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A Dataset of Relighted 3D Interacting Hands

26 October 2023
Gyeongsik Moon
Shunsuke Saito
Weipeng Xu
Rohan P. Joshi
Julia Buffalini
Harley Bellan
Nicholas Rosen
Jesse Richardson
Mallorie Mize
Philippe de Bree
Tomas Simon
Bo Peng
Shubham Garg
Kevyn McPhail
Takaaki Shiratori
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Abstract

The two-hand interaction is one of the most challenging signals to analyze due to the self-similarity, complicated articulations, and occlusions of hands. Although several datasets have been proposed for the two-hand interaction analysis, all of them do not achieve 1) diverse and realistic image appearances and 2) diverse and large-scale groundtruth (GT) 3D poses at the same time. In this work, we propose Re:InterHand, a dataset of relighted 3D interacting hands that achieve the two goals. To this end, we employ a state-of-the-art hand relighting network with our accurately tracked two-hand 3D poses. We compare our Re:InterHand with existing 3D interacting hands datasets and show the benefit of it. Our Re:InterHand is available in https://mks0601.github.io/ReInterHand/.

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