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A global self-localization technique utilizing local anomalies of the ambient magnetic field

机译:利用环境磁场局部异常的全局自定位技术

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Magnetic field fluctuations in modern buildings arise from both natural and man-made sources, such as steel and reinforced concrete structures, electric power systems, electric and electronic appliances, and industrial devices. If the anomalies of the magnetic field inside the building are nearly static and they have sufficient local variability, they provide a unique magnetic fingerprint that can be utilized in global self-localization. In this article, a Monte Carlo localization (MCL) technique based on this hypothesis is proposed. The feasibility of the technique is demonstrated by presenting a series of global localization experiments conducted in four arbitrarily selected buildings, including a hospital. The experiment setup consists of a mobile robot instrumented with a 3-axis magnetometer and a computer. In addition, successful human self-localization experiments were conducted by using a wireless wearable magnetometer. The reported experiments suggest that the ambient magnetic field may remain sufficiently stable for longer periods of time, giving support for self-localization techniques utilizing the local deviations of the field.
机译:现代建筑中的磁场波动源于自然和人为来源,例如钢结构和钢筋混凝土结构,电力系统,电气和电子设备以及工业设备。如果建筑物内部的磁场异常几乎是静态的,并且具有足够的局部变化性,则它们将提供可用于全局自定位的唯一磁性指纹。在本文中,提出了基于该假设的蒙特卡洛定位(MCL)技术。通过介绍在包括医院在内的四个任意选择的建筑物中进行的一系列全球定位实验,证明了该技术的可行性。实验装置包括一个装有3轴磁力计的移动机器人和一台计算机。此外,通过使用无线可穿戴磁力计进行了成功的人体自定位实验。报告的实验表明,环境磁场可能会在更长的时间内保持足够的稳定,从而为利用磁场局部偏差的自定位技术提供了支持。

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