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Automated segmentation of middle hepatic vein in non-contrast X-ray CT images based on an atlas-driven approach

机译:基于地图驱动方法的非对比X射线CT图像中肝静脉的自动分割

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In order to support the diagnosis of hepatic diseases, understanding the anatomical structures of hepatic lobes and hepatic vessels is necessary. Although viewing and understanding the hepatic vessels in contrast media-enhanced CT images is easy, the observation of the hepatic vessels in non-contrast X-ray CT images that are widely used for the screening purpose is difficult. We are developing a computer-aided diagnosis (CAD) system to support the liver diagnosis based on non-contrast X-ray CT images. This paper proposes a new approach to segment the middle hepatic vein (MHV), a key structure (landmark) for separating the liver region into left and right lobes. Extraction and classification of hepatic vessels are difficult in non-contrast X-ray CT images because the contrast between hepatic vessels and other liver tissues is low. Our approach uses an atlas-driven method by the following three stages. (1) Construction of liver atlases of left and right hepatic lobes using a learning datasets. (2) Fully-automated enhancement and extraction of hepatic vessels in liver regions. (3) Extraction of MHV based on the results of (1) and (2). The proposed approach was applied to 22 normal liver cases of non-contrast X-ray CT images. The preliminary results show that the proposed approach achieves the success in 14 cases for MHV extraction.
机译:为了支持肝脏疾病的诊断,理解肝裂片和肝血管的解剖结构是必要的。尽管观察和理解患媒体增强的CT图像中的肝血管容易,但是难以观察肝脏容器在广泛用于筛选目的的非对比X射线CT图像中。我们正在开发一种计算机辅助诊断(CAD)系统,以支持基于非对比X射线CT图像的肝脏诊断。本文提出了一种促进中肝静脉(MHV)的新方法,是将肝脏区分离成左右裂片的关键结构(地标)。肝血管的提取和分类在非对比度X射线CT图像中是难以的,因为肝血管和其他肝组织之间的对比度是低的。我们的方法通过以下三个阶段使用图表驱动方法。 (1)使用学习数据集施工左右肝裂片的肝脏壳种。 (2)肝脏区内全自动增强和提取肝血管。 (3)根据(1)和(2)的结果提取MHV。所提出的方法应用于22例非对比X射线CT图像的正常肝脏病例。初步结果表明,该拟议方法在14例MHV提取方面取得了成功。

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