Maximum likelihood detection with intermittent observations

A. Tantawy, X. Koutsoukos, Gautam Biswas
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引用次数: 4

Abstract

The decentralized detection performance, using wireless passive sensor networks, is analyzed according to the minimum probability of error criterion. Passive sensors communicate their measurements to the reader using data network packets, and therefore, the two main phenomena affecting the detection performance are packet loss and packet delay. In this paper, we formulate the decentralized detection problem with passive sensors and show that the optimal decision rule with packet loss is the likelihood ratio test. We present a comparative analysis study between detection with ideal and non-ideal channels, for the problem of DC level detection in White Gaussian Noise. We validate the analytical results using Monte Carlo Simulation study. Finally, we present a simple scheme for adaptive detector design, to restore the original detection performance, with the cost of increasing the delay for detection.
间歇观察的最大似然检测
根据最小误差概率准则对无线无源传感器网络的分散检测性能进行了分析。无源传感器通过数据网络数据包将其测量结果传递给读取器,因此,影响检测性能的两个主要现象是丢包和包延迟。本文提出了无源传感器的分散检测问题,并证明了丢包的最优决策规则是似然比检验。针对高斯白噪声下直流电平的检测问题,对理想通道和非理想通道的检测进行了对比分析研究。我们用蒙特卡罗模拟研究验证了分析结果。最后,我们提出了一种简单的自适应检测器设计方案,以增加检测延迟为代价,恢复原有的检测性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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