cs.AI updates on arXiv.org 09月08日
WinT3R:实时高精度相机位姿与点云重建模型
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本文提出WinT3R模型,通过滑动窗口机制和紧凑的相机表示,实现在线预测精确相机位姿与高质量点云,在重建质量、相机位姿估计和重建速度上均达到最佳性能。

arXiv:2509.05296v1 Announce Type: cross Abstract: We present WinT3R, a feed-forward reconstruction model capable of online prediction of precise camera poses and high-quality point maps. Previous methods suffer from a trade-off between reconstruction quality and real-time performance. To address this, we first introduce a sliding window mechanism that ensures sufficient information exchange among frames within the window, thereby improving the quality of geometric predictions without large computation. In addition, we leverage a compact representation of cameras and maintain a global camera token pool, which enhances the reliability of camera pose estimation without sacrificing efficiency. These designs enable WinT3R to achieve state-of-the-art performance in terms of online reconstruction quality, camera pose estimation, and reconstruction speed, as validated by extensive experiments on diverse datasets. Code and model are publicly available at https://github.com/LiZizun/WinT3R.

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WinT3R 相机位姿估计 点云重建 实时预测
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