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NeuroAIHub/BrainPilot

SkillsMP 已收集 NeuroAIHub/BrainPilot 中的 69 个 Skill。打开任一 Skill 可查看来源和详情。

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已收集 skills
69
GitHub 星标
557
GitHub Forks
42

这个仓库中的 skills

已展示 40 / 69 个已收集 Skill。

职业分类
软件质量保证分析师与测试员
描述

Audit scientific implementation, exported-model equivalence, dependency completeness, manifests, packaging, and isolated inference. Use when claims depend on code, trained artifacts, evaluators, or deployable entry points.

原文语言:英语

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职业分类
数据科学家
描述

Audit scientific data semantics, sample and label alignment, leakage, group splits, preprocessing boundaries, and train-to-inference transforms. Use for any result based on datasets, feature matrices, tensors, repeated observations, or learned preprocessing.

原文语言:英语

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职业分类
软件质量保证分析师与测试员
描述

Audit numeric, artifact, log, citation, and cross-report claims against inspectable evidence. Use for reports, syntheses, benchmark claims, external citations, or conflicting Expert outputs.

原文语言:英语

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职业分类
其他计算机职业
描述

Coordinate iterative evidence and reliability reviews between BrainPilot's Principal Investigator and Auditor. Use when PI needs to audit its own draft, an Expert result, or a multi-agent synthesis; when Auditor receives such a review task; or when a previous…

原文语言:英语

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职业分类
数据科学家
描述

Audit whether method discovery, comparison, representative real-data validation, collapse diagnostics, pruning, and selection evidence support claims of suitability or superiority. Use for research-method selection, empirical evaluation, benchmarking,…

原文语言:英语

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职业分类
软件开发工程师
描述

Create or update the canonical Markdown inventory of task-relevant research data. Engineer must invoke this skill before creating or updating any data inventory, data contract, or dataset-coverage summary that downstream agents will use.

原文语言:英语

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职业分类
市场调研分析师与营销专员
描述

Research a bounded factual, documentation, API, or literature question from authoritative sources and save a self-contained Markdown report with claim-level citations. Use for reading-heavy evidence gathering, not experiment execution or data analysis.

原文语言:英语

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职业分类
未分类
描述

You MUST use this before any creative work - creating features, building components, adding functionality, or modifying behavior. Explores user intent, requirements and design before implementation.

原文语言:英语

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职业分类
未分类
描述

Use when implementation is complete, all tests pass, and you need to decide how to integrate the work

原文语言:英语

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职业分类
未分类
描述

Use when completing tasks, implementing major features, or before merging to verify work meets requirements

原文语言:英语

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职业分类
未分类
描述

Use when executing implementation plans with independent tasks in the current session

原文语言:英语

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职业分类
未分类
描述

Use when starting any conversation - establishes how to find and use skills, requiring skill invocation before ANY response including clarifying questions

原文语言:英语

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职业分类
未分类
描述

Use when you have a spec or requirements for a multi-step task, before touching code

原文语言:英语

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职业分类
未分类
描述

Use when creating new skills, editing existing skills, or verifying skills work before deployment

原文语言:英语

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职业分类
数据科学家
描述

Curate BrainPilot Trace Events into human-readable research Episodes, appropriately granular nodes, and direct depends_on relationships. Use when a report contains multiple settings, results, analyses, visualizations, findings, or conclusions; when Episode…

原文语言:英语

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职业分类
软件开发工程师
描述

Domain knowledge for building extracellular electrophysiology pipelines with SpikeInterface: loading data with extractors, preprocessing, running spike sorters, post-processing via SortingAnalyzer, quality metrics, curation, comparison, visualization, and…

原文语言:英语

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职业分类
其他生物科学家
描述

Preprocess task-based or resting-state fMRI data with fMRIPrep — a robust, BIDS-App preprocessing pipeline built on FSL, ANTs, FreeSurfer, AFNI, and Nilearn. Use this skill whenever the user asks to preprocess fMRI/BOLD data, run fMRIPrep on a BIDS dataset,…

原文语言:英语

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职业分类
数据科学家
描述

Domain-validated guidance for network neuroscience analysis using netneurotools: datasets, brain network metrics, connectivity consensus, modularity, spatial statistics, null models, and cortical surface visualization. Use this skill whenever the user works…

原文语言:英语

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职业分类
数据科学家
描述

Analyzes genetic variant effects on gene expression (RNA-seq), chromatin accessibility (DNASE), histone marks (ChIP), and transcription factors using the AlphaGenome API. Use when the user asks about non-coding variant effects, pathogenicity, clinical…

原文语言:英语

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职业分类
数据科学家
描述

Query Open Targets Platform for target-disease associations, drug target discovery, tractability/safety data, genetics/omics evidence, known drugs, for therapeutic target identification.

