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neurips-artifact-evaluation

Use when packaging NeurIPS code, data, models, demos, benchmarks, or other research artifacts for anonymous review, reproducibility, public release,…

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技能内容

NeurIPS Artifact Evaluation

NeurIPS main track does not reduce artifact quality to a generic badge workflow. It expects code,

data, and execution details when they are needed to support the scientific claim, and its checklist

and code/data guidance make artifact quality visible to reviewers.

Artifact decision

  • If the contribution is a method, include training and evaluation code or justify why it cannot be

shared.

  • If the contribution is a dataset or benchmark, provide metadata, license, preservation plan,

representative-use discussion, and access restrictions.

  • If the contribution depends on a model, include weights, prompts, decoding settings, compute

resources, or a precise explanation of unavailable components.

  • If the contribution is theoretical, artifact focus may shift to proof checks, symbolic scripts,

experiment notebooks, or counterexample generation.

Anonymous review package

  • Keep the ZIP within the current official size limit and anonymize filenames, repository URLs,

usernames, commit history, model cards, dataset cards, comments, notebooks, and logs.

  • Include a short README with exact commands, environment, expected runtime, hardware assumptions,

and which experiments are reproducible from the package.

  • Do not require reviewers to run unsafe code outside a secure environment.
  • Avoid external links unless the current policy allows them and anonymous browsing is guaranteed.

Public release package

  • De-anonymize accepted artifacts.
  • Add licenses for code, data, model weights, and generated outputs.
  • Archive code in a durable service when appropriate; NeurIPS MLRC guidance recommends Software

Heritage for reproducibility papers.

  • Keep a mapping from paper claims to commands or notebooks so users can reproduce headline results.

Output format

[Artifact role] method / dataset / benchmark / model / demo / proof / none
[Review package] sufficient / insufficient
[Anonymity risks] <paths, metadata, URLs, usernames>
[Reproducibility gaps] <commands, environment, data, hardware, licenses>
[Public-release plan] <archive, DOI, license, docs>

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