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Entropy inference and the James-Stein estimator, with application to nonlinear gene association networks

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arxiv 0811.3579 v3 pith:JT7AAUZ7 submitted 2008-11-21 stat.ML

classification stat.ML
keywords genedataentropyestimatorassociationestimationexpressionnetworks
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We present a procedure for effective estimation of entropy and mutual information from small-sample data, and apply it to the problem of inferring high-dimensional gene association networks. Specifically, we develop a James-Stein-type shrinkage estimator, resulting in a procedure that is highly efficient statistically as well as computationally. Despite its simplicity, we show that it outperforms eight other entropy estimation procedures across a diverse range of sampling scenarios and data-generating models, even in cases of severe undersampling. We illustrate the approach by analyzing E. coli gene expression data and computing an entropy-based gene-association network from gene expression data. A computer program is available that implements the proposed shrinkage estimator.

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Cited by 1 Pith paper

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. To BEE or not to BEE: Estimating more than Entropy with Biased Entropy Estimators

    cs.IT 2025-01 reject novelty 5.0 of 10

    A benchmark of 18 biased entropy estimators on H, MI, and CMI concludes that Chao-Shen and Chao-Wang-Jost are fastest to converge and most accurate, though the CMI computation appears mis-specified.

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