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Robustness of tomographic reconstructors versus real atmospheric profiles in the ELT perspective

机译:层析成像重建器相对于真实大气轮廓的鲁棒性

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In this article we revisit a subject that has partly already been examined in previous studies: the behavior of tomographic reconstructors in adaptive optics systems, facing to an atmospheric profile (C_n~2(h)) different from the one they've been optimized for. We develop a new approach for that. The current usual approach is to simulate the performance of the reconstructor when slightly varying the C_n~2 (h) profile around a nominal one, and show how far the deviation may go. This has the disadvantage that, as the parameter space for potential errors on the C_n~2(h) profile is basically infinite, it is particularly uneasy to span. Our approach consists in deriving a sort of sensitivity function, that we call vertical error distribution (VED), from the knowledge of any tomographic reconstructor. This function can be computed even for non-tomographic reconstructors, ground-layers reconstructors, single-conjugate AO reconstructors, etc. In any case, it allows us to derive the error when applied to a particular C_n~2(h) profile, have a direct, global visualization of the error variation with layer altitude, for any number at any altitude. This also allows us to understand what a given reconstructor is sensitive to, at what altitudes or altitude range, or explain why some GLAO reconstructors may perform better than optimized MMSE tomographic reconstructors if low-altitude layers pop up. We also discuss the case of ELTs and apply our approach to large scale reconstructors.
机译:在本文中,我们将重新讨论先前已在部分研究中进行过研究的一个主题:自适应光学系统中的层析重建器的行为,其面对的大气廓线(C_n〜2(h))与针对其进行了优化的大气廓线不同。我们为此开发了一种新方法。当前常用的方法是在将C_n〜2(h)轮廓围绕标称轮廓略微变化时模拟重构器的性能,并显示偏差可能会走多远。这样做的缺点是,由于C_n〜2(h)轮廓上潜在错误的参数空间基本上是无限的,因此特别难以扩展。我们的方法包括从任何层析重建器的知识中得出一种灵敏度函数,我们称其为垂直误差分布(VED)。即使对于非断层重建器,地层重建器,单共轭AO重建器等,也可以计算该函数。在任何情况下,当我们将其应用于特定的C_n〜2(h)轮廓时,都可以得出误差。直接,全局显示错误随层高度变化的情况,适用于任何高度的任何数量。这也使我们能够了解给定的重建器在什么海拔或高度范围内敏感,或者解释为什么如果弹出低海拔层,某些GLAO重建器可能会比优化的MMSE层析成像重建器表现更好。我们还讨论了ELT的情况,并将我们的方法应用于大型重建器。

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