Articles | Volume 15, issue 1
https://doi.org/10.5194/jsss-15-47-2026
Special issue:
https://doi.org/10.5194/jsss-15-47-2026
Regular research article
 | 
18 Mar 2026
Regular research article |  | 18 Mar 2026

Adaptive accuracy enhancement for a simultaneously firing optical position sensor

Eduard Burian

Cited articles

Burian, E.: Micropower Active Optical Position Sensor for Decimeter-Range Sensing Gaps, in: 2023 IEEE SENSORS, IEEE, 1–3, ISBN 979-8-3503-0387-2, https://doi.org/10.1109/SENSORS56945.2023.10324868, 2023. 
Berkovic, G. and Shafir, E.: Optical methods for distance and displacement measurements, Adv. Opt. Photonics, 4, 441–471, https://doi.org/10.1364/AOP.4.000441, 2012. 
Dhar, V. K., Tickoo, A. K., Kaul, S. K., Koul, R., and Dubey, B. P.: Artificial Neural Network-based error compensation procedure for low-cost encoders, Meas. Sci. Technol., 21, 015112, https://doi.org/10.1088/0957-0233/21/1/015112, 2010. 
Faber, J., Stulrajter, M., and Vittek, J.: Self-Calibration of the Resolver Sensor in Servo Drive Application, Commun.-Sci. Lett. Univ. Zilina, 15, 17–22, https://doi.org/10.26552/com.C.2013.2A.17-22, 2013. 
Ferrero, B. and Bellon, L.: Harmonic calibration of quadrature phase interferometry, EPL, 139, 55002, https://doi.org/10.1209/0295-5075/ac8761, 2022. 
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Short summary
This paper is related to a theoretical background and the performance testing of lateral position sensing based on quadrature spatio-temporal modulation with adaptive parameter correction, implemented in a prototype micropower optical position sensor. There is a substantial improvement in position readout accuracy over a basic detection method (0.2 mm for sensing gaps >100 mm), and elevated tolerance to harsh field conditions (e.g. partial blockage in optical paths) has been demonstrated. 
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