Papers › ns3-gym: Extending OpenAI Gym for Networking Research

ns3-gym: Extending OpenAI Gym for Networking Research

9 Oct 2018arXiv:1810.03943links table onlyarchive 2025-07-28

Piotr Gawłowicz, Anatolij Zubow

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OpenAI Gym is a toolkit for reinforcement learning (RL) research. It includes a large number of well-known problems that expose a common interface allowing to directly compare the performance results of different RL algorithms. Since many years, the ns-3 network simulation tool is the de-facto standard for academic and industry research into networking protocols and communications technology. Numerous scientific papers were written reporting results obtained using ns-3, and hundreds of models and modules were written and contributed to the ns-3 code base. Today as a major trend in network research we see the use of machine learning tools like RL. What is missing is the integration of a RL framework like OpenAI Gym into the network simulator ns-3. This paper presents the ns3-gym framework. First, we discuss design decisions that went into the software. Second, two illustrative examples implemented using ns3-gym are presented. Our software package is provided to the community as open source under a GPL license and hence can be easily extended.

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LebronJames0423/ns3-gym mentioned on GitHubtf report
caramucho/ns3-gym-scripts mentioned on GitHubtf report
zhangmwg/ns3-gym-multiagent mentioned on GitHubtf report

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