原文语言:英语

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职业分类
软件开发工程师
描述

Checks whether the uv Python package manager is installed and installs it if missing. Ensures uv is on PATH. Use when another skill requires uv as a prerequisite.

原文语言:英语

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职业分类
软件开发工程师
描述

Toolbox for markerless animal pose estimation with DeepLabCut. Covers single/multi-animal tracking, SuperAnimal pretrained models, 2D/3D pose estimation, keypoint labeling GUI, model training/evaluation, video analysis, and behavioral quantification. Use when…

原文语言:英语

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职业分类
其他计算机职业
描述

One-command skill contribution — generate a SKILL.md from your domain expertise and submit to GitHub Issues for maintainer review

原文语言:英语

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职业分类
其他计算机职业
描述

Step-by-step guidance for contributing a new skill to the NeuroAIHub/awesome_cognitive_and_neuroscience_skills repository via GitHub Pull Request, including SKILL.md format requirements, quality rules, and PR checklist

原文语言:英语

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职业分类
其他计算机职业
描述

Interactive skill that guides extraction of research paradigms and methodological techniques from cognitive science papers into structured, reusable skills

原文语言:英语

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职业分类
其他计算机职业
描述

Convert a GitHub repository or local codebase into a well-structured Claude Code skill with progressive disclosure. Use this skill whenever the user provides a GitHub URL or local repo path and asks to turn it into a skill, create a skill from a repo, or…

原文语言:英语

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职业分类
其他计算机职业
描述

One-command community case sharing — capture research context from your session and submit to GitHub Discussions

原文语言:英语

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职业分类
其他计算机职业
描述

Generate and share anonymized skill usage statistics to help the community understand which skills are most valuable

原文语言:英语

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职业分类
其他计算机职业
描述

Interactive skill verification — assess accuracy of parameters, citations, and methodology through structured expert review

原文语言:英语

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职业分类
其他计算机职业
描述

Domain-specific statistical power analysis guidance for cognitive and neuroscience research, encoding effect size priors and sample size recommendations by modality

原文语言:英语

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职业分类
其他高等院校教师
描述

Domain-specific statistical modeling guidance for cognitive science and neuroscience, encoding when and how to apply mixed models, correction methods, Bayesian approaches, and effect size reporting

原文语言:英语

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职业分类
其他高等院校教师
描述

Domain-specific visualization best practices for cognitive and neuroscience data, encoding plot type selection, color standards, and publication formatting

原文语言:英语

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职业分类
其他高等院校教师
描述

Core scientific methodology principles: research planning, method justification, assumption checking, and human-in-the-loop decision making for cognitive science and neuroscience

原文语言:英语

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职业分类
其他高等院校教师
描述

Domain-validated guidance for designing Alternative Uses Task (AUT) experiments measuring divergent thinking, with parameters for AI-augmented and traditional conditions

原文语言:英语

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职业分类
其他高等院校教师
描述

Expert guidance for selecting and parameterizing cognitive psychology experimental paradigms based on research questions

原文语言:英语

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职业分类
其他高等院校教师
描述

Domain-validated guidance for SEM-based mediation analysis of creative self-efficacy and moderation by baseline creativity in AI-augmented creativity research

原文语言:英语

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职业分类
其他高等院校教师
描述

Domain-validated multi-dimensional scoring system for divergent thinking tasks, including fluency, flexibility, originality, and automated semantic distance methods

原文语言:英语

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职业分类
其他高等院校教师
描述

Expert guidance on selecting, fitting, and evaluating drift-diffusion models for two-choice response time data in cognitive science

原文语言:英语

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职业分类
其他高等院校教师
描述

Advises on when to use DDM vs. LBA vs. race models for choice-RT data based on experimental design and research goals

原文语言:英语

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职业分类
其他高等院校教师
描述

Domain-validated decision logic, formulas, and interpretation guidelines for applying Signal Detection Theory to cognitive science data

原文语言:英语

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已展示 40 / 69 个已收集 Skill。