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A new method to determine the number of experimental data using statistical modeling methods

机译:一种确定使用统计建模方法确定实验数据数量的新方法

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摘要

For analyzing the statistical performance of physical systems, statistical characteristics of physical parameters such as material properties need to be estimated by collecting experimental data. For accurate statistical modeling, many such experiments may be required, but data are usually quite limited owing to the cost and time constraints of experiments. In this study, a new method for determining a reasonable number of experimental data is proposed using an area metric, after obtaining statistical models using the information on the underlying distribution, the Sequential statistical modeling (SSM) approach, and the Kernel density estimation (KDE) approach. The area metric is used as a convergence criterion to determine the necessary and sufficient number of experimental data to be acquired. The proposed method is validated in simulations, using different statistical modeling methods, different true models, and different convergence criteria. An example data set with 29 data describing the fatigue strength coefficient of SAE 950X is used for demonstrating the performance of the obtained statistical models that use a pre-determined number of experimental data in predicting the probability of failure for a target fatigue life.
机译:为了分析物理系统的统计性能,需要通过收集实验数据来估计物理参数的统计特征,例如材料特性。为了准确统计建模,可能需要许多这样的实验,但由于实验的成本和时间限制,数据通常非常有限。在该研究中,在使用关于基础分布的信息的统计模型,顺序统计建模(SSM)方法和内核密度估计(KDE ) 方法。该区域度量被用作收敛标准,以确定要获取的必要和足够数量的实验数据。所提出的方法在模拟中验证,使用不同的统计建模方法,不同的真实模型和不同的收敛标准。具有描述SAE 950x的疲劳强度系数的具有29个数据集的示例数据用于说明所获得的统计模型的性能,该统计模型使用预定数量的实验数据预测目标疲劳寿命的失败概率。

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