作者
Giorgos Sfikas, Christophoros Nikou, Nikolaos Galatsanos
发表日期
2007/9/16
研讨会论文
2007 IEEE International Conference on Image Processing
卷号
1
页码范围
I-273-I-276
出版商
IEEE
简介
Gaussian mixture models have been widely used in image segmentation. However, such models are sensitive to outliers. In this paper, we consider a robust model for image segmentation based on mixtures of Student's t -distributions which have heavier tails than Gaussian and thus are not sensitive to outliers. The t -distribution is one of the few heavy tailed probability density functions (pdf) closely related to the Gaussian, that gives tractable maximum likelihood inference via the Expectation-Maximization (EM) algorithm. Numerical experiments that demonstrate the properties of the proposed model for image segmentation are presented.
引用总数
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G Sfikas, C Nikou, N Galatsanos - 2007 IEEE International Conference on Image …, 2007