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Computer aided analysis of prostate histopathology images to support a refined Gleason grading system

机译:前列腺组织病理学图像的计算机辅助分析支持精细格雷替赛分级系统

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The Gleason grading system used to render prostate cancer diagnosis has recently been updated to allow more accurate grade stratification and higher prognostic discrimination when compared to the traditional grading system. In spite of progress made in trying to standardize the grading process, there still remains approximately a 30% grading discrepancy between the score rendered by general pathologists and those provided by experts while reviewing needle biopsies for Gleason pattern 3 and 4, which accounts for more than 70% of daily prostate tissue slides at most institutions. We propose a new computational imaging method for Gleason pattern 3 and 4 classification, which better matches the newly established prostate cancer grading system. The computer-aided analysis method includes two phases. First, the boundary of each glandular region is automatically segmented using a deep convolutional neural network. Second, color, shape and texture features are extracted from superpixels corresponding to the outer and inner glandular regions and are subsequently forwarded to a random forest classifier to give a gradient score between 3 and 4 for each delineated glandular region. The F_1 score for glandular segmentation is 0.8460 and the classification accuracy is 0.83±0.03.
机译:最近已经更新了用于使前列腺癌诊断的Glason分级系统,以允许与传统评分系统相比,允许更准确的等级分层和更高的预后鉴别。尽管在尝试标准化分级过程方面取得了进展,但在一般病理学家和专家提供的分数之间仍有大约30%的分级差异,同时审查针对格里森图案3和4的针活检,这占了超过70%的每日前列腺组织在大多数机构上幻灯片。我们提出了一种新的计算成像方法,用于Gleason模式3和4分类,其更好地匹配新建立的前列腺癌分级系统。计算机辅助分析方法包括两个阶段。首先,使用深卷积神经网络自动分割每个腺区域的边界。第二,颜色,形状和纹理特征从对应于外腺和内腺区域的超像素提取,随后被转发到随机林分类器,以在每个描绘的腺体区域给出3到4之间的梯度得分。腺体分割的F_1分数为0.8460,分类精度为0.83±0.03。

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