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Automatic Global Level Set Approach for Lumbar Vertebrae CT Image Segmentation

机译:腰椎CT图像分割的自动全局水平集方法

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摘要

Vertebrae computed tomography (CT) image automatic segmentation is an essential step for Image-guided minimally invasive spine surgery. However, most of state-of-the-art methods still require human intervention due to the inherent limitations of vertebrae CT image, such as topological variation, irregular boundaries (double boundary, weak boundary), and image noise. Therefore, this paper intentionally designed an automatic global level set approach (AGLSA), which is capable of dealing with these issues for lumbar vertebrae CT image segmentation. Unlike the traditional level set methods, we firstly propose an automatically initialized level set function (AILSF) that comprises hybrid morphological filter (HMF) and Gaussian mixture model (GMM) to automatically generate a smooth initial contour which is precisely adjacent to the object boundary. Secondly, a regularized level set formulation is introduced to overcome the weak boundary leaking problem, which utilizes the region correlation of histograms inside and outside the level set contour as a global term. Ultimately, a gradient vector flow (GVF) based edge-stopping function is employed to guarantee a fast convergence rate of the level set evolution and to avoid level set function oversegmentation at the same time. Our proposed approach has been tested on 115 vertebrae CT volumes of various patients. Quantitative comparisons validate that our proposed AGLSA is more accurate in segmenting lumbar vertebrae CT images with irregular boundaries and more robust to various levels of salt-and-pepper noise.
机译:椎骨计算机断层扫描(CT)图像自动分割是图像引导的微创脊柱手术的重要步骤。但是,由于椎骨CT图像的固有局限性,例如拓扑变化,不规则边界(双重边界,弱边界)和图像噪声,大多数最新技术仍然需要人工干预。因此,本文有意设计了一种自动全局水平集方法(AGLSA),该方法能够处理腰椎CT图像分割的这些问题。与传统的水平集方法不同,我们首先提出一种自动初始化的水平集函数(AILSF),该函数包含混合形态学滤波器(HMF)和高斯混合模型(GMM),以自动生成与对象边界精确相邻的平滑初始轮廓。其次,引入了规范化的水平集公式来克服弱边界泄漏问题,该方法利用水平集轮廓内外的直方图的区域相关性作为全局项。最终,采用基于梯度矢量流(GVF)的边缘停止功能来确保水平集演化的快速收敛速度,并同时避免水平集功能过度分割。我们建议的方法已经在115例不同患者的椎CT上进行了测试。定量比较验证了我们提出的AGLSA在分割具有不规则边界的腰椎CT图像方面更准确,并且对各种盐和胡椒粉噪声具有更强的鲁棒性。

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