Low-Energy and Modular Wearable Device for Wireless Measurement of Physiological Signals †
Abstract
:1. Introduction
2. Materials and Methods
2.1. System Overview
2.2. Hardware Design
2.2.1. Wearable Device Core
2.2.2. Corporal Temperature Sensor
2.2.3. Breath and Heart Rate Sensor
2.2.4. Device Fabrication
2.3. Firmware and Mobile Application
3. Results and Discussion
3.1. Corporal Temperature Sensor Calibration
3.2. PPG Signals Analysis
3.3. Experimental Results
4. Conclusions
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State | Consumption () |
---|---|
BLE advertising | 0.24 |
BLE connected | 0.49 |
Data acquisition & streaming | 1.93 |
+Temperature sensing module | +2.42 |
+PPG sensing module | +2.77 |
+PPG sensing module enable | +16.7 |
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Herrera-Juárez, M.A.; Ramírez-Chavarría, R.G. Low-Energy and Modular Wearable Device for Wireless Measurement of Physiological Signals. Eng. Proc. 2020, 2, 75. https://doi.org/10.3390/ecsa-7-08213
Herrera-Juárez MA, Ramírez-Chavarría RG. Low-Energy and Modular Wearable Device for Wireless Measurement of Physiological Signals. Engineering Proceedings. 2020; 2(1):75. https://doi.org/10.3390/ecsa-7-08213
Chicago/Turabian StyleHerrera-Juárez, Manuel A., and Roberto G. Ramírez-Chavarría. 2020. "Low-Energy and Modular Wearable Device for Wireless Measurement of Physiological Signals" Engineering Proceedings 2, no. 1: 75. https://doi.org/10.3390/ecsa-7-08213
APA StyleHerrera-Juárez, M. A., & Ramírez-Chavarría, R. G. (2020). Low-Energy and Modular Wearable Device for Wireless Measurement of Physiological Signals. Engineering Proceedings, 2(1), 75. https://doi.org/10.3390/ecsa-7-08213