Computationally Efficient Magnetic Position System Calibration †

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Abstract

Properties such as high resolution, contactless (and thus wear-free) measurement, low power consumption, robustness against temperature and contamination as well as low cost make magnetic position and orientation systems appealing for a large number of industrial applications. Nevertheless, one major practical challenge is their sensitivity to fabrication tolerances. In this work, we propose a novel method for magnetic position system calibration based on the analytical computation of the magnetic field and on the application of an evolutionary optimization algorithm. This scheme enables the calibration of more than 10 degrees of freedom within a few seconds on standard quad-core ×86 processors, and is demonstrated by calibrating a highly cost-efficient 3D-printed 3-axis magnetic joystick.

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Lumetti, S., Malagò, P., Spitzer, D., Zaruba, S., & Ortner, M. (2020). Computationally Efficient Magnetic Position System Calibration †. Engineering Proceedings, 2(1). https://doi.org/10.3390/ecsa-7-08219

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