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Improving Breast Mass Detection using Histogram of Oriented Gradients

机译:使用定向梯度直方图改善乳房质量检测

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In this paper we present a simple technique that can be employed to filter the output of the computerized mass detection schemes. The sensitivity of computer-aided detection (CAD) systems is high; nevertheless specificity is not due to high false positive (FP) detection rates. Our approach is based on Histogram of Oriented Gradients (HOG) descriptor for filtering the mass and normal tissue regions. After the descriptors are computed, Support Vector Machines (SVM) are applied to classify the identified masses. The devised technique was tested on 1881 regions of interest (ROIs) acquired using a previously proposed CAD system. Extensive simulations are conducted to illustrate the capacity of the HOG descriptor to improve the performances of mass detection systems.
机译:在本文中,我们提出了一种简单的技术,可以用来过滤计算机化质量检测方案的输出。计算机辅助检测(CAD)系统的灵敏度很高;但是,特异性不是由于高假阳性(FP)检测率所致。我们的方法基于定向梯度直方图(HOG)描述符,用于过滤肿块和正常组织区域。在计算完描述符后,应用支持向量机(SVM)对识别出的质量进行分类。使用先前提出的CAD系统在1881个感兴趣的区域(ROI)上测试了该设计技术。进行了广泛的仿真,以说明HOG描述子改善质量检测系统性能的能力。

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