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Network Traffic Prediction Based on LSSVM Optimized by PSO
Yang, Yi1; Chen, Yanhua1; Li, Caihong1; Gui, Xiangquan2; Li, Lian1
2014
会议日期December 9, 2014 - December 12, 2014
会议地点Denpasar, Bali, Indonesia
关键词Artificial intelligence Computer networks Forecasting Least squares approximations Particle swarm optimization (PSO) Support vector machines Trusted computing Ubiquitous computing Empirical testing Forecasting methods In-network management Least square support vector machines Least squares support vector machines Network traffic predictions Seasonal adjustments Traffic Engineering
DOI10.1109/UIC-ATC-ScalCom.2014.100
页码829-834
英文摘要Nowadays, artificial intelligence is frequently used to various fields including medicine, chemistry and forecasting. In this paper, artificial intelligence is applied to network traffic prediction. Due to that network traffic prediction plays an important role in network management, planning, traffic congestion control and traffic engineering. Seeking for more accurate network traffic prediction techniques, this paper proposed a new hybrid method (SPLSSVM) which based on seasonal adjustment (SA) and least squares support vector machine (LSSVM) optimized by particle swarm optimization (PSO) to predict network traffic. The proposed method is examined by using the network traffic data from Lanzhou University. Empirical testing indicates that the proposed method can provide more accurate and effective results than the other forecasting methods. © 2014 IEEE.
会议录Proceedings - 2014 IEEE International Conference on Ubiquitous Intelligence and Computing, 2014 IEEE International Conference on Autonomic and Trusted Computing, 2014 IEEE International Conference on Scalable Computing and Communications and Associated Symposia/Workshops, UIC-ATC-ScalCom 2014
会议录出版者Institute of Electrical and Electronics Engineers Inc.
语种英语
内容类型会议论文
源URL[http://ir.lut.edu.cn/handle/2XXMBERH/117807]  
专题计算机与通信学院
作者单位1.School of Information Science and Engineering, Lanzhou University, Lanzhou; 730000, China;
2.College of Computer and Communication, Lanzhou University of Technology, Lanzhou; 730000, China
推荐引用方式
GB/T 7714
Yang, Yi,Chen, Yanhua,Li, Caihong,et al. Network Traffic Prediction Based on LSSVM Optimized by PSO[C]. 见:. Denpasar, Bali, Indonesia. December 9, 2014 - December 12, 2014.
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