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An integrated segmentation and shape-based classification scheme for distinguishing adenocarcinomas from granulomas on lung CT

机译:基于分割和基于形状的综合分类方案用于在肺部CT上区分腺癌和肉芽肿

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摘要

PurposeDistinguishing between benign granulmoas and adenocarcinomas is confounded by their similar visual appearance on routine CT scans. Unfortunately, owing to the inability to discriminate these lesions radigraphically, many patients with benign granulomas are subjected to unnecessary surgical wedge resections and biopsies for pathologic confirmation of cancer presence or absence. This suggests the need for improved computerized characterization of these nodules in order to distinguish between these two classes of lesions on CT scans. While there has been substantial interest in the use of textural analysis for radiomic characterization of lung nodules, relatively less work has been done in shape based characterization of lung nodules, particularly with respect to granulmoas and adenocarcinomas. The primary goal of this study is to evaluate the role of 3D shape features for discrimination of benign granulomas from malignant adenocarcinomas on lung CT images. Towards this end we present an integrated framework for segmentation, feature characterization and classification of these nodules on CT.
机译:目的在常规CT扫描中,肉眼可见的良性肉芽肿和腺癌的相似外观混淆了它们。不幸的是,由于无法通过射线照相来区分这些病变,许多良性肉芽肿患者接受了不必要的手术楔形切除术和活检,以病理证实是否存在癌症。这表明需要改进这些结节的计算机表征,以便在CT扫描中区分这两类病变。虽然使用纹理分析对肺结节进行放射学表征已引起广泛关注,但在基于形状的肺结节表征中,尤其是针对肉芽肿和腺癌的研究相对较少。这项研究的主要目标是评估3D形状特征在肺部CT图像上区分良性肉芽肿和恶性腺癌的作用。为此,我们提出了一个集成的框架,用于在CT上对这些结节进行分割,特征表征和分类。

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