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Decentralized estimation over orthogonal multiple-access fading channels in wireless sensor networks--optimal and suboptimal estimators

机译:无线传感器网络中正交多址衰落信道上的分散估计-最优和次优估计器

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We study optimal and suboptimal decentralized estimators in wireless sensor networks over orthogonal multiple-access fading channels in this paper. Considering multiple-bit quantization for digital transmission, we develop maximum likelihood estimators (MLEs) with both known and unknown channel state information (CSI). When training symbols are available, we derive a MLE that is a special case of the MLE with unknown CSI. It implicitly uses the training symbols to estimate CSI and exploits channel estimation in an optimal way and performs the best in realistic scenarios where CSI needs to be estimated and transmission energy is constrained. To reduce the computational complexity of the MLE with unknown CSI, we propose a suboptimal estimator. These optimal and suboptimal estimators exploit both signal- and data-level redundant information to combat the observation noise and the communication errors. Simulation results show that the proposed estimators are superior to the existing approaches, and the suboptimal estimator performs closely to the optimal MLE.
机译:本文研究了正交多址衰落信道下无线传感器网络中的最优和次优分散估计。考虑到数字传输的多位量化,我们开发了具有已知和未知信道状态信息(CSI)的最大似然估计器(MLE)。当训练符号可用时,我们得出MLE,这是具有未知CSI的MLE的特例。它隐式地使用训练符号来估计CSI,并以最佳方式利用信道估计,并在需要估计CSI和限制传输能量的现实情况下表现最佳。为了降低具有未知CSI的MLE的计算复杂度,我们提出了次优的估计器。这些最佳和次佳的估算器利用信号和数据级别的冗余信息来抵抗观测噪声和通信错误。仿真结果表明,所提出的估计器优于现有方法,次优估计器的性能与最优MLE接近。

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