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Controlled Sensing for Sequential Multihypothesis Testing with Controlled Markovian Observations and Non-Uniform Control Cost

机译:受控马尔可夫观测值和非均匀控制成本的顺序多假设检验的控制感测

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摘要

A new model for controlled sensing for multihypothesis testing is proposed and studied in the sequential setting. This new model, termed a controlled Markovian observation model, exhibits a more complicated memory structure in the controlled observations than existing models. In addition, instead of penalizing just the delay until the final decision time as in standard sequential hypothesis testing problems, a much more general cost structure is considered that entails accumulating the total control cost with respect to an arbitrary control cost function. An asymptotically optimal test is proposed for this new model and is shown to satisfy an optimality condition formulated in terms of decision-making risk. It is shown that the optimal causal control policy for the controlled sensing problem is self-tuning, in the sense of maximizing an inherent "inferential" reward simultaneously under every hypothesis, with the maximal value being the best possible corresponding to the case where the true hypothesis is known at the outset. Another test is also proposed to meet distinctly predefined constraints on the various decision risks nonasymptotically, while retaining asymptotic optimality.
机译:提出了一种用于多假设测试的受控感测新模型,并在顺序设置中进行了研究。这种称为受控马尔可夫观测模型的新模型在受控观测中比现有模型表现出更为复杂的存储结构。另外,与其像标准顺序假设检验问题那样,不仅仅惩罚直到最终决策时间的延迟,还考虑了一种更为通用的成本结构,该结构需要相对于任意控制成本函数累积总控制成本。针对该新模型提出了一种渐近最优检验,证明该检验满足决策风险方面的最优条件。从对每个假设同时最大化固有的“推论”报酬的意义上看,控制感测问题的最佳因果控制策略是自调整的,最大值对应于真实情况下的最佳值。假设一开始就是已知的。还提出了另一种测试,以在保持渐近最优性的同时,非渐进地满足各种决策风险的明确预定义约束。

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