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Impact of wireless channel uncertainty upon M-ary distributed detection systems

机译:无线信道不确定性对Mary分布式检测系统的影响

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We consider a wireless sensor network (WSN), consisting of several sensors and a fusion center (FC), which is tasked with solving an M-ary hypothesis testing problem. Sensors make M-ary decisions and transmit their digitally modulated decisions over orthogonal channels, which are subject to Rayleigh fading and noise, to the FC. Adopting Bayesian optimality criterion, we consider training and non-training based distributed detection systems and investigate the effect of imperfect channel state information (CSI) on the optimal maximum a posteriori probability (MAP) fusion rules and detection performance, when the sum of training and data symbol transmit powers is fixed. Our results show that, when sensors employ M-FSK modulation, the error probability is minimized when training symbol transmit power is zero (regardless of the reception mode at the FC). However, for coherent reception and M-PSK modulation the error probability is minimized when half of transmit power is allocated for training symbol.
机译:我们考虑一个无线传感器网络(WSN),该网络由多个传感器和一个融合中心(FC)组成,其任务是解决Mary假设检验问题。传感器做出M进制决策,并通过正交信道将其数字调制决策传输到FC,这些信道会受到瑞利衰落和噪声的影响。采用贝叶斯最优准则,我们考虑基于训练和非训练的分布式检测系统,并研究不完善的信道状态信息(CSI)对最优最大后验概率(MAP)融合规则和检测性能的影响,当训练和数据符号的发射功率是固定的。我们的结果表明,当传感器采用M-FSK调制时,当训练符号的发射功率为零时(无论FC处的接收模式如何),错误概率都会降到最低。然而,对于相干接收和M-PSK调制,当将一半的发射功率分配给训练符号时,错误概率被最小化。

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