| name | clean-code |
| description | Clean code lifecycle for Go/Rust/TypeScript/Bun/Python — writing, reviewing, refactoring. Naming, functions, DRY, code smells, duplication (literal/logical/structural), dead-code removal with false-positive guardrails, safe refactoring. Triggers: 'clean code', 'código limpo', 'refactor', 'refatorar', 'remove duplication', 'remover duplicação', 'dead code', 'código morto', 'code smells', '/clean-code'. |
| source | ValarMindSkills |
Clean Code Lifecycle
"Code is clean if it can be read, and enhanced by a developer other than its original author." — Grady Booch
When to Use
- Writing new code: To ensure high quality from the start.
- Reviewing Pull Requests: To provide constructive, principle-based feedback.
- Refactoring legacy code: To identify and remove code smells.
- Improving team standards: To align on industry-standard best practices.
Prerequisites
| Tool | Purpose | Install |
|---|
jscpd | Multi-language clone detection | npm install -g jscpd |
pmd | Java/multi-language CPD | pmd.github.io |
fd | Fast file finder | brew install fd / apt install fd-find |
rg | Fast content search | brew install ripgrep / apt install ripgrep |
golangci-lint | Go meta-linter (50+ linters) | go install github.com/golangci/golangci-lint/cmd/golangci-lint@latest |
clippy | Rust idiomatic linter (500+ lints) | rustup component add clippy |
biome | Fast TS/JS linter + formatter | bun install -D @biomejs/biome / npm install -D @biomejs/biome |
knip | Find unused TS exports/deps/files | bunx knip / npx knip |
ruff | Python linter — unused imports/vars, dedup hints | pipx install ruff |
vulture | Python dead-code detection with confidence tiers | pipx install vulture |
| Project linter | Language-specific checks | Check project config (.eslintrc, .golangci.yml, biome.json, pyproject.toml) |
Phase 0 — Project Context Discovery
Before applying any clean code principle, understand the project you're working in. Refactoring or deduplicating without context leads to wrong abstractions, broken conventions, and wasted effort.
Discovery Commands
fd -t f -i '(README|CONTRIBUTING|ADR|ARCHITECTURE|CONVENTIONS|STYLE_GUIDE)' .
fd -t f '(\.eslintrc|\.prettierrc|\.editorconfig|\.golangci|pyproject\.toml|biome\.json)' .
fd -t f 'CLAUDE.md' .
git log --oneline -20
fd -t f -i '(utils|helpers|shared|common|lib)' src/
Key Questions
| Question | Why it matters | Where to find it |
|---|
| Does the project have a style guide or coding conventions? | Your refactoring must follow existing patterns, not introduce new ones | CONTRIBUTING.md, linter configs, ADRs |
| Are there existing shared utility modules? | Before extracting a helper, check if one already exists | utils/, shared/, lib/, common/ dirs |
| What's the test strategy (unit, integration, e2e)? | Determines how you verify refactoring safety | README.md, CI config, test directory structure |
| Are there architectural boundaries (modules, packages, bounded contexts)? | Deduplicating across boundaries may violate the architecture intentionally | ARCHITECTURE.md, ADRs, module/package structure |
| Is there a dependency injection or service pattern in use? | Extracting code the wrong way can break DI wiring | Entry points, main files, DI containers |
Decision Rules
- If a style guide exists → follow it, even if it contradicts Clean Code principles. Project consistency wins over theoretical purity.
- If shared utils already exist → add to them instead of creating parallel helpers.
- If ADRs document a decision to keep duplication → respect it. Not all duplication is accidental.
- If no tests exist → write characterization tests before any refactoring (see Phase 3).
- If no documentation exists → read code structure, git history, and CI config to infer conventions.
Rule: context before cleanup. A "clean" refactoring that ignores project conventions creates more mess than the duplication it removed.
