Sensor-Guided Optical Flow
Matteo Poggi, Filippo Aleotti, Stefano Mattoccia
摘要
This paper proposes a framework to guide an optical flow network with external cues to achieve superior accuracy either on known or unseen domains. Given the availability of sparse yet accurate optical flow hints from an external source, these are injected to modulate the correlation scores computed by a state-of-the-art optical flow network and guide it towards more accurate predictions. Although no real sensor can provide sparse flow hints, we show how these can be obtained by combining depth measurements from active sensors with geometry and hand-crafted optical flow algorithms, leading to accurate enough hints for our purpose. Experimental results with a state-of-the-art flow network on standard benchmarks support the effectiveness of our framework, both in simulated and real conditions.
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引用它的顶会 Paper2
- 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
- RPEFlow: Multimodal Fusion of RGB-PointCloud-Event for Joint Optical Flow and Scene Flow EstimationZhexiong Wan, Yuxin Mao, Jing Zhang, Yuchao DaiICCV 2023 · 被引用 35 次
它引用的顶会 Paper12
- Self-Supervised Learning With Geometric Constraints in Monocular Video: Connecting Flow, Depth, and CameraYuhua Chen, Cordelia Schmid, Cristian SminchisescuICCV 2019 · 被引用 265 次
- Displacement-Invariant Matching Cost Learning for Accurate Optical Flow EstimationJianyuan Wang, Yiran Zhong, Yuchao Dai, Kaihao Zhang 等NeurIPS 2020 · 被引用 83 次
- Learning Across Tasks and DomainsPierluigi Zama Ramirez, Alessio Tonioni, Samuele Salti, Luigi Di StefanoICCV 2019 · 被引用 32 次
- ScopeFlow: Dynamic Scene Scoping for Optical FlowAviram Bar-Haim, Lior WolfCVPR 2020
- Weakly Supervised Learning of Rigid 3D Scene FlowZan Gojcic, Or Litany, Andreas Wieser, Leonidas J. Guibas 等CVPR 2021
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