Flare Forecast Model Based on DS-SMOTE and SVM with Optimized Regular Term  被引量:2

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作  者:Jie Wan Jun-Feng Fu Ren-Qing Wen Ke Han Meng-Yao Yu Peng E 

机构地区:[1]School of Electrical Engineering and Automation,Harbin Institute of Technology,Harbin 150001,China [2]Laboratory for Space Environment and Physical Sciences,Harbin Institute of Technology,Harbin 150001,China [3]School of Computer and Information Engineering,Harbin University of Commerce,Harbin 150028,China

出  处:《Research in Astronomy and Astrophysics》2023年第6期38-46,共9页天文和天体物理学研究(英文版)

基  金:the support of the National Key Research and Development Program of China(No.2022YFF0503601);the National Natural Science Foundation of China(No.11975086)。

摘  要:The research of flare forecast based on the machine learning algorithm is an important content of space science.In order to improve the reliability of the data-driven model and weaken the impact of imbalanced data set on its forecast performance,we proposes a resampling method suitable for flare forecasting and a Particle Swarm Optimization(PSO)-based Support Vector Machine(SVM)regular term optimization method.Considering the problem of intra-class imbalance and inter-class imbalance in flare samples,we adopt the density clustering method combined with the Synthetic Minority Over-sampling Technique(SMOTE)oversampling method,and performs the interpolation operation based on Euclidean distance on the basis of analyzing the clustering space in the minority class.At the same time,for the problem that the objective function used for strong classification in SVM cannot adapt to the sample noise,In this research,on the basis of adding regularization parameters,the PSO algorithm is used to optimize the hyperparameters,which can maximize the performance of the classifier.Finally,through a comprehensive comparison test,it is proved that the method designed can be well applied to the flare forecast problem,and the effectiveness of the method is proved.

关 键 词:Sun:flares Sun:magnetic fields Sun:X-rays GAMMA-RAYS (Sun:)sunspots 

分 类 号:P182.52[天文地球—天文学]

 

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