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Impact of Various Kernels on Support Vector Machine Classification Performance for Treating Wart Disease

机译:各种内核对支持向量机分类性能的影响

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This study displays the impacts of different types of Kernel functions for improving the learning capacity of Support Vector Machine (SVM) in treating two common types of warts (plantar and common warts). The impacts of four Kernel functions of (SVM): Normalized Polynomial Kernel (NP), Polynomial Kernel (PK), Radial Basis Function Kernel (RBF), and Pearson VII function based Universal Kernel (PUK) have been examined On two sets of data called “Cryotherapy” and “Immunotherapy”. Which are universally regarded as the best two methods to treat wart disease using Weka workbench. The first dataset called “Cryotherapy” consists of information about 90 patients and contains 7 features. The second dataset called “Immunotherapy” consists of information about 90 patients and contains 8 features. For presenting classification performance impacts each of Accuracy, precision, sensitivity, F-measure and confusion matrix for each kernel has been utilized. According to the results obtained, it was found that each of PUK and RBF performs best classification performance on “Cryotherapy” dataset with 97.77% accuracy whereas each of PK and PUK performs best classification performance on “Immunotherapy” dataset with 81.11% accuracy.
机译:这项研究显示了不同类型的内核功能对改善支持向量机(SVM)学习两种常见疣(足底疣和普通疣)的学习能力的影响。在两组数据上,研究了(SVM)的四个内核功能的影响:归一化多项式内核(NP),多项式内核(PK),径向基函数内核(RBF)和基于Pearson VII函数的通用内核(PUK)。称为“冷冻疗法”和“免疫疗法”。普遍认为这是使用Weka工作台治疗疣病的最佳两种方法。第一个称为“冷冻疗法”的数据集包含有关90位患者的信息,并包含7个特征。第二个数据集称为“免疫疗法”,包含约90位患者的信息,并包含8个特征。为了表示分类性能的影响,已经利用了每个内核的准确性,精度,灵敏度,F度量和混淆矩阵。根据获得的结果,发现PUK和RBF在“ Cryotherapy”数据集上的分类性能最佳,准确率达97.77%,而PK和PUK在“免疫疗法”数据集上的分类性能最佳,达81.11%。

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