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应用BP神经网络针对高通量质子事件的通量数值预报
引用本文:张龙飞,薛炳森. 应用BP神经网络针对高通量质子事件的通量数值预报[J]. 空间科学学报, 2007, 27(1): 19-22. DOI: 10.11728/cjss2007.01.019
作者姓名:张龙飞  薛炳森
作者单位:中国科学院研究生院;中国科学院空间科学与应用研究中心,北京,100080
基金项目:中国科学院知识创新工程项目资助(KGCX2-SW-408)
摘    要:质子事件的爆发与太阳软X射线辐射有着很强的相关性,利用GOES卫星的1~8 (A)波段和0.5~4 (A)波段的软X射线数据,选取一些特征参量验证该相关性并应用到质子事件短期预报中.在当前质子事件传输物理机制不完全明确的情况下,在现有的预报质子事件有无的模型基础上,利用BP神经网络,根据软X射线通量水平等预测事件质子峰值通量水平,再对训练后的网络进行检验,检验预测所得结果与实际探测值误差小于一个量级,具备一定实用意义. 

关 键 词:软X射线  质子事件  BP神经网络  峰值通量预报
文章编号:0254-6124200727(1)-019-04
收稿时间:1900-01-01
修稿时间:2006-12-20

Application of BP Neural Network in Prediction of Proton Events Peak Flux
ZHANG Longfei,XUE Bingsen. Application of BP Neural Network in Prediction of Proton Events Peak Flux[J]. Chinese Journal of Space Science, 2007, 27(1): 19-22. DOI: 10.11728/cjss2007.01.019
Authors:ZHANG Longfei  XUE Bingsen
Affiliation:1.Center for Space Science and Applied Research, Chinese Academy of Science2.Graduated School, Chinese Academy of Sciences
Abstract:Solar proton events especially those with high fluxes may cause threat to the spacecrafts and satellites round the orbits near the earth, and may cause damage to the sensitive electronic components on the satellites, therefore, accurate short-term prediction of proton events is very meaningful to assure the safety of the space task and coordinate the instruments aboard the satellites. The current research shows that there exist a considerable correlation between proton events and soft X-ray radiation, so in this paper, based on the 1 ~ 8 A and 0.5 ~ 4A band soft X-ray data from GOES database, and choosing some characteristic parameters for our proton prediction model, a BP neural network was designed and used to predict the peak flux of the proton events, with the network input of soft X-ray data. The test result shows that in most cases the prediction error is less than one order. 
Keywords:Soft X-ray  Proton events  BP neural network  Peak flux prediction
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