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New texture features for improved differentiation of hyperplastic polyps from adenomas via computed tomography colonoscopy

机译:新的质地特征可通过计算机断层扫描结肠镜检查改善增生性息肉与腺瘤的区别

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Feature classification plays an important role in computer-aided diagnosis (CADx) of suspicious lesions. While many texture features have been extracted and applied for various clinical purposes, Haralick's feature extraction method is of great interest, because it gives a series of texture measures on the image intensity correlations among the image pixels across an image slice. Based on the Haralick's method, we proposed a new set of features for CADx of colonic polyps or differentiation of hyperplastic polyps from adenomas. We evaluated this new feature set by means of random forest (RF) classifiers on a database of 153 polyps, including 116 adenomas and 37 hyperplastic polyps. The classification results were documented quantitatively by the Receiver Operating Characteristics (ROC) analysis and the merit of area under the ROC curve (AUC), which are well-established evaluation criteria to various classifiers. Experimental results demonstrated that the new feature set significantly improved the CADx performance for colonic polyps.
机译:特征分类在可疑病变的计算机辅助诊断(CADX)中起着重要作用。虽然已经提取了许多纹理特征并应用了各种临床目的,但是Haralick的特征提取方法非常兴趣,因为它给出了一系列纹理测量图像切片上图像像素之间的图像强度相关性的纹理测量。基于Haralick的方法,我们提出了一种新的结肠息肉或增生息肉的分化的新功能。我们评估了通过在153个息肉的数据库上的随机森林(RF)分类器设置的新功能,包括116个腺瘤和37个增生息肉。分类结果通过接收器操作特征(ROC)分析和ROC曲线(AUC)下的区域的优点来定量记录,这是对各种分类器的良好评估标准。实验结果表明,新功能集明显提高了结肠息肉的CADX性能。

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