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Real-time adaptive optimization of wavefront reconstruction algorithms for closed-loop adaptive optical systems

机译:闭环自适应光学系统的Wavefront重建算法的实时自适应优化

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In recent years several methods have been presented for optimizing closed-loop adaptive-optical (AO) wave-front re- construction algorithms. These algorithms, which can significantly improve the performance of AO systems, compute the reconstruction matrix using measured atmospheric statistics. Since atmospheric conditions vary on time scales of minutes, it becomes necessary to constantly update the reconstruction so that it adjusts to the changing atmospheric statistics. This paper presents a method for adaptively optimizing the reconstructor of a closed-loop AO system in real time. The method relies on recursive least square techniques to track the temporal and spatial correlations of the turbulent wave-front. The performance of this method is examined for a sample scenario in which the AO control algorithm attempts to compensate for signal processing latency by reconstructing the future value of the wave-front from a combination of past and current wave-front sensor measurements. For this case, the adaptive reconstruction algorithm yields Strehl ratios within a few percent of those obtained by an optimal reconstructor derived from a priori knowledge of the strength of the turbulence and the velocity of the wind. This level of performance can be a dramatic improvement over the Strehls achievable with a conventional least squares reconstructor.
机译:近年来,已经提出了几种方法,用于优化闭环自适应光学(AO)波前重新构建算法。这些算法可以显着提高AO系统的性能,使用测量的大气统计计算重建矩阵。由于大气条件在时间尺度上变化,因此必须不断更新重建,以便调整到变化的大气统计数据。本文介绍了一种用于在实时优化闭环AO系统的重建器的方法。该方法依赖于递归最小二乘技术,以跟踪湍流波前面的时间和空间相关性。检查该方法的性能对于采样场景,其中AO控制算法尝试通过从过去和电流波前传感器测量的组合重建波前的未来值来补偿信号处理延迟。为此,自适应重建算法在通过最佳重建器获得的百分之几的百分比内产生刻度比,从而获得源自湍流强度的先验和风的速度。这种性能水平可以是通过传统最小二乘重建实现的级别的戏剧性改进。

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