论文标题

使用局部动力学来解释混乱系统的模拟预测

Using local dynamics to explain analog forecasting of chaotic systems

论文作者

Platzer, P, Yiou, P., Naveau, P., Tandeo, P, Zhen, Y, Ailliot, P, Filipot, J-F

论文摘要

类似物是系统状态的最近邻居。通过及时使用类似物及其继任者,人们能够产生经验预测。几种模拟预测方法已用于大气应用中,并在众所周知的动力系统上进行了测试。尽管实践上有效,但模拟方法与动态系统之间的理论联系已被忽略。模拟预测可能与感兴趣系统的真实动力学方程有关。这项研究通过采取局部近似系统动力学来研究不同类似预测策略的特性。我们发现模拟预测性能高度链接到流图的局部雅各布矩阵,并且该模拟预测与线性回归相结合可以捕获该雅各布矩阵的投影。所提出的方法允许估计类似物预测误差,并比较不同的模拟方法。这些结果在分析和数值上得出在两个简单的混沌动力学系统上。

Analogs are nearest neighbors of the state of a system. By using analogs and their successors in time, one is able to produce empirical forecasts. Several analog forecasting methods have been used in atmospheric applications and tested on well-known dynamical systems. Although efficient in practice, theoretical connections between analog methods and dynamical systems have been overlooked. Analog forecasting can be related to the real dynamical equations of the system of interest. This study investigates the properties of different analog forecasting strategies by taking local approximations of the system's dynamics. We find that analog forecasting performances are highly linked to the local Jacobian matrix of the flow map, and that analog forecasting combined with linear regression allows to capture projections of this Jacobian matrix. The proposed methodology allows to estimate analog forecasting errors, and to compare different analog methods. These results are derived analytically and tested numerically on two simple chaotic dynamical systems.

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