeds a tag-derived version must set `fetch-depth: 0` on
its checkout step; a repo that does not embed a version needs no change.
- **No build artifacts in version control.** Code-derived data (compiled
bundles, minified output, generated assets) must never be committed to the
repository if it can be avoided. The build process (e.g. Dockerfile, Makefile)
should generate these at build time. Notable exception: Go protobuf generated
files (`.pb.go`) ARE committed because repos need to work with `go get`, which
downloads code but does not execute code generation.
a new repo.
- Never use `git add -A` or `git add .`. Always stage files explicitly by name.
@@ -733,127 +107,7 @@ style conventions are in separate documents:
- `.golangci.yml` is standardized and must _NEVER_ be modified by an agent, only
manually by the user. Fetch from
`https://git.eeqj.de/sneak/prompts/raw/branch/main/.golangci.yml`. The
canonical golangci-lint version is v2.12.2 (released 2026-05-06), pinned as
the image digest in `Dockerfile.lint`
(`golangci/golangci-lint@sha256:5cceeef04e53efe1470638d4b4b4f5ceefd574955ab3941b2d9a68a8c9ad5240`,
which reports
`golangci-lint has version 2.12.2 built with go1.26.2 from c0d3ddc9`). That
digest is the only pin there is: the linter is not installed on the host, in
`script/bootstrap` or anywhere else. Bumping the version means changing that
one digest, and it propagates to every consumer of the image with no host
state able to disagree with it.
- **`script/bootstrap` must not install a linter at all.** This supersedes the
pinned-golangci-lint install that used to be canonical here. Nothing runs a
linter on the host any more — `script/lint` is a container build — so a host
install has no caller left, and its only remaining effect is to put a second,
independently-versioned linter on the machine where somebody will eventually
run it by hand and believe the result. The version-skew failures that install
was written to close (a local `make check` green while `make docker` rejected
the same commit with six `goconst` findings; a container linter surfacing
thirteen findings the host run missed) are closed more completely by having
exactly one linter, pinned by image digest, that no host state can shadow.
Repos adopting the containerised lint delete the install block, its version
and ref variables, and its call site from `script/bootstrap`.
**The version-enforcement principle it established still applies to any
other tool a repo pins and installs on the host**, and it is the part worth
keeping, because each of its four properties guards a failure that otherwise
reports success:
- **Compare the installed version against the pin, never test presence.** A
`if missing <tool>; then install; fi` guard tests `PATH` presence and
never version, so on any already-provisioned machine the pin is inert and
a version bump is a silent no-op. Compare the **whole** version token,
exactly: a parser that stops at the first `-` reports `2.12.2` for a host
running `2.12.2-rc1` and skips the install — the original defect,
reintroduced through the comparison meant to fix it.
- **After installing, re-resolve the binary the way callers resolve it** —
through `PATH`, not the directory the installer wrote to — and assert the
reported version is the pin. An installer that writes to `GOBIN` while a
different binary shadows it earlier in `PATH` genuinely succeeds and
changes nothing any caller sees, which is worse than no fix: it converts a
known-stale tool into one everyone believes is pinned. Run `hash -r` first
so the shell does not answer from its own lookup cache, and when the
assertion fails, name the path `command -v` found, the version it reports,
and the directory the install wrote to. Diagnose from the resolved path
rather than asserting a cause: only a path **outside** the install
directory is shadowing.
- **A mis-parse must fall through to reinstall, never to a false match.**
Absent binary, non-zero exit, empty output and unrecognised output should
all yield an empty string, which compares unequal to the pin. The failure
direction is always a redundant install, never a skipped one.
- **Call it, and say so on success.** A function defined and never called is
a silent no-op indistinguishable from success: exit 0, nothing installed,
no output. Both success branches must print a line naming the version.
Verifying such logic requires a negative control in an environment where a
