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ml-research

Empirical machine-learning claims that survive scrutiny: a baseline strong enough to be worth beating, splits that respect grouping and time, leakage hunted before any number is trusted, ablations that isolate one change, results reported as a spread over seeds rather than a single number, and benchmark deltas tested instead of eyeballed. Use when the task is measuring whether a model or a change actually works.

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来源信息

仓库
AhmiDarrow/RemedyAI
最近来源活动
2026年8月23日 00:37
检测到的 SKILL.md 语言
英语
星标
3
分支
1

安装方式

默认使用会先检查来源的 Prompt;你也可以切换为直接命令,或下载本地副本。

检查来源文件

决定是否安装前,请先阅读 SKILL.md,以及 SkillsMP 当前展示的配套文件。