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Analysis and Diagnostic of Women Breast Cancer Using Mammographic Image

机译:乳腺X线摄影图像对女性乳腺癌的分析与诊断

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The mammographic image analysis to predict the breast cancer is research of interest now. The death rates of women are increased every year due to the lack of knowledge about the breast cancer in many parts of the world. The diagnosis is simple and survivals of the patient are high if the breast cancer is predicted at the early stage accurately. This study presents a new mammographic image analysis model to detect the cancer affected area in the breast. The proposed system consists of three processes, namely, transformation, segmentation and classification. The Non Subsampled Shearlet Transform (NSST), Robust Support Vector Machine (RSVM) and Adaptive Neuro-Fuzzy Inference System (ANFIS) algorithm are utilized for various processes. The proposed system is evaluated under two scenarios namely, visual evaluation and quantitative analysis. The quantitative evaluation reveals that the proposed system achieves a sensitivity, specificity and accuracy rate of 98.73, 96.15 and 98.36%, respectively.
机译:乳腺X线照片图像分析预测乳腺癌是当前研究的热点。由于世界许多地方对乳腺癌的了解不足,妇女的死亡率每年都在增加。如果准确地在早期预测出乳腺癌,则诊断很简单并且患者的存活率很高。这项研究提出了一种新的乳腺X射线摄影图像分析模型,以检测乳房中受癌症影响的区域。所提出的系统包括三个过程,即变换,分割和分类。非子采样的Shearlet变换(NSST),鲁棒支持向量机(RSVM)和自适应神经模糊推理系统(ANFIS)算法被用于各种过程。所提出的系统是在两种情况下进行评估的,即视觉评估和定量分析。定量评估表明,该系统的灵敏度,特异性和准确率分别为98.73、96.15和98.36%。

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