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BICAD: Breast image computer aided diagnosis for standard BIRADS 1 and 2 in calcifications

机译:BICAD:乳房图像计算机辅助诊断标准Birads 1和2在钙化中

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The Breast Imaging Reporting and Data System (BIRADS) was developed by the American College of Radiologists as a standard of comparison for rating mammograms and breast ultrasound images. It sets up a classification for the Level of Suspicion (LOS) of the possibility of a breast cancer. In this paper we present an automated image analyzing system that finds calcifications based on the standard BIRADS 1 and 2. For our goal, we studied the digital mammography database in DICOM format provided by the Department of Radiology of the Hospital Universitario de Puebla. We used The Difference of Gaussian (DOG) filter to find edges of the forms of the different calcifications and a back-propagation Artificial Neural Network (ANN) for the pattern recognition of the BIRADS 1 and 2 cases. This method allowed us to automate the segmentation of the calcifications with a low computational cost. We achieved the pattern recognition with a high level of sensitivity of 0.9629 and specificity of 0.9920.
机译:乳房成像报告和数据系统(Birads)由美国放射科医师作为评级乳房X线照片和乳房超声图像的比较标准。 它为乳腺癌可能性的怀疑水平(LOS)制定了分类。 在本文中,我们提出了一种自动图像分析系统,该系统基于标准Birads 1和2找到钙化。对于我们的目标,我们研究了DICOM格式的数字乳房X线摄影数据库,由医院大学De Puebla的放射科提供的DICOM格式。 我们利用高斯(狗)滤波器的差异来查找不同钙化形式的边缘和用于彼得德1和2例的模式识别的模式识别的反向传播人工神经网络(ANN)。 该方法使我们能够以低计算成本自动化钙化的分割。 我们实现了0.9629的高浓度和0.9920的特异性的模式识别。

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