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protocol-forensics
Analyze evaluation protocol differences across papers for same benchmark — 5 benchmarks, 60 papers, 30 web searches
用 Codex 或 Claude 帮你安装 复制这段 Prompt,粘贴到 Codex、Claude 或其他助手里,让它检查 Skill 页面并帮你完成安装。
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Analyze evaluation protocol differences across papers for same benchmark — 5 benchmarks, 60 papers, 30 web searches
用 Codex 或 Claude 帮你安装 复制这段 Prompt,粘贴到 Codex、Claude 或其他助手里,让它检查 Skill 页面并帮你完成安装。
基于 SOC 职业分类
| name | protocol-forensics |
| description | Analyze evaluation protocol differences across papers for same benchmark — 5 benchmarks, 60 papers, 30 web searches |
| used-by | benchmark-archaeology |
Forensic analysis of how the same benchmark is implemented differently across papers. Reveals hidden variance in evaluation protocols that makes cross-paper score comparisons unreliable.
Expose the "reproducibility gap" in benchmark evaluation by documenting how papers differ in their implementation of supposedly standardized evaluation protocols. Quantify the score variance attributable to protocol differences rather than model improvements.
| Resource | Floor | Target |
|---|---|---|
| Benchmarks forensically analyzed | 3 | 5 |
| Papers read | 45 | 60 |
| Web searches | 20 | 30 |
<HARD-GATE>
| Metric | Current | Target | Status |
|--------|---------|--------|--------|
| Benchmarks analyzed | 0 | 5 | PENDING |
| Papers fetched | 0 | 60 | PENDING |
| Papers read | 0 | 45 | PENDING |
| Web searches | 0 | 30 | PENDING |
| Protocol extractions complete | 0 | 60 | PENDING |
| Difference matrices built | 0 | 5 | PENDING |
| Variance attributions done | 0 | 5 | PENDING |
| Impact assessments complete | 0 | 5 | PENDING |
</HARD-GATE>
Cannot exit until 80% of all targets met.
protocol_forensics:
benchmark_name: string
papers_analyzed: int
protocol_elements:
- element: string # e.g., "few-shot examples", "decoding temperature"
variation_level: none|low|medium|high|extreme
values_observed: list[string]
score_impact_estimate: string
variance_attribution:
genuine_improvement: float # proportion of score gains
protocol_optimization: float
implementation_differences: float
unexplained: float
most_impactful_differences:
- element: string
score_range: string # e.g., "+3.2 to +7.8 points"
evidence: string
reproducibility_grade: A|B|C|D|F
recommendations:
- recommendation: string
priority: high|medium|low
SOTA Performance Baseline Campaign — 5 strategies for systematically collecting, standardizing, and analyzing performance data across methods. Produces standardized comparison tables, progress curves, and headroom analysis.
Assess systematic biases in the evidence body — publication bias, reporting bias, and selective outcome reporting. Budget: 40 studies, 40 effect sizes, 40 web searches.
Track evidence accumulation over time — cumulative meta-analysis protocol design. Budget: 40 studies, 40 effect sizes, 30 web searches.
Design structured data extraction form for systematic meta-analysis data collection
Systematically extract effect sizes and conditions from papers for meta-analytic synthesis
Determine effect size types and calculation methods for meta-analytic synthesis