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    Home»AI Tools»Incorrect L0 Leads to Incorrect Features in Sparse Autoencoders
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    Incorrect L0 Leads to Incorrect Features in Sparse Autoencoders

    AwaisBy AwaisDecember 9, 2025No Comments2 Mins Read0 Views
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    [Submitted on 22 Aug 2025 (v1), last revised 5 Dec 2025 (this version, v3)]

    View a PDF of the paper titled Sparse but Wrong: Incorrect L0 Leads to Incorrect Features in Sparse Autoencoders, by David Chanin and 1 other authors

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    Abstract:Sparse Autoencoders (SAEs) extract features from LLM internal activations, meant to correspond to interpretable concepts. A core SAE training hyperparameter is L0: how many SAE features should fire per token on average. Existing work compares SAE algorithms using sparsity-reconstruction tradeoff plots, implying L0 is a free parameter with no single correct value aside from its effect on reconstruction. In this work we study the effect of L0 on SAEs, and show that if L0 is not set correctly, the SAE fails to disentangle the underlying features of the LLM. If L0 is too low, the SAE will mix correlated features to improve reconstruction. If L0 is too high, the SAE finds degenerate solutions that also mix features. Further, we present a proxy metric that can help guide the search for the correct L0 for an SAE on a given training distribution. We show that our method finds the correct L0 in toy models and coincides with peak sparse probing performance in LLM SAEs. We find that most commonly used SAEs have an L0 that is too low. Our work shows that L0 must be set correctly to train SAEs with correct features.

    Submission history

    From: David Chanin [view email]
    [v1]
    Fri, 22 Aug 2025 17:26:33 UTC (4,453 KB)
    [v2]
    Fri, 26 Sep 2025 09:13:02 UTC (8,696 KB)
    [v3]
    Fri, 5 Dec 2025 18:31:43 UTC (10,414 KB)

    Autoencoders features Incorrect Leads Sparse
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