2021
DOI: 10.48550/arxiv.2108.01819
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Transfer Learning for Pose Estimation of Illustrated Characters

Abstract: Human pose information is a critical component in many downstream image processing tasks, such as activity recognition and motion tracking. Likewise, a pose estimator for the illustrated character domain would provide a valuable prior for assistive content creation tasks, such as reference pose retrieval and automatic character animation. But while modern data-driven techniques have substantially improved pose estimation performance on natural images, little work has been done for illustrations. In our work, w… Show more

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