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Simulation of ergodic multivariate stochastic processes: An enhanced spectral representation method

机译:ergodic多变量随机过程的模拟:增强谱表示方法

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The spectral representation method (SRM) has been extensively used in the simulation of multivariate stationary Gaussian stochastic processes. In this study, an enhanced SRM for the simulation of ergodic multivariate stochastic processes is developed. Through shifting a frequency increment, the enhanced SRM offers a faster convergence rate of probabilistic characteristics in comparison with conventional SRM. The computational efficiency is enhanced as the Cholesky decomposition is only required at single-indexed frequencies. Additionally, a two-dimensional fast Fourier transform (FFT) algorithm is proposed to expedite simultaneously estimation of the double summation of cosine functions in both frequency and space dimensions. Accordingly, compared to the traditional FFT-based SRM, in which FFT is only used for the summation in the frequency dimension, the simulation efficiency is further enhanced significantly. The numerical example concerning the simulation of wind velocity field demonstrates that the proposed method offers a faster convergence rate and a higher level of efficiency.
机译:光谱表示方法(SRM)已广泛用于多变量固定高斯随机过程的模拟。在该研究中,开发了用于模拟ergodic多变量随机过程的增强SRM。通过移位频率增量,增强的SRM与传统SRM相比,增强SRM提供了更快的概率特性的收敛速度。由于仅在单索引频率下需要Cholesky分解,因此增强了计算效率。另外,提出了一种二维快速傅里叶变换(FFT)算法以同时估计频率和空间尺寸中的余弦函数的双倍求和。因此,与传统的基于FFT的SRM相比,其中FFT仅用于频率尺寸的求和,仿真效率显着增强。关于风速场仿真的数值示例演示了所提出的方法提供更快的收敛速度和更高的效率。

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