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首页> 外文期刊>Journal of Pure & Applied Microbiology >Pancreas Segmentation using Level-set Method based on Statistical Shape Model
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Pancreas Segmentation using Level-set Method based on Statistical Shape Model

机译:基于统计形状模型的水平集法胰腺分割

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摘要

As Computer Aided Diagnosis (CAD) was widely used in medical field, it was necessary to be studied deeply, especially in image segmentation. The complex anatomy structure around the pancreas made segmentation of pancreas become more difficult. In thispaper a new method for medical image segmentation was proposed which used level-set method based on statistical shape model to solve above problem and improve the performance of segmentation. The level-set method was used firstly to obtain the segmentation result of the pancreas from CT images. Then some anatomical information was added into segmentation process by using a better shape of the interest object obtained by statistical shape model. Several experiments were carried out to demonstrate the validation of our proposed algorithm, and the level-set and region-grow methods were chosen as the contrast algorithm. We also gave quantitative results which showed that our method had a good robustness and better precise of segmentation than other methods.
机译:随着计算机辅助诊断(CAD)在医学领域的广泛应用,有必要进行深入研究,尤其是在图像分割方面。胰腺周围复杂的解剖结构使胰腺分割变得更加困难。本文提出了一种新的医学图像分割方法,该方法采用基于统计形状模型的水平集方法解决了上述问题,提高了分割性能。首先采用水平集法从CT图像中获取胰腺的分割结果。然后,利用统计形状模型获得的较好形状的感兴趣对象,将一些解剖信息添加到分割过程中。进行了几次实验以证明我们提出的算法的有效性,并选择了水平集和区域增长方法作为对比算法。我们还给出了定量结果,表明我们的方法比其他方法具有更好的鲁棒性和更好的分割精度。

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