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Distributed compressed sensing estimation of underwater acoustic OFDM channel

机译:水下声OFDM信道的分布式压缩感知估计

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Orthogonal frequency division multiplexing (OFDM) is recently drawing more and more attention for its high bandwidth efficiency over underwater acoustic (UWA) channels. However, the classic OFDM channel estimation algorithms, e.g. Least Square (LS), Minimum Mean Square Error (MMSE) are subject to significant performance degradation caused by doubly selective UWA channels. It has been recognized that the sparsity contained in UWA channels offers the possibility to improve the performance by compressed sensing (CS) estimation methods such as Orthogonal Matching Pursuit (OMP). Moreover, it has also been observed that multipath arrivals associated with adjacent OFDM symbols usually exhibit varying magnitude but similar delay, which means that UWA channels of several continuous symbols can be modeled as sparse sets with common support. In this paper, a Distributed Compressed Sensing (DCS) method is proposed to transform the problem of OFDM channel estimation into reconstruction of joint sparse signals. By exploiting this type of joint sparsity among adjacent OFDM symbols, we establish the DCS OFDM channel model, and then utilize the Simultaneous Orthogonal Matching Pursuit algorithm (SOMP) to optimize the model. Finally the experimental performance under field test is provided to illustrate the superiority of the proposed DCS channel estimation method, compared to the classic algorithm as well as CS counterparts. (C) 2016 Elsevier Ltd. All rights reserved.
机译:正交频分复用(OFDM)最近因其在水声(UWA)信道上的高带宽效率而受到越来越多的关注。但是,经典的OFDM信道估计算法例如最小二乘(LS),最小均方误差(MMSE)会因双重选择性UWA通道而导致性能显着下降。已经认识到,包含在UWA信道中的稀疏性提供了通过诸如正交匹配追踪(OMP)之类的压缩感测(CS)估计方法来改善性能的可能性。而且,还已经观察到,与相邻OFDM符号相关联的多径到达通常表现出变化的幅度但是相似的延迟,这意味着几个连续符号的UWA信道可以被建模为具有共同支持的稀疏集合。本文提出了一种分布式压缩感知(DCS)方法,将OFDM信道估计问题转化为联合稀疏信号的重建。通过利用相邻OFDM符号之间的这种联合稀疏性,我们建立了DCS OFDM信道模型,然后利用同时正交匹配追踪算法(SOMP)对该模型进行优化。最后,提供了现场测试的实验性能,以说明与经典算法和CS同类算法相比,所提出的DCS信道估计方法的优越性。 (C)2016 Elsevier Ltd.保留所有权利。

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