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EEXTENDED GEOMETRIC FILTER FOR RECONSTRUCTION AS A BASIS FOR COMPUTATIONAL INSPECTION

机译:扩展几何滤波器,用于重建作为计算检查的基础

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Inspection of machined objects is one of the most important quality control tasks in the manufacturing industry. Contemporary scanning technologies have provided the impetus for the development of computational inspection methods, where the computer model of the manufactured object is reconstructed from the scan data, and then verified against its design computer model. Scan data, however, is typically very large scale (i.e. many points), unorganized, noisy and incomplete. Therefore, reconstruction is problematic. To overcome the above problems the reconstruction methods may exploit diverse feature data, that is, diverse information about the properties of the scanned object. Based on this concept, the paper proposes a new method for de-noising and reduction of scan data by Extended Geometric Filter (EGF). The proposed method is applied directly on the scanned points and is automatic, fast and straightforward to implement. The paper demonstrates the integration of the proposed method into the framework of the computational inspection process.
机译:机加工对象的检查是制造业中最重要的质量控制任务之一。当代扫描技术为计算检查方法提供了推动,其中从扫描数据重建制造对象的计算机模型,然后验证其设计计算机模型。然而,扫描数据通常是非常大的规模(即很多点),无组织,嘈杂和不完整。因此,重建是有问题的。为了克服上述问题,重建方法可以利用不同的特征数据,即关于扫描对象的属性的不同信息。基于这一概念,本文提出了一种通过扩展几何滤波器(EGF)去噪和减少扫描数据的新方法。该方法直接应用于扫描点,并自动,快速,直接实现。本文展示了所提出的方法将该方法集成到计算检验过程的框架中。

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