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Sensitivity analysis and calibration of phenomenological models for seismic analyses

机译:地震分析现象模型的敏感性分析与校准

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Phenomenological models used in seismic structural analyses are often based on parameters without explicit physical meaning, which must be calibrated by fitting experimental responses. Parameter calibration, as an inverse problem, may suffer from ill-posedness, and thus the results are always to be critically examined before accepting them. In this paper, a comprehensive methodology, comprising repeated optimisation runs, local and global sensitivity analysis and simplified uncertainty analysis is described with the aim of providing some guidelines to assess the calibration results. As exemplary case study, the calibration of a phenomenological model for steel members by means of a series of experimental tests is presented. The experimental response of nominally identical beams tested under monotonic, cyclic and pseudo-dynamic loading were used in the procedure. The main findings of the work indicate that the optimisation process based on Genetic Algorithms is able to find optimal solutions in terms of fidelity to the experimental tests: However, being the problem ill-posed, the same level of fitting may be attained by solutions characterised by different model parameters. Local and global sensitivity analyses may help assess the identifiability of the parameters, while a-posteriori uncertainty analysis provides an estimation of the uncertainty in the prediction. It is shown that increasing the number of calibration tests may reduce the ill-conditioning of the problem, and thus a multi-objective approach is strongly recommended. Finally, a novel procedure recently developed based on tolerance-based Pareto dominance is shown to give similar results to those provided by computationally expensive sensitivity analyses at the computational cost of a single calibration analysis.
机译:地震结构分析中使用的现象学模型通常基于没有明确的物理意义的参数,这必须通过拟合实验反应来校准。参数校准作为一个逆问题,可能遭受不良姿势,因此在接受它们之前始终始终检查结果。本文描述了一种综合方法,包括重复优化运行,局部和全局敏感性分析以及简化的不确定性分析,目的是提供一些指导原则来评估校准结果。作为示例性案例研究,提出了借助于一系列实验测试校准钢构件的现象模型。在手术中使用了在单调,环状和伪动载下测试的标称相同光束的实验响应。该工作的主要发现表明,基于遗传算法的优化过程能够在保真度到实验测试方面找到最佳解决方案:然而,作为令人虐待的问题,可以通过解决方案实现相同的拟合水平通过不同的模型参数。局部和全局敏感性分析可以帮助评估参数的可识别性,而a-boundiori不确定分析提供了预测中的不确定性的估计。结果表明,增加校准测试的数量可以减少问题的不良状态,因此强烈建议使用多目标方法。最后,最近基于公差的Pareto优势开发的新方法被示出了与通过计算昂贵的敏感性分析提供的那些以单一校准分析的计算成本提供类似的结果。

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