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Random function based spectral representation of stationary and non-stationary stochastic processes

机译:基于随机函数的平稳和非平稳随机过程的频谱表示

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In conjunction with the formulation of random functions, a family of renewed spectral representation schemes is proposed. The selected random function serves as a random constraint correlating the random variables included in the spectral representation schemes. The objective stochastic process can thus be completely represented by a dimension-reduced spectral model with just few elementary random variables, through defining the high-dimensional random variables of conventional spectral representation schemes (usually hundreds of random variables) into the low-dimensional orthogonal random functions. To highlight the advantages of this scheme, orthogonal trigonometric functions with one and two random variables are constructed. Representative-point set of the dimension-reduced spectral model is derived by employing the probability-space partition techniques. The complete set with assigned probabilities of points gains a low-number-sample stochastic process. For illustrative purposes, the stochastic modeling of seismic acceleration processes is proceeded, of which the stationary and non stationary cases are investigated. It is shown that the spectral acceleration of simulated processes matches well with the target spectrum. Stochastic seismic response analysis, moreover, and reliability assessment of a framed structure with Bouc-Wen behaviors are carried out using the probability density evolution method. Numerical results reveal the applicability and efficiency of the proposed simulation technique. (C) 2016 Elsevier Ltd. All rights reserved.
机译:结合随机函数的提出,提出了一系列新的频谱表示方案。所选择的随机函数用作使包括在频谱表示方案中的随机变量相关的随机约束。因此,通过将常规频谱表示方案的高维随机变量(通常为数百个随机变量)定义为低维正交随机变量,可以用仅具有几个基本随机变量的降维谱模型完全表示目标随机过程功能。为了突出此方案的优势,构建了具有一个和两个随机变量的正交三角函数。降维频谱模型的代表点集是通过采用概率空间划分技术得出的。具有指定的点概率的完整样本集获得了数量较少的随机过程。为了说明的目的,进行了地震加速度过程的随机建模,其中研究了稳态和非稳态情况。结果表明,模拟过程的光谱加速度与目标光谱匹配良好。此外,使用概率密度演化方法对具有Bouc-Wen行为的框架结构进行了随机地震响应分析和可靠性评估。数值结果表明了该仿真技术的适用性和有效性。 (C)2016 Elsevier Ltd.保留所有权利。

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