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A MAXIMUM ENTROPY APPROACH FOR UNCERTAINTY QUANTIFICATION AND ANALYSIS OF MULTIFUNCTIONAL MATERIALS

机译:多功能材料不确定性的最大熵方法

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The Maximum Entropy (ME) method is shown to provide a new approach for quantifying model uncertainty in the presence of complex, heterogeneous data. This is important in model validation of a variety of multifunctional constitutive relations. For example, multifunctional materials contain field-coupled material parameters that should be self-consistent regardless of the measurement. A classical example is piezoelectricity which may be quantified from charge induced by stress or strain induced by an electric field. The proposed tools provide new statistical information to address measurement discrepancies, guide model development, and catalyze materials discovery for data fusion problems. The error between the model outputs and heterogeneous data is quantified and used to formulate a second moment constraint within the entropy functional. This leads to an augmented likelihood function that weights each individual set of data by its respective variance and covariance between each data set. As a first step, the method is evaluated on a piezoelectric ceramic to illustrate how the covariance matrix influences piezoelectric parameter estimation from heterogeneous electric displacement and strain data.
机译:显示了最大熵(ME)方法,为在复杂,异构数据存在下量化模型不确定性提供了一种新方法。这对于各种多功能本构关系的模型验证很重要。例如,多功能材料包含场耦合材料参数,无论测量如何,该参数均应自洽。一个典型的例子是压电性,可以从应力或电场引起的应变中感应出的电荷来量化。所提出的工具提供了新的统计信息,以解决测量差异,指导模型开发以及催化用于数据融合问题的材料发现。模型输出和异构数据之间的误差被量化,并用于在熵函数内制定第二矩约束。这导致增强的似然函数,该函数通过每个数据集之间的各自方差和协方差对每个数据集进行加权。第一步,在压电陶瓷上评估该方法,以说明协方差矩阵如何影响来自异质电位移和应变数据的压电参数估计。

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