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Q-FANET: Improved Q-learning based routing protocol for FANETs

机译:Q-FANET:改进的基于Q-Learnal的Fanet路由协议

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Flying Ad-Hoc Networks (FANETs) introduce ad-hoc networking into the context of flying nodes, allowing real-time communication between these nodes and ground control stations. Due to the nature of this kind of node, the structure of a FANET is dynamic, changing very often. Since it has applications in military scenarios and other mission-critical systems, an agile and reliable network is essential with robust and efficient routing protocols. Nonetheless, maintaining an acceptable network delay generated by the selection of routes remains a considerable challenge, owing to the nodes' high mobility. This article addresses this problem by proposing a routing scheme based on an improved Q-Learning algorithm to reduce network delay in scenarios with high-mobility, called Q-FANET. This proposal has its performance evaluated and compared with other state-of-the-art methods using the WSNET simulator. The experiments provide evidence that the Q-FANET presents lower delay, a minor increase in packet delivery ratio, and significant lower jitter compared with other reinforcement learning-based routing protocols.
机译:飞行ad-hoc网络(FANET)将ad-hoc网络引入飞行节点的背景下,允许这些节点与地面控制站之间的实时通信。由于这种节点的性质,扇形的结构是动态的,经常变化。由于它具有在军事场景和其他关键任务系统中的应用程序,因此敏捷和可靠的网络与强大而有效的路由协议是必不可少的。尽管如此,由于节点的高移动性,维护通过选择路由产生的可接受的网络延迟仍然是一个相当大的挑战。本文通过提出基于改进的Q学习算法的路由方案来解决该问题,以减少具有高移动性的方案中的网络延迟,称为Q-FANET。该提案具有其性能评估,并使用WSNet模拟器与其他最先进的方法进行比较。实验提供了证据表明,与基于加强学习的路由协议相比,Q-Fanet呈下延迟,分组输送比和显着的较低抖动提高。

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