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一种借助来自簇状微钙化图谱的拓扑信息增强的乳腺钼靶CADx方案。

A CADx scheme for mammography empowered with topological information from clustered microcalcifications' atlases.

作者信息

Andreadis Ioannis I, Spyrou George M, Nikita Konstantina S

出版信息

IEEE J Biomed Health Inform. 2015 Jan;19(1):166-73. doi: 10.1109/JBHI.2014.2334491.

Abstract

A computer-aided diagnosis (CADx ) framework for the diagnosis of clustered microcalcifications (MCs) has already been developed, which is based on the analysis of MCs' morphologies,the shape of the cluster they form and the texture of the surrounding tissue. In this study, we investigate the diagnostic information that the relative location of the cluster inside the breast may provide. Breast probabilistic maps are generated and adopted in the CADx pipeline, expecting to empower its diagnostic procedure. We propose a flowchart combining alternative classification algorithms and the aforementioned probabilistic maps in order to provide a final risk for malignancy for new considered mammograms. For the evaluation performance, a large dataset of mammograms provided from the Digital Database of Screening Mammography (DDSM) has been used. The obtained results indicate that the proposed modifications lead to the enhancement of the diagnostic process, as the classification results are further improved. Additionally, a straightforward comparison between the CADx pipeline and the radiologists who assessed the same mammograms, reveal that the CADx pipeline performs toward the right direction, as the sensitivity remains at high levels, while improving both the accuracy, from 51.4% to 69%, and the specificity, from 16.6% to 54.7%.

摘要

一种用于诊断簇状微钙化(MCs)的计算机辅助诊断(CADx)框架已经开发出来,它基于对MCs形态、它们所形成簇的形状以及周围组织纹理的分析。在本研究中,我们调查了乳腺内簇的相对位置可能提供的诊断信息。在CADx流程中生成并采用了乳腺概率图,期望增强其诊断程序。我们提出了一个结合替代分类算法和上述概率图的流程图,以便为新考虑的乳房X光照片提供最终的恶性风险。为了评估性能,使用了来自数字乳腺筛查数据库(DDSM)提供的大量乳房X光照片数据集。获得的结果表明,所提出的修改导致诊断过程得到增强,因为分类结果得到了进一步改善。此外,对评估相同乳房X光照片的CADx流程与放射科医生之间的直接比较表明,CADx流程朝着正确的方向发展,因为敏感性保持在高水平,同时准确性从51.4%提高到69%,特异性从16.6%提高到54.7%。

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