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首页> 外文期刊>SIAM/ASA Journal on Uncertainty Quantification >On Nonintrusive Uncertainty Quantification and Surrogate Model Construction in Particle Accelerator Modeling
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On Nonintrusive Uncertainty Quantification and Surrogate Model Construction in Particle Accelerator Modeling

机译:在不干扰不确定性量化和代理模型建设粒子加速器建模

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摘要

Using a cyclotron-based model problem, we demonstrate for the first time the applicability and usefulness of an uncertainty quantification (UQ) approach in order to construct surrogate models. The surrogate model quantities, for example, emittance, energy spread, or the halo parameter, can be used to construct a global sensitivity model along with error propagation and error analysis. The model problem is chosen such that it represents a template for general high-intensity particle accelerator modeling tasks. The usefulness and applicability of the presented UQ approach is then demonstrated on an ongoing research project, aiming at the design of a compact high-intensity cyclotron. The proposed UQ approach is based on polynomial chaos expansions and relies on a well-defined number of high-fidelity particle accelerator simulations. Important uncertainty sources are identified using Sobol' indices within the global sensitivity analysis.
机译:我们使用cyclotron-based模型问题首次展示的适用性和有用性的不确定性量化(UQ)方法,以构建代理模型。例子中,发射率、能量分散或光环参数,可以用来建立一个全球性的灵敏度和误差传播模型和误差分析。,它代表了一个通用的模板高强度粒子加速器建模任务。然后演示了在一个提出UQ的方法正在进行的研究项目,针对设计的一个紧凑的高强度回旋。UQ方法是基于多项式混乱扩张和依赖于明确的数量高保真粒子加速器模拟。识别重要的不确定性来源在全球使用Sobol指数敏感性分析。

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