TY - JOUR
T1 - Magnetic Target Positioning Based on Differential Errors Compensation
AU - Chen, Xuning
AU - Zheng, Jianying
AU - Cui, Yong
AU - Hu, Qinglei
N1 - Publisher Copyright:
© 1980-2012 IEEE.
PY - 2026
Y1 - 2026
N2 - This article investigates the accurate positioning problem of a magnetic target in full space. The commonly used positioning approaches rely on the classical scalar triangulation and ranging (STAR) method based on the magnetic gradient tensor (MGT). In these STAR-based approaches, the MGT is approximated by the sensor differentials, which introduces ineliminable errors into the positioning results. To improve the localization accuracy, an iterative differential errors compensation positioning (DECP) method is proposed in this article. The DECP method establishes the error compensation models for the MGT and the gradient of the tensor invariant, and iteratively updates the target's position and magnetic moment to approach the true values. The proposed method is evaluated in both simulations and real-world experiments. The simulation results show that the positioning errors of the DECP method are much smaller than those of four STAR-based benchmark methods, and it is able to improve the positioning accuracy by 42.4%-86.5% in different field experiments, which demonstrates the effectiveness and robustness of the proposed method.
AB - This article investigates the accurate positioning problem of a magnetic target in full space. The commonly used positioning approaches rely on the classical scalar triangulation and ranging (STAR) method based on the magnetic gradient tensor (MGT). In these STAR-based approaches, the MGT is approximated by the sensor differentials, which introduces ineliminable errors into the positioning results. To improve the localization accuracy, an iterative differential errors compensation positioning (DECP) method is proposed in this article. The DECP method establishes the error compensation models for the MGT and the gradient of the tensor invariant, and iteratively updates the target's position and magnetic moment to approach the true values. The proposed method is evaluated in both simulations and real-world experiments. The simulation results show that the positioning errors of the DECP method are much smaller than those of four STAR-based benchmark methods, and it is able to improve the positioning accuracy by 42.4%-86.5% in different field experiments, which demonstrates the effectiveness and robustness of the proposed method.
KW - Differential errors compensation
KW - magnetic gradient tensor (MGT)
KW - magnetic positioning
KW - tensor invariant
UR - https://www.scopus.com/pages/publications/105034419655
U2 - 10.1109/TGRS.2026.3676816
DO - 10.1109/TGRS.2026.3676816
M3 - 文章
AN - SCOPUS:105034419655
SN - 0196-2892
VL - 64
JO - IEEE Transactions on Geoscience and Remote Sensing
JF - IEEE Transactions on Geoscience and Remote Sensing
M1 - 2001811
ER -