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Asphericity Errors Correction of Magnetic Gradient Tensor Invariants Method for Magnetic Dipole Localization

机译:磁偶极子定位的磁梯度张量不变性非球面误差校正

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The localization method of a magnetic dipole based on the magnetic gradient tensor invariants is the Scalar Triangulation And Ranging method (STAR), which is used to solve the multiple solutions problem for the real-time localization of magnetic dipole by the spatial geometric relationship of the tensor rotation invariants. The method is not involved in the measurement of the magnetic field vector greatly affected by the geomagnetic field. Simultaneously, it is very suitable for underground and underwater exploration such as the exploration of unexploded ordnance. But, it has asphericity errors, which can make the azimuth errors of up to 5$^{circ}$ . In addition, it is tightly coupled with the magnetic properties of the target. Thus, we proposed an iterative method to correct the asphericity errors. In this method, beginning with the results of the STAR method, the defective parameters obtained by the sensor structure were used to rapidly correct the localization errors and enhance the properties of real-time localization. The relative errors of the components of bearing vector were reduced by a factor of 7, and they were not influenced by the magnetic properties of the target.
机译:基于磁梯度张量不变性的磁偶极子的定位方法是Scalar Triangulation And Ranging Method(STAR),它用于通过磁极子的空间几何关系来解决磁偶极子实时定位的多重解问题。张量旋转不变式。该方法不涉及受地磁场影响很大的磁场矢量的测量。同时,它非常适用于地下和水下勘探,例如未爆弹药的勘探。但是,它具有非球面度误差,可以使方位误差高达5 $ ^ {circ} $。此外,它与靶材的磁性能紧密相关。因此,我们提出了一种校正非球面误差的迭代方法。在此方法中,从STAR方法的结果开始,将传感器结构获得的缺陷参数用于快速校正定位误差并增强实时定位的性能。方位矢量分量的相对误差减小了7倍,并且不受目标磁性能的影响。

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