Machine-learning-enhanced tail end prediction of structural response statistics in earthquake engineering

被引:36
作者
Thaler, Denny [1 ]
Stoffel, Marcus [1 ]
Markert, Bernd [1 ]
Bamer, Franz [1 ]
机构
[1] Rhein Westfal TH Aachen, Inst Gen Mech, D-52062 Aachen, Germany
关键词
earthquake generation; elastoplastic structures; Kanai– Tajimi filter; machine learning; Monte Carlo method; neural networks; EQUIVALENT LINEARIZATION METHOD; ARTIFICIAL NEURAL-NETWORKS; NONLINEAR STRUCTURES; RELIABILITY-ANALYSIS; INTENSITY MEASURE; STRATEGY; DAMAGE; IDENTIFICATION; VULNERABILITY; MODEL;
D O I
10.1002/eqe.3432
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
Evaluating the response statistics of nonlinear structures constitutes a key issue in engineering design. Hereby, the Monte Carlo method has proven useful, although the computational cost turns out to be considerably high. In particular, around the design point of the system near structural failure, a reliable estimation of the statistics is unfeasible for complex high-dimensional systems. Thus, in this paper, we develop a machine-learning-enhanced Monte Carlo simulation strategy for nonlinear behaving engineering structures. A neural network learns the response behavior of the structure subjected to an initial nonstationary ground excitation subset, which is generated based on the spectral properties of a chosen ground acceleration record. Then using the superior computational efficiency of the neural network, it is possible to predict the response statistics of the full sample set, which is considerably larger than the initial training sample set. To ensure a reliable neural network response prediction in case of rare events near structural failure, we propose to extend the initial training sample set increasing the variance of the intensity. We show that using this extended initial sample set enables a reliable prediction of the response statistics, even in the tail end of the distribution.
引用
收藏
页码:2098 / 2114
页数:17
相关论文
共 69 条
[1]  
Abadi Martin, 2016, Proceedings of OSDI '16: 12th USENIX Symposium on Operating Systems Design and Implementation. OSDI '16, P265
[2]   Optimal intensity measure based on spectral acceleration for P-delta vulnerable deteriorating frame structures in the collapse limit state [J].
Adam, Christoph ;
Kampenhuber, David ;
Ibarra, Luis F. .
BULLETIN OF EARTHQUAKE ENGINEERING, 2017, 15 (10) :4349-4373
[3]  
Alanis A., 2019, Artificial Neural Networks for Engineering Applications, Vfirst, DOI DOI 10.1016/C2018-0-01649-7
[4]  
Atalik T.S., 1976, EARTHQ ENG STRUCT D, V4, P411, DOI DOI 10.1002/EQE.4290040408
[5]   Application of the proper orthogonal decomposition for linear and nonlinear structures under transient excitations [J].
Bamer, F. ;
Bucher, C. .
ACTA MECHANICA, 2012, 223 (12) :2549-2563
[6]   A visco-elastoplastic pounding damage formulation [J].
Bamer, Franz ;
Strubel, Nicolas ;
Shi, Jianye ;
Markert, Bernd .
ENGINEERING STRUCTURES, 2019, 197
[7]   A nonlinear visco-elastoplastic model for structural pounding [J].
Bamer, Franz ;
Markert, Bernd .
EARTHQUAKE ENGINEERING & STRUCTURAL DYNAMICS, 2018, 47 (12) :2490-2495
[8]   An ecient response identification strategy for nonlinear structures subject to nonstationary generated seismic excitations [J].
Bamer, Franz ;
Markert, Bernd .
MECHANICS BASED DESIGN OF STRUCTURES AND MACHINES, 2017, 45 (03) :313-330
[9]   A new model order reduction strategy adapted to nonlinear problems in earthquake engineering [J].
Bamer, Franz ;
Amiri, Abbas Kazemi ;
Bucher, Christian .
EARTHQUAKE ENGINEERING & STRUCTURAL DYNAMICS, 2017, 46 (04) :537-559
[10]  
Bathe KJ., 2006, FINITE ELEMENT PROCE, DOI DOI 10.1115/1.3264375