底层认知无线电网络频谱空白的建模与表征

V. Pla, J. Vidal, J. Martínez-Bauset, L. Guijarro
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引用次数: 27

摘要

认知无线电(CR)网络是实现动态频谱接入和解决无线电频谱稀缺问题的关键技术。掌握主网频谱空白的时间特征是研究和设计CR网络无线电资源管理机制的关键因素。从这个意义上说,文献中的大多数研究都依赖于一个开断时间呈指数分布的开断模型。然而,该模型的使用主要基于其分析的可追溯性。在本文中,我们提出了一个通用的马尔可夫模型的频谱白空间的持续时间。我们的模型建立在主网络中信道保持时间(CHT)的简单模型之上,然后应用矩阵分析技术推导和分析空白的持续时间。尽管它很简单,但所提出的方法被证明能够非常准确地模拟CHT分布的情况,其中CHT分布是更复杂的类型,无法进行数学分析。我们的数值结果表明,空白的持续时间对通道保持时间超过平均值的分布表现出较低的敏感性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Modeling and Characterization of Spectrum White Spaces for Underlay Cognitive Radio Networks
Cognitive Radio (CR) networks are envisaged as the key technology to realize dynamic spectrum access and solving the scarcity of radio spectrum. Having a temporal characterization of the spectrum white spaces in the primary network is a key element for studying and designing radio resource management mechanisms in CR networks. In that sense, most of the studies in the literature rely on an ON-OFF model with exponentially distributed on and off times. The usage of that model, however, is principally based on its analytical tractability. In this paper we propose a versatile Markovian model for the duration of the spectrum white spaces. Our model builds on a simple model of the channel holding time (CHT) in the primary network and then matrix-analytic techniques are applied to derive and analyze the duration of the white spaces. Despite its simplicity, the proposed approach is proven to be able to model very accurately scenarios where the CHT distribution is of a more complex type not amenable to mathematical analysis. Our numerical results show that the duration of the white spaces exhibits a low sensitivity to the distribution of the channel holding time beyond the mean.
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