arXiv:2501.02845cs.CV2025-01AAAI被引 7

用3D高斯点云增强双手抓取数据,提升机器人交互理解能力

HOGSA: Bimanual Hand-Object Interaction Understanding with 3D Gaussian Splatting Based Data Augmentation

  • 基于网格3DGS建模手与物体,解决多分辨率渲染模糊问题
  • 扩展单手姿态优化为双手交互,显著扩充姿态分布
  • 在H2O和Arctic数据集上验证有效,提升基线模型性能

双手-物体交互理解在机器人与虚拟现实领域至关重要。然而,由于手与物体间存在严重遮挡以及高自由度运动,高质量、大规模数据集的采集与标注极为困难,制约了相关基准模型的进一步提升。本文提出一种基于3D高斯点云(3DGS)的数据增强框架,可将现有数据集扩展为大规模、逼真的多视角、多姿态数据。首先,采用基于网格的3DGS建模手与物体,并设计超分辨率模块以解决多分辨率输入导致的渲染模糊问题;其次,将单手抓取姿态优化模块扩展至双手交互场景,生成多样化双手-物体姿态,显著丰富数据集的姿态分布;最后,对所提增强方法在不同方面的影响进行分析。我们在两个基准数据集H2O和Arctic上进行了实验,结果表明该方法能有效提升基线模型的性能。

原文摘要 · Abstract (English)

Understanding of bimanual hand-object interaction plays an important role in robotics and virtual reality. However, due to significant occlusions between hands and object as well as the high degree-of-freedom motions, it is challenging to collect and annotate a high-quality, large-scale dataset, which prevents further improvement of bimanual hand-object interaction-related baselines. In this work, we propose a new 3D Gaussian Splatting based data augmentation framework for bimanual hand-object interaction, which is capable of augmenting existing dataset to large-scale photorealistic data with various hand-object pose and viewpoints. First, we use mesh-based 3DGS to model objects and hands, and to deal with the rendering blur problem due to multi-resolution input images used, we design a super-resolution module. Second, we extend the single hand grasping pose optimization module for the bimanual hand object to generate various poses of bimanual hand-object interaction, which can significantly expand the pose distribution of the dataset. Third, we conduct an analysis for the impact of different aspects of the proposed data augmentation on the understanding of the bimanual hand-object interaction. We perform our data augmentation on two benchmarks, H2O and Arctic, and verify that our method can improve the performance of the baselines.

3D高斯手物交互数据增强姿态优化

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