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A Pretest Planning Method for Model Calibration for Nonlinear Systems

机译:非线性系统模型校准的预测计划方法

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With increasing demands on more flexible and lighter engineering structures, it has been more common to take nonlinearity into account. Model calibration is an important procedure for nonlinear analysis in structural dynamics with many industrial applications. Pretest planning plays a key role in the previously proposed calibration method for nonlinear systems, which is based on multi-harmonic excitation and an effective optimization routine. This paper aims to improve the pretest planning strategy for the proposed calibration method. In this study, the Fisher information matrix (FIM), which is calculated from the gradients with respect to the chosen parameters with unknown values, is used for determining the locations, frequency range, and the amplitudes of the excitations as well as the sensor placements. This pretest planning based model calibration method is validated by a structure with clearance nonlinearity. Synthetic test data is used to simulate the test procedure. Model calibration and K-fold cross validation are conducted for the optimum configurations selected from the pretest planning as well as three other configurations. The calibration and cross validation results show that a more accurate estimation of parameters can be obtained by using test data from the optimum configuration.
机译:随着对更灵活和更轻的工程结构的需求,更常见的是考虑非线性。模型校准是具有许多工业应用的结构动态中非线性分析的重要程序。预先预测规划在以前提出的非线性系统校准方法中发挥关键作用,该方法是基于多谐波激励和有效优化程序。本文旨在提高建议校准方法的预测规划策略。在该研究中,使用与具有未知值的所选择的参数的梯度计算的Fisher信息矩阵(FIM)用于确定激发的位置,频率范围和幅度以及传感器放置。通过间隙非线性的结构验证了基于预先规划的模型校准方法。合成测试数据用于模拟测试过程。模型校准和k折交叉验证是为选自预测试规划以及其他三种配置的最佳配置。校准和交叉验证结果表明,通过使用最佳配置的测试数据可以获得更准确的参数估计。

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