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Magnetic Odometry - A Model-Based Approach Using a Sensor Array

机译:电磁测距法-使用传感器阵列的基于模型的方法

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A model-based method to perform odometry using an array of magnetometers that sense variations in a local magnetic field is presented. The method requires no prior knowledge of the magnetic field, nor does it compile any map of it. Assuming that the local variations in the magnetic field can be described by a curl and divergence free polynomial model, a maximum likelihood estimator is derived. To gain insight into the array design criteria and the achievable estimation performance, the identifiability conditions of the estimation problem are analyzed and the Cramér-Rao bound for the one-dimensional case is derived. The analysis shows that with a second-order model it is sufficient to have six magnetometer triads in a plane to obtain local identifiability. Further, the Cramér-Rao bound shows that the estimation error is inversely proportional to the ratio between the rate of change of the magnetic field and the noise variance, as well as the length scale of the array. The performance of the proposed estimator is evaluated using real-world data. The results show that, when there are sufficient variations in the magnetic field, the estimation error is of the order of a few percent of the displacement. The method also outperforms current state-of-the-art method for magnetic odometry.
机译:提出了一种基于模型的方法,该方法使用感测器阵列来感测局部磁场中的变化的里程表。该方法不需要磁场的先验知识,也不需要编译任何磁场图。假设磁场的局部变化可以通过无卷曲和发散的多项式模型来描述,则得出最大似然估计量。为了深入了解阵列设计标准和可实现的估计性能,分析了估计问题的可识别性条件,并推导了一维情况下的Cramér-Rao界。分析表明,对于一个二阶模型,在一个平面上具有六个磁力计三重轴就足以获得局部可识别性。此外,Cramér-Rao边界表明,估计误差与磁场的变化率和噪声方差以及阵列的长度比例成反比。拟议的估算器的性能是使用实际数据进行评估的。结果表明,当磁场中存在足够的变化时,估计误差约为位移的百分之几。该方法的性能也优于当前用于磁测距法的最新方法。

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