首页> 外文会议>2011 8th IEEE International Symposium on Biomedical Imaging: From Nano to Macro >Effect of breast density in selecting features for normal mammogram detection
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Effect of breast density in selecting features for normal mammogram detection

机译:乳房密度在正常乳房X线照片检测功能选择中的作用

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Breast cancer is the second leading cause of cancer deaths in women in the U.S. Two main problems appear to affect the decision of detecting and diagnosing breast cancer: the accuracy of the CAD systems used, and the radiologists' performance in reading mammograms. The main challenge in designing any CAD system is to maintain a high sensitivity level in detecting the abnormalities as the density of the breast increases. In our work, we introduce a novel idea of having a dual system that will process mammograms differently according to breast tissue density. The sensitivity will be significantly improved while keeping the specificity as high as possible. Mammograms are divided into two distinct categories according to breast density(fatty, and dense). Two main set of features are extracted from both dense and fatty mammograms. A one-class classifier is used for each tissue-density separately to enhance the performance of the overall classification task. Results showed that for each density a specific set of features will perform better than others.
机译:乳腺癌是美国女性死于癌症的第二大主要原因。似乎有两个主要问题影响着检测和诊断乳腺癌的决策:所使用的CAD系统的准确性以及放射科医生在读取乳房X线照片方面的表现。设计任何CAD系统的主要挑战是,随着乳房密度的增加,在检测异常时要保持高灵敏度。在我们的工作中,我们引入了一种具有双重系统的新颖想法,该系统将根据乳房组织密度不同地处理乳房X线照片。在保持尽可能高的特异性的同时,将大大提高灵敏度。乳房X线照片根据乳房密度(脂肪和密集)分为两个不同的类别。从密集乳腺X线照片和脂肪乳腺X线照片中都提取了两个主要特征。一类分类器分别用于每种组织密度,以增强整体分类任务的性能。结果表明,对于每种密度,一组特定的功能将比其他功能表现更好。

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