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Estimating patient-specific shape prior for medical image segmentation

机译:在医学图像分割之前估算患者特异性形状

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Image segmentation is one of the key problems in medical image analysis. This paper presents a new statistical shape model for automatic image segmentation. In contrast to the previous model based segmentation methods, where shape priors are estimated from a general population-based shape model, our proposed method aims to estimate patient-specific shape priors to achieve more accurate segmentation by using manifold learning techniques. The proposed shape prior estimation method is incorporated into a deformable model based framework for image segmentation. The effectiveness of the proposed method has been demonstrated by the experiments on segmenting the prostate from MR images.
机译:图像分割是医学图像分析中的关键问题之一。 本文介绍了一种新的自动图像分割统计形状模型。 与先前模型的基于模型的分割方法相比,从基于一般人群的形状模型估计形状前沿,我们所提出的方法旨在通过使用歧管学习技术来估计患者特定的形状前导者以实现更准确的分割。 所提出的形状先前估计方法结合到基于可变形模型的图像分割框架中。 通过实验从MR图像分割前列腺的实验证明了所提出的方法的有效性。

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