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Adaptive projected subgradient method - a unified view of projection based adaptive filtering algorithms

机译:自适应投影子缩放方法 - 基于投影的自适应滤波算法的统一视图

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This paper presents an efficient numerical algorithm named adaptive projected subgradient method for minimizing asymptotically a certain class of sequences of nonnegative convex functions. The proposed algorithm is a natural extension of the Polyak's subgradient algorithm with a fixed target value, for unsmooth convex optimization problem, to the case where the convex objective itself keeps changing in the whole process. A main theorem on the proposed algorithm can serve as a useful mathematical foundation of a wide range of Projection based adaptive filtering algorithms. Indeed, by designing certain sequences of convex objectives, a variety of adaptive filtering algorithms are derived in a unified manner as simple examples of the adaptive projected subgradient method. These include not only the existing adaptive filtering techniques e.g., NLMS, Projected NLMS Constrained NLMS, APA, and Adaptive parallel outer projection algorithm etc, but also new techniques e.g., Adaptive parallel min-max projection algorithm, and their embedded constraint versions. These new techniques are well-suited for nowadays applications to robust acoustic signal processing as well as to adaptive array signal processing.
机译:本文介绍了一个名为Adaptive Projected子射程方法的有效数值算法,用于最小化渐近的非负凸函数序列的渐近序列。所提出的算法是Polyak子射泽算法的自然延伸,具有固定目标值,用于未满的凸面优化问题,凸面物体本身在整个过程中不断变化的情况。所提出的算法上的主要定理可以作为广泛投影的基于自适应滤波算法的有用数学基础。实际上,通过设计某些凸起目标序列,以统一的方式导出各种自适应滤波算法,作为自适应投影子射程方法的简单示例。这些不仅包括现有的自适应滤波技术例如,NLMS,预计的NLMS受限NLMS,APA和自适应并行外部投影等,而且还包括新技术。,自适应并行MIN-MAX投影算法及其嵌入式约束版本。现在,这些新技术非常适合于现在应用于强大的声学信号处理以及自适应阵列信号处理。

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