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Analysis of the noise robustness problem and a new blind channel identification algorithm

机译:噪声鲁棒性问题分析及新的盲声识别算法

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Blind channel identification has generated much interest in signal processing and communications. Although existing cross relation based blind channel identification algorithm can achieve promising results, one of the drawbacks is the performance degradation in a noisy environment. In this work, we show that the degradation in convergence performance of MCLMS is due to an implicit constraint imposed by the cross relation cost function. This constraint requires the estimated impulse responses to be of the same energy which is often untrue in practice. We next propose a new algorithm exploiting revised cost function to improve the robustness of MCLMS to noise. Monte Carlo simulation results show that the proposed algorithm can gain significant improvement in steady-state performance.
机译:盲声识别已经产生了对信号处理和通信的兴趣。尽管基于现有的基于横向关系的盲信频率识别算法可以实现有前途的结果,但其中一个缺点是嘈杂环境中的性能下降。在这项工作中,我们表明MCLMS的收敛性能的降级是由于跨关系成本函数施加的隐含约束。该约束需要估计的脉冲响应具有相同的能量,其经常在实践中不确定。我们接下来提出了一种新的算法,该算法利用修订的成本函数来提高MCLMS对噪声的鲁棒性。 Monte Carlo仿真结果表明,该算法可以在稳态性能下显着提高。

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