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High Performance Curvature Wavefront Sensing for Extrerne-AO

机译:Extrerne-AO的高性能曲率波前传感

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摘要

Despite promising results, Curvature wavefront sensing is usually not considered as an option for future AO systems such as AO systems for Extremely Large Telescopes (ELTs) or high order systems for the current generation of 8 to 10m telescopes. CWFS is generally thought to be useful only for low order systems, both for technical reasons (detector and DM technology) and fundamental reasons (noise propagation for high order curvature systems). I show in this paper that these worries are unjustified, and that, thanks to newly developed techniques and algorithms, CWFS is in fact much superior to more traditional Shack-Hartman wavefront sensing: (1) CWFS can be made extremely efficient, even for a high order system, thanks to a new "multi-stroke" curvature wavefront sensing mode (2) CWFS-based systems can efficiently utilize both piezo-stack type deformable mirrors and square pixel detector array, and there is therefore no reason to think that technological considerations limit CWFS-based systems to low-order correction (3) non-linear Fourier-based CWFS control algorithms can dramatically increase the performance of existing and future CWFS-based systems.
机译:尽管取得了令人鼓舞的结果,但曲率波前传感通常不被认为是未来AO系统的选择,例如用于超大型望远镜(ELT)的AO系统或当前8至10m望远镜的高阶系统。出于技术原因(检测器和DM技术)和基本原因(高阶曲率系统的噪声传播),通常认为CWFS仅对低阶系统有用。我在本文中表明,这些担忧是没有道理的,而且由于有了新开发的技术和算法,CWFS实际上比更传统的Shack-Hartman波前传感要优越得多:(1)CWFS可以变得非常高效,即使对于高阶系统,得益于新的“多冲程”曲率波阵面传感模式(2)基于CWFS的系统可以有效地利用压电堆叠型可变形反射镜和正方形像素检测器阵列,因此没有理由认为技术考虑因素将基于CWFS的系统限制为低阶校正(3)基于非线性傅立叶的CWFS控制算法可以显着提高现有和未来基于CWFS的系统的性能。

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