基于蜂窝网络定位的接收信号强度测量建模

J. Talvitie, E. Lohan
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引用次数: 15

摘要

本文介绍了一种基于用户定位需求的蜂窝网络接收信号强度(RSS)测量模型的新方法。基于从现实生活网络中收集的经验数据,通过构建一个合成统计细胞网络来模拟RSS测量。这些统计数据包括传统的路径损耗模型参数,包括空间相关性在内的阴影现象,以及描述一次测量多少个单元身份的概率。利用基于指纹识别的k近邻算法,将合成模型中的用户终端定位性能与实际测量场景进行比较。结果表明,得到的位置误差分布具有较好的匹配性。所介绍的网络设计的主要优点是可以研究各种位置算法的性能,而不需要大量的测量活动。该模型在确定不同无线电环境情景的量纲和支持测量活动的预先规划方面特别有用。此外,用不同的随机值重复建模过程,可以研究系统中不常见的情况,这些情况在有限的实际测量集中很难揭示。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Modeling Received Signal Strength measurements for cellular network based positioning
This paper introduces a novel approach to model Received Signal Strength (RSS) measurements in cellular networks for user positioning needs. The RSS measurements are simulated by constructing a synthetic statistical cellular network, based on empirical data collected from a real life network. These statistics include conventional path loss model parameters, shadowing phenomenon including spatial correlation, and probabilities describing how many cell identities are measured at a time. The performance of user terminal positioning in the synthetic model is compared with real life measurement scenario by using a fingerprinting based K-nearest neighbor algorithm. It is shown that the obtained position error distributions match well with each other. The main advantage of the introduced network design is the possibility to study the performance of various position algorithms without requiring extensive measurement campaigns. In particular the model is useful in dimensioning different radio environment scenarios and support in preplanning of measurement campaigns. In addition, repeating the modeling process with different random values, it is possible to study uncommon occurrences in the system which would be difficult to reveal with limited real life measurement sets.
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