FlowStep3D: Model Unrolling for Self-Supervised Scene Flow Estimation
Yair Kittenplon, Yonina C. Eldar, Dan Raviv
摘要
Estimating the 3D motion of points in a scene, known as scene flow, is a core problem in computer vision. Traditional learning-based methods designed to learn end-toend 3D flow often suffer from poor generalization. Here we present a recurrent architecture that learns a single step of an unrolled iterative alignment procedure for refining scene flow predictions. Inspired by classical algorithms, we demonstrate iterative convergence toward the solution using strong regularization. The proposed method can handle sizeable temporal deformations and suggests a slimmer architecture than competitive all-to-all correlation approaches. Trained on FlyingThings3D synthetic data only, our network successfully generalizes to real scans, outperforming all existing methods by a large margin on the KITTI self-supervised benchmark. 1
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引用它的顶会 Paper36
- Neural Scene Flow PriorXueqian Li, Jhony Kaesemodel Pontes, Simon LuceyNeurIPS 2021 · 被引用 136 次
- SLIM: Self-Supervised LiDAR Scene Flow and Motion SegmentationStefan Andreas Baur, David Josef Emmerichs, Frank Moosmann, Peter Pinggera 等ICCV 2021 · 被引用 110 次
- CamLiFlow: Bidirectional Camera-LiDAR Fusion for Joint Optical Flow and Scene Flow EstimationHaisong Liu, Tao Lu, Yihui Xu, Jia Liu 等CVPR 2022 · 被引用 64 次
- SCTN: Sparse Convolution-Transformer Network for Scene Flow EstimationBing Li, Cheng Zheng, Silvio Giancola, Bernard GhanemAAAI 2022 · 被引用 50 次
- RigidFlow: Self-Supervised Scene Flow Learning on Point Clouds by Local Rigidity PriorRuibo Li, Chi Zhang, Guosheng Lin, Zhe Wang 等CVPR 2022 · 被引用 47 次
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