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Inspection Planning for Optimized Coverage of Geometrically Complex Surfaces

机译:优化几何复杂曲面覆盖率的检查计划

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Precise automatic product inspection is an important building block of industrial manufacturing. Different products require different inspection techniques and setup configurations to be thoroughly inspected for all their geometrical features. As the design space is large and complex, especially for geometrically complex surfaces with deep cavities, empirical setup design can turn into a very time consuming process with sub-optimal solutions. In today's industry, we are missing a generic automatic method to translate the inspection requirements into optimized solutions. In this paper, we propose an optimization framework based on sensor simulations to automatically propose optimized setup solutions. In this framework, we aim at minimizing the number of acquisitions which maximally fulfill the inspection requirements. As an example, we consider maximizing the surface coverage of a cylinder head in a laser triangulation setup. We characterize the design space and propose integrating the Particle Swarm Optimization algorithm in a greedy approach for solving the problem. We finally demonstrate the planning results which successfully cover hard-to-reach areas on the object.
机译:精确的自动产品检查是工业制造的重要组成部分。不同的产品需要不同的检查技术和设置配置,以对其所有几何特征进行彻底检查。由于设计空间又大又复杂,尤其是对于具有深腔的几何复杂表面,经验设置设计可能会因次优解决方案而变得非常耗时。在当今的行业中,我们缺少一种通用的自动方法来将检查要求转换为优化的解决方案。在本文中,我们提出了一个基于传感器仿真的优化框架,以自动提出优化的设置解决方案。在此框架中,我们的目标是最大程度地减少能够最大程度满足检查要求的采购数量。例如,我们考虑在激光三角测量设置中最大化气缸盖的表面覆盖率。我们对设计空间进行了特征描述,并提出了以一种贪婪的方法来集成粒子群优化算法以解决该问题。最后,我们演示了计划结果,该结果成功覆盖了对象上难以到达的区域。

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