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What do we hear from a drum? A data-consistent approach to quantifying irreducible uncertainty on model inputs by extracting information from correlated model output data

机译:我们从鼓声听到什么?通过从相关模型输出数据中提取信息来提取信息输入模型输入的数据一致方法

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In manufacturing processes, controlling system responses with uncertain system inputs, e.g., due to variations in material parameters of critical system sub-components, is a crucial task for performing reliable quality control and verification & validation (V&V) of system design. As a model for a manufacturing process, we consider the production of drums, that is, thin elastic membranes, whose properties are modeled via Dirichlet Laplacian eigenproblems with uncertain diffusion coefficients. Both a quality control and V&V problem are formulated within a data-consistent framework utilizing push-forward and pullback measures. In both problems, the uncertain diffusion coefficients are parameterized for every instance and the corresponding eigen-information defines correlated data streams. Subsequently, the quantities of interest required in the solution to the data consistent inverse problems are determined by an a posteriori analysis of these data streams using feature extraction techniques. While the methodology proposed here is quite general, the specific efficacy of the proposed methodology is comprehensively explored in the numerical results for both the quality control and V&V problems associated with the manufacturing of drums. (C) 2020 Elsevier B.V. All rights reserved.
机译:在制造过程中,控制系统响应,例如,由于关键系统子组件的材料参数的变化,控制系统响应是用于执行系统设计的可靠质量控制和验证和验证(V&V)的重要任务。作为制造过程的模型,我们考虑了滚筒的生产,即薄的弹性膜,其性质通过具有不确定扩散系数的Dirichlet Laplacian EigenProblem建模的性质。质量控制和V&V问题都在利用前转和回调措施的数据一致框架内配制。在这两次问题中,对于每个实例,不确定的扩散系数和相应的eIgen-inferiary定义相关的数据流。随后,通过使用特征提取技术的这些数据流的后验性分析来确定对数据的解决方案所需的数量。虽然这里提出的方法是相当一般的,但是在与鼓的制造相关的质量控制和V&V问题的数值结果中,拟议方法的具体功效全面探索。 (c)2020 Elsevier B.v.保留所有权利。

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