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April 22, 2026Sensors0 citationsOpen Access

Rotation-Free Scalar Calibration of Cubic Magnetic Gradient Tensor Array Using Constant-Magnitude Magnetic Fields with Randomized Orientations

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CWChen WangZYZiqiang YuanGLGaigai Liu

Key Points

  • This paper aims to develop a rotation-free calibration method for cubic magnetic gradient tensor arrays using constant-magnitude magnetic fields.
  • Implemented a tri-axial Helmholtz coil system to generate constant-magnitude magnetic fields with randomized orientations.
  • Developed a hierarchical calibration algorithm to account for sensor-level errors and array misalignment.
  • Conducted experiments to compare the new method against traditional calibration techniques.
  • Achieved a 99.87% reduction in the joint tensor invariant CT, from 9.07×10^3 nT/m to 11.51 nT/m.
  • Compared to conventional methods, reduced both mean and RMS of joint CT by 62.7% and 63.1%, respectively.
  • Demonstrated enhanced spatial consistency for large-scale MGT arrays.

Abstract

Accurate calibration is essential for ensuring the performance of magnetic gradient tensor (MGT) arrays. Existing calibration methods generally rely on mechanical rotation to obtain magnetic responses under multiple orientations. However, for large-scale cubic MGT arrays, rotating the entire array using a high-precision non-magnetic turntable is often costly and impractical, while manual rotation is difficult to control and may introduce array-center offsets. To address these limitations, this paper proposes a rotation-free scalar calibration framework for cubic MGT arrays, in which a tri-axial Helmholtz coil system generates constant-magnitude magnetic fields with randomized orientations while compensating for ambient magnetic drifts. Based on the acquired data, a hierarchical calibration algorithm is developed to estimate sensor-level intrinsic errors and array-level misalignment errors. Experimental results show that the proposed method reduces the joint tensor invariant CT from 9.07×103 nT/m to 11.51 nT/m, corresponding to a 99.87% reduction. In addition, compared with a conventional rotation-based fast calibration method, the proposed framework further decreases the mean and RMS of the joint CT by 62.7% and 63.1%, respectively. These results demonstrate that the proposed framework improves the spatial consistency of the MGT array and provides a practical calibration solution for large-scale MGT array systems.

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Cite This Study

Wang et al. (2026) studied this question.

synapsesocial.com/papers/69e865926e0dea528ddea047https://doi.org/10.3390/s26082521
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