MBE-ARI: A Multimodal Dataset Mapping Bi-directional Engagement in Animal-Robot Interaction
Noronha, Ian, Jawaji, Advait Prasad, Soto, Juan Camilo, An, Jiajun, Gu, Yan, Kaur, Upinder
–arXiv.org Artificial Intelligence
Animal-robot interaction (ARI) remains an unexplored challenge in robotics, as robots struggle to interpret the complex, multimodal communication cues of animals, such as body language, movement, and vocalizations. Unlike human-robot interaction, which benefits from established datasets and frameworks, animal-robot interaction lacks the foundational resources needed to facilitate meaningful bidirectional communication. To bridge this gap, we present the MBE-ARI (Multimodal Bidirectional Engagement in Animal-Robot Interaction), a novel multimodal dataset that captures detailed interactions between a legged robot and cows. The dataset includes synchronized RGB-D streams from multiple viewpoints, annotated with body pose and activity labels across interaction phases, offering an unprecedented level of detail for ARI research. Additionally, we introduce a full-body pose estimation model tailored for quadruped animals, capable of tracking 39 keypoints with a mean average precision (mAP) of 92.7%, outperforming existing benchmarks in animal pose estimation. The MBE-ARI dataset and our pose estimation framework lay a robust foundation for advancing research in animal-robot interaction, providing essential tools for developing perception, reasoning, and interaction frameworks needed for effective collaboration between robots and animals. The dataset and resources are publicly available at https://github.com/RISELabPurdue/MBE-ARI/, inviting further exploration and development in this critical area.
arXiv.org Artificial Intelligence
Apr-14-2025
- Country:
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- Lafayette (0.04)
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- North America > United States > Indiana > Tippecanoe County
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- Research Report (1.00)
- Industry:
- Food & Agriculture > Agriculture (0.68)
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- Technology:
- Information Technology > Artificial Intelligence
- Issues > Social & Ethical Issues (0.47)
- Machine Learning
- Neural Networks (0.46)
- Performance Analysis (0.35)
- Robots > Locomotion (0.35)
- Information Technology > Artificial Intelligence