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Robust routing and channel allocation in multi-hop cognitive radio networks

机译:多跳认知无线电网络中的鲁棒路由和信道分配

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摘要

Jointly consider routing and spectrum selection is essentially and necessary in multi-hop cognitive radio networks. System cost and throughput are commonly used to evaluate performance of routing and spectrum selection schemes. Traditional methods mostly translate these metrics into a single objective function, and corresponding weights are allocated to each metric representing impact on the entire network performance. Optimal solutions of these approaches are sensitive to the weight settings which are usually hard to appropriately chosen. In this work, the task of routing and channel allocation is modeled as a two-objective optimization problem. Two conflicting metric functions system total throughput and total cost are optimized simultaneously, and a novel memetic algorithm which adopts a new neighborhood search procedure is proposed to solve this problem. Incorporated with robustness consideration on routing, a new robustness metric is also presented to work as a decision mechanism to ensure the robustness of the entire network. The aim of this task is to find the best compromise routing and channel allocation scheme on system throughput, cost and robustness among the feasible solution set. Simulation results demonstrate that the optimal solution set obtained by the memetic algorithm can clearly show the conflicting relationship of the system cost and throughput when choosing different routing and channel selection schemes. The best solution made by the additional robustness metric among these solutions can achieve the best performance of the cognitive radio network.
机译:在多跳认知无线电网络中,联合考虑路由选择和频谱选择是必不可少的。系统成本和吞吐量通常用于评估路由和频谱选择方案的性能。传统方法通常将这些指标转换为单个目标函数,并且将相应的权重分配给每个指标,以表示对整个网络性能的影响。这些方法的最佳解决方案对通常难以适当选择的重量设置很敏感。在这项工作中,将路由和信道分配的任务建模为两个目标的优化问题。同时优化了两个相互矛盾的度量函数系统的总吞吐量和总成本,并提出了一种采用新的邻域搜索程序的新模因算法来解决这一问题。结合路由的健壮性考虑,还提出了一种新的健壮性度量标准,作为确保整个网络健壮性的决策机制。此任务的目的是在可行的解决方案集中找到关于系统吞吐量,成本和鲁棒性的最佳折衷路由和信道分配方案。仿真结果表明,当选择不同的路由选择和信道选择方案时,模因算法获得的最优解集可以清楚地表明系统成本和吞吐量之间的冲突关系。在这些解决方案中,由附加鲁棒性度量得出的最佳解决方案可以实现认知无线电网络的最佳性能。

著录项

  • 来源
    《Wireless Networks》 |2015年第1期|127-137|共11页
  • 作者单位

    Key Laboratory of Intelligent Perception and Image Understanding of Ministry of Education, International Research Center for Intelligent Perception and Computation, Xidian University, Xi'an 710071, China;

    Key Laboratory of Intelligent Perception and Image Understanding of Ministry of Education, International Research Center for Intelligent Perception and Computation, Xidian University, Xi'an 710071, China;

    Key Laboratory of Intelligent Perception and Image Understanding of Ministry of Education, International Research Center for Intelligent Perception and Computation, Xidian University, Xi'an 710071, China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Cognitive radio; Cognitive radio networks; Routing; Robustness; Multi-objective evolutionary algorithm;

    机译:认知广播;认知无线电网络;路由;坚固性多目标进化算法;

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