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Resource Allocation in the Cognitive Radio Network-Aided Internet of Things for the Cyber-Physical-Social System: An Efficient Jaya Algorithm

机译:认知无线电网络辅助的物联网中资源的分配—一种有效的Jaya算法

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摘要

Currently, there is a growing demand for the use of communication network bandwidth for the Internet of Things (IoT) within the cyber-physical-social system (CPSS), while needing progressively more powerful technologies for using scarce spectrum resources. Then, cognitive radio networks (CRNs) as one of those important solutions mentioned above, are used to achieve IoT effectively. Generally, dynamic resource allocation plays a crucial role in the design of CRN-aided IoT systems. Aiming at this issue, orthogonal frequency division multiplexing (OFDM) has been identified as one of the successful technologies, which works with a multi-carrier parallel radio transmission strategy. In this article, through the use of swarm intelligence paradigm, a solution approach is accordingly proposed by employing an efficient Jaya algorithm, called PA-Jaya, to deal with the power allocation problem in cognitive OFDM radio networks for IoT. Because of the algorithm-specific parameter-free feature in the proposed PA-Jaya algorithm, a satisfactory computational performance could be achieved in the handling of this problem. For this optimization problem with some constraints, the simulation results show that compared with some popular algorithms, the efficiency of spectrum utilization could be further improved by using PA-Jaya algorithm with faster convergence speed, while maximizing the total transmission rate.
机译:当前,对于在网络物理社会系统(CPSS)中将通信网络带宽用于物联网(IoT)的需求不断增长,同时需要越来越强大的技术来使用稀有频谱资源。然后,认知无线电网络(CRN)作为上述重要解决方案之一,被用来有效地实现物联网。通常,动态资源分配在CRN辅助物联网系统的设计中起着至关重要的作用。针对此问题,正交频分复用(OFDM)已被确定为成功的技术之一,可与多载波并行无线电传输策略一起使用。在本文中,通过使用群体智能范式,相应地提出了一种解决方案,即采用一种称为PA-Jaya的高效Jaya算法来解决物联网认知OFDM无线网络中的功率分配问题。由于所提出的PA-Jaya算法中特定于算法的无参数功能,因此在处理此问题时可以获得令人满意的计算性能。仿真结果表明,对于具有一定约束条件的优化问题,与常用算法相比,采用收敛速度更快,总传输速率最大的PA-Jaya算法可以进一步提高频谱利用率。

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