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Non-asymptotic detection of two-component mixtures with unknown means

Abstract

This work is concerned with the detection of a mixture distribution from a R\mathbb{R}-valued sample. Given a sample X1,,XnX_1,\dots, X_n and an even density ϕ\phi, our aim is to detect whether the sample distribution is ϕ(.μ)\phi(.-\mu) for some unknown mean μ\mu, or is defined as a two-component mixture based on translations of ϕ\phi. In a first time, a non-asymptotic testing procedure is proposed and we determine conditions under which the power of the test can be controlled. In a second time, the performances of our testing procedure are investigated in 'benchmark' asymptotic settings. A simulation study provides comparisons with classical procedures.

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