COHESIV: Contrastive Object and Hand Embedding Segmentation In Video
Dandan Shan, Richard E. L. Higgins, David F. Fouhey
Abstract
In this paper we learn to segment hands and hand-held objects from motion. Our system takes a single RGB image and hand location as input to segment the hand and hand-held object. For learning, we generate responsibility maps that show how well a hand's motion explains other pixels' motion in video. We use these responsibility maps as pseudo-labels to train a weakly-supervised neural network using an attention-based similarity loss and contrastive loss. Our system outperforms alternate methods, achieving good performance on the 100DOH, EPIC-KITCHENS, and HO3D datasets.
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Cited by top-tier papers8
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- HandSAW: Wearable Hand-based Event Recognition via On-Body Surface Acoustic WavesKaylee Yaxuan Li, Yasha Iravantchi, Yichen Zhu, Hyunmin Park et al.UbiComp 2025 · 5 citations
Builds on12
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- Reconstructing Hand-Object Interactions in the WildZhe Cao, Ilija Radosavovic, Angjoo Kanazawa, Jitendra MalikICCV 2021 · 184 citations
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- Detecting Hands and Recognizing Physical Contact in the WildSupreeth Narasimhaswamy, Trung Nguyen, Minh Hoai NguyenNeurIPS 2020 · 57 citations
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