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Optimizing closed-loop adaptive-optics performance with use of multiple control bandwidths

Publication ,  Journal Article
Ellerbroek, BL; Pitsianis, NP; Plemmons, RJ
Published in: Journal of the Optical Society of America A: Optics and Image Science, and Vision
January 1, 1994

The performance of a closed-loop adaptive-optics system may in principle be improved by selection of distinct and independently optimized control bandwidths for separate components, or modes, of the wave-front- distortion profile. We describe a method for synthesizing and optimizing a multiple-bandwidth adaptive- optics control system from performance estimates previously derived for single-bandwidth control systems operating over a range of bandwidths. The approach is applicable to adaptive-optics systems that use either one or several wave-front sensing beacons and also to systems that include multiple deformable mirrors for atmospheric-turbulence compensation across an extended field of view. Numerical results are presented for the case of an atmospheric-turbulence profile consisting of a single translating phase screen with Kolmogorov statistics, a Shack-Hartmann wave-front sensor with from 8 to 16 subapertures across the aperture of the telescope, and a continuous-face-sheet deformable mirror with actuators conjugate to the corners of the wavefront-sensor subapertures. The use of multiple control bandwidths significantly relaxes the wave-front-sensor noise level that is permitted for the adaptive-optics system to operate near the performance limit imposed by fitting error. Nearly all of this reduction is already achieved through the use of a control system that uses only two distinct bandwidths, one of which is the zero bandwidth. © 1994 Optical Society of America.

Duke Scholars

Published In

Journal of the Optical Society of America A: Optics and Image Science, and Vision

DOI

EISSN

1520-8532

ISSN

1084-7529

Publication Date

January 1, 1994

Volume

11

Issue

11

Start / End Page

2871 / 2886

Related Subject Headings

  • Optics
  • 4009 Electronics, sensors and digital hardware
  • 4006 Communications engineering
  • 1113 Opthalmology and Optometry
  • 0906 Electrical and Electronic Engineering
  • 0205 Optical Physics
 

Citation

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Ellerbroek, B. L., Pitsianis, N. P., & Plemmons, R. J. (1994). Optimizing closed-loop adaptive-optics performance with use of multiple control bandwidths. Journal of the Optical Society of America A: Optics and Image Science, and Vision, 11(11), 2871–2886. https://doi.org/10.1364/JOSAA.11.002871
Ellerbroek, B. L., N. P. Pitsianis, and R. J. Plemmons. “Optimizing closed-loop adaptive-optics performance with use of multiple control bandwidths.” Journal of the Optical Society of America A: Optics and Image Science, and Vision 11, no. 11 (January 1, 1994): 2871–86. https://doi.org/10.1364/JOSAA.11.002871.
Ellerbroek BL, Pitsianis NP, Plemmons RJ. Optimizing closed-loop adaptive-optics performance with use of multiple control bandwidths. Journal of the Optical Society of America A: Optics and Image Science, and Vision. 1994 Jan 1;11(11):2871–86.
Ellerbroek, B. L., et al. “Optimizing closed-loop adaptive-optics performance with use of multiple control bandwidths.” Journal of the Optical Society of America A: Optics and Image Science, and Vision, vol. 11, no. 11, Jan. 1994, pp. 2871–86. Scopus, doi:10.1364/JOSAA.11.002871.
Ellerbroek BL, Pitsianis NP, Plemmons RJ. Optimizing closed-loop adaptive-optics performance with use of multiple control bandwidths. Journal of the Optical Society of America A: Optics and Image Science, and Vision. 1994 Jan 1;11(11):2871–2886.
Journal cover image

Published In

Journal of the Optical Society of America A: Optics and Image Science, and Vision

DOI

EISSN

1520-8532

ISSN

1084-7529

Publication Date

January 1, 1994

Volume

11

Issue

11

Start / End Page

2871 / 2886

Related Subject Headings

  • Optics
  • 4009 Electronics, sensors and digital hardware
  • 4006 Communications engineering
  • 1113 Opthalmology and Optometry
  • 0906 Electrical and Electronic Engineering
  • 0205 Optical Physics