The new method with back-propagation neural network is expected to be capable of continuous measurement of blood pressures with noninvasive, cuffless strain blood pressure sensor. The eight time-domain characterizations estimate systolic blood pressure and diastolic blood pressure via BPNN leading to a satisfactory accuracy of the BP sensor. The BP sensor is used on human wrist to collect the continuously pulse signal for measuring blood pressures. To assist the sensor, a readout circuit is devised with a Wheatstone bridge, amplifier, filter, and a digital signal processor. The results of SBP and DBP are 4.27±4.98 mmHg and 3.86±5.35 mmHg, respectively. The errors of blood pressure pass the criteria for Association for the Advancement of Medical Instrumentation (AAMI) method 2 and the British Hypertension Society (BHS) Grade B.
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ASME 2017 Conference on Information Storage and Processing Systems collocated with the ASME 2017 International Technical Conference and Exhibition on Packaging and Integration of Electronic and Photonic Microsystems
August 29–30, 2017
San Francisco, California, USA
Conference Sponsors:
- Information Storage and Processing Systems Division
ISBN:
978-0-7918-5810-3
PROCEEDINGS PAPER
Using the Time-Domain Characterization for Estimation Continuous Blood Pressure via Neural Network Method
Paul C.-P. Chao,
Paul C.-P. Chao
National Chiao Tung University, Hsinchu, Taiwan
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Tse-Yi Tu
Tse-Yi Tu
National Chiao Tung University, Hsinchu, Taiwan
Search for other works by this author on:
Paul C.-P. Chao
National Chiao Tung University, Hsinchu, Taiwan
Tse-Yi Tu
National Chiao Tung University, Hsinchu, Taiwan
Paper No:
ISPS2017-5471, V001T02A003; 4 pages
Published Online:
October 30, 2017
Citation
Chao, PC, & Tu, T. "Using the Time-Domain Characterization for Estimation Continuous Blood Pressure via Neural Network Method." Proceedings of the ASME 2017 Conference on Information Storage and Processing Systems collocated with the ASME 2017 International Technical Conference and Exhibition on Packaging and Integration of Electronic and Photonic Microsystems. ASME 2017 Conference on Information Storage and Processing Systems. San Francisco, California, USA. August 29–30, 2017. V001T02A003. ASME. https://doi.org/10.1115/ISPS2017-5471
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