Agent Skillsbrycewang-stanford/Awesome-Journal-Skills › aaai-artifact-evaluation

aaai-artifact-evaluation

GitHub

指导准备AAAI会议的可复现性工件,包括代码、数据和多媒体附件。强调匿名提交、ZIP完整性验证及README规范,避免身份泄露。针对非技术背景审稿人优化内容,确保能独立复现核心结果,防止因材料缺失或违规被拒。

AAAI-Skills/skills/aaai-artifact-evaluation/SKILL.md brycewang-stanford/Awesome-Journal-Skills

Trigger Scenarios

准备AAAI论文的可复现代码和数据包 生成符合AAAI要求的可复现性检查清单 处理论文投稿中的技术附录和多媒体材料 清理提交材料中的作者身份信息以确保双盲评审

Install

npx skills add brycewang-stanford/Awesome-Journal-Skills --skill aaai-artifact-evaluation -g -y
More Options

Non-standard path

npx skills add https://github.com/brycewang-stanford/Awesome-Journal-Skills/tree/main/AAAI-Skills/skills/aaai-artifact-evaluation -g -y

Use without installing

npx skills use brycewang-stanford/Awesome-Journal-Skills@aaai-artifact-evaluation

指定 Agent (Claude Code)

npx skills add brycewang-stanford/Awesome-Journal-Skills --skill aaai-artifact-evaluation -a claude-code -g -y

安装 repo 全部 skill

npx skills add brycewang-stanford/Awesome-Journal-Skills --all -g -y

预览 repo 内 skill

npx skills add brycewang-stanford/Awesome-Journal-Skills --list

SKILL.md

Frontmatter
{
    "name": "aaai-artifact-evaluation",
    "description": "Use when packaging AAAI code, data, multimedia appendices, technical appendices, reproducibility evidence, and post-acceptance artifact releases without violating double-blind or immutable-supplement rules."
}

AAAI Artifact Evaluation

Use this to prepare artifacts that reviewers can use to assess reproducibility. AAAI supplementary material is part of the submission record; after review starts, do not assume it can be updated.

Artifact package

  • Provide a technical appendix for proofs, algorithms, assumptions, hyperparameters, and extended experiments.
  • Provide code/data ZIPs that reproduce main tables or figures, with a short README, environment, commands, seeds, expected outputs, and runtime.
  • Provide multimedia appendices only when they support the technical claim.
  • Remove author names, usernames, paths, repository history, cloud buckets, API keys, and metadata.
  • Avoid web pointers in the reviewed submission unless current rules explicitly allow them.
  • Include licensing and access notes for datasets, models, and third-party code.

AAAI-specific discipline

  • Treat the supplementary deadline as final.
  • Verify ZIP integrity before submission; missing or corrupted files may not be fixable during rebuttal.
  • Make the reproducibility checklist consistent with the artifact package.
  • Prepare a post-acceptance public release path but keep review artifacts anonymous.

What an AAAI reviewer actually opens

AAAI does not run a separate badged artifact-evaluation committee the way some systems venues do; the same broad-AI reviewer who scores the paper also inspects whatever supplement you attach. That reviewer may be a planning, knowledge-representation, or constraint-satisfaction specialist rather than a deep-learning engineer, so the artifact has to be legible without insider tooling. Optimize for a reviewer who skims, not one who will spend an afternoon configuring a cluster.

Reviewer action Passes Fails
Opens the ZIP sane tree, top README nested archives, 0-byte files
Reads appendix maps to numbered claims contradicts the paper
Tries one command reproduces one headline number needs private data or credentials
Scans for identity nothing reveals authors Git logs or home paths leak

Phase-1 artifact red flags

Because clearly-below-bar papers can be cut before author feedback, a supplement that looks thin or unrunnable is a cheap reason to summary-reject. Avoid these:

  • Checklist promises released code, but the ZIP only holds figures and no scripts.
  • A "see our repository" pointer to a mutable, deanonymizing URL.
  • Multimedia attached for spectacle that carries no technical claim, inflating size with no rigor.
  • Datasets shipped with no license note, leaving reuse legality unverifiable.

Worked vignette

A constraint-solving paper claims a 30% node-expansion reduction. The team ships a large ZIP of raw solver logs but no driver script. The reproduction path is empty, so artifact status is "risky"; the fix is a small run_main.py that regenerates Table 2 from seeds, a trimmed log sample, and a license for the benchmark instances. The raw dump moves to the post-acceptance release.

Output format

[Artifact status] complete / partial / risky / unavailable
[Submitted files] technical appendix / multimedia appendix / code-data ZIP
[Reviewer reproduction path] <commands and expected output>
[Anonymity risks] <metadata, links, paths, logs>
[Missing items] <data, code, seeds, licenses, hardware>

Version History

  • 1839142 Current 2026-07-05 12:11

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Version
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Indexed
2026-07-05 12:11

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