Calibration and localization of optically pumped magnetometers using electromagnetic coils
Joonas Iivanainen, Amir Borna, Rasmus Zetter, Tony R. Carter, Julia M., Stephen, Jim McKay, Lauri Parkkonen, Samu Taulu, Peter D.D. Schwindt

TL;DR
This paper introduces a method to calibrate and localize optically pumped magnetometers using electromagnetic coils, improving accuracy for magnetoencephalography applications.
Contribution
The paper presents a novel calibration technique employing electromagnetic coils and vector-spherical harmonics to estimate sensor parameters for OPM arrays.
Findings
Achieved 1.0 mm RMS position error with a fluxgate magnetometer
Estimated 0.2° orientation error and 0.8% gain error
Calibrated a 48-channel OPM array with 3.3 mm average localization error
Abstract
In this paper, we propose a method to estimate the position, orientation and gain of a magnetic field sensor using a set of (large) electromagnetic coils. We apply the method for calibrating an array of optically pumped magnetometers (OPMs) for magnetoencephalography (MEG). We first measure the magnetic fields of the coils at multiple known positions using a well-calibrated triaxial magnetometer and model these discreetly sampled fields using vector-spherical harmonics (VSH) functions. We then localize and calibrate a sensor by minimizing the sum of squared errors between the model signals and the sensor responses to the coil fields. We show that by using homogeneous and first-order gradient fields, the sensor parameters (gain, position, and orientation) can be obtained from a set of linear equations with pseudo-inverses of two matrices. By determining the coil currents based on the VSH…
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Taxonomy
TopicsAtomic and Subatomic Physics Research · Magnetic Field Sensors Techniques · Geomagnetism and Paleomagnetism Studies
