On sequential hypotheses testing via convex optimization

被引:0
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作者
A. B. Juditsky
A. S. Nemirovski
机构
[1] Universite Grenoble Alpes,LJK
[2] Georgia Institute of Technology,undefined
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关键词
Remote Control; Sequential Test; Convex Optimization; Spectral Norm; Observation Sample;
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学科分类号
摘要
We propose a new approach to sequential testing which is an adaptive (on-line) extension of the (off-line) framework developed in [1]. It relies upon testing of pairs of hypotheses in the case where each hypothesis states that the vector of parameters underlying the distribution of observations belongs to a convex set. The nearly optimal under appropriate conditions test is yielded by a solution to an efficiently solvable convex optimization problem. The proposed methodology can be seen as a computationally friendly reformulation of the classical sequential testing.
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页码:809 / 825
页数:16
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