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Blind equalization without gain identification

机译:无增益识别的盲均衡

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Blind equalization up to a constant gain of linear time-invariant channels is studied. Dropping the requirement of gain identification allows equalizer anchoring. This results in the elimination of a degree of freedom that causes ill-convergence of conventional blind equalizers, and affords the possibility of using simple update rules based on the stochastic approximation of output energy. Unlike conventional blind equalizers, truncations of the nonrecursive infinite-dimensional realizations of those equalizers inherit the convergence properties of their infinitely parametrized counterparts. A globally convergent blind recursive equalizer for channels without all-pass sections is obtained based on the exact equalization of the minimum-phase part of the channel and the identification of its nonminimum-phase zeros.
机译:研究了直到线性增益不变信道的恒定增益的盲均衡。降低增益识别的要求可以实现均衡器锚定。这导致消除了导致常规盲均衡器收敛不充分的自由度,并提供了基于输出能量的随机近似使用简单更新规则的可能性。与常规的盲均衡器不同,这些均衡器的非递归无限维实现的截断继承了其无限参数化的对应对象的收敛特性。基于通道的最小相位部分的精确均衡和其非最小相位零的标识,可以获得不具有全通段的通道的全局收敛盲递归均衡器。

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