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Diagnostic Accuracy of Ovarian Cyst Segmentation in Bmode Ultrasound Images

机译:B模式超声图像中卵巢囊肿分割的诊断准确性

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Cystic and polycystic ovary syndrome is an endocrine disorder affecting women in the fertile age. The Moore Neighbor Contour, Watershed Method, Active Contour Models, and a recent method based on Active Contour Model with Selective Binary and Gaussian Filtering Regularized Level Set (ACM&SBGFRLS) techniques were used in this paper to detect the border of the ovarian cyst from echography images. In order to analyze the efficiency of the segmentation an original computer aided software application developed in MATLAB was proposed. The results of the segmentation were compared and evaluated against the reference contour manually delineated by a sonography specialist. Both the accuracy and time complexity of the segmentation tasks are investigated. The Fréchet distance (FD) as a similarity measure between two curves and the area error rate (AER) parameter as the difference between the segmented areas are used as estimators of the segmentation accuracy. In this study, the most efficient methods for the segmentation of the ovarian were analyzed cyst. The research was carried out on a set of 34 ultrasound images of the ovarian cyst.
机译:囊性和多囊卵巢综合征是一种影响妇女在肥沃时期的内分泌疾病。本文使用了摩尔邻居轮廓,流域方法,主动轮廓模型和基于具有选择性二进制和高斯滤波正则级别的(ACM&SBGFRLS)技术的有源轮廓模型的最近方法,以检测卵巢囊肿的边界。为了分析分割的效率,提出了Matlab中开发的原始计算机辅助软件应用程序。比较分割结果,并针对由超声专家手动描绘的参考轮廓评估。调查了分割任务的准确性和时间复杂性。作为两条曲线和区域误差率(AER)参数之间的相似性测量的FRéchet距离(FD)用作分段区域之间的差异作为分割精度的估计器。在这项研究中,分析了卵巢术分割的最有效方法。该研究是在卵巢囊肿的一组34个超声图像上进行的。

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