Fuzzy Linear SVM for Data Mining

Liu Guangli -, Jia Wang, Shen Cuihua - · Journal of Convergence Information Technology · 2011

Data mining on uncertainty is concerned with. Support vector machine is a powerful classification technique and has been successfully applied to many real-world problems. However, it is required that the values of input indices must be real numbers. A new fuzzy SVM technique is proposed which can deal with the training fuzzy data. A definition of fuzzy coefficient quadratic programming is given as a direct result of fuzzy SVM. Meanwhile, a useful method is presented to solve the programming. By data experiment, ordinary SVM can be viewed as a special case of fuzzy SVM.

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