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Estimation of Communications Channels Using Discrete Wavelet Transform-Based Deconvolution

机译:基于离散小波变换的反卷积估计通信信道

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In this paper a technique for the deconvolution of signals in the wavelet-domain is presented. It makes use of the Discrete Wavelet Transform (DWT) implemented with filter banks, and is based on expressing the convolution of two signals using the Forward Merge Approach for DWT-based convolution. The DWT-based deconvolution technique is then applied to the problem of pilot-based channel estimation, which can be used in the design of wavelet-based agile radio systems. par DWT-based deconvolution is first described analytically and is then implemented in MATLAB to validate the theory and evaluate its performance. Monte Carlo simulations of DWT-based deconvolution of transmitted signals from received signals, both known a priori, are performed to estimate channel impulse responses. Transmitted signals are corrupted by Additive White Gaussian Noise (AWGN) resulting in E_b/N_0 ratios ranging from 0 dB to 30 dB. Fast-fading channels with Gaussian and "hilly area" Power Delay Profiles (PDPs) are used, along with four different wavelets for the DWTs. The results of the simulations show that DWT-based deconvolution is a viable technique and its performance in some cases is comparable to direct discrete time-domain deconvolution.
机译:在本文中,提出了一种在小波域中对信号进行去卷积的技术。它利用通过滤波器组实现的离散小波变换(DWT),并基于使用基于DWT的卷积的前向合并方法表达两个信号的卷积。然后将基于DWT的反卷积技术应用于基于导频的信道估计问题,该问题可用于基于小波的敏捷无线电系统的设计中。基于解析的描述基于DWT的反卷积,然后在MATLAB中实现以验证理论并评估其性能。先验地进行了基于DWT的发射信号与接收信号的反卷积的蒙特卡罗模拟,以估计信道冲激响应。发射的信号被加性高斯白噪声(AWGN)破坏,导致E_b / N_0的比率范围为0 dB至30 dB。使用具有高斯和“丘陵区”功率延迟曲线(PDP)的快速衰落信道,以及DWT的四个不同小波。仿真结果表明,基于DWT的反卷积是一种可行的技术,在某些情况下其性能可与直接离散时域反卷积媲美。

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