Locomotion-Action-Manipulation: Synthesizing Human-Scene Interactions in Complex 3D Environments

January 09, 2023 Β· Declared Dead Β· πŸ› IEEE International Conference on Computer Vision

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Authors Jiye Lee, Hanbyul Joo arXiv ID 2301.02667 Category cs.CV: Computer Vision Cross-listed cs.GR, cs.RO Citations 51 Venue IEEE International Conference on Computer Vision Last Checked 5 months ago
Abstract
Synthesizing interaction-involved human motions has been challenging due to the high complexity of 3D environments and the diversity of possible human behaviors within. We present LAMA, Locomotion-Action-MAnipulation, to synthesize natural and plausible long-term human movements in complex indoor environments. The key motivation of LAMA is to build a unified framework to encompass a series of everyday motions including locomotion, scene interaction, and object manipulation. Unlike existing methods that require motion data "paired" with scanned 3D scenes for supervision, we formulate the problem as a test-time optimization by using human motion capture data only for synthesis. LAMA leverages a reinforcement learning framework coupled with a motion matching algorithm for optimization, and further exploits a motion editing framework via manifold learning to cover possible variations in interaction and manipulation. Throughout extensive experiments, we demonstrate that LAMA outperforms previous approaches in synthesizing realistic motions in various challenging scenarios. Project page: https://jiyewise.github.io/projects/LAMA/ .
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