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Evaluating QoE in Cognitive Radio Networks for Improved Network and User Performance

机译:评估认知无线电网络中的QoE以改善网络和用户性能

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摘要

The Cognitive Radio (CR) technique is widely recognized as a promising solution to the spectrum scarcity problem. Previously, extensive research focused on resource allocation (RA) algorithms, targeting the optimization of the MAC layer network performance; these papers assume an unrealistic queue model where the backlog is unchanging over time. The packet level performance of any Secondary Network (SN) is challenging to evaluate due to the highly variable resource availability. However, some level of guaranteed performance is vital to the success of CR technique, because user Quality of Experience (QoE) depends heavily on it. We develop a packet level network performance evaluation platform for CR to evaluate the effect of key factors controlling the QoE. We use QoE as a unified evaluation metric combining both loss and delay. This allows us to evaluate the effect of performance for users with different service requirements, and allows us to expose the limitation of existing RA schemes. We further demonstrate that QoE informed RA schemes can significantly compensate poor quality performance with limited cost.
机译:认知无线电(CR)技术被广泛认为是解决频谱不足问题的有前途的解决方案。以前,针对MAC层网络性能的优化,广泛的研究集中于资源分配(RA)算法。这些论文假设一个不切实际的队列模型,其中积压随着时间的推移而保持不变。由于资源可用性的高度可变,任何二级网络(SN)的数据包级性能都难以评估。但是,一定水平的保证性能对于CR技术的成功至关重要,因为用户体验质量(QoE)很大程度上取决于它。我们为CR开发了一个分组级网络性能评估平台,以评估控制QoE的关键因素的效果。我们使用QoE作为结合了损失和延迟的统一评估指标。这使我们能够评估对具有不同服务需求的用户的性能影响,并使我们能够暴露现有RA方案的局限性。我们进一步证明,QoE知情的RA方案可以用有限的成本显着补偿质量较差的性能。

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