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Using Hidden Markov Models to enable performance awareness and noise variance estimation for energy detection in cognitive radio

机译:使用隐马尔可夫模型来实现性能意识和噪声方差估计,以用于认知无线电中的能量检测

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Cognitive Radio (CR) systems are expected to enable dynamic access to the frequency spectrum in future generations of wireless communication systems by allowing unlicensed secondary users (SU) to access licensed spectrum that is not actively used by licensed primary users (PU). Due to its simplicity, energy detection is a main approach to identify spectrum opportunities in CR systems. However, the performance of energy-based spectrum sensing depends on accurate estimation of the noise energy which is required to determine the optimal sensing threshold that implies desired values for the probabilities of detection and false alarm. In this paper we study the use of Hidden Markov Models (HMM) to describe the output of energy detectors used for spectrum sensing in CR systems, and we present a novel approach that enables performance awareness and noise variance estimation for the energy detector. The proposed approach uses the values of the probabilities of detection and false alarm estimated from the HMM output to determine when the detector performance degrades due to changes in noise variance and to estimate the new variance value. Numerical results obtained from simulations are presented to illustrate application of the proposed approach.
机译:认知无线电(CR)系统有望通过允许未经许可的次要用户(SU)访问未由许可的主要用户(PU)主动使用的许可频谱,在未来的无线通信系统中实现对频谱的动态访问。由于其简单性,能量检测是识别CR系统中频谱机会的主要方法。然而,基于能量的频谱感测的性能取决于噪声能量的准确估计,这是确定最佳感测阈值所必需的,该最佳感测阈值暗示了检测和虚警概率的期望值。在本文中,我们研究了使用隐马尔可夫模型(HMM)来描述用于CR系统中频谱感测的能量检测器的输出,并且我们提出了一种新颖的方法,可以实现能量检测器的性能感知和噪声方差估计。所提出的方法使用从HMM输出估计的检测概率和虚警概率值来确定检测器性能何时由于噪声方差的变化而降低并估计新的方差值。从仿真获得的数值结果被提出来说明所提出的方法的应用。

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