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3 months ago

Generating Smooth Pose Sequences for Diverse Human Motion Prediction

Wei Mao Miaomiao Liu Mathieu Salzmann

Generating Smooth Pose Sequences for Diverse Human Motion Prediction

Abstract

Recent progress in stochastic motion prediction, i.e., predicting multiple possible future human motions given a single past pose sequence, has led to producing truly diverse future motions and even providing control over the motion of some body parts. However, to achieve this, the state-of-the-art method requires learning several mappings for diversity and a dedicated model for controllable motion prediction. In this paper, we introduce a unified deep generative network for both diverse and controllable motion prediction. To this end, we leverage the intuition that realistic human motions consist of smooth sequences of valid poses, and that, given limited data, learning a pose prior is much more tractable than a motion one. We therefore design a generator that predicts the motion of different body parts sequentially, and introduce a normalizing flow based pose prior, together with a joint angle loss, to achieve motion realism.Our experiments on two standard benchmark datasets, Human3.6M and HumanEva-I, demonstrate that our approach outperforms the state-of-the-art baselines in terms of both sample diversity and accuracy. The code is available at https://github.com/wei-mao-2019/gsps

Code Repositories

wei-mao-2019/gsps
Official
pytorch
Mentioned in GitHub

Benchmarks

BenchmarkMethodologyMetrics
human-pose-forecasting-on-amassGSPS
ADE: 0.563
APD: 12.465
FDE: 0.613
human-pose-forecasting-on-human36mGSPS
ADE: 389
APD: 14757
CMD: 10.758
FDE: 496
FID: 2.103
MMADE: 476
MMFDE: 525
human-pose-forecasting-on-humaneva-iGSPS
ADE@2000ms: 233
APD@2000ms: 5825
FDE@2000ms: 244

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