Action2Motion: Conditioned Generation of 3D Human Motions

被引:191
作者
Guo, Chuan [1 ]
Zuo, Xinxin [1 ,4 ]
Wang, Sen [1 ,4 ]
Zou, Shihao [1 ]
Sun, Qingyao [2 ]
Deng, Annan [3 ]
Gon, Minglun [4 ]
Cheng, Li [1 ]
机构
[1] Univ Alberta, Dept Elect & Comp Engn, Edmonton, AB, Canada
[2] Univ Chicago, Phys Sci Div, Chicago, IL 60637 USA
[3] Yale Univ, Grad Sch Arts & Sci, New Haven, CT 06520 USA
[4] Univ Guelph, Sch Comp Sci, Guelph, ON, Canada
来源
MM '20: PROCEEDINGS OF THE 28TH ACM INTERNATIONAL CONFERENCE ON MULTIMEDIA | 2020年
基金
加拿大自然科学与工程研究理事会;
关键词
3D motion generation; Lie algebra; variational auto-encoder; 3D animation; ACTION RECOGNITION;
D O I
10.1145/3394171.3413635
中图分类号
TP18 [人工智能理论];
学科分类号
081104 ; 0812 ; 0835 ; 1405 ;
摘要
Action recognition is a relatively established task, where given an input sequence of human motion, the goal is to predict its action category. This paper, on the other hand, considers a relatively new problem, which could be thought of as an inverse of action recognition: given a prescribed action type, we aim to generate plausible human motion sequences in 3D. Importantly, the set of generated motions are expected to maintain its diversity to be able to explore the entire action-conditioned motion space; meanwhile, each sampled sequence faithfully resembles a natural human body articulation dynamics. Motivated by these objectives, we follow the physics law of human kinematics by adopting the Lie Algebra theory to represent the natural human motions; we also propose a temporal Variational Auto-Encoder (VAE) that encourages a diverse sampling of the motion space. A new 3D human motion dataset, HumanAct12, is also constructed(1). Empirical experiments over three distinct human motion datasets (including ours) demonstrate the effectiveness of our approach.
引用
收藏
页码:2021 / 2029
页数:9
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