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Direct estimation of blind zero-forcing equalizers based on second-order statistics

机译:基于二阶统计量的盲迫零均衡器直接估计

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摘要

Most existing zero-forcing equalization algorithms rely either on higher than second-order statistics or on partial or complete channel identification. We describe methods for computing fractionally spaced zero-forcing blind equalizers with arbitrary delay directly from second-order statistics of the observations without channel identification. We first develop a batch-type algorithm; then, adaptive algorithms are obtained by linear prediction and gradient descent optimization. Our adaptive algorithms do not require channel order estimation, nor rank estimation. Compared with other second-order statistics-based approaches, ours do not require channel identification at all. On the other hand, compared with the CMA-type algorithms, ours use only second-order statistics; thus, no local convergence problem exists, and faster convergence can be achieved. Simulations show that our algorithms outperform most typical existing algorithms.
机译:大多数现有的迫零均衡算法要么依赖于高于二阶统计量,要么依赖于部分或全部信道标识。我们描述了直接从观测值的二阶统计量直接计算具有任意延迟的分数间隔零强迫盲均衡器的方法,而无需通道识别。我们首先开发一个批处理类型的算法;然后,通过线性预测和梯度下降优化获得自适应算法。我们的自适应算法不需要信道顺序估计,也不需要秩估计。与其他基于二阶统计的方法相比,我们的方法根本不需要通道标识。另一方面,与CMA类型的算法相比,我们的算法仅使用二阶统计量。因此,不存在局部收敛问题,并且可以实现更快的收敛。仿真表明,我们的算法优于大多数典型的现有算法。

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