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Independent Component Analysis of Complex Valued Signals Based on First-order Statistics

Publication Year :
2013

Abstract

This paper proposes a novel method based on first-order statistics, aims to solve the problem of the independent component extraction of complex valued signals in instantaneous linear mixtures. Single-step and iterative algorithms are proposed and discussed under the engineering practice. Theoretical performance analysis about asymptotic interference-to-signal ratio (ISR) and probability of correct support estimation (PCE) are accomplished. Simulation examples validate the theoretic analysis, and demonstrate that the single-step algorithm is extremely effective. Moreover, the iterative algorithm is more efficient than complex FastICA under certain circumstances.

Details

Database :
OAIster
Notes :
4, 22, English
Publication Type :
Electronic Resource
Accession number :
edsoai.on1132804093
Document Type :
Electronic Resource