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A machine learning concept for DTN routing

机译:DTN路由的机器学习概念

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摘要

This paper discusses the concept and architecture of a machine learning based router for delay tolerant space networks. The techniques of reinforcement learning and Bayesian learning are used to supplement the routing decisions of the popular Contact Graph Routing algorithm. An introduction to the concepts of Contact Graph Routing, Q-routing and Nai?ve Bayes classification are given. The development of an architecture for a cross-layer feedback framework for DTN protocols is discussed. Finally, initial simulation setup and results are given.
机译:本文讨论了基于机器学习路由器的延迟容忍空间网络的概念和架构。钢筋学习和贝叶斯学习的技术用于补充流行接触曲线路由算法的路由决策。给出了接触图路由,Q路由和Nai贝雷斯分类概念的介绍。讨论了用于DTN协议的横向反馈框架的架构的开发。最后,给出了初始仿真设置和结果。

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