Position and Orientation Estimation Uncertainty Using Magnetometer Arrays for Indoor Localization

Thomas Edridge;Manon Kok
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Abstract

Recently, it has been shown that odometry is possible only using data from a magnetometer array. In this work, we analyze the uncertainty of the pose change estimate using a magnetometer array. We derive an analytical expression for the pose change covariance to analyze the estimation uncertainty in Monte Carlo simulations. Under certain conditions, we demonstrate that using a magnetometer array, it is possible to estimate the position and orientation change with submillimeter and subdegree precision between two consecutive time-steps. Moreover, we also demonstrate that when constructing a magnetometer array, magnetometers should be placed in the direction of movement to maximize the positional and rotational precision, with at least four magnetometers per unit of length-scale. In addition, we illustrate that to minimize positional and rotational drift to under a few percentages and degrees of the distance traveled, submillimeter and subdegree magnetometer alignment errors are necessary. Similarly, bias errors smaller than a few percent of the magnitude of the magnetic field variations are necessary. The Monte Carlo simulations are verified using experimental data collected with a 30-magnetometer array. The experimental data show that when insufficient magnetic field anomalies are in close proximity, the changes in positions are estimated poorly, while significant orientation information is still obtained. It also shows that when the magnetometer array is in close proximity to sufficient magnetic field anomalies, the overall trajectory traveled by a magnetometer array can be accurately estimated with a horizontal error accumulation of less than a percentage of the distance traveled.
利用磁力计阵列进行室内定位的位置和方向估计的不确定性
最近,它已经表明,里程计是可能的,只有使用数据从磁力计阵列。在这项工作中,我们分析了使用磁力计阵列的姿态变化估计的不确定性。我们推导了位姿变化协方差的解析表达式,以分析蒙特卡罗仿真中估计的不确定性。在一定条件下,我们证明了使用磁强计阵列可以在两个连续时间步长之间以亚毫米和亚度精度估计位置和方向变化。此外,我们还证明,在构建磁力计阵列时,磁力计应放置在运动方向,以最大限度地提高位置和旋转精度,每单位长度尺度至少有四个磁力计。此外,我们还说明,为了将位置和旋转漂移最小化到行进距离的几个百分比和程度以下,亚毫米和亚度的磁力计对准误差是必要的。同样,小于磁场变化幅度百分之几的偏置误差是必要的。利用30磁力计阵列收集的实验数据对蒙特卡罗模拟进行了验证。实验数据表明,当磁场异常不足时,距离较近,位置变化估计较差,但仍能获得重要的方位信息。结果还表明,当磁强计阵列靠近足够的磁场异常时,可以准确地估计磁强计阵列的总体轨迹,其水平误差累积小于行进距离的百分比。
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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