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Analysis of Sting Balance Calibration Data Using Optimized Regression Models

机译:使用优化回归模型分析刺痛平衡校正数据

摘要

Calibration data of a wind tunnel sting balance was processed using a candidate math model search algorithm that recommends an optimized regression model for the data analysis. During the calibration the normal force and the moment at the balance moment center were selected as independent calibration variables. The sting balance itself had two moment gages. Therefore, after analyzing the connection between calibration loads and gage outputs, it was decided to choose the difference and the sum of the gage outputs as the two responses that best describe the behavior of the balance. The math model search algorithm was applied to these two responses. An optimized regression model was obtained for each response. Classical strain gage balance load transformations and the equations of the deflection of a cantilever beam under load are used to show that the search algorithm s two optimized regression models are supported by a theoretical analysis of the relationship between the applied calibration loads and the measured gage outputs. The analysis of the sting balance calibration data set is a rare example of a situation when terms of a regression model of a balance can directly be derived from first principles of physics. In addition, it is interesting to note that the search algorithm recommended the correct regression model term combinations using only a set of statistical quality metrics that were applied to the experimental data during the algorithm s term selection process.
机译:使用推荐的优化回归模型进行数据分析的候选数学模型搜索算法处理了风洞st平衡的校准数据。在校准过程中,法向力和平衡力矩中心的力矩被选作独立的校准变量。 ing秤本身有两个力矩计。因此,在分析了校准负载和量具输出之间的联系之后,决定选择量具和量具输出之和作为两个最能描述天平性能的响应。数学模型搜索算法已应用于这两个响应。针对每个响应获得了优化的回归模型。通过经典的应变计平衡载荷转换和悬臂梁在载荷作用下的挠度方程,表明对应用的校准载荷与测得的量具输出之间的关系进行了理论分析,从而支持了搜索算法的两个优化回归模型。 。刺痛平衡校准数据集的分析是一种罕见的情况,其中可以直接从物理学的第一原理中导出天平回归模型的项。此外,有趣的是,搜索算法仅使用一组统计质量指标来推荐正确的回归模型术语组合,该统计质量指标在算法的术语选择过程中应用于实验数据。

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    Ulbrich N.; Bader Jon B.;

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  • 年度 2010
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