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首页> 外文期刊>IEICE Transactions on Communications >Non-coherent Power Decomposition-Based Energy Detection for Cooperative Spectrum Sensing in Cognitive Radio Networks
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Non-coherent Power Decomposition-Based Energy Detection for Cooperative Spectrum Sensing in Cognitive Radio Networks

机译:基于非相干功率分解的能量检测在认知无线电网络中的协作频谱感知

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摘要

As the fundamental component of dynamic spectrum access, implementing spectrum sensing is one of the most important goals in cognitive radio networks due to its key functions of protecting licensed primary users from harmful interference and identifying spectrum holes for the improvement of spectrum utilization. However, its performance is generally compromised by the interference from adjacent primary channels. To cope with such interference and improve detection performance, this paper proposes a non-coherent power decomposition-based energy detection method for cooperative spectrum sensing. Due to its use of power decomposition, interference cancellation can be applied in energy detection. The proposed power decomposition does not require any prior knowledge of the primary signals. The power detection with its interference cancellation can be implemented indirectly by solving a non-homogeneous linear equation set with a coefficient matrix that involves only the distances between primary transmitters and cognitive secondary users (SUs). The optimal number of SUs for sensing a single channel and the number of channels that can be sensed simultaneously are also derived. The simulation results show that the proposed method is able to cope with the expected interference variation and achieve higher probability of detection and lower probability of false alarm than the conventional method in both hard combining and soft combining scenarios.
机译:作为动态频谱访问的基本组成部分,实现频谱感测是认知无线电网络中最重要的目标之一,因为它的主要功能是保护许可的主要用户免受有害干扰并识别频谱空洞以提高频谱利用率。但是,其性能通常受到相邻主要信道的干扰的影响。为了克服这种干扰并提高检测性能,本文提出了一种基于非相干功率分解的能量检测方法,用于协作频谱感知。由于使用了功率分解,因此可以在能量检测中应用干扰消除。所提出的功率分解不需要初级信号的任何先验知识。可以通过求解具有系数矩阵的非均匀线性方程组来间接实现具有干扰消除功能的功率检测,该系数矩阵仅涉及主要发射机和认知二级用户(SU)之间的距离。还导出了用于感测单个信道的SU的最佳数量以及可以同时感测的信道数量。仿真结果表明,与传统方法相比,该方法在硬合并和软合并情况下均能够应付预期的干扰变化,并具有较高的检测概率和较低的误报概率。

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