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Adaptive Control of Woofer-Tweeter Adaptive Optics

机译:低音扬声器自适应光学的自适应控制

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Adaptive optics applies advanced sensing and control to improve the ability of optical systems to collect images through a turbulent atmosphere. The results of this research effort demonstrate that the combination of two recent approaches improves the performance of adaptive optics in directed energy and laser communication scenarios. The first approach is adaptive control, which offers improved performance over fixed-gain controllers in the presence of rapidly changing turbulence. The second approach incorporated into the study is a dual-mirror system. The two mirrors are a high-bandwidth, low-actuator-stroke (tweeter) mirror and a low-bandwidth,large-actuator-stroke (woofer) mirror. The woofer-tweeter combination allows for better compensation of the large-variance, high-spatial-frequency phase distortion generated by strong turbulence. Two different adaptive controllers are presented, one using a relatively simple model reference adaptive system controller and one using a lattice filter controller. The lattice filter is implemented in two ways. In one implementation the filter operates on the individual actuators, while in the other it operates on frequency-weighted modes. The modal implementation reduces the computational burden of the filter. The performance of the different adaptive controllers is compared to both each other and to a traditional fixed-gain controller. Simulations show that adaptive control of woofertweeter adaptive optics can increase the mean Strehl ratio by up to 20%. In general, the lattice filter controllers outperform the model reference adaptive system controller. However, in cases where the lattice filter cannot use a sufficient number of modes, the model reference adaptive system can outperform the lattice filter.
机译:自适应光学器件应用高级感测和控制,以提高光学系统通过湍流气氛收集图像的能力。这项研究的结果表明,最近的两种方法的组合可以提高了激光通信场景中自适应光学的性能。第一种方法是自适应控制,在存在迅速变化的湍流时,在固定增益控制器上提供改进的性能。结合到该研究的第二种方法是双镜系统。这两个镜子是高带宽,低致动器行程(高音扬声器)镜子和低带宽,大型大型器 - 行程(低音扬声器)镜。低音扬声器组合允许更好地补偿由强湍流产生的大方差,高空间频率相失真。呈现两个不同的自适应控制器,使用相对简单的模型参考自适应系统控制器和使用晶格滤波器控制器的自适应系统控制器。晶格过滤器以两种方式实现。在一个实现中,滤波器在各个执行器上操作,而另一个在另一个执行器上操作它在频率加权模式下操作。模态实现会降低过滤器的计算负担。将不同的自适应控制器的性能与彼此相互比较和传统的固定增益控制器。模拟表明,无差张的自适应光学器件的自适应控制可以将平均刻度的比例增加到20%。通常,晶格过滤器控制器优于模型参考自适应系统控制器。但是,在晶格滤波器不能使用足够数量的模式的情况下,模型参考自适应系统可以优于晶格滤波器。

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