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Performance comparison of centroiding algorithms for laser guide star wavefront sensing with extremely large telescopes

机译:超大型望远镜对激光导星波阵面传感质心化算法的性能比较

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Sodium laser guide stars (LGSs) increase the sky coverage of adaptive optics systems but have their own limitations. For Shack-Hartmann wavefront sensors (WFSs), the slow variations of the sodium layer altitude and atom density profile induce changing errors on centroid measurements, especially for extremely large telescopes (ELTs), as the spot elongation increases with the telescope diameter. These LGS-induced aberrations are propagated on the science path and must be filtered out by (i) optimizing the LGS WFS and the centroiding algorithm and (ii) adding a high-pass filter on the LGS path and a low-bandwidth natural-guide-star (NGS) WFS. Within the context of the European Southern Observatory European-ELT project, five different centroiding algorithms, namely, the center-of-gravity (CoG), weighted CoG, matched filter, quad cell, and correlation, have been evaluated in a closed loop on the University of Victoria LGS wavefront sensing test bed. This optical bench reproduces, in the laboratory, both NGS spots and LGS elongated spots with changing sodium profiles and turbulence. Each centroiding algorithm performance is compared and discussed for a central- versus side-launch laser: different fields of view, pixel sampling, and signal-to-noise ratios.
机译:钠激光导星(LGS)可以增加自适应光学系统的天空覆盖范围,但有其自身的局限性。对于Shack-Hartmann波前传感器(WFS),钠层高度和原子密度分布的缓慢变化会引起质心测量的变化误差,特别是对于超大型望远镜(ELT),这是因为光斑的伸长随望远镜直径的增加而增加。这些LGS引起的像差会在科学路径上传播,并且必须通过以下方式予以滤除:(i)优化LGS WFS和质心算法,以及(ii)在LGS路径上添加高通滤波器和低带宽自然导引-star(NGS)WFS。在欧洲南方天文台欧洲ELT项目的背景下,已在闭环上评估了五种不同的质心算法,即重心(CoG),加权CoG,匹配滤波器,四像元和相关性。维多利亚大学LGS波前传感测试台。该光具座在实验室中可复制NGS斑点和LGS细长斑点,这些钠斑点和湍流会发生变化。比较和讨论了中心发射激光器和侧面发射激光器的每种质心算法性能:不同的视场,像素采样和信噪比。

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