SMURF: Self-Teaching Multi-Frame Unsupervised RAFT With Full-Image Warping
Austin Stone, Daniel Maurer, Alper Ayvaci, Anelia Angelova, Rico Jonschkowski
Abstract
We present SMURF, a method for unsupervised learning of optical flow that improves state of the art on all benchmarks by 36% to 40% (over the prior best method UFlow) and even outperforms several supervised approaches such as PWC-Net and FlowNet2. Our method integrates architecture improvements from supervised optical flow, i.e. the RAFT model, with new ideas for unsupervised learning that include a sequence-aware self-supervision loss, a technique for handling out-of-frame motion, and an approach for learning effectively from multi-frame video data while still only requiring two frames for inference.
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Install the CLIlune papers fulltext 4256959a-aa26-442c-8a9c-74485baee072Cited by top-tier papers36
- Conditional Object-Centric Learning from VideoThomas Kipf, Gamaleldin Fathy Elsayed, Aravindh Mahendran, Austin Stone et al.ICLR 2022 · 290 citations
- CRAFT: Cross-Attentional Flow Transformer for Robust Optical FlowXiuchao Sui, Shaohua Li, Xue Geng, Yan Wu et al.CVPR 2022 · 114 citations
- RM-Depth: Unsupervised Learning of Recurrent Monocular Depth in Dynamic ScenesTak-Wai HuiCVPR 2022 · 62 citations
- Learning Optical Flow from Continuous Spike StreamsRui Zhao, Ruiqin Xiong, Jing Zhao, Zhaofei Yu et al.NeurIPS 2022 · 49 citations
- Learning Pixel Trajectories with Multiscale Contrastive Random WalksZhangxing Bian, Allan Jabri, Alexei A. Efros, Andrew OwensCVPR 2022 · 35 citations
Builds on2
- Learning by Analogy: Reliable Supervision From Transformations for Unsupervised Optical Flow EstimationLiang Liu, Jiangning Zhang, Ruifei He, Yong Liu et al.CVPR 2020
- Flow2Stereo: Effective Self-Supervised Learning of Optical Flow and Stereo MatchingPengpeng Liu, Irwin King, Michael R. Lyu, Jia XuCVPR 2020
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- Unsupervised Space-Time Network for Temporally-Consistent Segmentation of Multiple MotionsEtienne Meunier, Patrick BouthemyCVPR 2023
