Hybrid method to obtain interest region and non interest region for color based image retrieval

Content based image retrieval (CBIR) has become one of the most active research areas in the past few years. Many indexing techniques are based on global feature distributions. However, these global distributions have limited discriminating power because they are unable to capture...

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Bibliographic Details
Main Authors: Abd Rasid, Mamat, Norkhairani, Abdul Rawi, Mohd Fadzil, Abdul Kadir
Format: Article
Language:English
Published: International Center for Scientific Research and Studies 2015
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Online Access:http://eprints.unisza.edu.my/6887/1/FH02-FIK-15-04678.jpg
http://eprints.unisza.edu.my/6887/
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Institution: Universiti Sultan Zainal Abidin
Language: English
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Summary:Content based image retrieval (CBIR) has become one of the most active research areas in the past few years. Many indexing techniques are based on global feature distributions. However, these global distributions have limited discriminating power because they are unable to capture local image information. In this paper, the new proposed method based on local image to classify the Interest Region (IR) and Non Interest Region (NIR) of images. To develop this, the integration of clustering and user intervention was applied. Clustering process is obtaining several regions, meanwhile to ascertain the location of the center of images through user intervention. Several experiments are conducted using different weight (ω, γ) of IR and NIR. Subsequently average color moment is extracted from this region (IR and NIR) in CIE Lab color model. To investigate the performance, new distance is proposed based on Euclidean distance. Experimental results show the proposed method more efficient in image retrieval.