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An intelligent search-based methodology for selection of sample points for form error estimation.

机译:一种基于智能搜索的方法,用于选择样本点以进行形式误差估计。

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摘要

Efficient part feature verification through CMM requires prudent sampling of data points. This dissertation presents an adaptive sampling procedure, which uses manufacturing error patterns and optimization search methods for reducing sample size, while maintaining high accuracy. The methodology is demonstrated with straightness and flatness evaluation.; Two manufacturing processes, end and face milling are used to produce plates. Respective surface errors are quantified and previous models are validated. Sampling begins with a necessary number of initial points guided by the geometry and error profiles of the object surface. The least squares method is applied to compute a tolerance zone. Next points are sampled based on search methods with suitable intensification and diversification, looking for improvements in the zone. The final value is compared with that obtained for a population sample in terms of the absolute % error. For straightness estimation, region-elimination search is used. For flatness determination, tabu search and a hybrid search are employed and their performance is compared. The hybrid search developed is a combination of coordinate search, Hooke-Jeeves search and tabu search. Experiments are conducted to investigate the effect of different factors on the sample size and % error.; Comparison with other sampling methods reveals that the present approach is more efficient and reliable. The research is expected to lead to improved solutions to inspection problems faced by industries.
机译:通过CMM进行有效的零件特征验证需要对数据点进行审慎的采样。本文提出了一种自适应采样程序,该程序使用制造误差模式和优化搜索方法来减小样本量,同时保持较高的准确性。通过直线度和平面度评估证明了该方法。使用端面铣削和端面铣削这两种制造工艺来生产板材。量化各自的表面误差并验证先前的模型。采样从必要数量的初始点开始,这些初始点由对象表面的几何形状和误差轮廓引导。最小二乘法用于计算公差带。根据具有适当集约化和多样化的搜索方法,对接下来的点进行采样,以寻找区域中的改进之处。根据绝对百分比误差,将最终值与总体样本获得的值进行比较。对于直线度估计,使用区域消除搜索。对于平坦度确定,使用禁忌搜索和混合搜索,并比较它们的性能。开发的混合搜索是坐标搜索,胡克-吉夫斯搜索和禁忌搜索的组合。进行实验以研究不同因素对样本量和误差百分比的影响。与其他采样方法的比较表明,本方法更为有效和可靠。预期该研究将为工业所面临的检查问题带来改进的解决方案。

著录项

  • 作者

    Badar, Mohammad Affan.;

  • 作者单位

    The University of Oklahoma.;

  • 授予单位 The University of Oklahoma.;
  • 学科 Engineering Industrial.; Engineering Mechanical.; Operations Research.
  • 学位 Ph.D.
  • 年度 2002
  • 页码 213 p.
  • 总页数 213
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 一般工业技术;机械、仪表工业;运筹学;
  • 关键词

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