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Modified linear estimation method for generating multi-dimensional multi-variate Gaussian field in modelling material properties

机译:在材料特性建模中生成多维多元高斯场的改进线性估计方法

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Although a number of methods have been developed to generate random fields, it remains a challenge to efficiently generate a large, multi-dimensional, multi-variate property field. For such problems, the widely used spectral representation method tends to require relatively longer computing time. In this paper, a modified linear estimation method is proposed, which involves mapping the linearly estimated field through a series of randomized translations and rotations from one realization to the next. These randomized translations and rotations enable the simulated property field to be stationary. The autocorrelation function of the simulated fields can be approximately described by a squared exponential function. The algorithms of the proposed method in both the rectangular and cylindrical polar coordinate systems are demonstrated and the results validated by Monte-Carlo simulations. Comparisons between the proposed method and spectral representation method show that the results from both methods are in good agreement, as long as the cut-off wave numbers of the spectral representation method are sufficiently large. However, the proposed method requires much less computational time than the spectral representation method. This makes it potentially useful for generating large multi-dimensional fields in random finite element analysis. Applications of the proposed method are exemplified in both rectangular and cylindrical polar coordinate systems. (C) 2014 Elsevier Ltd. All rights reserved.
机译:尽管已经开发了许多方法来生成随机字段,但是有效地生成大型的多维多变量属性字段仍然是一个挑战。对于此类问题,广泛使用的频谱表示方法往往需要相对较长的计算时间。本文提出了一种改进的线性估计方法,该方法包括通过一系列从一个实现到另一个实现的随机平移和旋转来映射线性估计的字段。这些随机的平移和旋转使模拟的属性字段保持不变。模拟场的自相关函数可以用平方指数函数近似描述。演示了该方法在直角和圆柱极坐标系中的算法,并通过蒙特卡洛仿真验证了结果。所提方法与频谱表示方法的比较表明,只要频谱表示方法的截止波数足够大,两种方法的结果吻合良好。但是,与频谱表示方法相比,所提出的方法需要更少的计算时间。这对于在随机有限元分析中生成大型多维场可能具有潜在的用处。该方法在矩形和圆柱极坐标系中均得到了应用。 (C)2014 Elsevier Ltd.保留所有权利。

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