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Stochastic computation based on orthogonal expansion of random fields

机译:基于随机场正交展开的随机计算

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In solving stochastic differential equations, recently a random variable based Polynomial Chaos (rv-PC) method has been developed as a major numerical solver. For many realistic random media problems the rv-PC method however confronts a critical challenge of curse-of-dimensionality. Since a random field is represented by random variables, the use of various optimal sampling techniques and conventional high dimensional methods still faces the curse-of-dimensionality. Distinguished from all the random variable based methods, in this study a novel Random Field based Orthogonal Expansion (RF-OE) method is proposed in aim to circumvent the curse-of-dimensionality for many physical systems whereas the input information is represented as random fields or stochastic processes, e.g. seismic/ocean wave, wind load, shock wave, and geophysical media. Multiscale modeling of random media problems is selected as the benchmark problem to test the RF-OE method. Especially, the RF-OE method provides a perfect matching with the higher-order Mehler's formula. By replacing high dimensional random variable representations with a series of orthogonal expansion terms about an underlying random field/process, the RF-OE method reduces the number of dimensions of a stochastic differential equation exponentially. In the first example the RF-OE method is verified with Monte Carlo simulation on a lognormal random media flow transport problem. In the second example the RF-OE method is applied to a time domain problem involving orthogonal expansion of random excitations. In the conclusion the items for further development of the RF-OE method are identified.
机译:在求解随机微分方程时,最近已开发出一种基于随机变量的多项式混沌(rv-PC)方法作为主要的数值求解器。对于许多现实的随机媒体问题,rv-PC方法面临着维度诅咒的严峻挑战。由于随机字段由随机变量表示,因此使用各种最佳采样技术和常规的高维方法仍然面临着维数的诅咒。与所有基于随机变量的方法不同,本研究提出了一种新颖的基于随机场的正交展开(RF-OE)方法,旨在规避许多物理系统的维数诅咒,而输入信息则表示为随机场或随机过程,例如地震/海洋波,风荷载,冲击波和地球物理介质。选择随机介质问题的多尺度建模作为基准问题,以测试RF-OE方法。特别是,RF-OE方法可以与高阶Mehler公式完美匹配。通过用一系列有关基础随机场/过程的正交展开项代替高维随机变量表示,RF-OE方法以指数方式减少了随机微分方程的维数。在第一个示例中,通过对数正态随机媒体流传输问题的蒙特卡罗模拟验证了RF-OE方法。在第二个示例中,将RF-OE方法应用于涉及随机激发正交扩展的时域问题。在结论中,确定了进一步发展RF-OE方法的项目。

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