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Published in: Pattern Recognition and Image Analysis 4/2019

01-10-2019 | MATHEMATICAL THEORY OF IMAGES AND SIGNALS REPRESENTING, PROCESSING, ANALYSIS, RECOGNITION AND UNDERSTANDING

Research on Improvement of Stagewise Weak Orthogonal Matching Pursuit Algorithm

Authors: Lan Pu, Zhang Jiangtao, Xia Kewen, Zhou Qiao, He Ziping

Published in: Pattern Recognition and Image Analysis | Issue 4/2019

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Abstract

One of the key technologies of compressed sensing is the signal reconstruction. And the two important indicators of signal reconstruction are the reconstruction probability and the time consumed. The Stagewise Weak Orthogonal Matching Pursuit (SWOMP) is widely used because the sparsity does not need to be a priori condition. The use of fixed threshold parameter in the iterative process can easily lead to overestimation and underestimation. Inspired by the idea of “the initial stage is approaching quickly and the final stage is approaching gradually,” that is, the search rule of “firstly fast and then slow,” an improved algorithm replacing the fixed threshold selection with S-shaped function value in each iteration is proposed to overcome the shortcoming that the fixed threshold parameter is selected in every iteration of SWOMP algorithm. Through compared experiment of six different S-shaped functions, the results show that the influence of different S-shaped functions on the SWOMP algorithm is different, and the improved SWOMP algorithm with the sixth S-shaped function has the best reconstruction effect.

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Metadata
Title
Research on Improvement of Stagewise Weak Orthogonal Matching Pursuit Algorithm
Authors
Lan Pu
Zhang Jiangtao
Xia Kewen
Zhou Qiao
He Ziping
Publication date
01-10-2019
Publisher
Pleiades Publishing
Published in
Pattern Recognition and Image Analysis / Issue 4/2019
Print ISSN: 1054-6618
Electronic ISSN: 1555-6212
DOI
https://doi.org/10.1134/S1054661819040096

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