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QUICKEST CHANGE POINT DETECTION IN SHAPE INSPECTION OF ADDITIVELY MANUFACTURED PARTS UNDER A MULTI-RESOLUTION FRAMEWORK

机译:多分辨率框架下瘾地制造零件形状检测的最快改变点检测

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In-situ layer-by-layer inspection is essential to achieving the full capability and advantages of additive manufacturing in producing complex geometries. The shape of each inspected layer can be described by a 2D point cloud obtained by slicing a thin layer of 3D point cloud acquired from 3D scanning. In practice, a scanned shape must be aligned with the corresponding base-truth CAD model before evaluating its geometric accuracy. Indeed, the observed geometric error is attributed to systematic, random, and alignment errors, where the systematic error is the one that triggers an alarm of system anomalies. In this work, a quickest change detection (QCD) algorithm is applied under a multi-resolution alignment and inspection framework 1) to differentiate errors from different error sources, and 2) to identify the layer where the earliest systematic deviation distribution changes during the printing process. Numerical experiments and a case study on a human heart are conducted to illustrate the performance of the proposed method in detecting layer-wise geometric error.
机译:原位层面检查对于实现添加剂制造在制备复杂几何形状中的完全能力和优点是必不可少的。每个检查层的形状可以通过从3D扫描获取的薄的3D点云切片而获得的2D点云来描述。在实践中,在评估其几何精度之前,扫描形状必须与相应的基本真实CAD模型对齐。实际上,观察到的几何误差归因于系统,随机和对齐错误,其中系统错误是触发系统异常警报的错误。在这项工作中,在多分辨率对准和检查框架1下应用最快的变化检测(QCD)算法,以区分来自不同误差源的误差,以及2)以识别在打印期间最早的系统偏差分布变化的层过程。进行数值实验和对人心的案例研究以说明所提出的方法检测层面几何误差的性能。

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