| name | writing-plans |
| description | Use when you have a spec or requirements for a multi-step task, before touching code |
Writing Plans
Overview
Write comprehensive implementation plans assuming the engineer has zero context for our codebase and questionable taste. Document everything they need to know: which files to touch for each task, code, testing, docs they might need to check, how to test it. Give them the whole plan as bite-sized tasks. DRY. YAGNI. TDD. Frequent commits.
Assume they are a skilled developer, but know almost nothing about our toolset or problem domain. Assume they don't know good test design very well.
Announce at start: "I'm using the writing-plans skill to create the implementation plan."
Context: This should be run in a dedicated worktree (created by brainstorming skill).
Save plans to: docs/plans/YYYY-MM-DD-<feature-name>.md
Bite-Sized Task Granularity
Each step is one action (2-5 minutes):
- "Write the failing test" - step
- "Run it to make sure it fails" - step
- "Implement the minimal code to make the test pass" - step
- "Run the tests and make sure they pass" - step
- "Commit" - step
Plan Document Header
Every plan MUST start with this header:
# [Feature Name] Implementation Plan
> **For Claude:** REQUIRED SUB-SKILL: Use superpowers:executing-plans to implement this plan task-by-task.
**Goal:** [One sentence describing what this builds]
**Architecture:** [2-3 sentences about approach]
**Tech Stack:** [Key technologies/libraries]
## Alternatives
### [Decision: e.g. State Management Approach]
| Criteria | Approach A: [Name] | Approach B: [Name] |
|---|---|---|
| Performance | ... | ... |
| Complexity | ... | ... |
| Maintainability | ... | ... |
**Decision:** [Chosen approach] — [One-line rationale]
---
Alternatives Exploration
Every non-trivial decision in the plan MUST include at least two approaches with trade-off analysis.
What counts as non-trivial:
- Architecture choices (e.g. where to put new code)
- Data flow design (e.g. state management approach)
- API design (e.g. endpoint structure, payload shape)
- Testing strategy (e.g. unit vs integration)
What does NOT need alternatives:
- File naming that follows existing conventions
- Import statements
- Trivial implementation details
Format for each decision:
### [Decision: Short Description]
| Criteria | Approach A: [Name] | Approach B: [Name] |
|---|---|---|
| Performance | ... | ... |
| Complexity | ... | ... |
| Maintainability | ... | ... |
**Decision:** [Chosen approach] — [One-line rationale]
Rules:
- Minimum 2 approaches per non-trivial decision
- Always include performance, complexity, and maintainability rows
- Add extra criteria rows when relevant (e.g. security, testability, migration cost)
- State the chosen approach with a clear rationale
- If only one viable approach exists, explain why alternatives were ruled out
API Verification
When the plan references external APIs, SDKs, or protocols:
- Document every API assumption with its source URL
- Create an "API Assumptions" table in the plan:
| Assumption | Verified? | Source |
|---|
Hook stdin has tool_name | ✅ | Hooks Reference |
Hook stdin has session_cost | ❌ UNVERIFIED | — |
- All assumptions must be verified before ACT phase
- WebFetch/WebSearch the official docs — never rely on memory or guesses
Why This Matters
Unverified API assumptions propagate into implementation, causing features to be unimplementable as designed. Verification at PLAN time costs minutes; rework at ACT time costs hours.
Task Structure
### Task N: [Component Name]
**Files:**
- Create: `exact/path/to/file.py`
- Modify: `exact/path/to/existing.py:123-145`
- Test: `tests/exact/path/to/test.py`
**Step 1: Write the failing test**
```python
def test_specific_behavior():
result = function(input)
assert result == expected
Step 2: Run test to verify it fails
Run: pytest tests/path/test.py::test_name -v
Expected: FAIL with "function not defined"
Step 3: Write minimal implementation
def function(input):
return expected
Step 4: Run test to verify it passes
Run: pytest tests/path/test.py::test_name -v
Expected: PASS
Step 5: Commit
git add tests/path/test.py src/path/file.py
git commit -m "feat: add specific feature"
## Remember
- Exact file paths always
- Complete code in plan (not "add validation")
- Exact commands with expected output
- Reference relevant skills with @ syntax
- DRY, YAGNI, TDD, frequent commits
## Self-Review Gate
**Before submitting the plan, verify ALL items pass:**
- [ ] All file paths verified (existing files confirmed, new files marked as `Create:`)
- [ ] Steps are bite-sized (2-5 minutes each, one action per step)
- [ ] Risks identified with mitigation (what could go wrong and how to handle it)
- [ ] TDD applied where appropriate (test-first for core logic, test-after for UI)
- [ ] No over-engineering (YAGNI check — remove anything not directly needed)
**If any item fails:** Fix the plan before proceeding. Do not hand off an incomplete plan.
## Execution Handoff
After saving the plan, offer execution choice:
**"Plan complete and saved to `docs/plans/<filename>.md`. Two execution options:**
**1. Subagent-Driven (this session)** - I dispatch fresh subagent per task, review between tasks, fast iteration
**2. Parallel Session (separate)** - Open new session with executing-plans, batch execution with checkpoints
**Which approach?"**
**If Subagent-Driven chosen:**
- **REQUIRED SUB-SKILL:** Use superpowers:subagent-driven-development
- Stay in this session
- Fresh subagent per task + code review
**If Parallel Session chosen:**
- Guide them to open new session in worktree
- **REQUIRED SUB-SKILL:** New session uses superpowers:executing-plans