基于改进LCCP的堆叠目标点云分割算法
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国家自然科学基金项目(No.61364008);云南省基础研究计划重点项目(No.202101AS070016)资助。


Stacked target point cloud segmentation algorithm based on improved LCCP
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    摘要:

    点云分割作为无序分拣任务中的一个重要处理步骤,其分割精度直接影响后续的目标识别与姿态估计准确率。针对传统LCCP算法在物体复杂堆叠场景下分割效果不佳的问题,本文提出了一种基于改进LCCP的点云分割算法,首先使用改进的VCCS算法将点云划分为超体素,通过融入高斯曲率信息,进一步改善超体素容易跨越物体边界的问题,然后判定邻接超体素的凹凸连接关系,为了进一步减小噪声的影响,对于所有体积小于给定阈值的超体素,判定其与所有邻接超体素间的连接关系,合并所有凸连接的超体素,得到最终分割结果。实验结果表明,本文方法相比于LCCP和CPC算法在分割精确率上提升了31~22,且算法整体性能有明显提升。

    Abstract:

    As an essential processing step in unordered picking tasks,point cloud segmentation directly impacts the subsequent accuracy of object recognition and pose estimation.To address the problem of inadequate segmentation performance of the traditional LCCP algorithm in complex object stacking scenarios,an improved LCCP point cloud segmentation algorithm that incorporates Gaussian curvature information is proposed in this paper.Initially,an enhanced VCCS algorithm is employed to partition the point cloud into super voxel,and by integrating Gaussian curvature information,the issue of super voxel easily crossing object boundaries is further addressed.Subsequently,concave convex connectivity among adjacent super voxel blocks is determined,followed by the merging of all convexly connected super voxel to form the final segmentation results.The experimental results demonstrate that the method improves segmentation precision by 3.1% to 22% compared to LCCP and CPC,with a noticeable enhancement in overall algorithm performance.

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高显棕,金建辉.基于改进LCCP的堆叠目标点云分割算法[J].激光与红外,2024,54(11):1702~1708
GAO Xian-zong, JIN Jian-hui. Stacked target point cloud segmentation algorithm based on improved LCCP[J]. LASER & INFRARED,2024,54(11):1702~1708

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  • 在线发布日期: 2024-11-18
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