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probing

Probing methods interpret model signals by training an auxiliary predictor (often linear) to decode a labeled property y from an internal vector $z$ (e.g., the residual stream state $x_l$ at layer $l$). Operationally, probing treats the model as a frozen feature extractor and assesses decodability: whether $y$ is recoverable from $z$ by a restricted hypothesis class (commonly linear), which supports localization by comparison across candidate objects (layers/heads/FFNs) via decoding performance or information-theoretic surrogates, typically followed by Causal Attribution to test functional necessity.

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zjunlp/Mechanist
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July 11, 2026 at 04:09
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