shadowing binary exists earlier in `PATH` than the install target — without
it the control passes against the naive compare-then-install form too and
proves nothing — plus a mis-parse control that feeds unparseable `--version`
output and confirms a reinstall. Run those controls against the block as a
consuming repo would adopt it: pasted into a `script/bootstrap`-shaped file
that is then executed, never by sourcing it and invoking the function
yourself. Driving the function directly tests something the artifact does
not do, and it is exactly how a missing call site passes every control while
the adopted snippet does nothing.
Keep it POSIX sh: no bashisms, no arrays, no `[[`, no `grep -P`.
- **SUPERSEDED, and deleted rather than kept: the per-checkout
`GOLANGCI_LINT_CACHE`/`TMPDIR` wrapper for `script/lint`.** Every line of it
was about making a linter run on a shared host trustworthy — a private result
cache so a byte-identical checkout could not serve its findings, a private
`TMPDIR` so the host-global lock could not collide, retry and VOID handling so
a lock collision was never reported as findings. The containerised-lint rule
above removes the host run itself, so there is nothing left for that wrapper
to isolate, and a repo carrying both would carry two contradictory canonical
`script/lint` forms. Its findings are not lost: they are the evidence for
containerising, and they are recorded in that rule. Repos that adopted it
delete the wrapper, the `.lint-cache/` entries from `.gitignore` and
`.dockerignore`, and the `--allow-serial-runners` flag with them.
Two of its conclusions are kept because they outlive it. **`GOCACHE` does
not need isolating**, measured rather than assumed: it is content-addressed,
its entries are compiled artifacts rather than diagnostics carrying a
foreign tree's paths, and it has no equivalent global lock — the whole fleet
compiles concurrently against one `GOCACHE` all day without a contention
error. And **verifying any change to lint plumbing requires paired
controls**: a control that passes against the broken form proves nothing,
and it must be run against the artifact as a consuming repo would adopt it —
the file executed, not the functions sourced and driven by hand.
- **Interim rule for reading a lint result produced on the host, in a repo that
has not yet adopted the containerised lint above.** A lint run is **VOID**
unless both hold:
- the output contains no `parallel golangci-lint is running`, and
- no reported file path begins with `../`, and none is an absolute path
outside the tree the run was launched from.
Do not record a verdict from a void run, and do not "fix" findings in files
the change does not touch — chasing phantom findings across untouched files
puts unrelated edits into a reviewed diff, which is more expensive than the
wasted rework.
The `../` clause is the one that actually bites, and it is why a filter
keyed on `/tmp` or on absolute prefixes is not enough: golangci-lint reports
paths relative to its own resolved root rather than yours, and three of the
org's reported sightings had relative paths and would have passed such a
filter. Both clauses are needed and neither alone is sufficient — one
reproduction exited non-zero with the lock error and no foreign paths at
all, and another reported 34 well-formed findings, every one of them against
another checkout.
**State the limit of these tests rather than treating them as a guarantee.**
They catch contamination that **names** foreign files. They cannot catch
contamination that **suppresses** findings through a poisoned entry for
colliding content, which has no wall-clock tell either — **no evidence of
that mode has been observed, and nobody should go chasing it**; the point is
the reach of the tests, not a claim that the mode exists. They are a filter
for the loud mode, not a proof of soundness — which is the whole argument
for containerising the linter instead of documenting a discipline that
depends on every agent remembering to apply it. Adopt the rule above and
this one stops applying to the repo entirely.
`https://git.eeqj.de/sneak/prompts/raw/branch/main/.golangci.yml`.
- When pinning images or packages by hash, add a comment above the reference
with the version and date (YYYY-MM-DD).
@@ -867,76 +121,12 @@ style conventions are in separate documents:
- Dockerized web services listen on port 8080 by default, overridable with
`PORT`.
