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GitHub 저장소

topconf-skills

topconf-skills에는 wdzhwsh4067에서 수집한 skills 8개가 있으며, 저장소 수준 직업 범위와 사이트 내 skill 상세 페이지를 제공합니다.

수집된 skills
8
Stars
1
업데이트
2026-05-15
Forks
0
직업 범위
직업 카테고리 4개 · 100% 분류됨
저장소 탐색

이 저장소의 skills

artifact-eval
고등교육 컴퓨터공학 교원고등교육 공학 교원

Prepare artifact-evaluation submissions for ML and systems conferences, including artifact scope, installability, reproducibility claims, hardware needs, badges, expected runtime, and reviewer instructions.

2026-05-15
experiment-audit
데이터 과학자

Audit experiments for top ML, CV, systems, and architecture submissions, checking baselines, ablations, metrics, statistical strength, datasets, stress tests, failure cases, and claim coverage.

2026-05-15
paper-strategy
고등교육 컴퓨터공학 교원

Build a top-conference paper strategy from raw results, including central claim, contribution framing, section outline, reviewer value proposition, and claim-evidence alignment.

2026-05-15
rebuttal-planner
고등교육 컴퓨터공학 교원

Plan a top-conference rebuttal or author response by clustering reviewer comments, identifying misunderstandings, concessions, evidence, response priority, and camera-ready promises.

2026-05-15
reviewer-simulator
고등교육 컴퓨터공학 교원

Simulate critical top-conference reviewers for a draft, producing likely strengths, weaknesses, score drivers, clarity objections, missing experiments, novelty concerns, and rebuttal-preparation notes.

2026-05-15
submission-checklist
법원·시청·면허 사무원

Build and audit conference submission checklists for paper PDF, supplement, OpenReview/CMT metadata, anonymity, ethics, broader impact, reproducibility, author forms, and deadline readiness.

2026-05-15
topconf
고등교육 공학 교원

End-to-end top-conference submission assistant for NeurIPS, ICLR, ICML, MLSys, ASPLOS, and CVPR-style papers. Use for submission planning, contribution framing, experiment gap analysis, paper outline, related work positioning, checklist compliance, rebuttal strategy, artifact evaluation, and camera-ready readiness.

2026-05-15
venue-fit
고등교육 컴퓨터공학 교원

Evaluate whether a research paper fits NeurIPS, ICLR, ICML, MLSys, ASPLOS, CVPR, or adjacent venues based on contribution type, evidence, audience, novelty, experiment norms, and reviewer expectations.

2026-05-15