首页> 外文会议>European Signal Processing Conference(EUSIPCO 2004) vol.1; 20040906-10; Vienna(AT) >ON THE LEAST SQUARES PERFORMANCE OF A NOVEL EFFICIENT CENTER ESTIMATION METHOD FOR CLUSTERING-BASED MLSE EQUALIZATION
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ON THE LEAST SQUARES PERFORMANCE OF A NOVEL EFFICIENT CENTER ESTIMATION METHOD FOR CLUSTERING-BASED MLSE EQUALIZATION

机译:聚类MLSE均衡的新型有效中心估计方法的最小二乘性能研究

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Recently, a novel Maximum Likelihood Sequence Estimation (MLSE) equalizer was reported, that avoids the explicit estimation of the channel impulse response. Instead, the centers of the clusters which are formed by the received samples are estimated, in a computationally efficient manner, that exploits the channel linearity and the symmetries underlying the transmitted signal constellation. This paper investigates the relationship of the center estimation (CE) part of the proposed equalizer with the Least Squares (LS) method, demonstrating that it can attain LS performance at a substantially lower computational cost. The importance of CE is thus confirmed, as a methodology that combines high performance, simplicity and low computational cost, as required in a practical equalization task. The results of this paper provide also an alternative, algebraic viewpoint on the CE method, while at the same time leading to a new interpretation of the LS, in terms of averaging for cluster center estimation.
机译:最近,报道了一种新颖的最大似然序列估计(MLSE)均衡器,该均衡器避免了信道冲激响应的显式估计。取而代之的是,以计算有效的方式估计由接收到的样本形成的簇的中心,该中心利用信道线性和所发射的信号星座图下面的对称性。本文研究了所提出的均衡器的中心估计(CE)部分与最小二乘(LS)方法的关系,证明了该均衡器可以以较低的计算成本获得LS性能。因此,作为一种实用均衡任务所需的,结合了高性能,简单性和低计算成本的方法,CE的重要性得到了证实。本文的结果还提供了关于CE方法的另一种代数观点,同时就聚类中心估计的平均而言导致了LS的新解释。

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