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Mammography Image Segmentation: Chan-Vese Active Contour and Localised Active Contour Approach

机译:乳腺摄影图像分割:Chan-Vese活动轮廓和局部活动轮廓方法

摘要

Breast cancer is one of the most common diseases diagnosed among female cancer patients. Early detection of breast cancer is needed to reduce the risk of fatality of this disease as no cure has been found yet for this illness. This research is conducted to improve the Gradient Vector Flow (GVF) Snake Active Contour segmentation technique in mammography segmentation. Segmentation of the mammogram image is done to segment lesions existence using Chan-Vese Active Contour and Localized Active Contour. Besides that, the effectiveness of these both methods are then compared and chosen to be the best method. Digital Database of Screening Mammograms (DDSM) is used for the purpose of screening. First, the images undergo pre-processing process using the Gaussian Low Pass Filter to remove unwanted noise. After that, contrast enhancement applied to the images. Segmentation of mammograms is then conducted by using Chan-Vese Active Contour and Localized Active Contour method. The result shows that Chan-Vese technique outperforms Localized Active Contour with 90% accuracy.
机译:乳腺癌是女性癌症患者中最常见的疾病之一。由于尚未找到治愈这种疾病的方法,因此需要及早发现乳腺癌以降低该疾病致死的风险。进行这项研究以改善乳腺X线照片分割中的梯度矢量流(GVF)蛇活动轮廓分割技术。使用Chan-Vese Active Contour和Localized Active Contour对乳房X线照片图像进行分割,以分割病变的存在。除此之外,然后将这两种方法的有效性进行比较并选择为最佳方法。筛查乳房X线照片的数字数据库(DDSM)用于筛查目的。首先,使用高斯低通滤波器对图像进行预处理,以去除不需要的噪声。之后,将对比度增强应用于图像。然后使用Chan-Vese Active Contour和Localized Active Contour方法对乳房X线照片进行分割。结果表明,Chan-Vese技术以90%的精度优于局部活动轮廓。

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