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首页> 外文期刊>Journal of medical systems >Three-dimensional texture analysis of renal cell carcinoma cell nuclei for computerized automatic grading.
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Three-dimensional texture analysis of renal cell carcinoma cell nuclei for computerized automatic grading.

机译:肾细胞癌细胞核的三维纹理分析,用于计算机自动分级。

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摘要

The extraction of important features in cancer cell image analysis is a key process in grading renal cell carcinoma. In this study, we analyzed the three-dimensional chromatin texture of cell nuclei based on digital image cytometry. Individual images of 2,423 cell nuclei were extracted from 80 renal cell carcinomas (RCCs) using confocal laser scanning microscopy (CLSM). First, we applied the 3D texture mapping method to render the volume of entire tissue sections. Then, we determined the chromatin texture quantitatively by calculating 3D gray level co-occurrence matrices and 3D run length matrices. Finally, to demonstrate the suitability of 3D texture features for classification, we performed a discriminant analysis. In addition, we conducted a principal component analysis to obtain optimized texture features. Automatic grading of cell nuclei using 3D texture features had an accuracy of 78.30%. Combining 3D textural and 3D morphological features improved the accuracy to 82.19%.
机译:癌细胞图像分析中重要特征的提取是肾细胞癌分级的关键过程。在这项研究中,我们基于数字图像细胞术分析了细胞核的三维染色质纹理。使用共聚焦激光扫描显微镜(CLSM)从80个肾细胞癌(RCC)中提取了2,423个细胞核的单个图像。首先,我们应用了3D纹理映射方法来渲染整个组织切片的体积。然后,我们通过计算3D灰度共现矩阵和3D游程长度矩阵来定量确定染色质纹理。最后,为了证明3D纹理特征适用于分类,我们进行了判别分析。此外,我们进行了主成分分析以获得优化的纹理特征。使用3D纹理特征对细胞核进行自动分级的准确性为78.30%。将3D纹理和3D形态特征相结合,可以将准确性提高到82.19%。

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