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  • title: Inference for the Wasserstein distance between mixing measures in topis models
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            Inference for the Wasserstein distance between mixing measures in topis models
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            Inference for the Wasserstein distance between mixing measures in topis models

            Dez 15, 2023

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            Florentina Bunea

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            The Wasserstein distance between mixing measures has come to occupy a central place in the statistical analysis of mixture models. We give the first axiomatic justification of its usage as a canonical measure of discrepancy between any mixture distributions. Inference for the Wasserstein distance between mixing measures is generally difficult in high dimensions. Specializing to discrete mixtures arising from topic models, we offer the first minimax lower bound on estimating the distance between…

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            NeurIPS 2023

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