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Enhancing cognitive radios with spatial statistics: From radio environment maps to topology engine

机译:使用空间统计增强认知收音机:从无线电环境映射到拓扑引擎

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Radio environment maps are a promising architectural concept for storing environmental information for use in cognitive wireless networks. However, if not applied carefully their use can lead to large amounts of measurement data communicated over wireless links, causing substantial overhead. We propose enhancing the basic radio environment map concept by spatial statistics and probabilistic models, enabling applications to benefit from environment data while reducing overhead. In this paper we discuss the development of a topology engine, an agent in the CWN collecting and processing spatial information about the environment for storage in the REM. We discuss both technical and architectural issues in enabling such an approach, and outline some of the potential application scenarios for the topology engine.
机译:无线电环境图是一种有希望的架构概念,用于存储用于认知无线网络的环境信息。但是,如果不仔细应用,他们的使用可能导致大量通过无线链路传达的测量数据,从而导致大量开销。我们建议通过空间统计和概率模型提高基本的无线电环境图概念,使应用程序能够从环境数据中受益,同时减少开销。在本文中,我们讨论了拓扑引擎的开发,CWN中的代理收集和处理关于REM中存储环境的空间信息。我们讨论了技术和架构问题,在实现这种方法方面,并概述了拓扑引擎的一些潜在应用方案。

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