Fast independent component analysis algorithm for quaternion valued signals.

IEEE transactions on neural networks Pub Date : 2011-12-01 Epub Date: 2011-10-20 DOI:10.1109/TNN.2011.2171362
Soroush Javidi, Clive Cheong Took, Danilo P Mandic
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引用次数: 54

Abstract

An extension of the fast independent component analysis algorithm is proposed for the blind separation of both Q-proper and Q-improper quaternion-valued signals. This is achieved by maximizing a negentropy-based cost function, and is derived rigorously using the recently developed HR calculus in order to implement Newton optimization in the augmented quaternion statistics framework. It is shown that the use of augmented statistics and the associated widely linear modeling provides theoretical and practical advantages when dealing with general quaternion signals with noncircular (rotation-dependent) distributions. Simulations using both benchmark and real-world quaternion-valued signals support the approach.

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四元数值信号的快速独立分量分析算法。
提出了一种快速独立分量分析算法的扩展,用于盲分离q -固有和q -非固有四元数值信号。这是通过最大化基于负熵的成本函数来实现的,并且是使用最近开发的HR演算严格推导出来的,以便在增广四元数统计框架中实现牛顿优化。结果表明,在处理具有非圆(旋转相关)分布的一般四元数信号时,增广统计和相关的广泛线性建模的使用提供了理论和实践优势。使用基准和现实世界四元数值信号的模拟都支持这种方法。
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来源期刊
IEEE transactions on neural networks
IEEE transactions on neural networks 工程技术-工程:电子与电气
自引率
0.00%
发文量
2
审稿时长
8.7 months
期刊最新文献
Extracting rules from neural networks as decision diagrams. Design of a data-driven predictive controller for start-up process of AMT vehicles. Data-based hybrid tension estimation and fault diagnosis of cold rolling continuous annealing processes. Unified development of multiplicative algorithms for linear and quadratic nonnegative matrix factorization. Data-based system modeling using a type-2 fuzzy neural network with a hybrid learning algorithm.
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