| Literature DB >> 35062463 |
Alexandru Lavric1, Adrian I Petrariu1,2, Partemie-Marian Mutescu1, Eugen Coca1, Valentin Popa1,2.
Abstract
In this paper, we present the design, development and implementation of an integrated system for the management of COVID-19 patient, using the LoRaWAN communication infrastructure. Our system offers certain advantages when compared to other similar solutions, allowing remote symptom and health monitoring that can be applied to isolated or quarantined people, without any external interaction with the patient. The IoT wearable device can monitor parameters of health condition like pulse, blood oxygen saturation, and body temperature, as well as the current location. To test the performance of the proposed system, two persons under quarantine were monitored, for a complete 14-day standard quarantine time interval. Based on the data transmitted to the monitoring center, the medical staff decided, after several days of monitoring, when the measured values were outside of the normal parameters, to do an RT-PCR test for one of the two persons, confirming the SARS-CoV2 virus infection. We have to emphasize the high degree of scalability of the proposed solution that can oversee a large number of patients at the same time, thanks to the LoRaWAN communication protocol used. This solution can be successfully implemented by local authorities to increase monitoring capabilities, also saving lives.Entities:
Keywords: COVID-19 sensors; Internet of Things; IoT wearable device; quarantine monitoring; remote healthcare; telemedicine
Mesh:
Substances:
Year: 2022 PMID: 35062463 PMCID: PMC8778479 DOI: 10.3390/s22020503
Source DB: PubMed Journal: Sensors (Basel) ISSN: 1424-8220 Impact factor: 3.576
Figure 1Advantages of using IoT for COVID-19 pandemic monitoring.
IoT communication protocols that can be implemented in patient monitoring system.
| Application Requirements | SigFox | NB-IoT | Symphony Link | IEEE 802.15.4 | Z-Wave | IEEE 802.15.1 | Cellular Technologies | LoRaWAN |
|---|---|---|---|---|---|---|---|---|
| Communication range | ~4 km | ~1 km | ~5 km | ~150 m | ~100 m | ~100 m | ~1 km | ~5–10 km |
| Large-scale scalability | ✓ | ✓ | ✓ | - | - | - | ✓ | ✓ |
| Popularity | ✓ | ✓ | - | - | ✓ | ✓ | ✓ | ✓ |
| Frequency band | Unlicensed | Licensed | Unlicensed | Unlicensed | Unlicensed | Unlicensed | Licensed | Unlicensed |
| Carrier independent | - | - | ✓ | ✓ | ✓ | ✓ | - | ✓ |
| Power consumption Efficiency | Low | Medium | Low | Low | Low | Low | High | Low |
| Fast deployment | - | - | - | ✓ | ✓ | ✓ | - | ✓ |
| Cost-effective solution | - | - | - | - | - | ✓ | - | ✓ |
| Resistance to | ✓ | - | - | - | - | ✓ | ✓ | ✓ |
COVID-19 symptom classes.
| Patient Class | SpO2 | Cough Rate | Heartbeat | Temperature |
|---|---|---|---|---|
| Non-symptomatic | ≥95% | No cough | ≤90 bpm | ≤37.2 °C |
| Mild symptoms | ≥95% | ≤5/min | ≤100 bpm | 36 °C ≤ |
| Moderate clinical symptoms | 93% ≤ SpO2 ≤ 94% | 5/min ≤ Cough Rate < 30/min | >100 bpm | ≥38 °C |
| Serious clinical symptoms | ≤92% | ≥30/min | >120 bpm | >38 °C |
Figure 2COVID-19 disease symptoms.
Figure 3COVID-19 effects on the human body.
Figure 4COVID-19 IoT multi-sensor patient monitoring architecture.
Figure 5Wearable device block diagram of the multi-sensor approach.
Figure 6Physical implementation of the wearable device. (a) IoT multi sensor configuration. (b) IoT wearable device installed on patient.
Figure 7Field coverage measurements—single GW configuration.
Figure 8Field coverage measurements of the LoRaWAN gateways installed on the roof top of Suceava Hospital.
Figure 9Field coverage measurements—multiple GW configuration.
Figure 10IoT multi-sensor patient monitoring application dashboard.
Figure 11Patients’ vital signs measurement obtained from the IoT wearable device. (a) SpO2 and pulse (Patient A). (b) Body temperature (Patient A). (c) SpO2 and pulse (Patient B). (d) Body temperature (Patient B).
Performance evaluation of the developed system compared with other solutions.
| Application Parameters | Zhang et al. [ | Ullah et al. [ | Mukhtar et al. [ | Hoang et al. [ | Our Proposed Approach |
|---|---|---|---|---|---|
| SpO2 | - | ✓ | ✓ | - | ✓ |
| Pulse | - | ✓ | ✓ | - | ✓ |
| Temperature | ✓ | ✓ | ✓ | ✓ | ✓ |
| Location | - | ✓ | - | - | ✓ |
| Scalability of the system | - | - | - | - | ✓ |
| High coverage area | - | - | - | - | ✓ |
| Modular architecture | - | - | - | - | ✓ |
| Wearable device integration | - | - | - | ✓ | ✓ |
| IoT communication technology | BLE | BLE/802.11n | 802.11 | BLE/802.11n | LoRaWAN |