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An Improved Maximum Correntropy Criterion Algorithm with Flexible Zero Attractor for Sparse Channel Estimation in Mixed Gaussian Noise Environment

机译:一种改进的最大正压性标准算法,具有柔性零吸引子,用于混合高斯噪声环境中的稀疏信道估计

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A maximum correntropy criterion (MCC) algorithm with a flexible zero attractor is proposed, whose estimation performance is investigated for estimating a multi-path channel in mixed Gaussian environment. The proposed algorithm is denoted as flexible zero attraction MCC (FZA-MCC), in which the flexible zero attractor (FZA) is implemented by an approximation parameter adjustment function. The estimation behavior of the proposed FZA-MCC algorithm is carried out to evaluate a wide bandwidth multi-path channel in mixture Gaussian environment. The obtained results demonstrated that the FZA-MCC algorithm converges faster and achieves lower estimation error than the MCC and its related sparse algorithms.
机译:提出了一种具有柔性零吸引子的最大控制标准(MCC)算法,其估计性能被研究用于估计混合高斯环境中的多路径信道。所提出的算法表示为柔性零吸引力MCC(FZA-MCC),其中柔性零吸引子(FZA)由近似参数调整函数实现。提出了所提出的FZA-MCC算法的估计行为,以评估混合高斯环境中的宽带多路径信道。所获得的结果表明,FZA-MCC算法会聚得更快并实现比MCC更低的估计误差及其相关的稀疏算法。

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