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Fast QR algorithms based on backward prediction errors: A new implementation and its finite precision performance

机译:基于后向预测误差的快速QR算法:一种新的实现方法及其有限精度性能

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QR decomposition techniques are well known for their good numerical behavior and low complexity. Fast QRD recursive least squares adaptive algorithms benefit from these characteristics to offer robust and fast adaptive filters. This paper examines two different versions of the fast QR algorithm based on a priori backward prediction errors as well as two other corresponding versions of them fast QR algorithm based on a posteriori backward prediction errors. The main matrix equations are presented with different versions derived from two distinct deployments of a particular matrix equation. From this study, a new algorithm is derived. The discussed algorithms are compared, and differences in computational complexity and in finite-precision behavior are shown. [References: 9]
机译:QR分解技术以其良好的数值性能和低复杂度而闻名。快速QRD递归最小二乘自适应算法得益于这些特性,可提供强大而快速的自适应滤波器。本文研究了基于先验后向预测误差的快速QR算法的两个不同版本,以及基于后验向后预测误差的快速QR算法的其他两个对应版本。主矩阵方程式以不同的形式显示,该版本是从特定矩阵方程式的两个不同部署中得出的。从这项研究中,得出了一种新算法。比较了所讨论的算法,并显示了计算复杂度和有限精度行为方面的差异。 [参考:9]

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