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Evidence Theory Based Cooperative Energy Detection under Noise Uncertainty

机译:基于证据理论基于噪声不确定性的合作能量检测

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Noise power uncertainty is a major issue in energy-based spectrum sensors. Any uncertainty in the noise power leads to significant reduction in the detection performance of the energy detector and also results in a performance limitation in the form of SNR walls. In this paper, we propose an evidence theory (also called Dempster-Shafer theory (DST)) based cooperative energy detection (CED) for spectrum sensing. The noise variance is modeled as a random variable with a known distribution. The analyzed system model is similar to a distributed parallel detection network where each secondary user (SU) evaluates the energy from its received signal samples and sends it to a fusion center (FC), which makes the final decision. However, in the proposed DST-based method, the SUs sends computed belief-values instead of actual energy value to the FC. The uncertainty in the noise variance is accounted for by discounting the belief values based on the amount of uncertainty associated with each SU. Finally, the discounted belief values are combined using Dempster rule to reach at a global decision. Simulation results indicate that the proposed DST scheme significantly improves the detection probability under low average signal-to-noise ratio(ASNR) compared to the traditional sum fusion rule in the presence of noise uncertainty.
机译:噪声功率不确定性是基于能量的频谱传感器中的主要问题。噪声功率中的任何不确定性导致能量检测器的检测性能显着降低,并且还导致SNR壁的形式的性能限制。在本文中,我们提出了一种证据理论(也称为Dempster-Shafer理论(DST))的基于合作能量检测(CED),用于光谱感测。噪声方差被建模为具有已知分布的随机变量。分析的系统模型类似于分布式并行检测网络,其中每个辅助用户(SU)从其接收的信号样本评估能量,并将其发送到融合中心(FC),这使得最终决定。然而,在所提出的基于DST的方法中,SUS向FC发送计算的信念值而不是实际能量值。噪声方差的不确定性被基于与每个SU相关的不确定性的量贴现信仰值。最后,使用Dempster规则将折扣信仰值相结合,以达到全球决定。模拟结果表明,与存在噪声不确定性的传统和融合规则相比,所提出的DST方案在低平均信噪比(ASNR)下显着提高了检测概率。

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