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Adaptive Inspection Plans in Coordinate Metrology based on Gaussian Process Models

机译:基于高斯过程模型的坐标计量学自适应检查计划

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The paper describes a successful technology transfer of Gaussian Process (GP) modelling, also known askriging, to the field of industrial metrology. Product compliance to geometrical specifications typically requires an automated inspection cycle operated by a computer controlled machine which sequentially probes the part surface at a small sample of locations. Then the geometric error is computed from the set of point coordinates provided by the machine.Although the inspection plan can be naturally regarded as a statistical experiment, industrial practice generally relies on a deterministic logic both to choose the sample and to compute the geometric error. Opposed to this, we build the inspection plan as an adaptive experiment where the next probing location is selected by criteria based on predictions obtained from a GP model estimated at each step of the procedure.Results show that the good predictive capability of GP models assures an improvement over the current state of the art both in terms of quality of the estimated error and cost of the inspection.
机译:本文描述了将高斯过程(GP)建模(也称为Askriging)成功转移到工业计量领域的技术。产品要符合几何规格,通常需要由计算机控制的机器操作的自动检查周期,该机器将在少量位置的样品上顺序探测零件表面。然后可以从机器提供的一组点坐标中计算出几何误差。尽管可以将检查计划自然地视为统计实验,但工业实践通常都依靠确定性逻辑来选择样本并计算几何误差。与此相反,我们将检查计划构建为一个自适应实验,其中根据在该过程的每个步骤中估算的GP模型得出的预测,根据准则选择下一个探测位置。结果表明,GP模型的良好预测能力可确保在估计误差的质量和检查成本方面,都比现有技术有所改进。

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