DocumentCode :
3156338
Title :
Application of genetic multi-step search to unsupervised design of morphological filters for noise removal
Author :
Hanada, Yoshiko ; Okuno, Hiroyuki ; Muneyasu, Mitsuji ; Asano, Akira
Author_Institution :
Fac. of Eng. Sci., Kansai Univ., Suita, Japan
fYear :
2009
fDate :
7-9 Jan. 2009
Firstpage :
566
Lastpage :
569
Abstract :
Deterministic multi-step crossover fusion (dMSXF) is a promising crossover method in combinatorial problems, which performs multi-step searches focusing on inheritance of parents´ characteristics using a neighborhood structure and a distance measure. DMSXF shows good search ability in various kinds of combinatorial problem. In this paper, we apply dMSXF to unsupervised design of morphological filters based on the opening operation for noise removal. We estimate suitable structuring elements (SE) for texture images corrupted by impulse noise. Here we fix the shape of SE and optimize pixel values of each element of SE. Through the experiments, it is shown that dMSXF works very well on estimating optimal SEs just like typical combinatorial problems.
Keywords :
combinatorial mathematics; filtering theory; genetic algorithms; image denoising; image texture; mathematical morphology; search problems; combinatorial problems; deterministic multistep crossover fusion; distance measure; genetic multistep search; image texture; impulse noise; morphological filters; neighborhood structure; noise removal; search ability; suitable structuring elements; unsupervised design; Design engineering; Design methodology; Filters; Genetic engineering; Intelligent structures; Noise measurement; Noise shaping; Performance evaluation; Signal design; Signal processing;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Intelligent Signal Processing and Communication Systems, 2009. ISPACS 2009. International Symposium on
Conference_Location :
Kanazawa
Print_ISBN :
978-1-4244-5015-2
Electronic_ISBN :
978-1-4244-5016-9
Type :
conf
DOI :
10.1109/ISPACS.2009.5383775
Filename :
5383775
Link To Document :
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