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NeurIPS2021顶会

COHESIV: Contrastive Object and Hand Embedding Segmentation In Video

Dandan Shan, Richard E. L. Higgins, David F. Fouhey

出版方
2021年份
17被引次数
8顶会引用

摘要

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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