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Reconstruction and Body Size Detection of 3D Sheep Body Model Based on Point Cloud Data

机译:基于点云数据的3D绵羊身体模型的重建与体尺寸检测

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Aiming at the high workload, low precision, strong stress of the traditional manual measurement to obtain the sheep growth parameters, a novel measurement technology was proposed. The specimen of the Sunite sheep about 2-3 years old were chosen for study. By reverse engineering technology, point cloud data of sheep was captured by the 3D laser scanner. Because of noise point cloud data, the improved algorithm of k-nearest neighbor was used to process the data. To improve the subsequent processing time and efficiency, octree coding was employed to reduce data, which can get evenly distribution of point cloud data and retain sheep features. Then, 3D surface model of sheep body was reconstructed using Delaunay triangulation. Some parameters were extracted, including sheep body length, body height, hip height, hip width and chest width. Compared actual parameters values with computing values of two ways, by Geomagic platform and the proposed algorithms on the Matlab, average relative errors of two ways were 1.23% and 1.01%, respectively. So results of the proposed algorithm were with small error range. Using the point clouds can reconstruct sheep surface for computing body size without stress.
机译:瞄准高工作量,低精度,传统手动测量的强调强烈,获得羊生长参数,提出了一种新的测量技术。选择了大约2-3岁的环境绵羊的标本进行研究。通过逆向工程技术,3D激光扫描仪捕获绵羊的点云数据。由于噪声点云数据,用于处理数据的K-Collect邻居的改进算法。为了提高随后的处理时间和效率,采用Octree编码来减少数据,这可以均匀地分布点云数据并保持绵羊特征。然后,使用Delaunay三角测量重建绵羊体的3D表面模型。提取一些参数,包括绵羊体长度,体高,臀部高度,臀部宽度和胸宽。将实际参数值与两种方式的计算值相比,通过地质平台和Matlab上的提出算法,两种方式的平均相对误差分别为1.23%和1.01%。所以所提出的算法的结果是小错误范围。使用点云可以重建绵羊表面,以便在没有压力的情况下计算体尺寸。

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