2023
DOI: 10.1145/3606921
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Motion In-Betweening with Phase Manifolds

Paul Starke,
Sebastian Starke,
Taku Komura
et al.

Abstract: This paper introduces a novel data-driven motion in-betweening system to reach target poses of characters by making use of phases variables learned by a Periodic Autoencoder. Our approach utilizes a mixture-of-experts neural network model, in which the phases cluster movements in both space and time with different expert weights. Each generated set of weights then produces a sequence of poses in an autoregressive manner between the current and target state of the character. In addition, to satisfy poses which … Show more

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Cited by 4 publications
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References 38 publications
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