- **HTTP/web services must be hardened for production internet exposure before
tagging 1.0.** This means full compliance with security best practices
including, without limitation, all of the following:
- **Security headers** on every response:
- `Strict-Transport-Security` (HSTS) with `max-age` of at least one year
and `includeSubDomains`.
- `Content-Security-Policy` (CSP) with a restrictive default policy
(`default-src 'self'` as a baseline, tightened per-resource as
needed). Never use `unsafe-inline` or `unsafe-eval` unless
unavoidable, and document the reason.
- `X-Frame-Options: DENY` (or `SAMEORIGIN` if framing is required).
Prefer the `frame-ancestors` CSP directive as the primary control.
- `X-Content-Type-Options: nosniff`.
- `Referrer-Policy: strict-origin-when-cross-origin` (or stricter).
- `Permissions-Policy` restricting access to browser features the
application does not use (camera, microphone, geolocation, etc.).
- **Request and response limits:**
- Maximum request body size enforced on all endpoints (e.g. Go
`http.MaxBytesReader`). Choose a sane default per-route; never accept
unbounded input.
- Maximum response body size where applicable (e.g. paginated APIs).
- `ReadTimeout` and `ReadHeaderTimeout` on the `http.Server` to defend
against slowloris attacks.
- `WriteTimeout` on the `http.Server`.
- `IdleTimeout` on the `http.Server`.
- Per-handler execution time limits via `context.WithTimeout` or
chi/stdlib `middleware.Timeout`.
- **Authentication and session security:**
- Rate limiting on password-based authentication endpoints. API keys are
high-entropy and not susceptible to brute force, so they are exempt.
- CSRF tokens on all state-mutating HTML forms. API endpoints
authenticated via `Authorization` header (Bearer token, API key) are
exempt because the browser does not attach these automatically.
- Passwords stored using bcrypt, scrypt, or argon2 — never plain-text,
MD5, or SHA.
- Session cookies set with `HttpOnly`, `Secure`, and `SameSite=Lax` (or
`Strict`) attributes.
- **Reverse proxy awareness:**
- True client IP detection when behind a reverse proxy
(`X-Forwarded-For`, `X-Real-IP`). The application must accept
forwarded headers only from a configured set of trusted proxy
addresses — never trust `X-Forwarded-For` unconditionally.
- **CORS:**
- Authenticated endpoints must restrict `Access-Control-Allow-Origin` to
an explicit allowlist of known origins. Wildcard (`*`) is acceptable
only for public, unauthenticated read-only APIs.
- **Error handling:**
- Internal errors must never leak stack traces, SQL queries, file paths,
or other implementation details to the client. Return generic error
messages in production; detailed errors only when `DEBUG` is enabled.
- **TLS:**
- Services never terminate TLS directly. They are always deployed behind
a TLS-terminating reverse proxy. The service itself listens on plain
HTTP. However, HSTS headers and `Secure` cookie flags must still be
set by the application so that the browser enforces HTTPS end-to-end.
This list is non-exhaustive. Apply defense-in-depth: if a standard security
hardening measure exists for HTTP services and is not listed here, it is
still expected. When in doubt, harden.
- `README.md` is the primary documentation. Required sections:
- **Description**: First line must include the project name, purpose,
category (web server, SPA, CLI tool, etc.), license, and author. Example:
"µPaaS is an MIT-licensed Go web application by @sneak that receives
git-frontend webhooks and deploys applications via Docker in realtime."
- **Getting Started**: Copy-pasteable install/usage code block.
- **Entrypoints**: Opens by stating that the repo adheres to the
[Scripts to Rule Them All](https://github.com/github/scripts-to-rule-them-all)
standard (with that link), then documents each provided `script/`
entrypoint and its purpose.
- **Rationale**: Why does this exist?
- **Design**: How is the program structured?
- **TODO**: Update meticulously, even between commits. When planning, put
@@ -991,9 +181,6 @@ style conventions are in separate documents:
- `README.md`, `.git`, `.gitignore`, `.editorconfig`
- `LICENSE`, `REPO_POLICIES.md` (copy from the `prompts` repo)
- `Makefile`
- `script/` entrypoints (`bootstrap`, `setup`, `projectname`, `test`,
`lint`, `fmt`, `fmt-check`, `check`, `docker`, `cibuild`, `precommit`,
`install-precommit`)
- `Dockerfile`, `.dockerignore`
- `.gitea/workflows/check.yml`
- Go: `go.mod`, `go.sum`, `.golangci.yml`

