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Microcalcification oriented content-based mammogram retrieval for breast cancer diagnosis

机译:基于微钙化的基于内容的乳房X线照片检索对乳腺癌的诊断

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Microcalcifications (MCs) provide a significant early indication of breast malignancy. This work introduces a supervised scheme for malignancy risk assessment of mammograms containing MCs. The proposed scheme employs shape and textural features as input to a support vector machine (SVM) ensemble, in order to perform content-based image retrieval (CBIR) of mammograms. The retrieval performance of the proposed scheme has been evaluated by taking into account the variation of MCs morphology as defined in BI-RADS. In our experiments, we use a set of 87 mammograms containing MCs, obtained from the widely adopted DDSM database for screening mammography. The experimental results demonstrate that the proposed supervised CBIR scheme addresses effective retrieval of MCs mammograms outperforming relevant unsupervised schemes.
机译:微钙化(MCS)提供了乳腺恶性肿瘤的重要早期迹象。这项工作介绍了含有MCS乳房X线照片的恶性风险评估监督方案。该方案采用形状和纹理特征作为输入到支持向量机(SVM)合奏的输入,以便执行基于内容的乳房X光图的图像检索(CBIR)。通过考虑到Bi-RAD中定义的MCS形态的变化来评估所提出的方案的检索性能。在我们的实验中,我们使用一组包含MCS的87个乳房X线照片,从广泛采用的DDSM数据库获得了用于筛选乳房X线摄影。实验结果表明,拟议的监督CBIR方案解决了有效检索MCS乳房X线图的表现优于相关的无监督计划。

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