aejmic-replication-package
Use when assembling the proof appendix and any code/data deposit for an American Economic Journal: Microeconomics (AEJ: Micro) manuscript under the AEA Data and Code Availability Policy.
Install / Use
npx skills add brycewang-stanford/Awesome-Journal-Skills --skill aejmic-replication-packageInstalls into whichever agent you are using.
SKILL.md
Installable skill definition
Quality Score
Category
Development & EngineeringSupported Platforms
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Our assessment of aejmic-replication-package
aejmic-replication-package scores 85/100 on our quality scale, 2238th of 4,610 Development & Engineering skills we index (top 49%).
Its SKILL.md is 4.8 KB long, well organised into 9 sections with 1 code example: a solid amount of guidance for an agent.
With 1,158 GitHub stars, it is one of the more widely adopted skills in the catalogue.
Maintenance, license and trust
- The repository was last updated 18 days ago, so aejmic-replication-package is actively maintained.
- It is released under the MIT license, a permissive license that allows use, modification and commercial use with attribution.
- Its trust signals score 100/100, with no cautions. These come from repository metadata, not a code audit — read the skill file before letting an agent act on it.
aejmic-replication-package compared with similar skills
All 4 of these similar skills score higher than aejmic-replication-package; compare them before choosing.
| Skill | Score | Stars | Updated | Format |
|---|---|---|---|---|
| aejmic-replication-package (this skill)by brycewang-stanford | 85 | 1.2k | 18d ago | SKILL.md |
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Frequently asked questions
- How do I install aejmic-replication-package?
- Run
npx skills add brycewang-stanford/Awesome-Journal-Skills --skill aejmic-replication-package. The install tabs above show the steps for each supported agent. - Which AI agents does aejmic-replication-package work with?
- It is written for Universal, as a SKILL.md file. Other agents that read the same format can often use it too.
- Is aejmic-replication-package safe to use?
- It is MIT-licensed and scores 100/100 on trust signals. Skills are instructions an agent will follow, so read the file before installing it and do not approve commands you do not understand.
- Is aejmic-replication-package still maintained?
- The repository was last updated 18 days ago, so aejmic-replication-package is actively maintained.
Skill content
View source on GitHubname: aejmic-replication-package description: Use when assembling the proof appendix and any code/data deposit for an American Economic Journal: Microeconomics (AEJ: Micro) manuscript under the AEA Data and Code Availability Policy. Covers proof appendices for pure theory plus numerical/structural/experimental code; it does not run your estimation.
Replication Package: Proofs + Code (aejmic-replication-package)
For AEJ: Micro the "replication package" has two faces: the proof appendix that makes every theory claim verifiable, and, for any paper with data, code, experiments, or numerical results, an AEA Data and Code Repository deposit. Pure-theory papers still deposit any numerical/simulation code used to generate examples or figures.
When to trigger
- Proofs are scattered, abbreviated, or rely on "it can be shown"
- The paper has numerical examples, simulations, structural estimation, or an experiment with no deposit prepared
- You are preparing for the AEA Data Editor check (administered before publication)
- A referee or editor flags reproducibility
The proof appendix (every AEJ: Micro paper)
- Self-contained proofs of all stated results. Key proofs belong in the paper (main text or appendix); do not exile a load-bearing proof to supplementary material.
- Lemma scaffolding: state and prove auxiliary lemmas before the main theorem; reference them precisely.
- Verify, do not assert: no "it can be shown that" for a claim the result depends on; complete the argument or cite a precise source.
- Match the statement: the proof establishes exactly what the proposition claims (no gap between the body statement and what is proved).
Code / data deposit (papers with data, code, experiments, or numerical results)
The AEA operates a Data and Code Availability Policy administered by the AEA Data Editor (currently Lars Vilhuber — 检索于 2026-06,以官网为准), with materials deposited to the AEA Data and Code Repository on openICPSR. Build it as you go.
- One master script (
run_all) regenerating every table, figure, and numerical example from inputs. - Pin versions:
requirements.txt/conda(Python),renv.lock(R),Project.toml/Manifest.toml(Julia), recorded Statassc/netversions. - Set and report seeds for any simulation, bootstrap, or randomization.
- README mapping each exhibit to the script that produces it; document any restricted-data or partial-reproduction scope.
- Pure-theory papers: deposit the code behind numerical examples / figures even when there is no dataset.
- Experiments: include instructions, z-Tree/oTree code, raw and analysis data, and pre-registration links.
Checklist
- [ ] All stated results have self-contained proofs; none rely on "it can be shown"
- [ ] Auxiliary lemmas stated and proved before they are used
- [ ] Each proof matches exactly what its proposition claims
- [ ] (If any data/code/numerics) one master script regenerates all exhibits
- [ ] Versions pinned; seeds set and reported
- [ ] README maps every exhibit to its script; restricted/partial scope documented
- [ ] Pure-theory numerical-example code deposited even with no dataset
- [ ] Experiment materials (instructions, code, data, pre-registration) included
Anti-patterns
- A "Proof." that asserts rather than argues the load-bearing step
- A load-bearing proof hidden in an un-checked supplementary file
- Numerical figures with no deposited code ("available on request")
- Unpinned dependencies / unset seeds — results not reproducible by the Data Editor
- Deferring the whole package to acceptance, then scrambling under the Data Editor deadline
Worked vignette (illustrative)
A persuasion paper has a clean Proposition 2 but its proof says "concavifying the value function yields the cutoff." For the appendix: state the auxiliary lemma (the value function's concave closure equals the indirect utility), prove it, then derive the cutoff explicitly — no hand-wave. The two numerical figures are generated by make_figures.py; deposit it with a fixed seed and a README line mapping Figure 3 → make_figures.py, even though there is no dataset.
Output format
【Proof appendix】all results proved, self-contained, no "it can be shown"? [Y/N]
【Lemma scaffolding】auxiliary results proved before use? [Y/N]
【Code/data deposit needed?】[yes — data/structural/experimental/numerical | theory-only numerics]
【Master script + pinned versions + seeds】[Y/N]
【README exhibit→script map】[Y/N]
【Next step】aejmic-referee-strategy then aejmic-submission
Supplementary resources
../../resources/code/— runnable Stata/Python skeleton for the empirical/structural subset../../resources/README.md— when the code kit applies vs. theory proof-appendix craft
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From repository metadata: license, adoption, age and documentation. Not a code audit — see the Safety scan above for what the skill file itself contains.
