On distributed wavefront reconstruction for large-scale adaptive optics systems

Journal Article (2016)
Author(s)

CC de Visser (TU Delft - Control & Simulation)

AE Brunner (TU Delft - Team Raf Van de Plas)

M Verhaegen (TU Delft - Team Raf Van de Plas)

Research Group
Control & Simulation
Copyright
© 2016 C.C. de Visser, A.E. Brunner, M.H.G. Verhaegen
DOI related publication
https://doi.org/10.1364/JOSAA.33.000817
More Info
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Publication Year
2016
Language
English
Copyright
© 2016 C.C. de Visser, A.E. Brunner, M.H.G. Verhaegen
Research Group
Control & Simulation
Issue number
5
Volume number
33
Pages (from-to)
817-831
Reuse Rights

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Abstract

The distributed-spline-based aberration reconstruction (D-SABRE) method is proposed for distributed wavefront reconstruction with applications to large-scale adaptive optics systems. D-SABRE decomposes the wavefront sensor domain into any number of partitions and solves a local wavefront reconstruction problem on each partition using multivariate splines. D-SABRE accuracy is within 1% of a global approach with a speedup that scales quadratically with the number of partitions. The D-SABRE is compared to the distributed cumulative reconstruction (CuRe-D) method in open-loop and closed-loop simulations using the YAO adaptive optics simulation tool. D-SABRE accuracy exceeds CuRe-D for low levels of decomposition, and D-SABRE proved to be more robust to variations in the loop gain.

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