MiShape: Accurate Human Silhouettes and Body Joints from Commodity Millimeter-Wave Devices
Aakriti Adhikari, Hem Regmi, Sanjib Sur, Srihari Nelakuditi
Abstract
Figure 1. MiShape generates high-resolution silhouettes similar to vision-based systems using only millimeter-wave signals. We propose MiShape, a millimeter-wave (mmWave) wireless signal based imaging system that generates high-resolution human silhouettes and predicts 3D locations of body joints. The system can capture human motions in real-time under low light and low-visibility conditions. Unlike existing vision-based motion capture systems, MiShape is privacy non-invasive and can generalize to a wide range of motion tracking applications at-home. To overcome the challenges with low-resolution, specularity, and aliasing in images from Commercial-Off-The-Shelf (COTS) mmWave systems, MiShape designs deep learning models based on conditional Generative Adversarial Networks and incorporates the rules of human biomechanics. We have customized MiShape for gait monitoring, but the model is well adaptive to any tracking applications with limited fine-tuning samples. We experimentally evaluate MiShape with real data collected from a COTS mmWave system for 10 volunteers, with diverse ages, gender, height, and somatotype, performing different poses. Our experimental results demonstrate that MiShape delivers high-resolution silhouettes and accurate body poses on par with an existing vision-based system, and unlocks the potential of mmWave systems, such as 5G home wireless routers, for privacy-noninvasive healthcare applications. CCS Concepts: • Human-centered computing → Ubiquitous and mobile computing systems and tools; • Computing methodologies → Machine learning approaches.
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Cited by top-tier papers3
- Beamforming for Sensing: Hybrid Beamforming based on Transmitter-Receiver Collaboration for Millimeter-Wave SensingLong Fan, Lei Xie, Wenhui Zhou, Chuyu Wang et al.UbiComp 2024 · 13 citations
- RF-HOI: Recognize Human-Object Interaction with Radio Frequency SignalsLihao Wang, Linlu Gao, Jiacan Yu, Yanyu Lin et al.UbiComp 2026
- Wave-Former: Through-Occlusion 3D Reconstruction via Wireless Shape CompletionLaura Dodds, Maisy Lam, Waleed Akbar, Yibo Cheng et al.CVPR 2026
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- 3D Point Cloud Generation with Millimeter-Wave RadarKun Qian, Zhaoyuan He, Xinyu ZhangUbiComp 2021 · 111 citations
- SquiggleMilli: Approximating SAR Imaging on Mobile Millimeter-Wave DevicesHem Regmi, Moh Sabbir Saadat, Sanjib Sur, Srihari NelakuditiUbiComp 2021 · 31 citations
- Through Fog High-Resolution Imaging Using Millimeter Wave RadarJunfeng Guan, Sohrab Madani, Suraj Jog, Saurabh Gupta et al.CVPR 2020
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