科研成果详情

题名Image Segmentation Based on Finite IBL Mixture Model with a Dirichlet Compound Multinomial Prior
作者
发表日期2020-06-26
会议名称3rd International Conference on Artificial Intelligence and Pattern Recognition (AIPR)
会议录名称ACM International Conference Proceeding Series
页码88-92
会议日期SEP 25-27, 2020
会议地点ELECTR NETWORK
摘要

In this paper, we propose a novel image segmentation approach based on finite inverted Beta-Liouville (IBL) mixture model with a Dirichlet Compound Multinomial prior. The merits of this work can be summarized as follows: 1) Our image segmentation approach is based on a finite mixture model in which each mixture component can be responsible for interpreting a particular segment within a given image; 2) We adopt IBL distribution as the basic distribution in our mixture model, which has demonstrated better modeling capabilities than Gaussian distribution for non-Gaussian data in recent research works; 3) The contextual mixing proportions (i.e., the probabilities of class labels) of our model are assumed to have a Dirichlet Compound Multinomial prior, which makes our model more robust against noise; 4) We develop a variational Bayes (VB) method that can effectively learn model parameters in closed form. The performance of the proposed image segmentation approach is compared with other related segmentation approaches to demonstrate its advantages.

关键词Image segmentation Inverted Beta-Liouville Markov random field Mixture model
DOI10.1145/3430199.3430207
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收录类别CPCI-S
语种英语English
WOS研究方向Computer Science ; Imaging Science & Photographic Technology
WOS类目Computer Science, Artificial Intelligence ; Imaging Science & Photographic Technology
WOS记录号WOS:000694698600015
Scopus入藏号2-s2.0-85099394063
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文献类型会议论文
条目标识符https://repository.uic.edu.cn/handle/39GCC9TT/13048
专题个人在本单位外知识产出
理工科技学院
通讯作者Guo, Zhiyan
作者单位
Department of Computer Science and Technology,Huaqiao University,Xiamen,China
推荐引用方式
GB/T 7714
Guo, Zhiyan,Fan, Wentao. Image Segmentation Based on Finite IBL Mixture Model with a Dirichlet Compound Multinomial Prior[C], 2020: 88-92.
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