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Automated detection of micro calcification clusters in mammograms

机译:自动检测乳房X线图中的微钙化簇

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Mammography is the most efficient modality for detection of breast cancer at early stage. Microcalcifications are tiny bright spots in mammograms and can often get missed by the radiologist during diagnosis. The presence of microcalcification clusters in mammograms can act as an early sign of breast cancer. This paper presents a completely automated computer-aided detection (CAD) system for detection of microcalcification clusters in mammograms. Unsharp masking is used as a preprocessing step which enhances the contrast between microcalcifications and the background. The preprocessed image is thresholded and various shape and intensity based features are extracted. Support vector machine (SVM) classifier is used to reduce the false positives while preserving the true microcalcification clusters. The proposed technique is applied on two different databases i.e DDSM and private database. The proposed technique shows good sensitivity with moderate false positives (FPs) per image on both databases.
机译:乳房X线照相是早期检测乳腺癌的最有效的方式。微钙化是乳房X线照片的微小亮点,并且在诊断期间,放射科医师通常可以错过。乳房X光检查中的微钙化簇的存在可以作为乳腺癌的早期迹象。本文介绍了一种完全自动化的计算机辅助检测(CAD)系统,用于检测乳房X光检查中的微钙化簇。 Unsharp屏蔽用作预处理步骤,其增强了微钙化和背景之间的对比度。预处理的图像是阈值的,提取各种形状和强度的特征。支持向量机(SVM)分类器用于减少假阳性,同时保留真正的微钙化群集。所提出的技术应用于两个不同的数据库I.E DDSM和专用数据库。所提出的技术在两个数据库上显示了每个图像上的适度假阳性(FPS)的良好敏感性。

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