Adaptive control of a micromachined continuous-membrane deformable mirror for aberration compensation
- 1 January 1999
- journal article
- Published by Optica Publishing Group in Applied Optics
- Vol. 38 (1) , 168-176
- https://doi.org/10.1364/ao.38.000168
Abstract
The nonlinear response and strong coupling of control channels in micromachined membrane deformable mirror (MMDM) devices make it difficult for one to control the MMDM to obtain the desired mirror surface shapes. A closed-loop adaptive control algorithm is developed for a continuous-surface MMDM used for aberration compensation. The algorithm iteratively adjusts the control voltages of all electrodes to reduce the variance of the optical wave front measured with a Hartmann–Shack wave-front sensor. Zernike polynomials are used to represent the mirror surface shape as well as the optical wave front. An adaptive experimental system to compensate for the wave-front aberrations of a model eye has been built in which the developed adaptive mirror-control algorithm is used to control a deformable mirror with 19 active channels. The experimental results show that the algorithm can adaptively update control voltages to generate an optimum continuous mirror surface profile, compensating for the aberrations within the operating range of the deformable mirror.Keywords
This publication has 7 references indexed in Scilit:
- Fluorescent infrared scanning-laser ophthalmoscope for three-dimensional visualization: automatic random-eye-motion correction and deconvolutionApplied Optics, 1998
- Continuous-membrane surface-micromachined silicon deformable mirrorOptical Engineering, 1997
- Computation of static shapes and voltages for micromachined deformable mirrors with nonlinear electrostatic actuatorsJournal of Microelectromechanical Systems, 1996
- Model of an adaptive optical system controlled by a neural networkOptical Engineering, 1995
- Flexible mirror micromachined in siliconApplied Optics, 1995
- Wave-front estimation from wave-front slope measurementsJournal of the Optical Society of America, 1980
- Wave-front interpretation with Zernike polynomialsApplied Optics, 1980