Unobtrusive monitoring of ECG-derived features during daily smartphone use
Heart rate variability (HRV) is known to be one of the representative ECG-derived features that are useful for diverse pervasive healthcare applications. The advancement in daily physiological monitoring technology is enabling monitoring of HRV in people's everyday lives. In this study, we eval...
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sg-smu-ink.sis_research-36602015-11-16T14:40:17Z Unobtrusive monitoring of ECG-derived features during daily smartphone use Kwon, Sungjun Kang, Seungwoo LEE, Youngki Yoo, Chungkuk Park, Kwangsuk Heart rate variability (HRV) is known to be one of the representative ECG-derived features that are useful for diverse pervasive healthcare applications. The advancement in daily physiological monitoring technology is enabling monitoring of HRV in people's everyday lives. In this study, we evaluate the feasibility of measuring ECG-derived features such as HRV, only using the smartphone-integrated ECG sensors system named Sinabro. We conducted the evaluation with 13 subjects in five predetermined smartphone use cases. The result shows the potential that the smartphone-based sensing system can support daily monitoring of ECG-derived features; The average errors of HRV over all participants ranged from 1.65% to 5.83% (SD: 2.54~10.87) for five use cases. Also, all of individual HRV parameters showed less than 5% of average errors for the three reliable cases. 2014-08-01T07:00:00Z text https://ink.library.smu.edu.sg/sis_research/2660 info:doi/10.1109/EMBC.2014.6944738 http://dx.doi.org/10.1109/EMBC.2014.6944738 Research Collection School Of Computing and Information Systems eng Institutional Knowledge at Singapore Management University Medicine and Health Sciences Software Engineering |
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Medicine and Health Sciences Software Engineering Kwon, Sungjun Kang, Seungwoo LEE, Youngki Yoo, Chungkuk Park, Kwangsuk Unobtrusive monitoring of ECG-derived features during daily smartphone use |
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Heart rate variability (HRV) is known to be one of the representative ECG-derived features that are useful for diverse pervasive healthcare applications. The advancement in daily physiological monitoring technology is enabling monitoring of HRV in people's everyday lives. In this study, we evaluate the feasibility of measuring ECG-derived features such as HRV, only using the smartphone-integrated ECG sensors system named Sinabro. We conducted the evaluation with 13 subjects in five predetermined smartphone use cases. The result shows the potential that the smartphone-based sensing system can support daily monitoring of ECG-derived features; The average errors of HRV over all participants ranged from 1.65% to 5.83% (SD: 2.54~10.87) for five use cases. Also, all of individual HRV parameters showed less than 5% of average errors for the three reliable cases. |
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text |
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Kwon, Sungjun Kang, Seungwoo LEE, Youngki Yoo, Chungkuk Park, Kwangsuk |
author_facet |
Kwon, Sungjun Kang, Seungwoo LEE, Youngki Yoo, Chungkuk Park, Kwangsuk |
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Kwon, Sungjun |
title |
Unobtrusive monitoring of ECG-derived features during daily smartphone use |
title_short |
Unobtrusive monitoring of ECG-derived features during daily smartphone use |
title_full |
Unobtrusive monitoring of ECG-derived features during daily smartphone use |
title_fullStr |
Unobtrusive monitoring of ECG-derived features during daily smartphone use |
title_full_unstemmed |
Unobtrusive monitoring of ECG-derived features during daily smartphone use |
title_sort |
unobtrusive monitoring of ecg-derived features during daily smartphone use |
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Institutional Knowledge at Singapore Management University |
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2014 |
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https://ink.library.smu.edu.sg/sis_research/2660 http://dx.doi.org/10.1109/EMBC.2014.6944738 |
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