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Simulating Anisoplanatic Turbulence by Sampling Correlated Zernike Coefficients

机译:通过采样相关的Zernike系数来模拟非等速湍流

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Simulating atmospheric turbulence is an essential task for evaluating turbulence mitigation algorithms and training learning-based methods. Advanced numerical simulators for atmospheric turbulence are available, but they require sophisticated wave propagations which are computationally very expensive. In this paper, we present a propagation-free method for simulating imaging through anisoplanatic atmospheric turbulence. The key innovation that enables this work is a new method to draw spatially correlated tilts and high-order abberations in the Zernike space. By establishing the equivalence between the angle-of-arrival correlation by Basu, McCrae and Fiorino (2015) and the multi-aperture correlation by Chanan (1992), we show that the Zernike coefficients can be drawn according to a covariance matrix defining the spatial correlations. We propose fast and scalable sampling strategies to draw these samples. The new method allows us to compress the wave propagation problem into a sampling problem, hence making the new simulator significantly faster than existing ones. Experimental results show that the simulator has an excellent match with the theory and real turbulence data.
机译:模拟大气湍流是评估湍流缓解算法和训练基于学习的方法的基本任务。可以使用用于大气湍流的高级数值模拟器,但是它们需要复杂的波传播,这在计算上非常昂贵。在本文中,我们提出了一种通过等平面大气湍流模拟成像的无传播方法。使这项工作成为可能的关键创新是一种在Zernike空间中绘制与空间相关的倾斜度和高阶像差的新方法。通过建立Basu,McCrae和Fiorino(2015)的到达角相关与Chanan(1992)的多孔径相关之间的等价关系,我们表明可以根据定义空间的协方差矩阵得出Zernike系数。相关性。我们提出了快速且可扩展的抽样策略来抽取这些样本。新方法使我们能够将波传播问题压缩为采样问题,从而使新模拟器比现有模拟器快得多。实验结果表明,该仿真器与理论值和实际湍流数据具有很好的匹配性。

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