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Study and application of time series forecasting based on rough set and Kernel method
Authors:YANG Shu-xia
Affiliation:School of Business Administration;North China Electric Power University;Beijing102206;China
Abstract:A support vector machine time series forecasting model based on rough set data preprocessing was proposed by combining rough set attribute reduction and support vector machine regression algorithm. First, remove the redundant attribute for forecasting from condition attribute by rough set method; then use the minimum condition attribute set obtained after the reduction and the corresponding initial data, reform a new training sample set which only retain the important attributes influencing the forecasting ...
Keywords:Kernel method  support vector machine  rough set  forecasting  
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