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Computer-Aided Renal Cancer Quantification and Classification from Contrast-enhanced CT via Histograms of Curvature-Related Features

机译:计算机辅助肾癌癌症量化和分类来自曲率相关特征直方图的对比增强CT

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In clinical practice, renal cancer diagnosis is performed by manual quantifications of tumor size and enhancement, which are time consuming and show high variability. We propose a computer-assisted clinical tool to assess and classify renal tumors in contrast-enhanced CT for the management and classification of kidney tumors. The quantification of lesions used level-sets and a statistical refinement step to adapt to the shape of the lesions. Intra-patient and inter-phase registration facilitated the study of lesion enhancement. From the segmented lesions, the histograms of curvature-related features were used to classify the lesion types via random sampling. The clinical tool allows the accurate quantification and classification of cysts and cancer from clinical data. Cancer types are further classified into four categories. Computer-assisted image analysis shows great potential for tumor diagnosis and monitoring.
机译:在临床实践中,肾癌诊断是通过手动量化肿瘤大小和增强进行的,这是耗时的并且表现出高变异性。我们提出了一种计算机辅助临床工具,以评估和分类肾肿瘤的肾肿瘤,用于肾脏肿瘤的管理和分类。损伤的定量使用水平集和统计细化步骤,以适应病变的形状。患有患者内部和相互间登记的促进了病变增强的研究。从分段的病变中,使用曲率相关的特征的直方图来通过随机抽样对病变类型进行分类。临床工具可以从临床数据准确定量和分类囊肿和癌症。癌症类型进一步分为四类。计算机辅助图像分析显示肿瘤诊断和监测的巨大潜力。

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