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A Wearable Multi-Modal Measurement System with Self-Developed IMUs and Plantar Pressure Sensors for Real-Time Gait Recognition

  • Xiuyu Li
  • , Yunong Gao
  • , Guanzhong Chen
  • , Meiyan Zhang*
  • , Jingxiao Liao*
  • , Zhaoyun Wang
  • , Jinwei Sun
  • *Corresponding author for this work
  • Harbin Institute of Technology
  • China Electronics Technology Group Corporation
  • City University of Hong Kong

Research output: Contribution to journalArticlepeer-review

Abstract

To address the limitations of existing wearable gait recognition, such as drift in static actions and difficulty in recognizing transition states, this paper proposed a gait recognition system based on the data fusion of MEMS Inertial Measurement Units (IMUs) and flexible plantar pressure sensors. A low-power wearable device comprising four inertial and two pressure sensing nodes was developed to achieve synchronized multi-source data collection. Regarding the algorithm, a sensor-characteristic-based two-stage hierarchical framework was constructed. The first stage utilized plantar pressure features to efficiently decouple static postures from dynamic gaits. The second stage employed a lightweight Support Vector Machine combined with a Finite State Machine for static and transitional actions, while an ensemble learning model based on Soft Voting was used for complex dynamic gaits. Experimental results under Leave-One-Out Cross-Validation demonstrate a comprehensive recognition accuracy of 96.17%, with 100% accuracy for standing and 97% for sit-to-stand transitions. These findings validate the significant advantages of the multi-modal fusion approach in enhancing the robustness and generalization capabilities of gait recognition.

Original languageEnglish
Article number371
JournalMicromachines
Volume17
Issue number3
DOIs
StatePublished - Mar 2026
Externally publishedYes

Keywords

  • IMU
  • ensemble learning
  • gait recognition
  • multi-modal fusion
  • plantar pressure
  • wearable sensors

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