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Mathematics in Independent Component Analysis
Fabian J. Theis
Broschiertes Buch

Mathematics in Independent Component Analysis

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Independent Component Analysis (ICA) treats the problem of transforming an 'observed' random vector in order to render it as independent as possible. The major application of ICA lies in the Blind Signal Separation problem, where the observed random vector, often called the sensor signals, are a mixture of independent unknown 'source' signals. This book presents theory and algorithms for ICA. Its main goal is to show how a formal treatment of the separation algorithms can indeed lead to new insight and also novel algorithmic approaches. For this, after introducing the necessary terminology, we...