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Self-optimising intelligent distributed antenna system for geographic load balancing

机译:自优化智能分布式天线系统,实现地理负载均衡

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摘要

Increase in number of mobile users, generates unbalanced load traffic in wireless network. In this study, a load-balancing solution is investigated in order to optimise quality of service. An intelligent distributed antenna system (IDAS) fed by a base transceiver station (BTS) has the ability to distribute the cellular capacity over a given geographic area depending on the time-varying traffic. A virtual cell network is an IDAS with capacity routing capability. To enable load balancing among distributed antenna modules, the authors dynamically allocate the remote antenna modules to the BTS sectors. A self-organised network of virtual cells is formulated as an optimisation problem, which attempts to balance traffic load and minimises the hand-offs as two important cost factors in the network. Two evolutionary algorithms are proposed for optimisation: genetic algorithm and estimation distribution algorithm. Computational results of different traffic scenarios after performing the algorithms, demonstrate that the two algorithms attain excellent key performance indicators for small-scale networks.
机译:移动用户数量的增加,在无线网络中产生不平衡的负载流量。在本研究中,研究了负载平衡解决方案,以优化服务质量。由基站收发器(BTS)馈送的智能分布式天线系统(IDAS)能够根据时变流量在给定的地理区域内分配蜂窝容量。虚拟小区网络是具有容量路由功能的IDAS。为了实现分布式天线模块之间的负载平衡,作者动态地将远程天线模块分配给BTS扇区。将自组织的虚拟单元网络表述为优化问题,它试图平衡流量负载并使交接最小化,这是网络中的两个重要成本因素。提出了两种用于优化的进化算法:遗传算法和估计分布算法。执行该算法后,在不同流量情况下的计算结果表明,两种算法在小型网络中均获得了出色的关键性能指标。

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