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HIMO: A New Benchmark for Full-Body Human Interacting with Multiple Objects

About

Generating human-object interactions (HOIs) is critical with the tremendous advances of digital avatars. Existing datasets are typically limited to humans interacting with a single object while neglecting the ubiquitous manipulation of multiple objects. Thus, we propose HIMO, a large-scale MoCap dataset of full-body human interacting with multiple objects, containing 3.3K 4D HOI sequences and 4.08M 3D HOI frames. We also annotate HIMO with detailed textual descriptions and temporal segments, benchmarking two novel tasks of HOI synthesis conditioned on either the whole text prompt or the segmented text prompts as fine-grained timeline control. To address these novel tasks, we propose a dual-branch conditional diffusion model with a mutual interaction module for HOI synthesis. Besides, an auto-regressive generation pipeline is also designed to obtain smooth transitions between HOI segments. Experimental results demonstrate the generalization ability to unseen object geometries and temporal compositions.

Xintao Lv, Liang Xu, Yichao Yan, Xin Jin, Congsheng Xu, Shuwen Wu, Yifan Liu, Lincheng Li, Mengxiao Bi, Wenjun Zeng, Xiaokang Yang• 2024

Related benchmarks

TaskDatasetResultRank
HOI motion generationHIMO 2 Objects (test)
R-TOP 363.6
8
HOI motion generationHIMO 3 Objects (test)
R-TOP 30.535
8
HOI motion generationFullBodyManipulation 1 Object (test)
Rank Top-3 Accuracy85.1
5
Human-Object Interaction EvaluationHIMO 2 Objects (test)
C Accuracy70.7
5
Human-Object Interaction EvaluationHIMO 3 Objects (test)
C Accuracy (%)75.8
5
Human-Object Interaction GenerationHUMOTO two-object
Diversity0.606
4
Human-Object Interaction GenerationHUMOTO single-object
Diversity0.413
4
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