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Texture-Based Feature Extraction for the Microcalcification from Digital Mammogram Images

机译:基于纹理的微钙化从数字乳房图图像的特征提取

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This paper describes our ongoing efforts to provide efficient and accurate classification of microcalcification clusters in mammogram images. In this paper, a study of the characteristics of true microcalcifications compared to falsely detected microcalcifications is carried out using first and second order statistical texture analysis techniques. These features are generated in order to reduce the false positive (FP) ratio for the mammogram images. The statistical method presented here can successfully reduce the ratio of false positives (FP) by 18% without affecting the ratio of true positives (TP) which is currently at 98%.
机译:本文介绍了我们正在进行的努力,提供乳房X型图像中的微钙化簇的高效和准确分类。本文使用第一和二阶统计纹理分析技术进行了与虚假检测的微透析相比真正微透露性的特性的研究。生成这些特征,以减少乳房X线图图像的误报(FP)比率。这里呈现的统计方法可以成功将假阳性(FP)的比例降低18%,而不会影响当前98%的真实阳性(TP)的比率。

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