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Kernel based method for the kk-sample problem

Abstract

In this paper we deal with the problem of testing for the equality of kk probability distributions defined on (X,B)(\mathcal{X},\mathcal{B}), where X\mathcal{X} is a metric space and B\mathcal{B} is the corresponding Borel σ\sigma-field. We introduce a test statistic based on reproducing kernel Hilbert space embeddings and derive its asymptotic distribution under the null hypothesis. Simulations show that the introduced procedure outperforms known methods.

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