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Multiple hypothesis testing for arbitrarily varying sources

机译:任意假设来源的多重假设检验

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摘要

Highly unstable environments can be modeled by arbitrarily varying (information) sources (AVS). We conduct a study of multiple hypothesis testing (HT) for those sources within two approaches existing in an information-theoretic area of statistical analysis. First we characterize the attainable exponent trade-offs for all kind of error probabilities and indicate the corresponding decision schemes or testing strategies. Then we treat the same problem from an optimality achieving perspectives. Moreover, Chernoff bounds for both the binary and M-ary HT are specified via indication of a Sanov theorem for AVS's. Additional geometric interpretations help to digest the structure of HT in derived solutions.
机译:高度不稳定的环境可以通过任意变化(信息)源(AVS)进行建模。我们使用统计分析的信息理论领域中存在的两种方法,对这些来源的多重假设检验(HT)进行了研究。首先,我们针对所有类型的错误概率刻画可获得的指数权衡,并指出相应的决策方案或测试策略。然后,我们从实现最优性的角度处理同一问题。此外,二进制和M元HT的Chernoff边界是通过指示AVS的Sanov定理来指定的。附加的几何解释有助于在派生解决方案中消化HT的结构。

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