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首页> 外文期刊>IEE Proceedings. Part K, Vision, image and signal processing >EM image segmentation algorithm based on an inhomogeneous hidden MRF model
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EM image segmentation algorithm based on an inhomogeneous hidden MRF model

机译:基于非均匀隐藏MRF模型的EM图像分割算法

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This paper introduces a Bayesian image segmentation algorithm that considers the label scale variability of images. An inhomogeneous hidden Markov random field is adopted in this algorithm to model the label scale variability as prior probabilities. An EM algorithm is developed to estimate parameters of the prior probabilities and likelihood probabilities. The image segmentation is established by using a MAP estimator. Different images are tested to verify the algorithm and comparisons with other segmentation algorithms are carried out. The segmentation results show the proposed algorithm has better performance than others.
机译:本文介绍了一种考虑图像标签尺度可变性的贝叶斯图像分割算法。该算法采用非均匀隐马尔可夫随机场将标签尺度的变异性建模为先验概率。开发了一种EM算法来估计先验概率和似然概率的参数。通过使用MAP估计器建立图像分割。测试不同的图像以验证算法,并与其他分割算法进行比较。分割结果表明,该算法具有更好的性能。

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