HAIF-GS: Hierarchical and Induced Flow-Guided Gaussian Splatting for Dynamic Scene

NeurIPS 2025
Jianing Chen1,2 Zehao Li1,2 Yujun Cai3 Hao Jiang1,2* Chengxuan Qian4 Juyuan Kang1,2 Shuqin Gao1 Honglong Zhao1 Tianlu Mao1,2 Yucheng Zhang1,2*
*Co-corresponding authors
1Institute of Computing Technology, Chinese Academy of Sciences, ICT
2University of Chinese Academy of Sciences, UCAS
3The University of Queensland
4Jiangsu University

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Abstract

Reconstructing dynamic 3D scenes from monocular videos remains a fundamental challenge in 3D vision. While 3D Gaussian Splatting (3DGS) achieves real-time rendering in static settings, extending it to dynamic scenes is challenging due to the difficulty of learning structured and temporally consistent motion representations. This challenge often manifests as three limitations in existing methods: redundant Gaussian updates, insufficient motion supervision, and weak modeling of complex non-rigid deformations. These issues collectively hinder coherent and efficient dynamic reconstruction. To address these limitations, we propose HAIF-GS, a unified framework that enables structured and consistent dynamic modeling through sparse anchor-driven deformation. It first identifies motion-relevant regions via an Anchor Filter to suppresses redundant updates in static areas. A self-supervised Induced Flow-Guided Deformation module induces anchor motion using multi-frame feature aggregation, eliminating the need for explicit flow labels. To further handle fine-grained deformations, a Hierarchical Anchor Propagation mechanism increases anchor resolution based on motion complexity and propagates multi-level transformations. Extensive experiments on synthetic and real-world benchmarks validate that HAIF-GS significantly outperforms prior dynamic 3DGS methods in rendering quality, temporal coherence, and reconstruction efficiency.

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BibTeX

@article{chen2025haif,
  title={HAIF-GS: Hierarchical and Induced Flow-Guided Gaussian Splatting for Dynamic Scene},
  author={Chen, Jianing and Li, Zehao and Cai, Yujun and Jiang, Hao and Qian, Chengxuan and Kang, Juyuan and Gao, Shuqin and Zhao, Honglong and Mao, Tianlu and Zhang, Yucheng},
  journal={arXiv preprint arXiv:2506.09518},
  year={2025}
}