多通道盲均衡准则的平行Jacobi-Davidson方法

L. Yang
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引用次数: 1

摘要

最近的一些工作代表了利用循环平稳性在数据通信系统中仅使用二阶统计量进行信道识别的新技术。特别是,工作表明了基于源的相关矩阵的正移结构的盲识别的可行性。我们提出了一种基于上述性质的替代高性能算法,但改进了要考虑的均衡矩阵的自相关选择。均衡问题的新表示提供了一个可以用Jacobi-Davidson方法有效求解的大广义特征值问题的代价函数。我们主要关注大规模分布式存储计算机上Jacobi-Davidson方法的并行方面。由于改进的Gram-Schmidt (MGS)过程需要内部产品进行全局通信,因此该方法在这种体系结构上的性能受到限制。我们使用只需要本地通信的给定旋转,避免了内部产品的全局通信,因为这代表了分布式内存计算机上并行性能的瓶颈。并给出了相应的数据分布和通信方案。文中还介绍了在Parsytec系统上进行的不同数据传输星座的仿真实验。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Parallel Jacobi-Davidson method for multichannel blind equalization criterium
Some recent works have represented novel techniques that exploit cyclostationarity for channel identification in data communication systems using only second order statistics. In particular, work has shown the feasibility of blind identification based on the forward shift structure of the correlation matrices of the source. We propose an alternative high performance algorithm based on the above property but with an improved choice of the autocorrelation of the equalization matrices to be considered. The new representation of the equalization problem provides a cost function formulated as a large generalized eigenvalue problem, which can be efficiently solved by the Jacobi-Davidson method. We mainly focus on the parallel aspects of the Jacobi-Davidson method on massively distributed memory computers. The performance of this method on this kind of architecture is always limited because of the global communication required for the inner products due to the Modified Gram-Schmidt (MGS) process. We use Given rotations which require only local communications avoiding the global communication of inner products since this represents the bottleneck of the parallel performance on distributed memory computers. The corresponding data distribution and communication scheme is presented as well. Several simulation experiments over different data transmission constellations carried out on Parsytec systems are presented as well.
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