Fischer N, Kriechbaum J, Berwanger D, Mathis-Ullrich F (2023)
Publication Type: Journal article
Publication year: 2023
Pages Range: 1-4
DOI: 10.1109/LSENS.2023.3250971
Minimally invasive surgical procedures can strongly benefit from non-visual magnetic instrument tracking. Most state-of-the-art sensor systems for magnetic tracking however are rigid and bulky or depend on multimodal sensor technologies. In this work, we investigate a compliant, wearable 2D Hall-effect sensor array with self-sensing ability and a minimal spatial footprint. Our tracking algorithm is based on a permanent magnet model and a least squares optimization. For evaluation of self-sensing, we tested the sensor array attached to 3D-printed circular frames with known geometries. Tracking was experimentally evaluated moving the target magnet on a preset path utilizing a robotic actuator. Results show that stronger bending radii lead to larger errors of the shape estimation with an overall absolute error of
APA:
Fischer, N., Kriechbaum, J., Berwanger, D., & Mathis-Ullrich, F. (2023). Compliant Hall-Effect Sensor Array for Passive Magnetic Instrument Tracking. IEEE Sensors Letters, 1-4. https://doi.org/10.1109/LSENS.2023.3250971
MLA:
Fischer, Nikola, et al. "Compliant Hall-Effect Sensor Array for Passive Magnetic Instrument Tracking." IEEE Sensors Letters (2023): 1-4.
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