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An Adaptive Double-Threshold Spectrum Sensing Algorithm under Noise Uncertainty

机译:噪声不确定性下的自适应双阈值频谱感知算法

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Spectrum sensing is a very important technique in cognitive radio system. Matched filter detection, cyclostationary feature detection and energy detection are traditional and classical algorithms in spectrum sensing technology in cognitive radio system. Since energy detection is simple, and it does not require the priori information, energy detection based spectrum sensing has been proposed and studied widely. Collisions between the cognitive user and the primary user are sensitive and significant to detection performance. In this paper, an adaptive double-threshold spectrum sensing algorithm is proposed to solve the problem, which detection probability would be declined when signal to noise rate decreases under noise uncertainty. Theoretical analysis and simulation show that the spectrum detection performance can be improved more significantly and interference level to the primary user can be declined when noise is uncertain.
机译:频谱感测是认知无线电系统中非常重要的技术。匹配滤波器检测,循环平稳特征检测和能量检测是认知无线电系统频谱感测技术中的传统算法和经典算法。由于能量检测简单,并且不需要先验信息,因此已经提出并广泛研究了基于能量检测的频谱感测。认知用户和主要用户之间的冲突对于检测性能非常敏感并且很重要。提出了一种自适应双阈值频谱感知算法来解决该问题,即在噪声不确定的情况下,当信噪比降低时,检测概率将降低。理论分析和仿真表明,在噪声不确定的情况下,频谱检测性能可以得到较大改善,对主要用户的干扰水平可以降低。

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