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Intelligent Routing Control for MANET Based on Reinforcement Learning

机译:基于强化学习的MANET智能路由控制

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With the rapid development and wide use of MANET, the quality of service for various businesses is much higher than before. Aiming at the adaptive routing control with multiple parameters for universal scenes, we propose an intelligent routing control algorithm for MANET based on reinforcement learning, which can constantly optimize the node selection strategy through the interaction with the environment and converge to the optimal transmission paths gradually. There is no need to update the network state frequently, which can save the cost of routing maintenance while improving the transmission performance. Simulation results show that, compared with other algorithms, the proposed approach can choose appropriate paths under constraint conditions, and can obtain better optimization objective.
机译:随着漫长的快速发展和广泛使用,各种企业的服务质量远远高于以前。针对具有通用场景的多个参数的自适应路由控制,我们提出了一种基于加强学习的枪门智能路由控制算法,这可以通过与环境的交互不断地优化节点选择策略,并逐渐收敛到最佳传输路径。不需要经常更新网络状态,这可以节省路由维护的成本,同时提高传输性能。仿真结果表明,与其他算法相比,所提出的方法可以在约束条件下选择适当的路径,并可以获得更好的优化目标。

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