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A Novel Segmentation Algorithm Based on Level Set Approach with Intensity Inhomogeneity: Application to Medical Images

机译:基于水平集方法的新型分割算法,强度不均匀性:应用于医学图像的应用

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Most image segmentation techniques are based on the intensity homogeneity. Intensity inhomogeneity frequently occurs in real word image like medical images. This type of images fails to provide accurate segmentation resu this is challenging issue. In this paper, we present a robust region-based method for image segmentation, which is able to deal with intensity inhomo-geneities in the images. This method derives a local intensity clustering property of the image based on the model of images with intensity inhomogeneities, and then defines a local clustering criterion function in the neighborhood of each point. In a level set formulation, this criterion defines energy in terms of the level set function and a bias field. The level set functions represent a partition of the image domain whereas a bias field accounts for the intensity inhomogeneity of the image. Therefore by minimizing this energy, our proposed method is able to simultaneously segment the image and estimate he bias field, and the estimated bias field can be used for intensity inhomogeneity correction. Finally, experiments on some medical images have demonstrated the efficiency and robustness of the presented model.
机译:大多数图像分割技术基于强度均匀性。强度不均匀性经常发生在实际单词图像中,如医学图像。这种类型的图像未能提供准确的分割结果;这是一个具有挑战性的问题。在本文中,我们介绍了一种基于稳健的基于区域的图像分割方法,其能够处理图像中的强度Inhomo基因。该方法基于具有强度不均匀性的图像模型来派生图像的本地强度聚类特性,然后在每个点的邻域中定义本地聚类标准功能。在一个级别的设置中,该标准在级别设置功能和偏置字段方面定义了能量。级别设置功能表示图像域的分区,而偏置字段占图像的强度不均匀性。因此,通过最小化这种能量,我们所提出的方法能够同时分割图像并估计他的偏置场,并且估计的偏置场可用于强度不均匀性校正。最后,对一些医学图像的实验表明了所展示模型的效率和稳健性。

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