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Prediction of Near-term Breast Cancer Risk using Local Region-based Bilateral Asymmetry Features in Mammography

机译:利用乳房X线照相术中基于局部区域的双侧不对称特征预测近期乳腺癌风险

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This study proposed a near-term breast cancer risk assessment model based on local region bilateral asymmetry features in Mammography. The database includes 566 cases who underwent at least two sequential FFDM examinations. The 'prior' examination in the two series all interpreted as negative (not recalled). In the "current" examination, 283 women were diagnosed cancers and 283 remained negative. Age of cancers and negative cases completely matched. These cases were divided into three subgroups according to age: 152 cases among the 37-49 age-bracket, 220 cases in the age-bracket 50-60, and 194 cases with the 61-86 age-bracket. For each image, two local regions including strip-based regions and difference-of-Gaussian basic element regions were segmented. After that, structural variation features among pixel values and structural similarity features were computed for strip regions. Meanwhile, positional features were extracted for basic element regions. The absolute subtraction value was computed between each feature of the left and right local-regions. Next, a multi-layer perception classifier was implemented to assess performance of features for prediction. Features were then selected according stepwise regression analysis. The AUC achieved 0.72, 0.75 and 0.71 for these 3 age-based subgroups, respectively. The maximum adjustable odds ratios were 12.4, 20.56 and 4.91 for these three groups, respectively. This study demonstrate that the local region-based bilateral asymmetry features extracted from CC-view mammography could provide useful information to predict near-term breast cancer risk.
机译:该研究提出了一种基于乳房X线摄影局部双侧不对称特征的近期乳腺癌风险评估模型。该数据库包括566个案例,接受了至少两个顺序FFDM检查。 “先前”检查在两个系列中的检查都被解释为负(未召回)。在“目前”检查中,诊断出283名妇女癌症,283个持续负面。癌症的年龄和消极病例完全匹配。这些病例根据年龄段分为三个亚组:152例,在37-49岁的年龄 - 支架中,220例,年龄 - 支架50-60件,194例61-86年龄 - 支架。对于每个图像,分段有两个包括基于条带的区域和高斯基本元素区域的局部区域。之后,为条带区域计算像素值和结构相似度特征之间的结构变化特征。同时,为基本元区提取了位置特征。绝对减法值在左侧和右本地区域的每个特征之间计算。接下来,实施多层感知分类器以评估预测的特征的性能。然后根据逐步回归分析选择特征。对于这3个基于年龄的亚组,AUC达到0.72,0.75和0.71。对于这三组,最大可调差比率分别为12.4,20.56和4.91。本研究表明,从CC视图乳房X线摄影中提取的基于局部区域的双侧不对称特征可以提供预测近期乳腺癌风险的有用信息。

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