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Proportional fair scheduling based On primary user traffic patterns for spectrum sensing in cognitive radio networks

机译:基于主要用户流量模式的比例公平调度,用于认知无线电网络中的频谱感知

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摘要

In this paper, we propose a novel proportional fair scheduling algorithm for MAC-layer sensing in the cognitive radio networks (CRNs). According to the secondary user (SU) channel state information and primary user (PU) traffic patterns, the SUs are adaptively scheduled to carry out sensing and transmission in different channels. Moreover, we jointly consider multiple important design factors in the proposed algorithm, including network throughput and fairness. Then, the adaptive spectrum sensing problem is formulated as an optimization problem, and the Hungarian algorithm is employed to solve it with polynomial complexity. Simulation results show that the proposed scheme could achieve a good tradeoff between the CRN throughput and the fairness among SUs.
机译:在本文中,我们提出了一种新的比例公平调度算法,用于认知无线电网络(CRN)中的MAC层感知。根据次用户(SU)信道状态信息和主用户(PU)业务模式,对SU进行自适应调度,以在不同的信道中进行感测和传输。此外,我们在所提出的算法中共同考虑了多个重要的设计因素,包括网络吞吐量和公平性。然后,将自适应频谱感知问题表述为优化问题,并采用匈牙利算法以多项式复杂度对其进行求解。仿真结果表明,该方案可以在CRN吞吐量和SU之间的公平性之间取得良好的折衷。

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