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Characterization and Modelling of Spectrum for Dynamic Spectrum Access with Spatial Statistics and Random Fields

机译:空间统计和随机字段动态频谱访问频谱的特征与建模

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There is need to develop better models and characterization methods for spectrum usage and radio environments of cognitive radios. Currently different theoretical and simulation based approaches towards enabling dynamic spectrum access would greatly benefit from the possibility to generate synthetic data for testing purposes. Such Radio Environment Maps must statistically exhibit the characteristics of realistic environments. Previous and on-going spectrum measurement campaigns are generating a vast amount of such data. In this paper we provide a partial answer to the spectrum modelling problem by showing how one can characterize and model spectrum maps with spatial statistics and random fields. We present the basic mathematical premises for building models and also through examples outline how one can generate useful statistics from real measurement data.
机译:需要为认知收音机的频谱使用和无线电环境开发更好的模型和表征方法。目前,基于不同的理论和模拟朝向启用动态频谱访问的方法将极大地受益于生成用于测试目的的合成数据的可能性。此类无线电环境映射必须统计上表现出现实环境的特征。之前和正在进行的频谱测量活动正在产生大量的此类数据。在本文中,我们通过表明如何表征与空间统计和随机字段的谱图,提供频谱建模问题的部分答案。我们介绍了构建模型的基本数学场所,并通过示例概述了如何从实际测量数据生成有用的统计数据。

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