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qec-ai-decoder

qec-ai-decoder 收录了来自 qualit527 的 7 个 skills,并提供仓库级职业覆盖和站内 skill 详情页。

已收集 skills
7
Stars
3
更新
2026-04-25
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0
职业覆盖
6 个职业分类 · 已分类 100%
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这个仓库中的 skills

demo-presenter
技术写作员制片人和导演

Use when preparing an AutoQEC demo walkthrough, advisor presentation, hackathon pitch, recorded narration, or evidence-backed explanation of why the demos matter and why their outputs are correct.

2026-04-25
review-framework
软件开发工程师

Read the artifacts of a completed AutoQEC run and propose improvements to the framework code itself — DSL gaps, weak baselines, miscalibrated safety thresholds, prompt drift, env limitations, orchestration friction. Advisory only; never edits framework files. Use after a run completes when the user asks "what should we change before the next run?" or feels the system is plateauing.

2026-04-25
autoqec-run
数据科学家

Run the AutoQEC research loop on a given env YAML. Orchestrates the autoqec-ideator / autoqec-coder / autoqec-analyst subagents via the Agent tool, invokes the Runner CLI for training + evaluation, and writes history.jsonl + pareto.json. Use when the user asks "run AutoQEC on <env>", "start a research round", or provides an EnvSpec YAML.

2026-04-24
read-zulip
项目管理专家

Read Zulip stream/topic history for project context, summarize decisions, and recover requirements or action items. Use when task context may depend on prior Zulip discussion rather than only repository files.

2026-04-23
diagnose-failure
软件开发工程师

Inspect a stalled or failed run, identify root cause (bad hyperparameter / NaN pattern / OOM / env misconfig), and recommend a fix. Does NOT apply fixes autonomously.

2026-04-22
review-log
高等院校社会学教师

Read an entire runs/<id>/log.md and assess research narrative coherence, identify stuck hypotheses, detect overfitting signs, and write a review markdown. Use after a full run completes or when a loop has been stuck for many rounds.

2026-04-22
verify-decoder
数据科学家

Audit a predecoder checkpoint against holdout seeds. Runs independent_eval (3 fair-baseline guards) and interprets borderline cases with LLM reasoning. Use when a round produces a promising Δ_LER and the user wants to confirm it is not a reward-hacking artifact.

2026-04-22
qec-ai-decoder GitHub Agent Skills | SkillsMP