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Performance Analysis and Formal Verification of Cognitive Wireless Networks

机译:认知无线网络的性能分析和形式验证

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Cognitive Networks are a class of communication networks, in which nodes can learn how to adjust their behaviour according to the present and past network conditions. In this paper we introduce a formal probabilistic model for the analysis of wireless networks in which nodes are seen as processes capable of adapting their course of action to the environmental conditions. In particular, we model a network made of mobile nodes using the gossip protocol, and we study how the energy performance of the network varies, according to the topology changes and the transmission power. The stochastic process underlying the model is a discrete time Markov chain. We use the PRISM model checker to obtain, through Monte-Carlo simulation, numerical results for our analysis, which show how the learning-driven dynamic adjustment of transmission power can improve the energy performance while preserving connectivity.
机译:认知网络是一类通信网络,其中节点可以学习如何根据当前和过去的网络状况来调整其行为。在本文中,我们介绍了一种用于无线网络分析的正式概率模型,其中节点被视为能够使其行为适应环境条件的过程。特别地,我们使用八卦协议对由移动节点组成的网络进行建模,并研究网络的能量性能如何根据拓扑变化和传输功率而变化。该模型所基于的随机过程是离散时间马尔可夫链。通过蒙特卡洛模拟,我们使用PRISM模型检查器获得了用于分析的数值结果,这些结果表明了学习驱动的传输功率动态调整如何在保持连接性的同时提高能源性能。

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