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Solving reverse emergence with quantum PSO application to image processing

delete2018-06-28
delete22
PRE
AI
S
Safia Djemame
M
Mohamed Batouche
H
Hamouche Oulhadj
P
Patrick Siarry *
DOI:10.1007/s00500-018-3331-6delete
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摘要

摘要

En 中文
A quantum-inspired PSO (QPSO) algorithm for solving reverse emergence is proposed that is a hybridization of the particle swarm optimization (PSO) algorithm and quantum computing principles. For potential applications, we review specific image processing problems including image denoising and edge detection. Taking cellular automata as a modeling tool, an evolutionary process carried out by the QPSO algorithm attempts to extract the rules resulting in satisfactory image denoising and edge detection. Experimental results demonstrate the feasibility, the convergence and robustness of the QPSO algorithm for solving reverse emergence in the specific application of image processing.
Keyword:
Metaheuristics
Quantum computing
Quantum PSO
Reverse emergence
Complexity
Cellular automata
Optimization
Image processing

期刊

Soft Computing 封面图
Soft Computing
IF:
2.5
论文数:
1.0W
被引数:
2.1W

机构

U
universite paris-est-creteil-val-de-marne (upec)
学者数:
1.3W
论文数: 9.2K
被引数: 6
U
Universite Ferhat Abbas Setif
学者数:
1.7K
论文数: 1.3K
被引数: 3
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