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A novel joint radio resource management approach with reinforcement learning mechanisms

机译:一种具有强化学习机制的新型联合无线电资源管理方法

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This paper presents a novel JRRM strategy based on reinforcement learning mechanisms that control a fuzzy-neural algorithm to ensure certain QoS constraints. Three RATs (radio access technologies), namely UMTS, GERAN and WLAN are considered as common available technologies to select. The fuzzy logic allows for a very simple handling of the joint radio resource manager simply by activating a set of rules. The membership functions considered by these rules are adaptive so that a desired performance in terms of the probability of user satisfaction can be guaranteed by means of the reinforcement learning algorithm. Some illustrative simulation results to evaluate the behaviour of the proposed JRRM technique are presented.
机译:本文提出了一种基于强化学习机制的新颖JRRM策略,该机制控制模糊神经算法以确保某些QoS约束。三种RAT(无线电接入技术),即UMTS,GERAN和WLAN被认为是可供选择的常见可用技术。模糊逻辑仅通过激活一组规则就可以非常简单地处理联合无线电资源管理器。这些规则考虑的隶属度函数是自适应的,因此可以通过强化学习算法来保证就用户满意度而言的理想性能。给出了一些说明性的仿真结果,以评估所提出的JRRM技术的行为。

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