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Compressed Sensing for Wideband HF Channel Estimation

机译:宽带HF信道估计的压缩传感

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摘要

Compressive sensing theory is suitable for sparse channel estimation, since the acquired measurement can be reduced in comparison with linear estimation methods. In this paper, we analyze the wideband HF channel estimation. Experimental results demonstrate that this channel is sparse in the delay spread domain. Moreover, the use of sparse recovery algorithms achieves better results in terms of Mean-Square Deviation than the Least Square algorithm.
机译:压缩感测理论适用于稀疏信道估计,因为与线性估计方法相比,可以减少获取的测量值。在本文中,我们分析了宽带HF信道估计。实验结果表明,该信道在时延扩展域中是稀疏的。此外,与均方偏差相比,稀疏恢复算法的使用要比最小二乘算法获得更好的结果。

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