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首页> 外文期刊>IEEE Transactions on Control Systems Technology >A Data-Driven ${cal H}_{2}$ -Optimal Control Approach for Adaptive Optics
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A Data-Driven ${cal H}_{2}$ -Optimal Control Approach for Adaptive Optics

机译:数据驱动的 $ {cal H} _ {2} $ -自适应光学的最优控制方法

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Adaptive optics (AO) is used in ground-based astronomical telescopes to improve the resolution by counteracting the effects of atmospheric turbulence. Most AO systems are based on a simple control law that neglects the temporal evolution of the distortions introduced by the atmosphere. This paper presents a data-driven control design approach that is able to exploit the spatio- temporal correlation in the wavefront, without assuming any form of decoupling. The approach consists of a dedicated subspace-identification algorithm to identify an atmospheric disturbance model from open-loop wavefront sensor data, followed by H2-optimal control design. It is shown that in the case that the deformable mirror and wavefront sensor dynamics can be represented by a delay and a two taps impulse response, it is possible to derive an analytical expression for the H2-optimal controller. Numerical simulations on AO test bench data demonstrate a performance improvement with respect to the common AO control approach.
机译:自适应光学(AO)用于地面天文望远镜,通过抵消大气湍流的影响来提高分辨率。大多数AO系统基于简单的控制律,而忽略了大气引入的畸变的时间演变。本文提出了一种数据驱动的控制设计方法,该方法能够利用波前的时空相关性,而无需采取任何形式的解耦。该方法由专用的子空间识别算法组成,该算法从开环波前传感器数据中识别大气干扰模型,然后进行H 2 最优控制设计。结果表明,在可变形镜面和波前传感器动力学可以通过延迟和两个抽头脉冲响应来表示的情况下,有可能导出H 2 最优控制器的解析表达式。 。 AO试验台数据的数值模拟表明,相对于常规AO控制方法,其性能有所提高。

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