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Stability of the Adaptive-Optic Point-Spread Function: Metrics, Deconvolution, and Initial Palomar Results

机译:自适应光点传播功能的稳定性:指标,折卷积和初始Palomar结果

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The essential benefit of adaptive optics is delivering a telescope point-spread function (PSF) limited by diffraction rather than by atmospheric turbulence. In practice, achieving diffraction-limited PSF diameters is relatively routine for modern high-order systems, at least within a restricted isoplanatic patch containing the guide star. The lower-intensity wings of the PSF, though are often highly complex in their structure and subject to variability over short time scales. Spurious bright knots can occur among the secondary Airy maxima, and the "waffle-mode" artifact may be problematic with a broad class of adaptive optics approaches. Good temporal stability of the adaptive-optic PSF is generally highly desirable if the full advantage of that spectacular PSF is to be realized; it is absolutely critical for many specific high-resolution programs that can only be attempted with adaptive optics. In the course of commissioning the high-order adaptive optics system built at JPL for the Palomar 200-inch telescope, we have investigated PSF stability inthe field under a variety of conditions. We discuss here our experimental findings at Palomar, and their implications for some key scientific programs.
机译:自适应光学器件的基本益处是通过衍射而不是大气湍流来提供望远镜点扩散功能(PSF)。在实践中,实现衍射限制的PSF直径是现代高阶系统的相对常规,至少在包含引导星的限制等内贴膜内。 PSF的较低强度翅膀在其结构中通常具有高度复杂的并且在短时间尺度上进行可变性。在二级通风最大值中可能发生杂色的明亮结,并且“华夫饼式”伪像可能与广泛的自适应光学方法有问题。如果要实现该壮观PSF的完全优势,则自适应光学PSF的良好时间稳定性通常是非常希望的。对于许多特定的高分辨率程序来说绝对至关重要,只能尝试自适应光学器件。在调试JPL为Palomar 200英寸望远镜的JPL建造的高阶自适应光学系统中,我们在各种条件下调查了PSF稳定性底部。我们在这里讨论了Palomar的实验结果,以及对某些关键科学计划的影响。

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