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Bayesian Sensitivity Analysis of a Large Nonlinear Model

机译:大型非线性模型的贝叶斯敏感性分析

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Within the discipline of uncertainty analysis in structural dynamics, a large open problem is concerned with the propagation of uncertainty through large nonlinear models (in the form of computer codes) when the expense of running the model makes Monte Carlo analysis prohibitively time-consuming. A sub-problem of concern here is the choice of which variables will make a significant contribution to the output uncertainty - this is the domain of sensitivity analysis. The object of the current paper is to apply a relatively new technique of Bayesian sensitivity analysis to the problem. In order to illustrate the methodology, a Finite Element (FE) model of the heart-valve system will be used. This is an example of some importance as the behaviour of the heart under physiological fluid-loading conditions will depend strongly on the properties of the tissue; however, these properties are not known with any accuracy and will in fact vary significantly from person to person.
机译:在结构动态的不确定性分析的学科中,一个大的开放问题涉及通过大型非线性模型的不确定性传播(以计算机代码的形式)在运行模型的费用时使Monte Carlo分析耗费耗时。这里关注的子问题是选择哪些变量对输出不确定性作出重大贡献 - 这是灵敏度分析的领域。目前论文的目的是对问题的贝叶斯敏感性分析应用相对较新的技术。为了说明方法,将使用心脏瓣膜系统的有限元(FE)模型。这是一些重要的例子,因为心脏在生理流体负载条件下的心脏行为将依赖于组织的性质;然而,这些属性并不是任何准确性所知,事实上将与人的人有很大差异。

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