Improvement of fingerprinting technique for UWB indoor localization

W. Vinicchayakul, S. Promwong
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引用次数: 13

Abstract

The indoor localization is highly desired for elevation in the industrial, public safety and medical technology. Its significant requirement is a high accuracy in dense multipath fading environments. This paper improves the main problem of indoor localization by using fingerprinting technique based on ultra wideband (UWB) channel measurement. In addition, the neural network algorithm is used to find the location that has 3 dimensions, x plane, y plane and z plane. The first path loss, the delay times of the first part, the average path loss and the average of delay time were applied to create the ultra wideband radio propagation parameters for fingerprinting technique. the results are shown in terms of histogram of distance errors between update and non-update the databases and countour graph of each of distance errors on the coordinates. According to the results, the fingerprinting technique with update database can identify the location more correctly than the fingerprinting technique with non-update database. It had accuracy at 1 meter as 88.57%. while the fingerprinting technique with non-update database was affected from the environment and the accuracy at 1 meter was lower than the fingerprinting technique with update database all the times of experiment.
超宽带室内定位指纹技术的改进
在工业、公共安全和医疗技术领域,室内定位是高度需要的。它的一个重要要求是在密集多径衰落环境下具有较高的精度。本文采用基于超宽带信道测量的指纹识别技术,解决了室内定位的主要问题。此外,利用神经网络算法寻找具有3个维度的位置,即x平面、y平面和z平面。利用第一部分的路径损耗、第一部分的延迟时间、平均路径损耗和延迟时间的平均值来建立用于指纹识别技术的超宽带无线电传播参数。结果显示为更新与未更新数据库之间距离误差的直方图和每个距离误差在坐标上的线图。结果表明,数据库更新后的指纹识别技术比数据库未更新时的指纹识别技术能更准确地识别位置。在1米精度为88.57%。而未更新数据库的指纹识别技术受到环境的影响,在1米处的精度低于更新数据库的指纹识别技术。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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