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Adaptive EM-Based Algorithm for Cooperative Spectrum Sensing in Mobile Environments

机译:基于自适应EM的移动环境中协作频谱感知算法

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In this work we propose a new adaptive algorithm for cooperative spectrum sensing in dynamic environments where the channels are time varying. We assume a cooperative sensing procedure based on the soft fusion of the signal energy levels measured at the sensors. The detection problem is posed as a composite hypothesis testing problem. Then, we consider the Generalized Likelihood Ratio Test approach where the maximum likelihood estimate of the unknown parameters (which are the signal-to-noise ratio under the different hypotheses) are obtained from the most recent energy levels at the sensors by means of the Expectation-Maximization algorithm. We derive simple closed-form expressions for both, the E and the M steps. The algorithm can operate even when only a subset of sensors report their energy estimates, which makes it suited to be used with any sensor selection strategy (active sensing). Simulation results show the feasibility and efficiency of the method in realistic slow-fading environments.
机译:在这项工作中,我们提出了一种新的自适应算法,用于在动态环境中的协作频谱感测,通道是时变的。我们假设基于在传感器处测量的信号能级的软融合的协同感测程序。检测问题被作为复合假设检测问题。然后,我们考虑通过期望从传感器的最近能量水平获得未知参数的最大似然估计(这是不同假设下的信噪比)的最大似然估计-Maximization算法。我们为两者和M个步骤派生了简单的闭合表达式。即使仅当仅传感器的子集报告其能量估计,该算法也可以操作,这使得它适合于任何传感器选择策略(主动感测)。仿真结果表明了现实慢衰落环境中该方法的可行性和效率。

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