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首页> 外文期刊>Journal of biomedical optics >Quantitative analysis of in vivo high-resolution microendoscopic images for the detection of neoplastic colorectal polyps
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Quantitative analysis of in vivo high-resolution microendoscopic images for the detection of neoplastic colorectal polyps

机译:体内高分辨率显微内镜图像的定量分析,用于检测结直肠息肉

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摘要

Colonoscopy is routinely performed for colorectal cancer screening but lacks the capability to accurately characterize precursor lesions and early cancers. High-resolution microendoscopy (HRME) is a low-cost imaging tool to visualize colorectal polyps with subcellular resolution. We present a computer-aided algorithm to evaluate HRME images of colorectal polyps and classify neoplastic from benign lesions. Using histopathology as the gold standard, clinically relevant features based on luminal morphology and texture are quantified to build the classification algorithm. We demonstrate that adenomatous polyps can be identified with a sensitivity and specificity of 100% and 80% using a two-feature linear discriminant model in a pilot test set. The classification algorithm presented here offers an objective framework to detect adenomatous lesions in the colon with high accuracy and can potentially improve real-time assessment of colorectal polyps.
机译:结肠镜检查通常用于大肠癌筛查,但缺乏准确表征前体病变和早期癌症的能力。高分辨率显微内窥镜检查(HRME)是一种低成本的成像工具,可通过亚细胞分辨率可视化结直肠息肉。我们提出了一种计算机辅助算法,以评估结直肠息肉的HRME图像并将良性病变的赘生物分类。以组织病理学为金标准,对基于管腔形态和质地的临床相关特征进行量化,以建立分类算法。我们证明,在中试测试集中使用两特征线性判别模型,可以识别敏感性和特异性分别为100%和80%的腺瘤性息肉。这里介绍的分类算法提供了一个客观的框架,可以高精度地检测结肠中的腺瘤病灶,并且可以潜在地改善大肠息肉的实时评估。

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