Interpretation is structured for decision-making; original keeps the upstream SKILL.md unchanged.
Decide Fit First
Core job: Generate or refresh CLAUDE.md, AGENTS.md, Cursor rules, and llms.txt for a repository using source evidence and scoped rules. Us…
Best fit: Use it when the task has reusable inputs, steps, and validation criteria rather than a one-off answer.
Avoid forcing it: If the source lacks commands, platform support, or external-service evidence, keep those fields unknown instead of guessing.
Design Intent
Structure: The source has limited section structure, so treat it as an invocation rule: trigger, execution boundary, then validation.
Trigger evidence: Prioritize the author’s wording around when to use it, what context to collect, and what output shape to produce.
Evidence boundary: Author text states facts, repository files prove commands and paths, and Fluxly only adds fit, limits, and usage judgment.
How To Use It
Inputs: Provide target material, scope, expected result, forbidden changes, and validation method.
Invocation: Name ai-context-compiler directly; if the source includes slash commands, start with the command and then add task context.
Validation: Start small and check whether the result follows “ai-context-compiler” before expanding.
Boundaries And Review
Dependencies: It usually needs no extra API key, so start with a small validation task.
Permissions: Declared permissions include read; ask the agent to state file, command, and rollback boundaries before acting.
Quality bar: A useful result names the deliverable, evidence, and next action. Generic prose means the task needs tighter context.
ai-context-compiler
Read the repository structure and existing docs. Compile the AI context artifacts the user asks for, using only paths and behaviors the repository actually exposes. Mark any inferred section as assumption.
Profile is derived at build time from SKILL.md and install vectors. Subject to drift from author intent.
Heads up: 未限定 allowed-tools,默认拥有全部工具权限。
Output previewai-context-compiler.preview
The current SKILL.md does not define a fixed output example.
01
No step sections in source
# ai-context-compiler
Read the repository structure and existing docs. Compile the AI context artifacts the user asks for, using only paths and behaviors the repository actually exposes. Mark any inferred section as assumption.
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…
SKILL.mdSKILL.md
# ai-context-compiler
Read the repository structure and existing docs. Compile the AI context artifacts the user asks for, using only paths and behaviors the repository actually exposes. Mark any inferred section as assumption.
---
> Source: [cembasaranoglu/crafting-system-claude](https://github.com/cembasaranoglu/crafting-system-claude) — distributed by [TomeVault](https://tomevault.io).
<!-- tomevault:4.0:skill_md:2026-05-23 -->
Evidence boundary and execution chain
Author text anchors workflow facts; Fluxly only indexes current sections, terms, files, and commands.
sections -> no H2/H3 headings
terms -> Read the repository structure and existing docs.
files/cmd -> cembasaranoglu/crafting-system-claude · github.com/cembasaranoglu/crafting-system-claude
body sha256 -> 5c9657400ded
Discussion
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Decide Fit First
Design Intent
How To Use It
Boundaries And Review