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Automatic segmentation algorithm of breast ultrasound image based on improved level set algorithm

机译:基于改进水平集算法的乳房超声图像自动分割算法

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Breast cancer is one of the leading causes of death in women worldwide. Therefore, ultrasound examination has become an important method of detecting breast tumors. However, given the special features of ultrasonic imaging, lesion segmentation is a challenging task in computer-aided diagnosis systems. In this study, we proposed a complex and automated approach to segment breast ultrasound images. In the preliminary contour selection, an efficient method was performed by preprocessing of breast ultrasound images, selecting the iterative threshold, filtrating candidate areas, and ranking remaining areas to confirm the region of interest (ROI). After the selection of the ROI, a seed point could be determined. Then, region growing started from the selected seed to obtain a preliminary contour that will serve as the intermediate result. Finally a novel and improved level set algorithm was proposed to confirm the final contour, combined with global statistics, local statistics, and region-based energy constraint. The proposed algorithm was tested on a database of 44 breast ultrasound images, and the experimental results proved high accuracy. Compared with the classic Chan-Vese model, the proposed method increases the similarity rate and reduces the error rate.
机译:乳腺癌是全世界女性死亡的主要原因之一。因此,超声检查已成为检测乳腺肿瘤的重要方法。但是,鉴于超声成像的特殊功能,在计算机辅助诊断系统中,病变分割是一项艰巨的任务。在这项研究中,我们提出了一种复杂且自动化的方法来分割乳房超声图像。在初步轮廓选择中,通过对乳房超声图像进行预处理,选择迭代阈值,过滤候选区域以及对其余区域进行排序以确认感兴趣区域(ROI),来执行一种有效的方法。选择ROI之后,可以确定种子点。然后,从所选种子开始区域生长以获得初步轮廓,该轮廓将用作中间结果。最后,结合全局统计,局部统计和基于区域的能量约束,提出了一种新颖的改进的水平集算法来确定最终轮廓。该算法在44张乳房超声图像数据库上进行了测试,实验结果证明了该算法的准确性。与经典的Chan-Vese模型相比,该方法提高了相似率,降低了错误率。

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