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icdm-artifact-evaluation

Use when packaging code, data, and logs for an ICDM (IEEE International Conference on Data Mining) paper - building the anonymized, history-scrubbed…

不碰外部(只输出文字)无严重或高危命中brycewang-stanford/Awesome-Journal-Skills

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技能内容

ICDM Artifact Evaluation

Package the artifact so a reviewer can actually use it, under ICDM's anonymity rules. ICDM does

not run a separate stamped artifact-badging track the way some venues do (verify per edition);

instead, the artifact's job is to be the cited, anonymized evidence that supports the paper.

Because the Research Track is triple-blind and traditionally offers no rebuttal, the repository

must be complete and anonymous at submission time — there is no later chance to reveal it.

The repository the PDF must cite

  • Reference the code/data repository inside the submitted PDF. A repository not cited at

submission is invisible to reviewers for the entire cycle (no rebuttal to add it later).

  • For the Research Track, the link must resolve to an anonymized location, not a named

account, and the contents must reveal no identity.

  • For the 2026 Applied Track (single-blind), anonymization of the artifact is not required

the same way — but confirm the current call, and still avoid shipping secrets or private data.

Anonymize for the triple-blind regime (Research Track)

| Leak surface | Fix |

|---|---|

| Git history (author names, emails) | Export a fresh repo with no history |

| File paths (/home/alice/..., cluster hostnames) | Rewrite to relative, generic paths |

| Internal dataset/system names | Rename to public source + version |

| README acknowledgements, funding | Remove until camera-ready |

| Hosting account that identifies you | Use an anonymized hosting option |

A triple-blind leak in the artifact is as fatal as one in the PDF, and it is the surface authors

most often forget.

Make it reviewer-usable

  • Ship a single entry point and pinned dependencies so a reviewer reproduces a headline table in

one command.

  • Include the seeds and configs behind the reported variance (see icdm-reproducibility).
  • Provide a small runnable slice for methods whose full run is expensive, plus instructions to

scale up.

# smoke-check an anonymized ICDM reproduction package before citing it in the PDF
python3 ../../../shared-resources/ml-conference-methods/code/check_repro_package.py \
  /path/to/anonymized-repo
# then manually confirm: no .git, no author paths, no internal dataset names,
# one entry script, pinned deps, seed list present, README free of identity.

Handle un-releasable data honestly

  • If data cannot be released, ship the code plus a synthetic proxy that runs end to end, and

document the protocol so the private-data numbers are attested rather than opaque.

  • State the scope of what the artifact does and does not reproduce; an honest boundary beats an

artifact that silently omits the main result.

Vignette: the commit that would have unmasked the authors

A team built a clean anonymized zip of their code, but linked their normal lab repository whose

first commit read "initial import — Alice, BigState University." Under triple-blind that is an

identity leak that could invalidate the submission. The fix: export a fresh repository with no

history, rewrite absolute paths to relative, rename the internal dataset to its public source and

version, strip the acknowledgements from the README, host it anonymously, and cite that link in

the PDF. Same artifact, now safe for a triple-blind reviewer.

Output format

[Cited in PDF] repository referenced in the submitted paper: yes / no
[Regime] Research(triple-blind) -> anonymized required | Applied(single-blind)
[Anonymization] no history / no author paths / no internal names: pass / leaks
[Usability] one-command headline table + pinned deps + seeds: yes / no
[Un-releasable data] synthetic proxy + attested protocol: yes / N-A
[Top fix] <single most important artifact fix before submission>

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