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Automatic detection of microcalcification clusters using wavelet transformation and fuzzy logic.

机译:使用小波变换和模糊逻辑自动检测微钙化簇。

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An estimated 215,990 new cases of breast cancer are expected to occur among women in the United States during 2004. Breast cancer ranks second among cancer deaths in women. Primary prevention seems impossible since the causes of this disease still remain unknown. Early detection of breast cancer is important. Computer-aided mammography diagnosis is an important and challenging task. An early sign of 30--50 percent of breast cancer cases detected mammographically is the appearance of clusters Mammographically detected clusters of fine, granular microcalcifications are an early sign 30--50 percent of breast cancer cases. We present a novel approach to microcalcification detection. We employ a fuzzy entropy principle and a fuzzy set theory to fuzzify the images. We use a wavelet transformation to enhance the fuzzified images. A thresholding method using both local and global thresholding is exploited to segment the microcalcifications. The local thresholding method is based on the local variances and means of two adaptive filter windows with different sizes. The global thresholding method is a p-tile scheme. We apply a denoising method based on a spatial relationship function to removeisolating spots. The clusters are detected and labeled. The free-response operating characteristic curve (FROC) is used to evaluate performance. Our method detects microcalcifications in very dense breasts. Compared to the results of existing algorithms on the same set of data, our algorithm achieves better results.
机译:在2004年,美国女性中预计将发生215,990例新的乳腺癌病例。乳腺癌在女性癌症死亡中排名第二。初级预防似乎是不可能的,因为这种疾病的原因仍然未知。早期发现乳腺癌很重要。计算机辅助的乳腺X线摄影诊断是一项重要且具有挑战性的任务。乳房X光检查发现的乳腺癌病例的30--50%的早期迹象是簇的出现。乳房X光检查发现的细颗粒微钙化簇是乳腺癌病例的30--50%的早期迹象。我们提出了一种微钙化检测的新方法。我们采用模糊熵原理和模糊集理论对图像进行模糊处理。我们使用小波变换来增强模糊图像。利用局部和全局阈值化的阈值化方法来分割微钙化。局部阈值化方法基于局部方差和两个具有不同大小的自适应滤波器窗口的均值。全局阈值方法是p-tile方案。我们应用基于空间关系函数的去噪方法来去除孤立点。群集被检测并标记。自由响应特性曲线(FROC)用于评估性能。我们的方法可以检测非常密集的乳房中的微钙化。与在相同数据集上现有算法的结果相比,我们的算法取得了更好的结果。

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