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Sparse Autoencoder Training

技能 已验证 活跃

Provides guidance for training and analyzing Sparse Autoencoders (SAEs) using SAELens to decompose neural network activations into interpretable features. Use when discovering interpretable features, analyzing superposition, or studying monosemantic representations in language models.

目的

To enable researchers and practitioners to decompose neural network activations into interpretable features using Sparse Autoencoders, facilitating a deeper understanding of model internals.

功能

  • Train Sparse Autoencoders (SAEs)
  • Analyze pre-trained SAEs and features
  • Perform feature attribution and steering
  • Decompose neural network activations
  • Discover interpretable features

使用场景

  • Discovering interpretable features in model activations
  • Studying superposition and feature representation
  • Performing feature-based analysis for model understanding
  • Analyzing safety-relevant features in language models

非目标

  • Replacing general neural network analysis tools
  • Providing causal intervention experiments (use TransformerLens directly)
  • Production deployment steering (consider direct activation engineering)

安装

npx skills add davila7/claude-code-templates

通过 npx 运行 Vercel skills CLI(skills.sh)— 需要本地安装 Node.js,以及至少一个兼容 skills 的智能体(Claude Code、Cursor、Codex 等)。前提是仓库遵循 agentskills.io 格式。

质量评分

已验证
98 /100
1 day ago 分析

信任信号

最近提交1 day ago
星标27.2k
许可证MIT
状态
查看源代码

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