View File

@@ -1,136 +0,0 @@
#!/bin/sh
# script/bootstrap: install all dependencies needed to build and develop
# this repo. Idempotent: every install is guarded by a check so already
# installed tools are skipped. Base tooling comes from nix, apt, brew,
# or apk (detected in that order); assumes nothing is present. Node is
# used directly if installed; otherwise it is installed at a pinned
# version via nvm (installing nvm itself first, from a hash-verified
# release archive, never curl | sh).
set -eu
ROOT="$(cd "$(dirname "$0")/.." && pwd -P)"
# Pinned versions, 2026-07-06
NODE_VERSION="22.17.0"
NVM_VERSION="0.40.3"
# sha256 of https://github.com/nvm-sh/nvm/archive/refs/tags/v0.40.3.tar.gz
NVM_SHA256="5f4d6aaa04a177dc93c985e31dbc411ab6b8c6e1e21d8015dbc1372625fcd1d0"
YARN_VERSION="1.22.22"
PKGMGR=""
SUDO=""
detect_pkgmgr() {
[ -n "$PKGMGR" ] && return 0
if command -v nix-env >/dev/null 2>&1; then
PKGMGR="nix"
elif command -v apt-get >/dev/null 2>&1; then
PKGMGR="apt"
elif command -v brew >/dev/null 2>&1; then
PKGMGR="brew"
elif command -v apk >/dev/null 2>&1; then
PKGMGR="apk"
else
echo "bootstrap: no supported package manager (nix, apt, brew, apk)" >&2
exit 1
fi
if [ "$PKGMGR" = "apt" ]; then
export DEBIAN_FRONTEND=noninteractive
if [ "$(id -u)" != "0" ]; then
SUDO="sudo"
fi
fi
}
# pkg_install <nix-attr> <apt-pkg> <brew-formula> <apk-pkg>
pkg_install() {
detect_pkgmgr
case "$PKGMGR" in
nix) nix-env -iA "nixpkgs.$1" ;;
apt) $SUDO env DEBIAN_FRONTEND=noninteractive apt-get install -y "$2" ;;
brew) brew install "$3" ;;
apk) apk add --no-cache "$4" ;;
esac
}
missing() {
! command -v "$1" >/dev/null 2>&1
}
# verify_sha256 <file> <expected-hash>
verify_sha256() {
if command -v sha256sum >/dev/null 2>&1; then
actual="$(sha256sum "$1" | cut -d' ' -f1)"
else
actual="$(shasum -a 256 "$1" | cut -d' ' -f1)"
fi
if [ "$actual" != "$2" ]; then
echo "bootstrap: sha256 mismatch for $1" >&2
echo " expected: $2" >&2
echo " actual: $actual" >&2
exit 1
fi
}
# nvm is a bash script; run a command in a bash with nvm loaded
nvm_sh() {
bash -c ". \"\$HOME/.nvm/nvm.sh\" && $*"
}
ensure_nvm() {
[ -s "$HOME/.nvm/nvm.sh" ] && return 0
# nvm prerequisites; nvm itself requires bash
if missing bash; then pkg_install bash bash bash bash; fi
if missing curl; then pkg_install curl curl curl curl; fi
if missing git; then pkg_install git git git git; fi
tmp="$(mktemp -d)"
curl -fsSL -o "$tmp/nvm.tar.gz" \
"https://github.com/nvm-sh/nvm/archive/refs/tags/v${NVM_VERSION}.tar.gz"
verify_sha256 "$tmp/nvm.tar.gz" "$NVM_SHA256"
mkdir -p "$HOME/.nvm"
tar -xzf "$tmp/nvm.tar.gz" -C "$HOME/.nvm" --strip-components=1
rm -rf "$tmp"
}
ensure_node() {
if ! missing node; then return 0; fi
ensure_nvm
nvm_sh "nvm install $NODE_VERSION"
}
ensure_yarn() {
if ! missing yarn; then return 0; fi
if ! missing corepack; then
corepack enable
corepack prepare "yarn@$YARN_VERSION" --activate
elif [ -s "$HOME/.nvm/nvm.sh" ]; then
nvm_sh "nvm use $NODE_VERSION >/dev/null && corepack enable && \
corepack prepare yarn@$YARN_VERSION --activate"
else
npm install -g "yarn@$YARN_VERSION"
fi
}
install_js_deps() {
if missing yarn && [ -s "$HOME/.nvm/nvm.sh" ]; then
nvm_sh "nvm use $NODE_VERSION >/dev/null && cd \"$ROOT\" && \
yarn install --frozen-lockfile"
else
yarn install --frozen-lockfile
fi
}
main() {
cd "$ROOT"
if missing make; then pkg_install gnumake make make make; fi
if missing git; then pkg_install git git git git; fi
ensure_node
ensure_yarn
install_js_deps
echo "bootstrap complete"
}
main "$@"

