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Sparse channel estimation for OFDM based two-way relay networks

机译:基于OFDM的双向中继网络的稀疏信道估计

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In this paper, we present a sparse channel estimation method for orthogonal frequency division multiplexing (OFDM) based two-way relay networks (TWRN). Conventional channel estimation methods, such as least squares (LS), have been proposed to obtain channel state information (CSI) at the cost of the training resource, which reduce spectrum efficiency. However, physical measurements have verified that the wireless channels tend to exhibit sparse structures in high-dimensional spaces, e.g., delay spread, Doppler spread and space spread. With the development of compressive sensing (CS), a novel compressive channel estimation method which is called adaptive compressive matching pursuit (ACMP) algorithm is proposed by using the sparse constraint between the terminal nodes and the relay node in the TWRN. Simulation results confirm that ACMP channel estimation method provides significant improvement in mean square error (MSE) performance compared to the conventional channel estimation methods.
机译:在本文中,我们提出了一种基于正交频分复用(OFDM)的双向中继网络(TWRN)的稀疏信道估计方法。已经提出了诸如最小二乘(LS)的常规信道估计方法来以训练资源为代价获得信道状态信息(CSI),这降低了频谱效率。然而,物理测量已经证实无线信道倾向于在高维空间中表现出稀疏结构,例如,延迟扩展,多普勒扩展和空间扩展。随着压缩感知技术的发展,利用TWRN中终端节点和中继节点之间的稀疏约束,提出了一种新的压缩信道估计方法,称为自适应压缩匹配追踪(ACMP)算法。仿真结果证实,与传统的信道估计方法相比,ACMP信道估计方法在均方误差(MSE)性能方面有显着改善。

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