Intelligent Carpet: Inferring 3D Human Pose From Tactile Signals
Yiyue Luo, Yunzhu Li, Michael Foshey, Wan Shou, Pratyusha Sharma, Tomás Palacios, Antonio Torralba, Wojciech Matusik
Abstract
Daily human activities, e.g., locomotion, exercises, and resting, are heavily guided by the tactile interactions between the human and the ground. In this work, leveraging such tactile interactions, we propose a 3D human pose estimation approach using the pressure maps recorded by a tactile carpet as input. We build a low-cost, high-density, large-scale intelligent carpet, which enables the real-time recordings of human-floor tactile interactions in a seamless manner. We collect a synchronized tactile and visual dataset on various human activities. Employing a state-of-the-art camera-based pose estimation model as supervision, we design and implement a deep neural network model to infer 3D human poses using only the tactile information. Our pipeline can be further scaled up to multi-person pose estimation. We evaluate our system and demonstrate its potential applications in diverse fields.
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Install the CLIlune papers fulltext b4293760-c3f2-42f6-85f7-1ab19a36429fCited by top-tier papers8
- Learning to Jointly Understand Visual and Tactile SignalsYichen Li, Yilun Du, Chao Liu, Chao Liu et al.ICLR 2024 · 10 citations
- Ground Reaction Inertial Poser: Physics-based Human Motion Capture from Sparse IMUs and Insole Pressure SensorsRyosuke Hori, Jyun-Ting Song, Zhengyi Luo, Jinkun Cao et al.CVPR 2026 · 2 citations
- ChairPose: Pressure-based Chair Morphology Grounded Sitting Pose Estimation through Simulation-Assisted TrainingLala Shakti Swarup Ray, Vítor Fortes Rey, Bo Zhou, Paul Lukowicz et al.UIST 2025 · 1 citation
- PressTrack-HMR: Pressure-Based Top-Down Multi-Person Global Human Mesh RecoveryJiayue Yuan, Fangting Xie, Guangwen Ouyang, Changhai Ma et al.AAAI 2026
- MotionPRO: Exploring the Role of Pressure in Human MoCap and BeyondShenghao Ren, Yi Lu, Jiayi Huang, Jiayi Zhao et al.CVPR 2025
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