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An algorithm for determining the decision thresholds in a distributed detection problem

机译:一种确定分布式检测问题中判定阈值的算法

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A decentralized binary hypothesis-testing problem is considered in which a number of subordinate decision-makers (DMs) transmit their opinions based on their data to a primary decisionmaker who, in turn, combines the opinions with his own data to make the final team decision. The necessary conditions for the optimal decision rules of the DMs are derived. A nonlinear Gauss-Seidel iterative algorithm is developed for solving the decision thresholds of a person-by-person optimal strategy, and its monotonic convergence is established. The algorithm is illustrated with several examples, and implications for distributed organizational design are pointed out.
机译:考虑了分散的二元假设测试问题,其中许多从属决策者(DMS)将其意见传输到主要决策者的数据,又将其与他自己的数据结合起来,以使最终团队决定结合起来。派生DMS最佳决策规则的必要条件。开发了一个非线性高斯 - Seidel迭代算法,用于解决一个人的最佳策略的决策阈值,并建立其单调会聚。该算法用若干示例说明,指出了分布式组织设计的影响。

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