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Neural-based downlink scheduling algorithm for broadband wireless networks

机译:宽带无线网络的基于神经的下行调度算法

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摘要

Wireless local area networks are becoming very popular in many scenarios because they are very simple, convenient and cheap. This paper focuses on multimedia traffic management in wireless networks, where we consider to provide differentiated Quality of Service (QoS) levels. We address the complex task of traffic scheduling with multi-objective requirements in the presence of errors introduced by the radio channel. In particular, we focus on managing downlink traffic in both wireless ATM and WiFi scenarios, referring to an infrastructure wireless access network where a central coordinator takes scheduling decisions for the mobile users in its cell. Our scheduler is based on an Artificial Neural Network (ANN) with reinforcement learning. The ANN is trained from examples to behave as an "optimal" scheduler, according to an Actor-Critic model. The results obtained in scheduling concomitant voice, video and Web traffic classes permit to show the significant capacity improvement that can be achieved by our scheme with respect to other techniques previously proposed in the literature.
机译:无线局域网非常简单,方便且便宜,因此在许多情况下正变得越来越流行。本文重点介绍无线网络中的多媒体流量管理,我们在其中考虑提供差异化​​的服务质量(QoS)级别。在无线电信道引入错误的情况下,我们解决了具有多目标需求的流量调度的复杂任务。特别是,我们专注于管理无线ATM和WiFi场景中的下行链路流量,是指基础设施无线访问网络,其中中央协调器为其小区中的移动用户做出调度决策。我们的调度程序基于具有增强学习功能的人工神经网络(ANN)。根据Actor-Critic模型,对ANN进行了示例训练,使其表现为“最佳”调度程序。在安排相应的语音,视频和Web流量类别时获得的结果表明,相对于先前在文献中提出的其他技术,通过我们的方案可以实现显着的容量改进。

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