arXiv:2504.14516cs.CV2025-04ICCV被引 23

用运动分解让传统相机定位在动态场景中更准更稳

Back on Track: Bundle Adjustment for Dynamic Scene Reconstruction

  • 用3D点追踪器分离相机运动与物体运动
  • 在动态场景中实现更准确的位姿估计和一致深度重建
  • 适合需要高精度动态场景重建的研究者

传统SLAM系统依赖束调整(bundle adjustment)处理动态场景时表现不佳,因常见于非专业视频中的动态元素会破坏环境静态假设。现有方法或剔除动态部分,或独立建模其运动,前者导致重建不完整,后者引发运动估计不一致。本文提出新方法:利用基于学习的3D点追踪器,将观测到的运动解耦为相机运动与动态物体运动。仅以相机运动参与束调整,使系统可稳定处理所有场景元素。通过轻量级尺度图后处理确保帧间深度一致性。所提框架BA-Track融合传统SLAM核心——束调整,与鲁棒学习型前端追踪器,集成运动分解、束调整与深度优化,能精准跟踪相机运动,并生成时间连贯、尺度一致的稠密重建结果,同时适应静态与动态成分。在挑战性数据集上的实验表明,该方法在相机位姿估计与3D重建精度上均有显著提升。

原文摘要 · Abstract (English)

Traditional SLAM systems, which rely on bundle adjustment, struggle with highly dynamic scenes commonly found in casual videos. Such videos entangle the motion of dynamic elements, undermining the assumption of static environments required by traditional systems. Existing techniques either filter out dynamic elements or model their motion independently. However, the former often results in incomplete reconstructions, whereas the latter can lead to inconsistent motion estimates. Taking a novel approach, this work leverages a 3D point tracker to separate the camera-induced motion from the observed motion of dynamic objects. By considering only the camera-induced component, bundle adjustment can operate reliably on all scene elements as a result. We further ensure depth consistency across video frames with lightweight post-processing based on scale maps. Our framework combines the core of traditional SLAM -- bundle adjustment -- with a robust learning-based 3D tracker front-end. Integrating motion decomposition, bundle adjustment and depth refinement, our unified framework, BA-Track, accurately tracks the camera motion and produces temporally coherent and scale-consistent dense reconstructions, accommodating both static and dynamic elements. Our experiments on challenging datasets reveal significant improvements in camera pose estimation and 3D reconstruction accuracy.

SLAM动态重建束调整3D追踪

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