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Automated approach for detection of ischemic stroke using Delaunay Triangulation in brain MRI images

机译:使用Delaunay三角测量在脑MRI图像中检测缺血性脑卒中的自动化方法

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It is difficult to develop an accurate algorithm to detect the stroke lesions using magnetic resonance imaging (MRI) images due to variation in different lesion sizes, variation in morphological structure, and similarity in intensity of lesion with normal brain in three types of stroke, namely partial anterior circulation syndrome (PACS), lacunar syndrome (LACS) and total anterior circulation stroke (TACS). In this paper, we have integrated the advantages of Delaunay triangulation (DT) and fractional order Darwinian particle swarm optimization (FODPSO), called DT-FODPSO technique for automatic segmentation of the structure of the stroke lesion. The approach was validated on 192 MRI images obtained from different stroke subjects. Statistical and morphological features were extracted and classified according to the Oxfordshire community stroke project (OCSP) using support vector machine (SVM) and random forest (RF) classifiers. The method effectively detected the stroke lesions and achieved promising results with an average sensitivity of 0.93, accuracy of 0.95, JI of 0.89 and Dice similarity index of 0.93 using RF classifier. These promising results indicates the DT based optimized approach is efficient in detecting ischemic stroke and it can aid the neuro-radiologists to validate their routine screening.
机译:由于不同病变尺寸的变化,形态结构的变化,在三种类型的中风中,使用磁共振成像(MRI)图像,难以使用磁共振成像(MRI)图像来检测中风病变的准确算法来检测中风病变。部分前循环综合征(PACS),LECUNAR综合征(LAC)和总前循环中风(TACS)。在本文中,我们已经综合了Delaunay三角测量(DT)和分数阶Darwinian粒子群优化(FODPSO)的优点,称为DT-FoDPSO技术,用于自动分割行程病变的结构。该方法在192年的MRI图像中验证了从不同中风受试者获得的。根据牛津郡群落中风项目(OCSP)使用支持向量机(SVM)和随机森林(RF)分类器,提取统计和形态特征。该方法有效地检测行程病变并实现了有希望的效率,平均灵敏度为0.93,精度为0.95,ji,0.89的骰子相似性0.93,使用RF分类器。这些有希望的结果表明,基于DT的优化方法是检测缺血性卒中的有效方法,它可以帮助神经放​​射科医生验证其常规筛查。

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