View File

@@ -1,21 +0,0 @@
#!/bin/sh
# script/check: run all checks (test, lint, fmt-check). Our own
# extension to scripts-to-rule-them-all. Must not modify any files.
#
# script/lint is a docker build (see Dockerfile.lint), so this script
# requires a docker daemon. That is deliberate: it is the only way a
# developer and the pre-commit hook get the same linter CI gets. It also
# means this script must never be run from inside a build stage — see
# the comment in Dockerfile, which runs the individual non-lint checks
# for exactly that reason.
set -eu
SCRIPT_DIR="$(cd "$(dirname "$0")" && pwd -P)"
main() {
"$SCRIPT_DIR/test"
"$SCRIPT_DIR/lint"
"$SCRIPT_DIR/fmt-check"
}
main "$@"

View File

@@ -1,40 +0,0 @@
#!/bin/sh
# script/cibuild: run the CI build. Two container builds, in order:
# script/lint (Dockerfile.lint) and then the main image, which runs the
# non-lint checks. Both only prove anything because each passes its own
# fresh CHECK_EPOCH nonce: without it Docker serves the check layers
# from cache on an unchanged tree and the build exits 0 without running
# anything.
set -eu
SCRIPT_DIR="$(cd "$(dirname "$0")" && pwd -P)"
ROOT="$(cd "$SCRIPT_DIR/.." && pwd -P)"
main() {
cd "$ROOT"
# Lint first, for fail-fast feedback: it is its own container build
# and computes its own CHECK_EPOCH. It runs here rather than inside
# the main image because a docker build cannot run a docker build.
"$SCRIPT_DIR/lint"
# Assign on its own line: a failing command substitution inside an
# argument does not trip `set -e`, which would silently degrade the
# nonce to an empty constant. `$$` is required because busybox `date`
# drops %N without erroring.
epoch="$(date +%s%N)$$"
# VERSION must be computed here, on the host: .dockerignore excludes
# .git, so `git describe` cannot run in any build stage and fails
# quietly there rather than erroring. Same own-line discipline as the
# epoch. `|| true` keeps a failing describe from tripping `set -e`
# and leaves the value empty; the guard below is then the single
# place the fallback is applied, and it does fire — on an export with
# no .git, or a repo with no commits yet. `unknown` is visibly wrong
# in a binary in a way that an empty version is not.
version="$(git describe --tags --always --dirty 2>/dev/null || true)"
[ -n "$version" ] || version="unknown"
docker build \
--build-arg CHECK_EPOCH="$epoch" \
--build-arg VERSION="$version" \
.
}
main "$@"

View File

@@ -1,41 +0,0 @@
#!/bin/sh
# script/docker: build the Docker image tagged with the project name.
# Identical in all repos; the tag comes from script/projectname. The
# Dockerfile's checks only actually run because CHECK_EPOCH is a fresh
# nonce on every invocation; without it a warm cache turns this into a
# green that proves nothing.
#
# Those checks are the NON-LINT ones. Linting left this image: it runs
# in its own container, built by script/lint, because script/lint is a
# docker build and cannot run inside one. So a green here does not mean
# the branch is green — script/cibuild, which runs script/lint first, is
# what means that.
set -eu
SCRIPT_DIR="$(cd "$(dirname "$0")" && pwd -P)"
ROOT="$(cd "$SCRIPT_DIR/.." && pwd -P)"
main() {
cd "$ROOT"
# Assign on its own line: a failing command substitution inside an
# argument does not trip `set -e`, which would silently degrade the
# nonce to an empty constant. `$$` is required because busybox `date`
# drops %N without erroring.
epoch="$(date +%s%N)$$"
# VERSION must be computed here, on the host: .dockerignore excludes
# .git, so `git describe` cannot run in any build stage and fails
# quietly there rather than erroring. Same own-line discipline as the
# epoch. `|| true` keeps a failing describe from tripping `set -e`
# and leaves the value empty; the guard below is then the single
# place the fallback is applied, and it does fire — on an export with
# no .git, or a repo with no commits yet. `unknown` is visibly wrong
# in a binary in a way that an empty version is not.
version="$(git describe --tags --always --dirty 2>/dev/null || true)"
[ -n "$version" ] || version="unknown"
docker build \
--build-arg CHECK_EPOCH="$epoch" \
--build-arg VERSION="$version" \
-t "$("$SCRIPT_DIR/projectname")" .
}
main "$@"

