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Optimal Selection of Fourier Coefficients for Compressed Sensing-Based UWB Channel Estimation

机译:基于压缩感知的UWB信道估计的傅里叶系数的最佳选择

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摘要

In this letter, we propose a compressed sensing-based approach for channel estimation in wireless ultra-wideband (UWB) communication systems. The channel is estimated from a minimum number of received signal Fourier coefficients, using a measurement matrix dependent on the transmitted waveform. The optimal subset of coefficient locations, which lowers the coherence of this matrix and maximizes the reconstruction performance, is derived. Furthermore, additional constraints are considered on the subset, to allow the corresponding coefficients to be recovered with a low-complexity sub-Nyquist sampling scheme, as well as to enhance the reconstruction stability to noise. The performance improvement of the UWB channel estimation is demonstrated and the proposed approach is validated using both simulated and measured signals from an experimental setup.
机译:在这封信中,我们提出了一种用于无线超宽带(UWB)通信系统中信道估计的基于压缩感知的方法。使用取决于发射波形的测量矩阵,从最小数量的接收信号傅立叶系数中估计出该信道。得出了系数位置的最佳子集,该子集降低了该矩阵的相干性,并使重建性能最大化。此外,在子集上考虑了其他约束,以允许使用低复杂度的子奈奎斯特采样方案恢复相应的系数,并增强对噪声的重建稳定性。演示了UWB信道估计的性能改进,并使用来自实验装置的仿真信号和实测信号对所提出的方法进行了验证。

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