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Applications of Reduced Order and Surrogate Modeling in Structural Dynamics

机译:减少顺序和替代建模在结构动态中的应用

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Despite recent advances in computational science, the adoption of computationally intensive, high-fidelity simulation models remains a challenge for many structural dynamics applications, especially those within the domain of uncertainty quantification (UQ), requiring repeated calls to a computationally intensive simulator. Reduced order and surrogate models offer an attractive alternative to circumvent this challenge. This contribution investigates how these modeling principles can be leveraged for different UQ applications. For both types of approximate models, the development of the corresponding (reduced order or surrogate) model is directly informed through simulations of the high-fidelity numerical model. The tuning of the approximate model aims to improve accuracy for the specific UQ task at hand, rather than targeting a globally accurate approximation. The specific applications discussed correspond to seismic loss estimation (for reduced order modeling) and posterior sampling for Bayesian inference (for surrogate modeling).
机译:尽管最近的计算科学进展,但通过计算密集型的高保真仿真模型的采用仍然是许多结构动态应用的挑战,特别是那些在不确定量量化(UQ)范围内的挑战,需要重复调​​用计算密集的模拟器。减少顺序和代理模式提供了一个有吸引力的替代方案来规避这一挑战。此贡献调查了如何为不同的UQ应用程序利用这些建模原则。对于两种类型的近似模型,通过高保真数值模型的模拟直接通知相应(减少订单或代理)模型的开发。近似模型的调整旨在提高特定UQ任务的准确性,而不是针对全球准确的近似。所讨论的具体应用对应于贝叶斯推理的地震损失估计(用于降低的阶阶模型)和后部采样(用于代理建模)。

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