DocumentCode :
3285283
Title :
Onboard wavefront estimation using spatial light modulator as a phase diversity generator
Author :
Miyamura, Norihide
Author_Institution :
Res. Center for Adv. Sci. & Technol., Univ. of Tokyo, Tokyo, Japan
fYear :
2009
fDate :
25-28 Oct. 2009
Firstpage :
1492
Lastpage :
1497
Abstract :
We propose an adaptive optics system for a lightweight remote sensing sensor. The phase diversity (PD) technique, in which known wavefronts (Phase Diversity) are applied to the optics and the inherent aberrations are estimated using the acquired images without a priori information, is a key to realizing the system. For the reduction of computing cost and the enhancement of the estimation accuracy of aberration, a spatial light modulator (SLM) is adopted not only for wavefront compensator but also for PD generator. The SLM produces arbitrary ¿aberration modes¿ that are each represented by a Zernike polynomial. Therefore, optimal phase diversities are applied to the optical system and particular modes are effectively obtained, which makes it possible to overcome the conventional PD generated by defocusing that describes only quadratic form and lacks information of a particular mode. In order to solve the complex inverse problem of phase diversity with low computing cost, a general regression neural network (GRNN) is used. Moreover, principal component analysis compresses the input data for GRNN by extracting information from collected images in Fourier space, and reduces computation cost considerably. The performance is validated by numerical simulation, and the result of experiment using SLM is described.
Keywords :
Fourier transform optics; Zernike polynomials; adaptive optics; image processing; neural nets; numerical analysis; optical focusing; optical harmonic generation; remote sensing; spatial light modulators; wavefront sensors; Fourier space; Zernike polynomial; adaptive optics system; computing cost reduction; general regression neural network; information extraction; input data compression; lightweight remote sensing sensor; onboard wavefront estimation; optical system; optimal phase diversities; phase diversity generator; phase diversity technique; principal component analysis; spatial light modulator; Adaptive optics; Costs; Optical computing; Optical modulation; Optical sensors; Phase estimation; Phase modulation; Polynomials; Remote sensing; Sensor systems;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Sensors, 2009 IEEE
Conference_Location :
Christchurch
ISSN :
1930-0395
Print_ISBN :
978-1-4244-4548-6
Electronic_ISBN :
1930-0395
Type :
conf
DOI :
10.1109/ICSENS.2009.5398460
Filename :
5398460
Link To Document :
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