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sparse-autoencoder-training

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.

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Source facts

Repository
Kiterlin/intelligent-detection-system
Last source activity
February 9, 2026 at 13:31
Detected SKILL.md language
English
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2
Forks
0

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