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3D Segmentation and Image Annotation for Quantitative Diagnosis in Lung CT Images with Pulmonary Lesions

机译:肺病变肺CT图像定量诊断的3D分割和图像注释

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Pulmonary nodules and ground glass opacities are highly significant findings in high-resolution computed tomography (HRCT) of patients with pulmonary lesion. The appearances of pulmonary nodules and ground glass opacities show a relationship with different lung diseases. According to corresponding characteristic of lesion, pertinent segment methods and quantitative analysis are helpful for control and treat diseases at an earlier and potentially more curable stage. Currently, most of the studies have focused on two-dimensional quantitative analysis of these kinds of deceases. Compared to two-dimensional images, three-dimensional quantitative analysis can take full advantage of isotropic image data acquired by using thin slicing HRCT in space and has better quantitative precision for clinical diagnosis. This presentation designs a computer-aided diagnosis component to segment 3D disease areas of nodules and ground glass opacities in lung CT images, and use ADVIL (Annotation and image makeup language) to annotate the segmented 3D pulmonary lesions with information of quantitative measurement which may provide more features and information to the radiologists in clinical diagnosis.
机译:肺结核和地面玻璃不透明度是肺病变患者的高分辨率计算断层扫描(HRCT)的高度重要发现。肺结核和磨碎玻璃不透明度的外表显示出与不同肺病的关系。根据病变的相应特性,相关的段方法和定量分析有助于对更早的和潜在的可固化阶段的对照和治疗疾病。目前,大多数研究都集中在这些类型的二维定量分析上。与二维图像相比,三维定量分析可以充分利用在空间中使用薄切片HRCT获取的各向同性图像数据,并具有更好的临床诊断精度。该介绍设计了一种计算机辅助诊断组件,用于肺CT图像中的结节和地面玻璃不透明度的分段3D疾病区域,并使用Advil(注释和图像化语言)与分段的3D肺病灶注释有可能提供的定量测量信息临床诊断中的放射科学家的更多功能和信息。

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