SemGeoMo: Dynamic Contextual Human Motion Generation with Semantic and Geometric Guidance
Peishan Cong, Ziyi Wang, Yuexin Ma, Xiangyu Yue
摘要
Generating reasonable and high-quality human interactive motions in a given dynamic environment is crucial for understanding, modeling, transferring, and applying human behaviors to both virtual and physical robots. In this paper, we introduce an effective method, SemGeoMo, for dynamic contextual human motion generation, which fully leverages the text-affordance-joint multi-level semantic and geometric guidance in the generation process, improving the semantic rationality and geometric correctness of generative motions. Our method achieves state-of-the-art performance on three datasets and demonstrates superior generalization capability for diverse interaction scenarios. The project page and code can be found at https:// 4dvlab.github.io/project_page/semgeomo/ .
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引用它的顶会 Paper6
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- U-Mind: A Unified Framework for Real-Time Multimodal Interaction with Audiovisual Generationxiang deng, Feng Gao, Yong Zhang, Youxin Pang 等CVPR 2026 · 被引用 2 次
- ViHOI: Human-Object Interaction Synthesis with Visual PriorsSongjin Cai, Linjie Zhong, Ling Guo, Changxing DingCVPR 2026 · 被引用 2 次
- SyncDiff: Synchronized Motion Diffusion for Multi-Body Human-Object Interaction SynthesisWenkun He, Yun Liu, Ruitao Liu, Li YiICCV 2025 · 被引用 1 次
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