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Color-texture segmentation using JSEG based on Gaussian mixture modeling 被引量:4

Color-texture segmentation using JSEG based on Gaussian mixture modeling
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摘要 An improved approach for J-value segmentation (JSEG) is presented for unsupervised color image segmentation. Instead of color quantization algorithm, an automatic classification method based on adaptive mean shift (AMS) based clustering is used for nonparametric clustering of image data set. The clustering results are used to construct Gaussian mixture modelling (GMM) of image data for the calculation of soft J value. The region growing algorithm used in JSEG is then applied in segmenting the image based on the multiscale soft J-images. Experiments show that the synergism of JSEG and the soft classification based on AMS based clustering and GMM overcomes the limitations of JSEG successfully and is more robust. An improved approach for J-value segmentation (JSEG) is presented for unsupervised color image segmentation. Instead of color quantization algorithm, an automatic classification method based on adaptive mean shift (AMS) based clustering is used for nonparametric clustering of image data set. The clustering results are used to construct Gaussian mixture modelling (GMM) of image data for the calculation of soft J value. The region growing algorithm used in JSEG is then applied in segmenting the image based on the multiscale soft J-images. Experiments show that the synergism of JSEG and the soft classification based on AMS based clustering and GMM overcomes the limitations of JSEG successfully and is more robust.
出处 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2006年第1期24-29,共6页 系统工程与电子技术(英文版)
基金 ThisprojectwassupportedbytheScienceandTechnologyCommitteeofShanghai(025115010).
关键词 color image segmentation JSEG adaptive mean shift based dustering Gaussian mixture modeling soft J-value. color image segmentation, JSEG, adaptive mean shift based dustering, Gaussian mixture modeling, soft J-value.
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