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Estimating Mixture Entropy with Pairwise Distances
2017
Entropy
Mixture distributions arise in many parametric and non-parametric settings -- for example, in Gaussian mixture models and in non-parametric estimation. It is often necessary to compute the entropy of a mixture, but, in most cases, this quantity has no closed-form expression, making some form of approximation necessary. We propose a family of estimators based on a pairwise distance function between mixture components, and show that this estimator class has many attractive properties. For many
doi:10.3390/e19070361
fatcat:gtskfyj47vbp3gikbwu2gmpqwy