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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 search algorithm that identifies an optimized regression model for the data analysis. The selected sting balance had two moment gages that were mounted forward and aft of the balance moment center. The difference and the sum of the two gage outputs were fitted in the least squares sense using the normal force and the pitching moment at the balance moment center as independent variables. The regression model search algorithm predicted that the difference of the gage outputs should be modeled using the intercept and the normal force. The sum of the two gage outputs, on the other hand, should be modeled using the intercept, the pitching moment, and the square of the pitching moment. Equations of the deflection of a cantilever beam are used to show that the search algorithm s two recommended math models can also be obtained after performing a rigorous theoretical analysis of the deflection of the sting balance under load. The analysis of the sting balance calibration data set is a rare example of a situation when regression models of balance calibration data can directly be derived from first principles of physics and engineering. In addition, it is interesting to see that the search algorithm recommended the same regression models for the data analysis using only a set of statistical quality metrics.
机译:使用搜索算法处理风洞st平衡的校准数据,该搜索算法可识别用于数据分析的优化回归模型。所选的平衡秤具有两个力矩计,分别安装在平衡力矩中心的前后。使用法向力和平衡力矩中心处的俯仰力矩作为自变量,以最小二乘法拟合两个量规输出的差和和。回归模型搜索算法预测应该使用截距和法向力对量规输出的差异进行建模。另一方面,应使用截距,俯仰力矩和俯仰力矩的平方来模拟两个量规输出的总和。悬臂梁的挠度方程用于表明,在对载荷作用下的平衡力挠度进行严格的理论分析后,还可以获得搜索算法的两个推荐数学模型。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和工程学的第一原理得出平衡校准数据的回归模型。此外,有趣的是,搜索算法仅使用一组统计质量指标就数据分析建议了相同的回归模型。

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