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首页> 外文期刊>Computerized Medical Imaging and Graphics: The Official Jounal of the Computerized Medical Imaging Society >A fast snake model based on non-linear diffusion for medical image segmentation.
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A fast snake model based on non-linear diffusion for medical image segmentation.

机译:基于非线性扩散的快速蛇模型用于医学图像分割。

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摘要

In this paper, the traditional snake model and gradient vector flow (GVF) snake model are studied, which are believed to be quite slow due to the need to compute inverse matrix. Actually, the GVF in the latter snake model is formed by a biased linear diffusion procedure, and there would be oscillations around the edge of the object. Based on GVF generated through non-linear diffusion, we present a fast GVF (FGVF) snake model which is much faster than the traditional snake model and GVF snake model, and would cause no degradation of stability and flexibility, meanwhile, it could reduce the oscillations around the edges. The segmentation results using FGVF and error analysis on simulated images are presented. Finally, the demonstration of FGVF applied to Computed Tomography and Magnetic Resonance images are shown, the segmentation results are satisfactory visually with much less computation time in comparison with former snakes.
机译:本文研究了传统的蛇形模型和梯度矢量流(GVF)蛇形模型,由于需要计算逆矩阵,它们被认为相当慢。实际上,后一个蛇模型中的GVF是通过有偏线性扩散过程形成的,并且在对象边缘周围会产生振荡。基于通过非线性扩散生成的GVF,我们提出了一种快速GVF(FGVF)蛇模型,该模型比传统蛇模型和GVF蛇模型快得多,并且不会造成稳定性和柔韧性下降,同时,它可以减少边缘振荡。给出了使用FGVF进行的分割结果以及对模拟图像的误差分析。最后,展示了将FGVF应用于计算机断层扫描和磁共振图像的演示,与以前的蛇相比,分割结果在视觉上令人满意,且计算时间少得多。

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