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DuyTa506
GitHub 创作者资料

DuyTa506

按仓库查看 2 个 GitHub 仓库中的 16 个已收集 skills。

已收集 skills
16
仓库
2
更新
2026-03-23
仓库浏览

仓库与代表性 skills

dataset-search
软件开发工程师

Search HuggingFace Hub for datasets by keyword. Use when the user wants to find training data, benchmarks, or evaluation datasets for ML/NLP/CV research.

2026-03-23
paper-fetch
软件开发工程师

Fetch the FULL TEXT of an arXiv paper (all sections — introduction, method, results, conclusion). Use when you need to read beyond the abstract into the paper's actual content. Only works for arXiv papers. For metadata/abstract only, use paper-read. For local PDFs, use paper-read-pdf.

2026-03-23
memory
软件开发工程师

Two-layer memory system with grep-based recall for research sessions.

2026-03-23
claim-tracker
其他生物科学家

Track specific scientific claims across the literature over time — who made it, who replicated it, who challenged it, whether it still stands. Use when verifying a key assumption before building on it, or when checking whether a published result has been updated or superseded.

2026-03-23
contradiction-detection
社会学家

Scan papers for conflicting empirical claims, methodological disagreements, or opposing conclusions on the same topic. Use when writing discussion sections, evaluating conflicting results, or checking if a claim is contested before building on it.

2026-03-23
cross-paper-synthesis
社会学家

Synthesize findings across multiple papers into a coherent narrative, structured comparison table, or temporal evolution. Use after collecting papers via survey or paper-search. Goes beyond summarizing individual papers to produce insights that only emerge when reading across the corpus as a whole.

2026-03-23
deep-research
其他生物科学家

Full end-to-end deep research pipeline on a topic. Use when the user wants thorough, rigorous research — not just a survey. Orchestrates all research skills in sequence: collect → synthesize → critique claims → grade evidence → find gaps → assess reproducibility → optionally reproduce → write report.

2026-03-23
evidence-grading
其他生物科学家

Evaluate the strength of evidence behind scientific claims based on study design, replication status, venue quality, sample size, and recency. Use when deciding how much weight to put on a finding, or when calibrating how confidently to write about a result.

2026-03-23
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