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FMMI: Flow Matching Mutual Information Estimation

Main:7 Pages
4 Figures
Bibliography:4 Pages
3 Tables
Appendix:5 Pages
Abstract

We introduce a novel Mutual Information (MI) estimator that fundamentally reframes the discriminative approach. Instead of training a classifier to discriminate between joint and marginal distributions, we learn a normalizing flow that transforms one into the other. This technique produces a computationally efficient and precise MI estimate that scales well to high dimensions and across a wide range of ground-truth MI values.

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