| Literature DB >> 34068131 |
Afonso Raposo1,2, Luis Marques3, Rafael Correia1, Francisco Melo1, João Valente3,4, Telmo Pereira5, Luis Brás Rosário6, Filipe Froes7, João Sanches1,2, Hugo Plácido da Silva1,8.
Abstract
In 2019, a new virus, SARS-CoV-2, responsible for the COVID-19 disease, was discovered. Asymptomatic and mildly symptomatic patients were forced to quarantine and closely monitor their symptoms and vital signs, most of the time at home. This paper describes e-CoVig, a novel mHealth application, developed as an alternative to the current monitoring paradigm, where the patients are followed up by direct phone contact. The e-CoVig provides a set of functionalities for remote reporting of symptoms, vital signs, and other clinical information to the health services taking care of these patients. The application is designed to register and transmit the heart rate, blood oxygen saturation (SpO2), body temperature, respiration, and cough. The system features a mobile application, a web/cloud platform, and a low-cost specific device to acquire the temperature and SpO2. The architecture of the system is flexible and can be configured for different operation conditions. Current commercial devices, such as oximeters and thermometers, can also be used and read using the optical character recognition (OCR) functionality of the system. The data acquired at the mobile application are sent automatically to the web/cloud application and made available in real-time to the medical staff, enabling the follow-up of several users simultaneously without the need for time consuming phone call interactions. The system was already tested for its feasibility and a preliminary deployment was performed on a nursing home showing promising results.Entities:
Keywords: COVID-19; mHealth; pulse oximetry; telemedicine; temperature
Mesh:
Year: 2021 PMID: 34068131 PMCID: PMC8152780 DOI: 10.3390/s21103397
Source DB: PubMed Journal: Sensors (Basel) ISSN: 1424-8220 Impact factor: 3.576
Figure 1e-CoVig mHealth system overview.
Figure 2Detailed e-CoVig mHealth system architecture.
Figure 3e-CoVig login options and home screen.
Figure 4Examples of qualitative and quantitative assessment using e-CoVig.
Figure 5Photo of the developed specialized device.
Figure 6Object and body temperatures measured with a F102 IR thermometer. A linear regression was computed to obtain the linear transformation performed between both temperatures.
Figure 7Measurement, history, and reminders
Main characteristics of the population.
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| Height (m) |
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| Weight (Kg) |
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| Temperature (°C) |
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| Gender (female) | 22 |
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| Smoking habits (yes) | 1 |
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| Sedentary (yes) | 14 |
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| Arterial hypertension (yes) | 0 |
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| Dyslipidaemia (yes) | 2 |
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| Diabetes (yes) | 0 |
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| Other clinical conditions (yes) | 0 |
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| Medication (yes) | 2 |
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Pairwise comparison of the e-CoVig repeated measurements.
| 1st Measurement | 2nd Measurement | Mean Difference | ||
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| Heart rate (BPM) |
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| Temporal temperature (°C) |
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| Tympanic temperature (°C) |
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Figure 8Regression plots representing the e-CoVig repeated-measurements correlation. (a) heart rate (in BPM); (b) (in %); (c) temporal and (d) tympanic temperatures (in °C). The solid line represents the regression line computed using unweighted least squares, while the dashed lines correspond to 95% confidence bands, depicting the upper and lower confidence bounds for all points on the fitted line.
Pairwise comparison between the e-CoVig and the standard device measurements.
| Standard Device | e-CoVig Device | Mean Difference | ||
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| Heart rate (BPM) |
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| Temporal temperature (°C) |
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| <0.001 |
| Tympanic temperature (°C) |
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| <0.001 |
Figure 9Regression plots representing the correlation between the measurements with the e-CoVig device and the standard reference device. (a) heart rate (in BPM); (b) (in %); (c) temporal and (d) tympanic temperatures (in °C). The solid line represents the regression line computed using unweighted least squares, while the dashed lines correspond to 95% confidence bands, depicting the upper and lower confidence bounds for all points on the fitted line.