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A Comprehensive Classification System for Breast Cancer Diagnosis Based on Dynamic Optical Breast Imaging

机译:基于动态光学乳腺成像的乳腺癌诊断综合分类系统

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The Dynamic Optical Breast Imaging technology is a promising breast cancer diagnosis approach based on tumor angiogenesis or vascular change detection which generally causes an increased blood volume in tumor. By applying sustained pressure to breast tissue under red light, the tissue with abnormal vascularization exhibits different dynamic behaviors of optical properties compared with normal breast tissue. In this paper, we explore a comprehensive classification method to discriminate malignant from benign lesions based on the Dynamic Optical breast Imaging technology. Firstly, we propose an automatic Point of Reference (POR) and Point of Interest (POI) selection algorithm from input images for following comparison procedures. Secondly, an automatic Margin Shape Patterns (MSP) recognition algorithm for Region of Interest (ROI) is explored. Furthermore, we define a new significant temporal and contextual feature named Temporal Curves Similarity Index (TCSI), with the aim of better characterizing and quantifying the difference inside the same breast. Finally, Support Vector Machine (SVM) is utilized for comprehensive classification. Experimental results, sensitivity of 91% and specificity of 71%, on our clinical database verify the efficiency of the proposed method.
机译:动态光学乳腺成像技术是一种有前途的乳腺癌诊断方法,其基于肿瘤血管生成或血管变化检测,通常会导致肿瘤血容量增加。通过在红光下对乳腺组织施加持续压力,与正常乳腺组织相比,具有异常血管化的组织表现出不同的光学特性动态行为。在本文中,我们探索基于动态光学乳腺成像技术的一种从良性病变中区分恶性肿瘤的综合分类方法。首先,我们提出了一种从输入图像中自动选择参考点(POR)和兴趣点(POI)的算法,用于以下比较程序。其次,研究了感兴趣区域(ROI)的自动边缘形状图案(MSP)识别算法。此外,我们定义了一个新的重要时态和语境特征,称为时间曲线相似性索引(TCSI),目的是更好地表征和量化同一乳房内的差异。最后,利用支持向量机(SVM)进行全面分类。在我们的临床数据库上的实验结果,灵敏度为91%,特异性为71%证明了该方法的有效性。

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