首跑认知无线电的智能方案

A. Al-Dulaimi, L. Al-Saeed
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引用次数: 9

摘要

认知无线电(Cognitive Radio, CR)可以临时接入频谱,解决近频谱紧张的问题。前传事件是CR行为及其学习过程的主要动机之一。因此,在没有实际知识的情况下,有自我意识的CR器件在第一次发射时可能会产生相当大的干扰。本文提出了一种没有经验的认知无线电的解决方案,例如首次运行认知无线电和在新的无线环境中重新定位CR设备。利用神经网络设计了一个多层学习系统,从其他操作员辅助用户中提取认知。因此,除了CR中存储的任何数据外,传感器数据、其他CR设备的数据、频谱控制实体行为都被处理以进行决策比较。最后的评价是基于这些输入的权重和重要性。因此,通过了解其他认知无线电实验,可以创建完全自主的成熟认知用户。模拟训练来评估所提出的学习模型。结果表明,采用渐进式学习率算法对设计的系统进行了有效的利用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
An Intelligent Scheme for First Run Cognitive Radios
Cognitive Radio (CR) can access the spectrum temporarily to solve the problem of the near spectrum crunch. The previous transmissions’ events are one of the main motivations for the CR actions and its learning procedures. Therefore, self aware CR devices may cause a considerable interference when they transmit for the first time with no practical knowledge. This paper proposes a solution for cognitive radios with no experiences for instance first run cognitive radios and CR devices repositioned in new wireless environments. A multi-layered learning system is designed using the neural networks to extract cognition from other operator secondary users. Thus, sensors data, other CR devices’ data, spectrum governing entities behaviour, in addition to any stored data in the CR are processed for decision comparisons. Final evaluations are based on the weight and significance given to each of these inputs. As a result, full autonomous mature cognitive users are created through understanding other cognitive radios experiments. Simulation was trained to assess the proposed learning model. Results show promising and efficient utilization using gradual learning rate algorithms with the designed system.
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