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首页> 外文期刊>IEEE Transactions on Vehicular Technology >Q-learning-based multirate transmission control scheme for RRM in multimedia WCDMA systems
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Q-learning-based multirate transmission control scheme for RRM in multimedia WCDMA systems

机译:多媒体WCDMA系统中基于Q学习的RRM多速率传输控制方案

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摘要

In this paper, a Q-learning-based multirate transmission control (Q-MRTC) scheme for radio resource management in multimedia wide-band code-division multiple access (WCDMA) communication systems is proposed. The multirate transmission control problem is modeled as a Markov decision process where the transmission cost is defined in terms of the quality-of-service (QoS) parameters for enhancing spectrum utilization subject to QoS constraint. We adopt a real-time reinforcement learning algorithm, called Q-learning, to accurately estimate the transmission cost for the MRTC. In the meantime, we successfully employ the feature extraction method and radial basis function network (RBFN) for the Q-function that maps the original state space into a feature vector that represents the resultant interference profile. The state space and memory-storage requirement are then reduced and the convergence property of the Q-learning algorithm is improved. Simulation results show that the Q-MRTC for a multimedia WCDMA system can achieve higher system throughput by an amount of 80% and better users' satisfaction than the interference-based MRTC scheme, while the QoS requirements are guaranteed. Also, compared to the table-lookup method, the storage requirement is reduced by 41%.
机译:本文提出了一种基于Q学习的多速率传输控制(Q-MRTC)方案,用于多媒体宽带码分多址(WCDMA)通信系统中的无线电资源管理。将多速率传输控制问题建模为马尔可夫决策过程,其中,根据服务质量(QoS)参数定义传输成本,以提高服从QoS约束的频谱利用率。我们采用一种称为Q学习的实时强化学习算法来准确估算MRTC的传输成本。同时,我们成功地将特征提取方法和径向基函数网络(RBFN)用于Q函数,该函数将原始状态空间映射到表示所得干涉轮廓的特征向量。然后减少了状态空间和内存存储需求,并改善了Q学习算法的收敛性。仿真结果表明,与基于干扰的MRTC方案相比,用于多媒体WCDMA系统的Q-MRTC可以实现80%的更高系统吞吐量和更高的用户满意度,同时可以保证QoS要求。而且,与查表方法相比,存储需求减少了41%。

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