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A COMPARISON OF CLUSTERED MICROCALCIFICATIONS AUTOMATED DETECTION METHODS IN DIGITAL MAMMOGRAM

机译:数字乳房X线图中集群微钙化自动检测方法的比较

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This paper presents the comparison of three automated methods for an early detection of breast cancer. It specifically detects clusters of microcalcifications (MCCs), which are associated with a high probability of malignancy. The proposed methods are based on several image processing concepts, such as morphological processing, fractal analysis, adaptive wavelet transform, local maxima detection and high-order statistics (HOS) tests. We apply these methods on a set of mammograms (MIAS database) to test their efficiency and computation time. It shows that the HOS test proved to be the most efficient, and give reliable results for every mammogram tested.
机译:本文介绍了三种自动化方法对早期检测乳腺癌的比较。它专门检测与恶性肿瘤高概率相关的微钙化(MCC)的簇。所提出的方法基于多种图像处理概念,例如形态学处理,分形分析,自适应小波变换,局部最大值检测和高阶统计(HOS)测试。我们在一组乳房X光线照片(MIAS数据库)上应用这些方法以测试其效率和计算时间。它表明,HOS测试被证明是最有效的,并且对测试的每种乳房图提供可靠的结果。

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