Phase 1 — Code Quality Audit
Scan the codebase for code smells. Each smell includes a description and detection method.
| # | Smell | Description | Detection |
|---|
| 1 | Rigidity | One change forces a cascade of dependent changes | Count how many files a single-line change touches |
| 2 | Fragility | Breaks in many places when you make a change | Look for high coupling with no clear interface boundary |
| 3 | Immobility | Useful parts are entangled with unneeded details | Functions that import half the project to do a simple task |
| 4 | Viscosity | Easier to hack than to follow the design | Devs keep bypassing an abstraction — it's too cumbersome |
| 5 | Needless Complexity | Premature abstraction or speculative generality | Unused interfaces, empty abstract methods, config nobody changes |
| 6 | Needless Repetition | Same logic in multiple places | npx jscpd ./src or review similar function bodies |
| 7 | Feature Envy | A method accesses another object's data more than its own | Chains: order.getCustomer().getAddress().getCity() |
| 8 | Shotgun Surgery | A single change requires edits across many files | git log --name-only — same files always change together |
| 9 | Divergent Change | One class changed for many different reasons | File with commits from unrelated features |
Principle Checks
For each file under review, verify against the core principles. See references/PRINCIPLES.md for full details.
- Names: Intention-revealing, searchable, pronounceable?
- Functions: Small (<30 lines), do one thing, ≤2 arguments?
- Comments: Can any comment be eliminated by making the code clearer?
- Formatting: Newspaper metaphor — high-level at top, details at bottom?
- Objects: Law of Demeter respected? No
a.getB().getC().doSomething()?
- Error Handling: Exceptions over return codes? No null returns/passes?
- Tests: F.I.R.S.T. principles followed?
- Classes: Single Responsibility Principle?
Language-Specific Checks
For language-specific smells, idioms, and detection commands:
- Go: See references/GOLANG.md — stuttering names, empty interface abuse,
init() side effects, naked returns, oversized interfaces, functional options
- Rust: See references/RUST.md —
unwrap() abuse, unnecessary clone(), stringly typed APIs, Arc<Mutex<>> overuse, monolithic error enums, boolean parameters
- TypeScript: See references/TYPESCRIPT.md —
any abuse, excessive type assertions, enum vs union, barrel file bloat, god interfaces, class overuse
- Bun: See references/BUN.md — Node.js APIs vs Bun natives, unnecessary polyfills,
dotenv/jest/express replacements, Bun.file/Bun.serve/Bun.password
- Python: See references/PYTHON.md — dict-as-object,
if/elif dispatch chains, **kwargs soup, boolean flag params, stateless classes, import-time side effects, sync/async twins
Phase 2 — Duplication & Dead Code Detection
Duplication is the same knowledge, logic, or intent expressed in more than one place. Dead code is a symbol nothing reaches. Both inflate the change surface — find them before Phase 3 touches anything.
2.1 Duplication
| Class | Signature | Cost of leaving it |
|---|
| Literal | Identical blocks copied verbatim | Copies drift; the next fix lands in one of them, not all |
| Logical | Same outcome, different names or control flow | Invisible to clone tools — only reading similar signatures finds it |
| Structural | Repeated if/else or switch chains spelling out the same decision | Adding one case means editing N sites; one gets forgotten |
| Data | Constants, URLs, configs, error envelopes repeated across files | Values drift silently; the copies disagree |
Detection commands per class, how to read the Structural signal from commit history, and the when NOT to deduplicate rules: references/DUPLICATION.md.
Rule of Three. Tolerate two copies. Extract on the third. A premature abstraction — the shared function that needs 4 parameters and 2 boolean flags to serve every caller — is worse than the duplication it removed.
2.2 Dead Code
| Type | Example |
|---|
| Unreferenced function / type | No call site in source, tests, templates, config, or CI |
| Unused import | Flagged by the linter, with no side-effect or re-export role |
| Assigned-never-read variable / unused parameter | Flagged by the linter, not fixed by an interface signature |
| Unreachable branch | Dead feature flag, code after return, provably constant guard |
| Unused dependency / orphan file | Manifest or module graph shows zero importers |
Command matrix per language, plus the twelve false-positive guardrails that must clear before any deletion: references/DEAD_CODE.md.
Rule: two independent signals before deleting. A tool finding plus a manual sweep of non-source assets. Reflection, DI registries, framework decorators, serialization, and string-based routing are invisible to every dead-code tool — deleting a live symbol passes the test suite and breaks production.
Phase 3 — Safe Refactoring
Apply refactoring patterns to resolve the issues found in Phases 1 and 2. For concrete before/after diffs, see references/PATTERNS.md.
