Trainingless fingerprinting-based indoor positioning algorithms with Smartphones using electromagnetic propagation models

I. Bisio, F. Lavagetto, Mario Marchese, M. Pastorino, A. Randazzo
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引用次数: 10

Abstract

Recent multimedia and location-based services (LBSs) employ information about location, orientation, and context of a mobile device. Moreover, the wide spread adoption of Smartphones, usually equipped with powerful processors, accelerometers, compasses, and Global and Hybrid Positioning Systems (GPS/HPSs) receivers, has favored the increasing of location- and context-based services over the last years. In this work a Wi-Fi fingerprint-based indoor positioning techniques is considered. It is aimed at supporting possible location aware services. The main novelty introduced in this paper concerns the training phase, which is usually needed by these techniques. In our approach, the training phase is avoided, since opportune simulative propagation models of the environment in which the algorithm are working are introduced. The resulting technique allows exploiting the accuracy of the fingerprinting approaches and, simultaneously, avoids the heavy training phase, which represents one of the main drawbacks of such techniques.
基于电磁传播模型的智能手机无训练指纹室内定位算法
最近的多媒体和基于位置的服务(lbs)使用有关移动设备的位置、方向和上下文的信息。此外,智能手机的广泛采用,通常配备了强大的处理器,加速度计,指南针,全球和混合定位系统(GPS/ hps)接收器,在过去的几年里,有利于增加基于位置和上下文的服务。本文研究了基于Wi-Fi指纹的室内定位技术。它旨在支持可能的位置感知服务。本文介绍的主要新颖之处在于这些技术通常需要的训练阶段。在我们的方法中,避免了训练阶段,因为引入了算法工作环境的适当模拟传播模型。由此产生的技术允许利用指纹识别方法的准确性,同时避免了繁重的训练阶段,这是此类技术的主要缺点之一。
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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