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Analysis of Stroke using texture features

机译:使用纹理特征分析中风

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摘要

Analyzing the occurrence of Stroke is a challenging issue among different patients. The research work presented here is a two phase classification method in which the initial phase automatically detects the stroke affected and normal Computed Tomography (CT) images while the second phase classifies the hemorrhagic and ischemic stroke from a set of stroke affected images. The proposed method has been tested with a number of CT brain images and has achieved promising results. A classification accuracy of 91% has been obtained by SVM(Support Vector Machine ). The performance evaluation of the proposed approach validates its effectiveness and robustness.
机译:分析中风的发生是不同患者之间的具有挑战性的问题。这里提出的研究工作是两相分类方法,其中初始阶段自动检测来自一组中风影响的图像的出血性和缺血性脑卒中的中风影响和正常计算断层摄影(CT)图像。所提出的方法已经用多种CT脑图像进行了测试,并取得了有希望的结果。 SVM(支持向量机)获得了91%的分类精度。建议方法的性能评估验证了其有效性和鲁棒性。

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