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Energy Detection Based Spectrum Sensing for Cognitive Radios Over Time-Frequency Doubly Selective Fading Channels

机译:时频双选衰落信道上认知无线电的基于能量检测的频谱感知

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Cognitive radios may operate in practice under various adverse environments. For typical mobile and short-range scenarios, wireless links may tend to be time and frequency selective, i.e., the multipath propagations with time-varying fading coefficients will be inevitable. To cope with the encountered doubly-selective channels, in this paper we present a new spectrum sensing algorithm for distributed applications. First, a dynamic discrete state-space model is established to characterize sensing process, where the occupancy state of primary band and the time-varying multipath channel are treated as two hidden states, while the summed energy is adopted as the observed output. With this new paradigm, spectrum sensing is realized by acquiring primary states and time-dependent multipath channel jointly. For the formulated problem, unfortunately, Bayesian statistical inference may be impractical due to the absence of likelihoods and involved non-stationary distributions. To remedy this problem, an iterative algorithm is further designed by resorting to sequential importance sampling techniques; thus, the dynamic non-Gaussian multipath channel and primary states are estimated recursively. Another critical challenge, e.g., the noise uncertainty, is also considered, which may be incorporated conveniently into this sensing diagram and, furthermore, addressed effectively by the designed algorithm. Simulations validate the proposed algorithm. While classical schemes fail to deal with doubly selective channels, the new sensing scheme can exploit the underlying channel memory and operate well, which provides a great promise to realistic applications.
机译:实际上,认知无线电可能会在各种不利环境下运行。对于典型的移动和短距离场景,无线链路可能倾向于时间和频率选择性,即不可避免的具有随时间变化的衰落系数的多径传播。为了应对遇到的双重选择通道,在本文中,我们提出了一种用于分布式应用的新频谱感知算法。首先,建立一个动态离散状态空间模型来表征传感过程,将主频带和时变多径信道的占用状态视为两个隐藏状态,同时将总能量用作观测输出。通过这种新的范例,可以通过共同获取基本状态和与时间相关的多径通道来实现频谱感测。对于所提出的问题,不幸的是,由于缺乏可能性和涉及的非平稳分布,贝叶斯统计推断可能是不切实际的。为了解决这个问题,通过采用顺序重要性采样技术进一步设计了迭代算法。因此,递归估计动态非高斯多径信道和主要状态。还考虑了另一个关键挑战,例如噪声不确定性,可以将其方便地并入该感测图中,并且此外,可以通过设计的算法有效地解决该挑战。仿真验证了该算法的有效性。尽管经典方案无法处理双重选择通道,但新的传感方案可以利用底层通道存储器并运行良好,这为实际应用提供了广阔前景。

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