合成数据集SynBench解决非刚性点云配准评估难题
SynBench: A Synthetic Benchmark for Non-rigid 3D Point Cloud Registration
- 用物理仿真生成带真实对应关系的非刚性点云
- 涵盖大形变、噪声、离群点和不完整等多种挑战
- 适合研发非刚性配准算法的研究者使用
非刚性点云配准是计算机视觉中的关键任务。评估该任务需包含大形变、噪声、离群点和不完整等挑战的数据集。尽管已有多个可变形点云数据集,但缺乏全面覆盖所有挑战的基准,导致方法间难以公平比较。本文提出SynBench,一个基于Flex与Unreal Engine中SimTool工具集生成的非刚性点云配准数据集。该数据集提供两组点云间的地面真值对应点,并包含不同难度级别的形变、噪声、离群点和不完整问题。据作者所知,SynBench具备三项独特特性:(1)首个提供多种挑战的非刚性点云配准基准;(2)涵盖不同难度等级的挑战;(3)包含形变前后的真实对应点。作者认为SynBench可推动未来非刚性点云配准方法的公平对比。数据集已公开:https://doi.org/10.11588/data/R9IKCF。
原文摘要 · Abstract (English)
Non-rigid point cloud registration is a crucial task in computer vision. Evaluating a non-rigid point cloud registration method requires a dataset with challenges such as large deformation levels, noise, outliers, and incompleteness. Despite the existence of several datasets for deformable point cloud registration, the absence of a comprehensive benchmark with all challenges makes it difficult to achieve fair evaluations among different methods. This paper introduces SynBench, a new non-rigid point cloud registration dataset created using SimTool, a toolset for soft body simulation in Flex and Unreal Engine. SynBench provides the ground truth of corresponding points between two point sets and encompasses key registration challenges, including varying levels of deformation, noise, outliers, and incompleteness. To the best of the authors' knowledge, compared to existing datasets, SynBench possesses three particular characteristics: (1) it is the first benchmark that provides various challenges for non-rigid point cloud registration, (2) SynBench encompasses challenges of varying difficulty levels, and (3) it includes ground truth corresponding points both before and after deformation. The authors believe that SynBench enables future non-rigid point cloud registration methods to present a fair comparison of their achievements. SynBench is publicly available at: https://doi.org/10.11588/data/R9IKCF.
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