TY - GEN
T1 - CALM
T2 - 2023 Special Interest Group on Computer Graphics and Interactive Techniques Conference, SIGGRAPH 2023
AU - Tessler, Chen
AU - Kasten, Yoni
AU - Guo, Yunrong
AU - Mannor, Shie
AU - Chechik, Gal
AU - Peng, Xue Bin
N1 - Publisher Copyright:
© 2023 ACM.
PY - 2023/7/23
Y1 - 2023/7/23
N2 - In this work, we present Conditional Adversarial Latent Models (CALM), an approach for generating diverse and directable behaviors for user-controlled interactive virtual characters. Using imitation learning, CALM learns a representation of movement that captures the complexity and diversity of human motion, and enables direct control over character movements. The approach jointly learns a control policy and a motion encoder that reconstructs key characteristics of a given motion without merely replicating it. The results show that CALM learns a semantic motion representation, enabling control over the generated motions and style-conditioning for higher-level task training. Once trained, the character can be controlled using intuitive interfaces, akin to those found in video games.
AB - In this work, we present Conditional Adversarial Latent Models (CALM), an approach for generating diverse and directable behaviors for user-controlled interactive virtual characters. Using imitation learning, CALM learns a representation of movement that captures the complexity and diversity of human motion, and enables direct control over character movements. The approach jointly learns a control policy and a motion encoder that reconstructs key characteristics of a given motion without merely replicating it. The results show that CALM learns a semantic motion representation, enabling control over the generated motions and style-conditioning for higher-level task training. Once trained, the character can be controlled using intuitive interfaces, akin to those found in video games.
KW - adversarial training
KW - animated character control
KW - motion capture data
KW - reinforcement learning
UR - https://www.scopus.com/pages/publications/85167971943
U2 - 10.1145/3588432.3591541
DO - 10.1145/3588432.3591541
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AN - SCOPUS:85167971943
T3 - Proceedings - SIGGRAPH 2023 Conference Papers
BT - Proceedings - SIGGRAPH 2023 Conference Papers
A2 - Spencer, Stephen N.
Y2 - 6 August 2023 through 10 August 2023
ER -