乳房x光照片中使用视觉词的乳腺组织分类

I. Diamant, H. Greenspan, J. Goldberger
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引用次数: 4

摘要

微钙化的存在是乳腺癌发生的重要指标。还有其他癌症风险指标,如乳腺组织密度类型。不同的方法已经开发用于乳腺组织分类在CAD系统中使用。近年来,视觉词(VW)模型已成功地应用于不同的分类任务。我们工作的目标是探索基于大众的各种乳房x线摄影分类任务的方法。我们从乳腺密度分类的挑战开始,然后集中讨论正常组织与微钙化的分类。分类任务使用支持向量机进行。结果表明,该模型对乳腺组织进行分类是可行的。目前,我们正在研究大众对其他乳房x光检查分类问题进行分类的能力,为乳房x光检查诊断支持的自动化工具提供新方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Breast tissue classification in mammograms using visual words
The presence of Microcalcifications is an important indicator for developing breast cancer. Additional indicators for cancer risk exist, such as breast tissue density type. Different methods have been developed for breast tissue classification for use in CAD systems. Recently, the visual words (VW) model has been successfully applied for different classification tasks. The goal of our work is to explore VW based methodologies for various mammography classification tasks. We start with the challenge of classifying breast density and then focus on classification of normal tissue versus Microcalcifications. Classification tasks were performed using Support Vector Machine. The results demonstrate the feasibility to classify breast tissue using our model. Currently, we are investigating VW capability to classify additional mammogram classification problems, suggesting new means for automated tools for mammography diagnosis support.
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