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Color texture segmentation based on image pixel classification
Authors:Hong-Ying Yang  Xiang-Yang Wang  Xian-Yin Zhang  Juan Bu
Affiliation:1. Department of Computer Science and Engineering, University of Electronic Science and Technology of China;2. Institute of Electronic and Information Engineering in Dongguan, University of Electronic Science and Technology of China;3. Digital Media Technology Key Laboratory of Sichuan Province;4. Department of Computer Science and Technology, Chengdu Neusoft University
Abstract:Image segmentation partitions an image into nonoverlapping regions, which ideally should be meaningful for a certain purpose. Thus, image segmentation plays an important role in many multimedia applications. In recent years, many image segmentation algorithms have been developed, but they are often very complex and some undesired results occur frequently. By combination of Fuzzy Support Vector Machine (FSVM) and Fuzzy C-Means (FCM), a color texture segmentation based on image pixel classification is proposed in this paper. Specifically, we first extract the pixel-level color feature and texture feature of the image via the local spatial similarity measure model and localized Fourier transform, which is used as input of FSVM model (classifier). We then train the FSVM model (classifier) by using FCM with the extracted pixel-level features. Color image segmentation can be then performed through the trained FSVM model (classifier). Compared with three other segmentation algorithms, the results show that the proposed algorithm is more effective in color image segmentation.
Keywords:
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