Xuan WEI, Ke RUAN, Xiaoying HUANG, et al. Automatic prediction for IP backbone network traffic[J]. Telecommunications science, 2020, 36(8): 175-183.
DOI:
Xuan WEI, Ke RUAN, Xiaoying HUANG, et al. Automatic prediction for IP backbone network traffic[J]. Telecommunications science, 2020, 36(8): 175-183. DOI: 10.11959/j.issn.1000-0801.2020153.
Automatic prediction for IP backbone network traffic
Efficient and reliable network traffic prediction is the basis of network planning and capacity expansion construction.Currently
there is no integral theoretical model to describe internet traffic.Most of the industry designs simplified and operable prediction models.Firstly
according to the characteristics of China Telecom’s IP backbone network traffic and its planning requirements
the IP backbone network traffic was analyzed and forecasted by using the multi-factor regression model and the function adaptive mode of time series.The characteristics
advantages
disadvantages and applicable scenarios of these two models were compared based on simulation of a large number of actual network data.A set of principles and methods for selecting prediction model and optimizing parameters were proposed.Then
an automatic forecasting system with the high performance of dealing with hundreds of time series was built to greatly simplify and improve the traffic prediction efficiency.Finally
the development orientation of network capacity extension and key points of future IP traffic prediction were prospected.
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