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A new computer‐aided detection approach based on analysis of local and global mammographic feature asymmetry

机译:一种基于局部和全球乳房X线图特征不对称分析的新计算机辅助检测方法

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Purpose This study aims to develop and test a new computer‐aided detection ( CAD ) approach and scheme, assessing the likelihood of a subject harboring breast abnormalities. Methods The proposed scheme is based on the analysis of both local and global bilateral mammographic feature asymmetries. The level of local or global asymmetry is assessed by analyzing mammographic features extracted from the bilaterally matched regions of interest ( ROI s), or from the entire breast, respectively. The selected local and global feature vectors are combined and classified using a maximum likelihood obtained from a na?ve Bayes classifier. This scheme was evaluated using a leave‐one‐case‐out cross‐validation method that was applied to 243 subjects from mini‐ MIAS and IN breast databases. In addition, the result is compared with a conventional unilateral (or single) image‐based CAD scheme. Results Using a case‐based evaluation approach and an area under curve ( AUC ) of the receiver operating characteristic ( ROC ) as a performance index, the new scheme yielded AUC ?=?0.79?±?0.07, an 8.2% increase compared with AUC ?=?0.73?±?0.08 obtained using the unilateral image‐based CAD scheme. Conclusions This work demonstrates that applying bilateral asymmetry analysis increases the discriminatory power of CAD schemes while optimizing the likelihood assessment of breast abnormalities presence. Therefore, the proposed CAD approach provides the radiologist with beneficial supplementary information and can indicate high‐risk cases.
机译:目的本研究旨在开发和测试新的计算机辅助检测(CAD)方法和方案,评估患乳房异常的受试者的可能性。方法采用拟议方案基于对本地和全球双侧乳房X XMMOCHEA特征不对称的分析。通过分析从双侧匹配的感兴趣区域(ROI S)或来自整个乳房中提取的乳房检查特征来评估局部或全局不对称水平。使用从Na ve Bayes分类器获得的最大可能性组合和分类所选本地和全局特征向量。使用休假 - 一例的交叉验证方法评估该方案,该交叉验证方法应用于来自Mini-MIS和乳房数据库的243个受试者。此外,将结果与常规单侧(或单侧)基于图像的CAD方案进行比较。结果使用基于案例的评价方法和接收器操作特性(ROC)的曲线(AUC)区域作为性能指标,新方案产生了AUC?=?0.79?±0.07,与AUC相比增加8.2% ?=?0.73?±0.08,使用基于单侧图像的CAD方案获得。结论这项工作表明,应用双侧不对称分析增加了CAD方案的歧视力,同时优化了对乳房异常存在的似然评估。因此,所提出的CAD方法提供了有益补充信息的放射科医师,可以表明高风险案例。

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