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“Negative Results for SAEs On Downstream Tasks and Deprioritising SAE Research (GDM Mech Interp Team Progress Update #2)” by Neel Nanda, lewis smith, Senthooran Rajamanoharan, Arthur Conmy, Callum McDougall, Tom Lieberum, János Kramár, Rohin Shah

LessWrong (Curated & Popular)

CHAPTER

Analyzing Interpretable Latents: Loss Functions and Performance of Sparse Autoencoders

This chapter analyzes the performance of Sparse Autoencoders (SAEs) by examining their interpretability scores linked to varying sparsity values. It emphasizes the impact of different loss functions and provides insights for practitioners on managing high-frequency latent representations.

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