多Fir信道的盲识别

W. Qiu, Y. Hua
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引用次数: 2

摘要

研究了子空间(SS)、相互关系(CR)和两步最大似然(TSML)方法在估计未知输入序列驱动下的多FIR信道脉冲响应中的性能。假设数据量大或/和信噪比高,推导了SS和CR方法的估计方差。研究了这三种方法的性能,并与Cramer-Rao界(CRB)进行了比较。结果表明,TSML方法明显优于SS和CR方法,并在较宽的信噪比范围内实现了CRB。研究还表明,SS方法比CR方法对iii信道条件具有更强的鲁棒性,而两种方法在条件良好的信道条件下表现出几乎相同的性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Blind Identification of Multiple Fir Channels
We study the performances of the subspace (SS), cross-relation (CR) and two-step maximum likelihood (TSML) methods for estimating the impulse responses of multiple FIR channels driven by an unknown input sequence. Assuming a large data size or/and a high SNR, the estimation variances of the SS and CR methods are derived. The performances of the three methods are studied and compared against the Cramer-Rao bound (CRB). It is shown that the TSML method significantly outperforms the SS and CR methods and attains the CRB over a wide range of SNR. It is also shown that the SS method is more robust to iii channel conditions than the CR method, while the two methods show nearly identical performances for well-conditioned channels.
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