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Comparison of Cubic SVM with Gaussian SVM: Classification of Infarction for detecting Ischemic Stroke

机译:立方SVM与高斯SVM的比较:检测缺血性脑卒中梗死分类

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Ischemic Stroke is a condition whereby the blood supply to the brain is disrupted or reduced due to a blockage and if it is not treated immediately will cause the death of the brain.A decrease in blood flow resulting in dead brain tissue can be called an infarction.The classifications of infarction help the health sector in detecting ischemic stroke in patients.In medicine, CT scans can be used to identify Infarctions and for detecting Ischemic Stroke in patients.Therefore, studying the CT scans is crucial in helping doctors obtain functional information about the surrounding brain tissues which will be used for detecting infarction in the brain.Since it is important to pay more attention at the time of choosing the best method that gives the best results, therefore this study proposes to compare between two types of methods, Gaussian Support Vector Machine(Gaussian SVM)and Cubic Support Vector Machine(Cubic SVM).The Cubic SVM could be an efficient method for infarction classification with accurate performances as high as 80%.
机译:缺血性卒中是一种病症,即由于堵塞而血液供应被扰乱或减少,并且如果没有立即治疗,会导致脑死亡。导致死亡脑组织的血流降低可以称为梗塞。梗死的分类有助于卫生部门检测患者的缺血性脑卒中。药物,CT扫描可用于鉴定呼吸症和检测患者缺血性脑卒中。因此,研究CT扫描对于帮助医生获得有关的功能信息至关重要周围的脑组织将用于检测大脑中的梗塞.since在选择最佳方法时,在选择最佳结果时需要更多关注,因此本研究建议在两种类型的方法之间进行比较,高斯支持向量机(高斯SVM)和立方体支持向量机(立方SVM)。立方SVM可能是梗塞分类的有效方法精确的性能高达80%。

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