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Compressed sensing enabled narrowband interference mitigation for IR-UWB systems

机译:压缩感应使IR-UWB系统的窄带干扰减轻

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Compressed sensing (CS) is an emerging theory that enables the reconstruction of sparse signals from a small set of random measurements. Because of the sparsity of impulse radio ultra-wideband (IR-UWB) signals in the time domain, CS makes it possible to operate at sub-Nyquist rates for IR-UWB communications where Nyquist sampling represents a formidable challenge. However, strong narrowband interference (NBI) still seriously affects the system. In this paper, by observing that the NBI signal is approximately sparse in the discrete Fourier transform (DFT) domain, a novel NBI estimation and mitigation scheme is proposed. By estimating the subspace of NBI and then feeding back the NBI nullspace, a compressive measurement matrix is designed to mitigate the NBI effectively while collecting useful signal energy. Theoretical analysis and simulation results show that NBI can be effectively mitigated using sub-Nyquist samples of a received signal in the IR-UWB communication system based on CS.
机译:压缩传感(CS)是一种新兴理论,能够从一小组随机测量结果中重建稀疏信号。由于时域中脉冲无线超宽带(IR-UWB)信号的稀疏性,CS使得以奈奎斯特速率运行IR-UWB通信成为可能,其中奈奎斯特采样是一个巨大的挑战。但是,强烈的窄带干扰(NBI)仍然严重影响系统。在本文中,通过观察NBI信号在离散傅立叶变换(DFT)域中的稀疏性,提出了一种新颖的NBI估计和缓解方案。通过估计NBI的子空间,然后反馈NBI零空间,设计了压缩测量矩阵以有效地减轻NBI的同时收集有用的信号能量。理论分析和仿真结果表明,在基于CS的IR-UWB通信系统中,使用接收信号的亚奈奎斯特样本可以有效地缓解NBI。

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