Available Patterns
| Pattern | Use When | Result |
|---|
| Extract Function | Identical blocks across multiple call sites | Auth check in every handler → middleware |
| Extract Constant/Config | Magic values repeated across files | 30 * time.Second in 3 files → config.DefaultTimeout |
| Generic/Parameterized Function | Near-identical functions differing by one call | GetUser, GetOrder → getByID[T] |
| Template Method / Strategy | Similar flows with one varying step | PDF/CSV generators → GenerateReport(data, renderer) |
| Substitute Algorithm | Two functions reach the same result by different means | Two CSV parsers → keep the streaming one, delete the other |
| Replace Conditional with Polymorphism | The same switch/if-elif chain repeated across files | Channel switch in 3 handlers → dispatch table, then interface |
Step 1 — Secure the starting point
go test ./...
cargo test
bun test
npm test
pytest
git status
git stash
git checkout -b refactor/describe-the-change
Rule: never refactor on a dirty working tree. Mixing feature changes with refactoring makes rollback impossible.
Step 2 — One transformation at a time
Each refactoring step must be atomic — a single, small, independently verifiable change.
| Step | Action | Verify |
|---|
| 1 | Extract function / constant / type | Run tests |
| 2 | Replace first call site with the new abstraction | Run tests |
| 3 | Replace next call site | Run tests |
| 4 | Remove old dead code — follow the DEAD_CODE.md protocol: two signals, guardrails cleared, own commit | Run tests |
| 5 | Commit | git commit -m "refactor: extract getByID generic handler" |
Never batch multiple extractions into a single step.
go test ./...
git add -p
git commit -m "refactor: step N — description"
Step 3 — Verify behavior preservation
go doc ./pkg/handlers
go vet ./...
golangci-lint run ./...
cargo clippy -- -W clippy::pedantic
cargo fmt -- --check
cargo test
bunx tsc --noEmit
bunx biome check .
bun test
ruff check .
ruff format --check .
mypy --strict .
pytest -q
bunx knip
npm run test:e2e
go vet ./...
cargo machete
bunx knip
npx eslint --rule '{"no-unused-vars": "error"}' src/
ruff check --select=F401,F841,ARG .
vulture src/ tests/ --min-confidence 90
Step 4 — Rollback strategy
git checkout -- .
git revert <commit-hash>
git checkout main
git branch -D refactor/describe-the-change
The branch-per-refactoring approach means you never risk main.
Common Pitfalls
- Changing behavior during refactoring: Resist the urge to "fix that bug while I'm here." Refactoring and behavior changes are separate commits — always.
- Refactoring without tests: If the code has no tests, write characterization tests first — tests that capture current behavior, even if that behavior has bugs.
- Big-bang refactoring: Rewriting an entire module at once. Prefer the Strangler Fig pattern — replace piece by piece.
- Skipping the test run: "It's just a rename." Type aliases, reflection, serialization, string-based routing — all break on renames.
Plan-only mode
Composing /clean-code /only-plan suppresses every write in Phase 3 — no branch, no commits, no edits. Phases 0–2 run normally, and each planned transformation becomes a numbered step in the single IMPLEMENTATION_PLAN.md at the project root, following @only-plan's section contract. This skill writes no file of its own in either mode.
Related Skills
@only-plan — compose as /clean-code /only-plan for a refactor plan at the project root instead of applied edits.
@ponytail-review — the complementary lens: what to delete (speculative abstractions, dependencies the stdlib replaces, config nobody sets) rather than what to restructure.
@code-optimization — when duplication or a smell has a measurable performance cost; it grades Impact and writes OPTIMIZATION_REPORT.md.
@code-review — broad severity-ranked review; its Rule-of-Three findings hand off here for the refactor mechanics.
@code-debugger — a smell that is actually a live defect belongs there first. Refactor after the fix is green.
References
- PRINCIPLES — the eight Clean Code principle families
- PATTERNS — six refactoring patterns with before/after diffs
- DUPLICATION — taxonomy, detection probes, when NOT to deduplicate
- DEAD_CODE — per-language detection, false-positive guardrails, removal protocol
- GOLANG · RUST · TYPESCRIPT · BUN · PYTHON — language-specific smells and idioms
Implementation Checklist