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A New Way of Ultra-wideband Channel Estimation Based on Bayesian Compressive Sensing

机译:基于贝叶斯压缩传感的超宽带信道估计的一种新方法

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In this paper,in order to solve the problem that the sampling rate in ultra-wideband (UWB)channel estimation is too high,we discuss the applicability of Bayesian Compressive Sensing (BCS)used in UWB channel estimation.We solve the problem by using the time domain sparse of the impulse response of the UWB channel and establishing the probability model of the Compressive Sensing (CS) measurement.We accomplish the channel estimation by optimizing maximum a posteriori (MAP) of the channel.The simulation results show that the proposed scheme needs a very low sampling rate to recover the channel accurately.And the BCS algorithm has a better performance than the basis pursuit (BP) algorithm and the traditional least square (LS) algorithm in bit error rate (BER).
机译:在本文中,为了解决超宽带(UWB)信道估计中的采样率太高的问题,我们讨论了UWB信道估计中使用的贝叶斯压缩感应(BCS)的适用性。我们通过使用解决问题UWB通道的脉冲响应的时域稀疏,并建立压缩感测(CS)测量的概率模型。我们通过优化信道的最大后验(MAP)来完成信道估计。仿真结果表明提出的方案需要非常低的采样率来准确恢复通道。BCS算法具有比基础追踪(BP)算法和误码率(BER)中的传统最小二乘(LS)算法更好的性能。

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