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Variation in algorithm implementation across radiomics software

机译:整个Radiomics软件的算法实现方式有所不同

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摘要

Given the increased need for consistent quantitative image analysis, variations in radiomics feature calculations due to differences in radiomics software were investigated. Two in-house radiomics packages and two freely available radiomics packages, MaZda and IBEX, were utilized. Forty regions of interest (ROIs) from 40 digital mammograms were studied along with 39 manually delineated ROIs from the head and neck (HN) computed tomography (CT) scans of 39 patients. Each package was used to calculate first-order histogram and second-order gray-level co-occurrence matrix (GLCM) features. Friedman tests determined differences in feature values across packages, whereas intraclass-correlation coefficients (ICC) quantified agreement. All first-order features computed from both mammography and HN cases (except skewness in mammography) showed significant differences across all packages due to systematic biases introduced by each package; however, based on ICC values, all but one first-order feature calculated on mammography ROIs and all but two first-order features calculated on HN CT ROIs showed excellent agreement, indicating the observed differences were small relative to the feature values but the bias was systematic. All second-order features computed from the two databases both differed significantly and showed poor agreement among packages, due largely to discrepancies in package-specific default GLCM parameters. Additional differences in radiomics features were traced to variations in image preprocessing, algorithm implementation, and naming conventions. Large variations in features among software packages indicate that increased efforts to standardize radiomics processes must be conducted.
机译:鉴于对一致的定量图像分析的需求不断增加,研究了由于radiomics软件的差异而导致的radiomics特征计算的变化。使用了两个内部放射学软件包和两个可免费获得的放射学软件包MaZda和IBEX。研究了来自40个数字乳房X线照片的40个感兴趣区域(ROI),以及来自39位患者的头颈(HN)计算机断层扫描(CT)扫描的39个手动描绘的ROI。每个软件包都用于计算一阶直方图和二阶灰度共现矩阵(GLCM)特征。弗里德曼(Friedman)测试确定了包装之间特征值的差异,而类内相关系数(ICC)量化了一致性。由于每个包装所引起的系统性偏差,所有从乳房X线摄影和HN病例计算出的一阶特征(乳房X线摄影的偏斜除外)在所有包装中均显示出显着差异。但是,基于ICC值,在乳房X线照片ROI上计算的除一个一级特征以外的其他特征以及在HN CT ROI上计算的除两个外的所有一级特征均显示出极好的一致性,表明相对于特征值观察到的差异很小,但偏差为系统的。从这两个数据库计算出的所有二阶特征均存在显着差异,并且在软件包之间显示出较差的一致性,这在很大程度上是由于特定于软件包的默认GLCM参数之间的差异。放射线学功能的其他差异可追溯到图像预处理,算法实现和命名约定的变化。软件包之间的功能差异很大,这表明必须加大力度标准化放射过程。

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