GPS and Electronic Fence Data Fusion for Positioning within Railway Worksite Scenarios

J. Figueiras, Jesper Grønbæk, A. Ceccarelli, H. Schwefel
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引用次数: 7

Abstract

Context-dependent decisions in safety-critical applications require careful consideration of accuracy and timeliness of the underlying context information. Relevant examples include location-dependent actions in mobile distributed systems. This paper considers localization functions for personalized warning systems for railway workers, where the safety aspects require timely and precise identification whether a worker is located in a dangerous (red) or safe (green) zone within the worksite. The paper proposes and analyzes a data fusion approach based on low-cost GPS receivers integrated on mobile devices, combined with electronic fences strategically placed in the adjacent boundaries between safe and unsafe geographic zones. An approach based on the combination of a Kalman Filter for GPS-based trajectory estimation and a Hidden Markov Model for inclusion of mobility constraints and fusion with information from the electronic fences is developed and analyzed. Different accuracy metrics are proposed and the benefit obtained from the fusion with electronic fences is quantitatively analyzed in the scenarios of a single mobile entity: By having fence information, the correct zone estimation can increase by 30%, while false alarms can be reduced one order of magnitude in the tested scenario.
铁路工地GPS与电子围栏数据融合定位
在安全关键型应用程序中,与上下文相关的决策需要仔细考虑底层上下文信息的准确性和及时性。相关的例子包括移动分布式系统中的位置相关操作。本文考虑了铁路工人个性化报警系统的定位功能,其中安全方面需要及时准确地识别工人是位于工地内的危险(红色)区域还是安全(绿色)区域。本文提出并分析了一种基于集成在移动设备上的低成本GPS接收器的数据融合方法,并结合在安全和不安全地理区域相邻边界上战略性放置的电子围栏。提出并分析了一种基于卡尔曼滤波的gps弹道估计方法和基于隐马尔可夫模型的包含机动约束和融合电子围栏信息的方法。提出了不同的精度指标,并定量分析了在单个移动实体场景下与电子围栏融合所获得的效益:在测试场景中,通过拥有围栏信息,正确的区域估计可以提高30%,而误报可以降低一个数量级。
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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