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Self-Optimization of Pilot Power in Enterprise Femtocells Using Multi objective Heuristic

机译:利用多目标启发式技术对企业毫微微小区的先导功率进行自我优化

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摘要

Deployment of a large number of femtocells to jointly provide coverage in an enterprise environment raises critical challenges especially in future self-organizing networks which rely on plug-and-play techniques for configuration. This paper proposes a multi-objective heuristic based on a genetic algorithm for a centralized self-optimizing network containing a group of UMTS femtocells. In order to optimize the network coverage in terms of handled load, coverage gaps, and overlaps, the algorithm provides a dynamic update of the downlink pilot powers of the deployed femtocells. The results demonstrate that the algorithm can effectively optimize the coverage based on the current statistics of the global traffic distribution and the levels of interference between neighboring femtocells. The algorithm was also compared with the fixed pilot power scheme. The results show over fifty percent reduction in pilot power pollution and a significant enhancement in network performance. Finally, for a given traffic distribution, the solution quality and the efficiency of the described algorithm were evaluated by comparing the results generated by an exhaustive search with the same pilot power configuration.
机译:部署大量毫微微小区以在企业环境中共同提供覆盖范围带来了严峻的挑战,尤其是在未来依靠即插即用技术进行配置的自组织网络中。针对包含一组UMTS毫微微小区的集中式自优化网络,本文提出了一种基于遗传算法的多目标启发式算法。为了在处理的负载,覆盖范围和重叠方面优化网络覆盖范围,该算法提供了已部署毫微微小区的下行链路导频功率的动态更新。结果表明,该算法可以根据当前全球流量分布的统计数据和相邻毫微微小区之间的干扰水平有效地优化覆盖范围。还将该算法与固定导频功率方案进行了比较。结果表明,飞行员的电源污染降低了50%以上,网络性能得到了显着提高。最后,对于给定的流量分布,通过比较穷举搜索与相同导频功率配置生成的结果,评估了所描述算法的解决方案质量和效率。

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  • 来源
    《Journal of computer networks and communications》 |2012年第1期|303465.1-303465.14|共14页
  • 作者单位

    College of Engineering, Khalifa University of Science, Technology and Research, UAE;

    College of Engineering, Khalifa University of Science, Technology and Research, UAE;

    College of Engineering, Khalifa University of Science, Technology and Research, UAE;

    Etisalat-BT Innovation Centre (EBTIC), UAE;

    College of Engineering, Khalifa University of Science, Technology and Research, UAE;

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