View File

@@ -1,12 +0,0 @@
#!/bin/sh
# script/fmt: format all files (writes).
set -eu
ROOT="$(cd "$(dirname "$0")/.." && pwd -P)"
main() {
cd "$ROOT"
yarn run prettier --write '**/*.md' --tab-width 4 --prose-wrap always
}
main "$@"

View File

@@ -1,12 +0,0 @@
#!/bin/sh
# script/fmt-check: check formatting (read-only).
set -eu
ROOT="$(cd "$(dirname "$0")/.." && pwd -P)"
main() {
cd "$ROOT"
yarn run prettier --check '**/*.md' --tab-width 4 --prose-wrap always
}
main "$@"

View File

@@ -1,16 +0,0 @@
#!/bin/sh
# script/install-precommit: install the git pre-commit hook that runs
# script/precommit. Our own extension to scripts-to-rule-them-all.
set -eu
ROOT="$(cd "$(dirname "$0")/.." && pwd -P)"
main() {
cd "$ROOT"
hook=".git/hooks/pre-commit"
printf '#!/bin/sh\nset -e\nscript/precommit\n' > .git/hooks/pre-commit
chmod +x .git/hooks/pre-commit
echo "pre-commit hook installed: runs script/precommit"
}
main "$@"

View File

@@ -1,33 +0,0 @@
#!/bin/sh
# script/lint: run the linter. This is the ONLY source of a lint verdict
# in this repo — the linter runs in a container, one way, everywhere, so
# a run cannot inherit another checkout's cache, another process's lock,
# or a host toolchain that differs from the pinned one. Linting happens
# as a build step (see Dockerfile.lint), so a successful build is a
# clean lint, and it works where the docker daemon is remote and bind
# mounts are impossible.
#
# A failure here that names no finding is NOT a lint result: docker
# build exits 1 both for findings and for a build that never reached the
# lint step (daemon down, image unpullable, disk full). BuildKit names
# the failing step; read it, fix the environment, and re-run. Do not
# record a verdict from a run that did not lint.
set -eu
ROOT="$(cd "$(dirname "$0")/.." && pwd -P)"
main() {
cd "$ROOT"
# Assign on its own line: a failing command substitution inside an
# argument does not trip `set -e`, which would silently degrade the
# nonce to an empty constant. `$$` is required because busybox `date`
# drops %N without erroring. Without a fresh nonce the lint layer is
# served from cache and this script exits 0 having linted nothing.
epoch="$(date +%s%N)$$"
docker build \
--build-arg CHECK_EPOCH="$epoch" \
-f Dockerfile.lint \
.
}
main "$@"

View File

@@ -1,12 +0,0 @@
#!/bin/sh
# script/precommit: run by the git pre-commit hook; fails the commit if
# checks fail. Our own extension to scripts-to-rule-them-all.
set -eu
SCRIPT_DIR="$(cd "$(dirname "$0")" && pwd -P)"
main() {
"$SCRIPT_DIR/check"
}
main "$@"

View File

@@ -1,12 +0,0 @@
#!/bin/sh
# script/projectname: output the name of this project. Our own
# extension to scripts-to-rule-them-all. Other scripts that need the
# name (e.g. script/docker) call this, so they can stay identical
# across all repos.
set -eu
main() {
echo "prompts"
}
main "$@"

View File

@@ -1,13 +0,0 @@
#!/bin/sh
# script/setup: set up the repo for development after a fresh clone:
# installs dependencies and the git pre-commit hook.
set -eu
SCRIPT_DIR="$(cd "$(dirname "$0")" && pwd -P)"
main() {
"$SCRIPT_DIR/bootstrap"
"$SCRIPT_DIR/install-precommit"
}
main "$@"

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@@ -1,12 +0,0 @@
#!/bin/sh
# script/test: run the test suite.
set -eu
ROOT="$(cd "$(dirname "$0")/.." && pwd -P)"
main() {
cd "$ROOT"
echo "No tests defined."
}
main "$@"