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Load Balancing Algorithm of Controller Based on SDN Architecture Under Machine Learning

         

摘要

With the rapid development of cloud computing and other related services,higher requirements are put forward for network transmission and delay.Due to the inherent distributed characteristics of traditional networks,machine learning technology is diffcult to be applied and deployed in network control.The emergence of SDN technology provides new opportunities and challenges for the application of machine learning technology in network management.A load balancing algorithm of Internet of things controller based on data center SDN architecture is proposed.The Bayesian network is used to predict the degree of load congestion,combining reinforcement learning algorithm to make optimal action decision,self-adjusting parameter weight to adjust the controller load congestion,to achieve load balance,improve network security and stability.

著录项

  • 来源
    《系统科学与信息学报:英文版》 |2020年第6期|P.578-588|共11页
  • 作者单位

    Shaanxi Key Laboratory of Information Communication Network and Security Xi’an University of Posts&Telecommunications Xi’an 710121 China;

    Shaanxi Key Laboratory of Information Communication Network and Security Xi’an University of Posts&Telecommunications Xi’an 710121 China;

    Shaanxi Key Laboratory of Information Communication Network and Security Xi’an University of Posts&Telecommunications Xi’an 710121 China;

    Shaanxi Key Laboratory of Information Communication Network and Security Xi’an University of Posts&Telecommunications Xi’an 710121 China;

  • 原文格式 PDF
  • 正文语种 chi
  • 中图分类 自动推理、机器学习;
  • 关键词

    software defined networks(SDN); Bayesian network; reinforcement learning;

    机译:软件定义网络(SDN);贝叶斯网络;加固学习;
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