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Evaluation of least-squares phase-diversity technique for space telescope wave-front sensing

机译:最小二乘相分集技术在空间望远镜波前传感中的应用

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Because of mechanical aspects of fabrication, launch, and operational environment, space telescope optics can suffer from unforeseen aberrations, detracting from their intended diffraction-limited performance goals. We give the results of simulation studies designed to explore how wave-front aberration information for such near-diffraction-limited telescopes can be estimated through a regularized, low-pass filtered version of the Gonsalves (least-squares) phase-diversity technique. We numerically simulate models of both monolithic and segmented space telescope mirrors; the segmented case is a simplified model of the proposed next generation space telescope. The simulation results quantify the accuracy of phase diversity as a wave-fron sensing (WFS) technique in estimating the pupil phase map. The pupil phase is estimated from pairs of conventional and out-of-focus photon-limited point-source images. Image photon statistics are simulated for three different average light levels. Simulation results give an indication of the minimum light level required for reliable estimation of a large number of aberration parameters under the least-squares paradigm. For weak aberrations that average a 0.10 lambda pupil rms to a best case of only 0.002 lambda pupil rms, depending on the light level as well as on the types and degrees of freedom of the aberrations present. (C) 1997 Optical Society of America.
机译:由于制造,发射和操作环境的机械方面的原因,太空望远镜光学器件会遭受无法预料的像差,从而降低了其预期的衍射极限性能目标。我们给出了模拟研究的结果,旨在探索如何通过Gonsalves(最小二乘)相位分集技术的正规化,低通滤波版本来估算这种近衍射极限望远镜的波前像差信息。我们数值模拟了整体和分段空间望远镜镜的模型。分段情况是所提出的下一代太空望远镜的简化模型。仿真结果将相位分集的准确性量化为一种波前传感(WFS)技术,用于估计瞳孔相位图。从成对的传统和散焦光子限制点源图像对中估计瞳孔相位。针对三种不同的平均光照水平模拟图像光子统计。仿真结果表明了在最小二乘范式下可靠估计大量像差参数所需的最小光水平。对于弱像差,根据光水平以及所存在像差的自由度和类型,平均像差为0.10λrms,最佳情况下仅为0.002λrms。 (C)1997年美国眼镜学会。

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