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Three-Dimensional Real Object Modeling Based on Modified Closest-Point Algorithm for Monitoring in Intelligent Manufacturing

机译:基于修改的最接近点算法的三维实体对象建模在智能制造中监控

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This article presents a modified iterative closest point algorithm (ICP) for three-dimensional modeling to monitor an intelligent manufacturing. This modified ICP allows comparing the created object with a benchmark object for the detection of defects. The proposed algorithm is based on bearing angle images, global control points, and Manhattan metric. This algorithm eliminates two shortcomings: settings of the initial rotation matrix and the shift vector, and the time-consuming finding of closest points. The experiments show that the proposed algorithm insignificantly loses its alignment accuracy to the basic and generalized ICP-algorithms with the 100% overlap region between the clouds. However, the proposed algorithm demonstrates a higher alignment accuracy when the overlap region decreases. Besides, the algorithm wins in run-time compared with the basic and generalized ICP algorithms.
机译:本文提出了一种修改的迭代最接近点算法(ICP),用于监控智能制造。此修改的ICP允许将创建的对象与基准对象进行比较,以检测缺陷。所提出的算法基于轴承角度图像,全局控制点和曼哈顿度量标准。该算法消除了两个缺点:初始旋转矩阵和移位向量的设置,以及耗时的最接近点的耗时。该实验表明,该算法与云之间的100%重叠区域无济于于基本和广义ICP算法的对准精度。然而,所提出的算法在重叠区域减小时演示了更高的对准精度。此外,与基本和广义ICP算法相比,该算法在运行时获胜。

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