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Machine learning phase transitions: Connections to the Fisher information

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arxiv 2311.10710 v1 pith:L2Z2H3ED submitted 2023-11-17 cond-mat.dis-nn cs.LGquant-phstat.ML

classification cond-mat.dis-nncs.LGquant-phstat.ML
keywords phasetransitionsinformationmachine-learningdatafisherindicatorsquantum
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Despite the widespread use and success of machine-learning techniques for detecting phase transitions from data, their working principle and fundamental limits remain elusive. Here, we explain the inner workings and identify potential failure modes of these techniques by rooting popular machine-learning indicators of phase transitions in information-theoretic concepts. Using tools from information geometry, we prove that several machine-learning indicators of phase transitions approximate the square root of the system's (quantum) Fisher information from below -- a quantity that is known to indicate phase transitions but is often difficult to compute from data. We numerically demonstrate the quality of these bounds for phase transitions in classical and quantum systems.

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  1. Decomposing Behavioral Phase Transitions in LLMs: Order Parameters for Emergent Misalignment

    cs.LG 2025-08 conditional novelty 6.0 of 10

    A framework using statistical dissimilarity and LLM judges quantifies what fraction of the behavioral transition during fine-tuning is captured by each order parameter.

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