认知无线电网络中频谱感知算法的自诊断方法

Jen-Feng Huang, Guey-Yun Chang, S. Huang, Jyun-Fong Wang
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引用次数: 0

摘要

频谱感知是认知无线电网络中的一个重要问题。在大多数技术中,频谱感知是在CRN中的辅助用户(su)上进行的。为了减少单元的负载,人们提出了无线频谱传感器网络(wireless spectrum sensor network, wssn)[1]。在wsn中,传感器应该将主用户(PU)的干扰范围和状态(活动或不活动)提供给辅助用户(su)。但是,由于硬件缺陷和PU信号衰落,传感器的报告可能不正确。在本文中,我们提出了传感器自诊断算法,可以帮助传感器检查PU干扰范围的正确性。仿真结果表明,该算法具有较低的感知错误率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A self-diagnosis method for spectrum sensing algorithm in cognitive radio networks
Spectrum sensing is an important issue in cognitive radio networks (CRNs). In the most techniques, the spectrum sensing is performed on secondary users (SUs) in a CRN. For reducing the loading of the SUs, the wireless spectrum sensor networks (WSSNs) [1] have been proposed. In WSSN, sensors should provide the primary user (PU)'s interference range and states (active or inactive) to secondary users (SUs). However, due to the hardware defect and PU signal fading, sensors' reports may be incorrect. In this paper, we propose sensor self-diagnosis algorithms that can help sensors to check the correctness of interference range of the PU. According to the simulation results, our algorithms have lower sensing error rate than prior work.
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