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Performance study of Kalman filter controller for multiconjugate adaptive optics

机译:多共轭自适应光学系统的卡尔曼滤波控制器性能研究

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摘要

We compare the performance of the Kalman filter (KF)-based and the minimum variance (MV) control algorithms for a zonal adaptive optics with a phase temporal prediction step included for effective compensation of the errors attributable to latencies in the system. The main goal is to evaluate the performance achievable by the computationally more expensive KF approach, which explicitly accounts for the atmospheric turbulence temporal behavior through a first-order autoregressive evolution model, and the simpler MV algorithm, with and without temporal prediction. For a representative example, the Gemini-South 8 m telescope multiconjugate adaptive optics system performance of the KF and the MV controllers has been compared with respect to their turbulence compensation capability. We show that the KF algorithm, as expected, shows superior performance to that of the MV algorithm, especially for extremely low sampling rates and large control latencies. We also show that for moderate control latencies the MV algorithm with a temporal prediction step added to it approaches the performance of the KF technique.
机译:我们将基于区域自适应光学的卡尔曼滤波器(KF)和最小方差(MV)控制算法的性能进行了比较,其中包括相位时间预测步骤,可有效补偿系统中的延迟。主要目标是评估可通过计算更昂贵的KF方法获得的性能,该方法通过一阶自回归演化模型以及更简单的MV算法(带有或不带有时间预测)明确考虑了大气湍流的时间行为。作为一个有代表性的例子,比较了KF和MV控制器的Gemini-South 8 m望远镜多共轭自适应光学系统的性能和湍流补偿能力。我们证明,正如预期的那样,KF算法显示出比MV算法更好的性能,尤其是对于极低的采样率和较大的控制延迟。我们还表明,对于中等控制延迟,添加了时间预测步骤的MV算法接近KF技术的性能。

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