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Detection of Sparse Stochastic Signals With Quantized Measurements in Sensor Networks

机译:传感器网络中量化测量的稀疏随机信号检测

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In this paper, we consider the problem of detection of sparse stochastic signals with quantized measurements in sensor networks. The observed sparse signals are assumed to follow the Bernoulli-Gaussian distribution. Due to the limited bandwidth in sensor networks, the local sensors are required to send quantized measurements to the fusion center. First, we propose a detector using the locally most powerful test (LMPT) strategy, called the quantized LMPT detector, for the problem of distributed detection of sparse signals with quantized measurements. Then, the local quantizers are designed to guarantee the near optimal detection performance of the proposed quantized LMPT detector. When the designed quantization thresholds are applied at the local sensors, we show that 1) the proposed 1-bit LMPT detector with 3.3L sensors achieves approximately the same detection performance as the clairvoyant LMPT detector with L sensors; 2) the proposed LMPT detector with 3-bit measurements can achieve detection performance comparable to the clairvoyant LMPT detector. Simulation results demonstrate the performance of the proposed quantized LMPT detector and corroborate our theoretical analysis.
机译:在本文中,我们考虑了传感器网络中量化测量的稀疏随机信号的检测问题。假设观察到的稀疏信号遵循Bernoulli-Gaussian分布。由于传感器网络中的带宽有限,所需的局部传感器需要向融合中心发送量化测量。首先,我们提出了一种使用称为量化LMPT检测器的本地最强大的测试(LMPT)策略的探测器,用于具有量化测量的分布式稀疏信号的分布式检测的问题。然后,本地量化器旨在保证所提出的量化LMPT检测器的近最佳检测性能。当设计的量化阈值在本地传感器处施加时,我们显示1)具有3.3L传感器的所提出的1位LMPT检测器与L传感器的透视LMPT检测器达到大致相同的检测性能; 2)具有3位测量的提议的LMPT检测器可以实现与透视LMPT检测器相当的检测性能。仿真结果证明了所提出的量化LMPT检测器的性能和证实我们的理论分析。

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