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A surrogate model based active interval densifying method for nonlinear inverse problems

delete2022-11-01
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PRE
AI
唐嘉昌 封面图
唐嘉昌 (Jiachang Tang)
X
Xiao Li
Y
Yong Lei
姚齐水 封面图
姚齐水 (Qishui Yao) *
J
Jianghong Yu
米承继 封面图
米承继 (Chengji Mi)
DOI:10.1016/j.istruc.2022.09.033delete
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摘要

摘要

En 中文
A surrogate model based active interval densifying method is proposed to solve the uncertain nonlinear inverse problem providing an efficient tool for the unknown inputs identifications by using limited information of un-certain outputs. The active interval is first defined to determine the key input interval whose bounds would strongly influence the upper and lower bounds of the outputs, and then an active vertex densifying strategy is proposed by combining the active interval and vertex method to further reduce the number of densifying samples. A novel iterative mechanism is developed to sequentially densify the active interval vector to construct a more precise surrogate model. Therefore, the interval inverse problem is transformed into a series of surrogate model based interval inverse problems and densifies the sample set that is sequentially solved, which could improve the computational efficiency and expand the application area of existing surrogate model based methods for nonlinear inverse problems. Moreover, it is hopeful to be applied to heat conduction, structural parameters and dynamic load identifications. A numerical example and two practical engineering applications are used to verify its feasibility, computational accuracy and efficiency.
Keyword:
Inverse problem
Interval model
Densifying strategy
Surrogate model based method
Radial basis functions

期刊

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Structures
IF:
4.3
论文数:
1.3W
被引数:
2.7W

机构

H
Hunan University of Technology
学者数:
3.5K
论文数: 2.2K
被引数: 4.7K
U
university of south china
学者数:
1.4W
论文数: 6.8K
被引数: 8
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