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Proposed Validation Method for the Uncertainty Estimation of CMM Straightness Measurement Using PSO Algorithm and SMC Technique

机译:采用PSO算法和SMC技术的CMM直线度测量不确定性估算的验证方法

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Straightness uncertainty in dimensional metrology is an important parameter in precision engineering. Optimization in straightness measurement using soft algorithm techniques is widely encountered solution in coordinate metrology. In this work, we report on the uncertainty in the CMM measurement of straightness feature for a slab surface. Straightness points have been measured precisely in 3D using CMM at NIS. The straightness has been analyzed using a Particle Swarm Optimization (PSO) algorithm. The probability density distribution of the measured spatial straightness was developed using a Sequential Monte Carlo (SMC) technique; forming probability density histogram with 95% confidence level representing an uncertainty in the straightness measurement. Comparison with relevant reports showed and approved that our results are more accurate since we used a computationally efficient modified SMC technique and PSO algorithm. This work confirms that the developed strategic methodology can achieve validation method successfully for straightness uncertainty. Moreover, uncertainty in straightness measurement has been estimated and found to be suitable of the proposed validation method for CMM dimensional metrology.
机译:尺寸计量中的直线度不确定性是精密工程中的重要参数。使用软算法技术的直线测量优化是在坐标计量中的广泛遇到解决方案。在这项工作中,我们报告了平板表面的直线度特征的CMM测量的不确定性。在NIS中使用CMM在3D中精确地测量直线度点。使用粒子群优化(PSO)算法分析了直线度。使用顺序蒙特卡罗(SMC)技术开发了测量的空间直线度的概率密度分布;形成具有95%置信水平的概率密度直方图,表示直线测量的不确定性。与相关报告的比较显示并批准,我们的结果更准确,因为我们使用了计算高效的修改SMC技术和PSO算法。这项工作证实,发达的战略方法可以成功实现验证方法以实现直线性不确定性。此外,已经估计了直线测量的不确定性,并且发现了适用于CMM尺寸计量的提议验证方法。

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