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A Rapid Automatic Brain Tumor Detection Method for MRI Images Using Modified Minimum Error Thresholding Technique

机译:使用改进的最小误差阈值技术的MRI图像快速自动脑肿瘤检测方法

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摘要

This proposed work is aimed to develop a rapid automatic method to detect the brain tumor from T2-weighted MRI brain images using the principle of modified minimum error thresholding (MET) method. Initially, modified MET method is applied to produce well segmented and sub-structural clarity for MRI brain images. Further, using FCM clustering the appearance of tumor area is refined. The obtained results are compared with corresponding ground truth images. The quantitative measures of results were compared with the results of those conventional methods using the metrics predictive accuracy (PA), dice coefficient (DC), and processing time. The PA and DC values of the proposed method attained maximum value and processing time is minimum while compared to conventional FCM and k-means clustering techniques. This proposed method is more efficient and faster than the existing segmentation methods in detecting the tumor region from T2-weighted MRI brain images.
机译:这项拟议的工作旨在利用修正的最小误差阈值(MET)方法的原理,开发一种从T2加权MRI脑图像中检测脑肿瘤的快速自动方法。最初,修改后的MET方法用于为MRI脑部图像产生良好的分割和子结构清晰度。此外,使用FCM聚类可以改善肿瘤区域的外观。将获得的结果与相应的地面真实图像进行比较。使用指标预测精度(PA),骰子系数(DC)和处理时间,将结果的定量度量与那些常规方法的结果进行比较。与传统的FCM和k均值聚类技术相比,该方法的PA和DC值达到最大值,处理时间最短。从T2加权MRI脑图像检测肿瘤区域方面,该方法比现有的分割方法更有效,更快。

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