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BioGAP-Ultra: A Modular Edge-AI Platform for Wearable Multimodal Biosignal Acquisition and Processing
IEEE Transactions on Biomedical Circuits and Systems
|January 12, 2026
Summary
BioGAP-Ultra is an advanced wearable biosensing platform for continuous physiological monitoring. It enables on-device AI processing of electrophysiological and hemodynamic signals with state-of-the-art energy efficiency.
Area of Science:
- Wearable technology
- Biomedical engineering
- Artificial intelligence in healthcare
Background:
- Growing demand for continuous physiological monitoring and human-machine interaction in real-world settings.
- Need for flexible, low-power wearable platforms with on-device intelligence.
- Limitations of existing wearable biosensing platforms in terms of storage, connectivity, and signal modality.
Purpose of the Study:
- To present BioGAP-Ultra, an advanced multimodal biosensing platform.
- To enable synchronized acquisition of diverse electrophysiological and hemodynamic signals.
- To achieve state-of-the-art energy efficiency for embedded AI processing on wearable devices.
Main Methods:
- Developed BioGAP-Ultra, an extension of the BioGAP design with increased storage, improved wireless connectivity, and enhanced signal modalities.
- Integrated BioGAP-Ultra into various wearable form factors (headband, sleeve, chestband).
- Deployed on-device AI applications for photoplethysmography (PPG) and electromyography (EMG) signal analysis.
Main Results:
- BioGAP-Ultra supports synchronized acquisition of EEG, EMG, ECG, and PPG signals.
- Demonstrated low power consumption for continuous monitoring and AI processing across different form factors (e.g., 9.3 mW for ECG-PPG chestband).
- Achieved high accuracy for on-device AI applications, such as EMG-based motion phase classification (79.9% ± 5.7% at 23.6 mW).
Conclusions:
- BioGAP-Ultra is a versatile and energy-efficient multimodal biosensing platform for advanced wearable applications.
- The platform enables on-device AI processing for real-time physiological monitoring and human-machine interaction.
- Open-source release of hardware and software facilitates further research and development in wearable biosensing.
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