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Optimization of Time–Frequency Resource Management Based on Probabilistic Graphical Models in Railway Internet-of-Things Networking

机译:基于概率图形模型在铁路互联网网络网络中的时频资源管理优化

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摘要

As the high-speed railway (HSR) industry Internet-of-Things chain matures, HSR wireless communication technology has become an increasingly important research field. The efficient management of time-frequency resources for Internet-of-Things networking is the core issue of HSR wireless communication optimization. The lack of time-frequency resources in LTE-R is still severe. In this article, a new LTE-R time-frequency resource allocation optimization method based on the probabilistic graphical theory is proposed. Considering the regularity that high-speed trains always pass by the same geographical location in similar time periods, we can do some research on opportunistic spectrum accessibility in the existing LTE time-frequency resource algorithm. The probabilistic graphical theory is suitable for finding the appropriate communication access opportunity in an HSR environment. The simulation results show that our method can effectively improve the performance of various traditional LTE time-frequency resource allocation algorithms.
机译:随着高速铁路(HSR)行业的互联网的链条运行,HSR无线通信技术已成为一个越来越重要的研究领域。用于互联网网络网络的时间频率资源的有效管理是HSR无线通信优化的核心问题。 LTE-R中缺乏时频资源仍然是严重的。在本文中,提出了一种基于概率图形理论的新的LTE-R时频资源分配优化方法。考虑到高速列车在类似时间段内始终通过相同地理位置的规律性,我们可以对现有LTE时频资源算法中的机会频谱可访问性进行一些研究。概率图形理论适用于在HSR环境中找到适当的通信访问机会。仿真结果表明,我们的方法可以有效地提高各种传统LTE时频资源分配算法的性能。

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