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An enhanced intelligent DCA technique for unlicensed wLANs and PAWNs

机译:用于无执照wLAN和PAWN的增强型智能DCA技术

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Over the last years, a number of mechanisms have been proposed for scheduling different types of traffic over base stations-oriented wireless and mobile systems. The majority of these mechanisms focus on access control in the base station-to-mobile units segment of the wireless and mobile system. Recent proposals for the unlicensed spectrum in the 5 GHz band have redefined the problem, since base stations, operated by different operators in overlapping geographical areas, need access resolution mechanisms to allocate wireless resources. This issue is addressed here, and a novel mechanism for dynamic channel allocation in unlicensed wireless LANs (wLANs) or public area wireless networks (PAWNs) environments is presented. The proposed method exploits the learning automata technique for the efficient allocation of wireless resources in a distributed manner. Nearby base stations that compete to access and reserve time on separate frequencies are driven by the output of a learning automaton, which determines the available carrier that demonstrates minimal competition. The paper discusses contention resolution disciplines while the learning automaton algorithm as well as its knowledge base structure are also discussed and evaluated.
机译:在过去的几年中,已经提出了许多用于在面向基站的无线和移动系统上调度不同类型业务的机制。这些机制中的大多数集中于无线和移动系统的基站到移动单元部分中的访问控制。由于在重叠的地理区域中由不同运营商运营的基站需要接入解析机制来分配无线资源,因此针对5 GHz频段中的非授权频谱的最新提议已经重新定义了这个问题。此处解决了此问题,并提出了一种在无执照的无线LAN(wLAN)或公共区域无线网络(PAWN)环境中用于动态信道分配的新颖机制。所提出的方法利用学习自动机技术以分布式方式有效地分配无线资源。学习自动机的输出驱动附近竞争在不同频率上访问和保留时间的基站,而自动机的输出决定了竞争最小的可用载波。本文讨论了竞争解决的学科,同时对学习自动机算法及其知识库结构进行了讨论和评估。

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