| name | writing-plans |
| description | Use when you have an approved spec or requirements for a multi-step task, before touching code. Produces an ephemeral implementation plan (worktree-only, never committed). |
| compatibility | polytoken-only |
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: If working in an isolated worktree, it should have been created via
the using-git-worktrees skill at execution time.
Where the plan lives
Plans are ephemeral — worktree-only, never committed. Write the plan to a
file under the worktree (e.g. .plan.md or a path the orchestration skill
chooses) that is gitignored or simply not committed. Do NOT save plans to
docs/superpowers/plans/. There is no committed plan artifact; the spec (in the
issue body) is the only durable design record.
This is a deliberate alteration of the upstream Superpowers writing-plans
skill, which commits plans to docs/superpowers/plans/. Do not do that.
Scope Check
If the spec covers multiple independent subsystems, it should have been broken
into sub-project specs during brainstorming. If it wasn't, suggest breaking this
into separate plans — one per subsystem. Each plan should produce working,
testable software on its own.
File Structure
Before defining tasks, map out which files will be created or modified and what
each one is responsible for. This is where decomposition decisions get locked in.
- Design units with clear boundaries and well-defined interfaces. Each file
should have one clear responsibility.
- You reason best about code you can hold in context at once, and your edits are
more reliable when files are focused. Prefer smaller, focused files over large
ones that do too much.
- Files that change together should live together. Split by responsibility, not
by technical layer.
- In existing codebases, follow established patterns. If the codebase uses large
files, don't unilaterally restructure — but if a file you're modifying has grown
unwieldy, including a split in the plan is reasonable.
This structure informs the task decomposition. Each task should produce
self-contained changes that make sense independently.
Task Right-Sizing
A task is the smallest unit that carries its own test cycle and is worth a
fresh reviewer's gate. When drawing task boundaries: fold setup, configuration,
scaffolding, and documentation steps into the task whose deliverable needs them;
split only where a reviewer could meaningfully reject one task while approving
its neighbor. Each task ends with an independently testable deliverable.
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
**Goal:** [One sentence describing what this builds]
**Architecture:** [2-3 sentences about approach]
**Tech Stack:** [Key technologies/libraries]
## Global Constraints
[The spec's project-wide requirements — version floors, dependency limits,
naming and copy rules, platform requirements — one line each, with exact
values copied verbatim from the spec. Every task's requirements implicitly
include this section.]
---
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`
**Interfaces:**
- Consumes: [what this task uses from earlier tasks — exact signatures]
- Produces: [what later tasks rely on — exact function names, parameter
and return types. A task's implementer sees only their own task; this
block is how they learn the names and types neighboring tasks use.]
- [ ] **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: `uv run arx test world.magic.tests.test_thing::test_specific_behavior`
Expected: FAIL with "function not defined"
- [ ] **Step 3: Write minimal implementation**
```python
def function(input):
return expected
```
- [ ] **Step 4: Run test to verify it passes**
Run: `uv run arx test world.magic.tests.test_thing::test_specific_behavior`
Expected: PASS
- [ ] **Step 5: Commit**
```bash
git add tests/path/test.py src/path/file.py
git commit -m "feat: add specific feature"
```
No Placeholders
Every step must contain the actual content an engineer needs. These are plan
failures — never write them:
- "TBD", "TODO", "implement later", "fill in details"
- "Add appropriate error handling" / "add validation" / "handle edge cases"
- "Write tests for the above" (without actual test code)
- "Similar to Task N" (repeat the code — the engineer may be reading tasks out
of order)
- Steps that describe what to do without showing how (code blocks required for
code steps)
- References to types, functions, or methods not defined in any task
Remember
- Exact file paths always
- Complete code in every step — if a step changes code, show the code
- Exact commands with expected output
- DRY, YAGNI, TDD, frequent commits
- Tests run via
uv run arx test (never bare python/pytest — misses deps)
Self-Review
After writing the complete plan, look at the spec with fresh eyes and check the
plan against it. This is a checklist you run yourself — not a subagent dispatch.
1. Spec coverage: Skim each section/requirement in the spec. Can you point
to a task that implements it? List any gaps.
2. Placeholder scan: Search your plan for red flags — any of the patterns
from the "No Placeholders" section above. Fix them.
3. Type consistency: Do the types, method signatures, and property names
you used in later tasks match what you defined in earlier tasks? A function
called clearLayers() in Task 3 but clearFullLayers() in Task 7 is a bug.
If you find issues, fix them inline. No need to re-review — just fix and move
on. If you find a spec requirement with no task, add the task.
Execution Handoff
After writing the plan, go straight to implementation. Do NOT prompt the
user to choose subagent-driven vs. inline execution — inline implementation is
the default for this project (work through the plan task-by-task in this
session, committing after each). Subagent-driven execution is only for when
subagents are explicitly requested.
Follow the plan if one exists; otherwise implement directly. Commit frequently.