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Independent component analysis: An introduction

Alaa Tharwat
10.1016/j.aci.2018.08.006 388 Views 158 Citations
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Abstract

Independent component analysis (ICA) is a widely-used blind source separation technique. ICA has been applied to many applications. ICA is usually utilized as a black box, without understanding its internal details. Therefore, in this paper, the basics of ICA are provided to show how it works to serve as a comprehensive source for researchers who are interested in this field. This paper starts by introducing the definition and underlying principles of ICA. Additionally, different numerical examples in a step-by-step approach are demonstrated to explain the preprocessing steps of ICA and the mixing and unmixing processes in ICA. Moreover, different ICA algorithms, challenges, and applications are presented.

Cite this Article (APA)
Alaa, T. (2020). Independent component analysis: An introduction. Applied Computing and Informatics. https://doi.org/10.1016/j.aci.2018.08.006
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Published in
ISSN 2634-1964
Quartile Q1
AMS Score 87
Field Computer Science & AI
Publisher King Saud University / Emerald Publ
Country 🇸🇦 Saudi Arabia
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Publication Details
Year 2020
Language English
Added 31 Jul 2026