首页> 外文会议>2013 11th International Symposium and Workshops on Modeling and Optimization in Mobile, Ad Hoc and Wireless Networks >Automated coverage hole detection for cellular networks using radio environment maps
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Automated coverage hole detection for cellular networks using radio environment maps

机译:使用无线电环境图对蜂窝网络进行自动覆盖漏洞检测

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摘要

The existence of coverage holes in cellular networks is a common problem for mobile operators. Traditionally, the cellular coverage is computed using sophisticated planning tools, and then optimized through drive tests. With the drive tests information, the operators detect the poorly covered areas and take actions to eliminate them. The introduction of self-organized or “cognitive” techniques, would allow the operators to maximize the network's information obtained through drive tests or reported by the mobile users. In this paper we propose the use of spatial Bayesian geo-statistics to build a Radio Environment Map (REM) for real coverage hole detection purposes. Results show that the number of pixels forming the coverage holes, as well as the probability of detecting them, can be significantly increased with the use of REMs, compared to the case where only network measurements are used.
机译:对于移动运营商来说,蜂窝网络中存在覆盖漏洞是一个普遍的问题。传统上,蜂窝覆盖范围是使用复杂的计划工具计算得出的,然后通过路测进行优化。通过路测信息,操作员可以检测出覆盖不良的区域并采取措施消除它们。自组织或“认知”技术的引入将使运营商能够最大化通过路测获得或由移动用户报告的网络信息。在本文中,我们建议使用空间贝叶斯地统计学来构建无线电环境图(REM),以进行实际覆盖孔检测。结果表明,与仅使用网络测量的情况相比,使用REM可以显着增加形成覆盖孔的像素数量以及检测覆盖孔的可能性。

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