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Three-dimensional Segmentation of Blood Vessels from Intensity In-homogeneous Medical Images

机译:从强度不均匀医学图像对血管进行三维分割

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Blood vessel segmentation helps to know the progress of the disease during diagnosis. The presence of intensity in-homogeneity, conglutination tissue and noise in medical images has led to difficulty in extraction of different sizes of blood vessels, difficulty in separating vessels for further analysis (such as quantification of angiogenesis), difficulty in distinguishing vessels from non vessels. Most of the available techniques are 2D-based. Despite the fact that 2D-based segmentation is easy, it doesn't provide full information about anatomic structure. Most of the available 3D vessel segmentation techniques require human intervention and fail to segment different sizes of vessels. In this paper, a 3D hybrid approach for segmentation has been developed, based on white top hat scale space bilateral hessian vessel enhancement filter and hysteresis threshold method combined with multi-threshold Otsu method. The hybrid method can address noise and intensity in-homogeneity problem, as a result, more vessels of different sizes are detected. The method can also incorporate spatial information, abnormalities in the vessels are detected. Vessels of different sizes are separated to ease further analysis. Conglutination tissue (that obstruct segmentation process) is eliminated to ease extraction of different sizes of vessels.
机译:血管分割有助于在诊断过程中了解疾病的进展。在医学图像中存在强度不均一,粘连组织和噪声,这导致难以提取不同大小的血管,难以分离血管以进行进一步分析(例如定量血管生成),难以将血管与非血管区分开。大多数可用的技术都是基于2D的。尽管基于2D的分割很容易,但它并未提供有关解剖结构的完整信息。大多数可用的3D血管分割技术都需要人工干预,并且无法分割不同尺寸的血管。本文基于白顶帽规模空间双边黑森州血管增强滤波器和滞后阈值方法与多阈值Otsu方法相结合,开发了一种3D混合分割方法。混合方法可以解决噪声和强度不均匀的问题,因此,可以检测到更多不同大小的血管。该方法还可以合并空间信息,从而检测出血管中的异常。不同大小的容器被分开以简化进一步的分析。消除了粘连组织(阻塞了分割过程),以易于提取不同尺寸的血管。

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