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A QoS Optimization Approach in Cognitive Body Area Networks for Healthcare Applications

机译:用于医疗保健应用的认知人体局域网中的QoS优化方法

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Wireless body area networks are increasingly featuring cognitive capabilities. This work deals with the emerging concept of cognitive body area networks. In particular, the paper addresses two important issues, namely spectrum sharing and interferences. We propose methods for channel and power allocation. The former builds upon a reinforcement learning mechanism, whereas the latter is based on convex optimization. Furthermore, we also propose a mathematical channel model for off-body communication links in line with the IEEE 802.15.6 standard. Simulation results for a nursing home scenario show that the proposed approach yields the best performance in terms of throughput and QoS for dynamic environments. For example, in a highly demanding scenario our approach can provide throughput up to 7 Mbps, while giving an average of 97.2% of time QoS satisfaction in terms of throughput. Simulation results also show that the power optimization algorithm enables reducing transmission power by approximately 4.5 dBm, thereby sensibly and significantly reducing interference.
机译:无线人体局域网越来越具有认知能力。这项工作涉及认知身体区域网络的新兴概念。特别是,本文解决了两个重要问题,即频谱共享和干扰。我们提出用于信道和功率分配的方法。前者基于强化学习机制,而后者基于凸优化。此外,我们还为符合IEEE 802.15.6标准的体外通信链路提出了数学信道模型。针对疗养院场景的仿真结果表明,该方法在动态环境下的吞吐量和QoS方面具有最佳性能。例如,在要求很高的情况下,我们的方法可以提供高达7 Mbps的吞吐量,同时就吞吐量而言,平均可以提供97.2%的时间QoS满意度。仿真结果还表明,功率优化算法可以将传输功率降低约4.5 dBm,从而显着降低干扰。

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