Accuracy of wearable electronic device compared to manual and automatic methods of blood pressure determination.


Journal

Medical & biological engineering & computing
ISSN: 1741-0444
Titre abrégé: Med Biol Eng Comput
Pays: United States
ID NLM: 7704869

Informations de publication

Date de publication:
Oct 2023
Historique:
received: 05 02 2023
accepted: 16 06 2023
medline: 28 9 2023
pubmed: 5 7 2023
entrez: 5 7 2023
Statut: ppublish

Résumé

Blood pressure (BP) is the main biomarker for monitoring patients, as its lack of control above values considered normal is a modifiable risk factor for target organ damage. The aim of this study is to evaluate the accuracy of the wearable electronic device photoplethysmography technology (PPG) Samsung Galaxy Watch 4 in determining BP in young patients compared to manual and automatic methods of BP determination. This is a quantitative and cross-sectional study, following validation protocols for wearable devices and BP measurement. It was carried out with twenty healthy young adults, in which BP was measured using four instruments, namely, standard sphygmomanometer device (manual), automatic arm oscillometric device (reference), wrist oscillometric device, and Smartwatch PPG. Eighty systolic blood pressure (SBP) and diastolic blood pressure (DBP) readings were observed. SBP means manual 118 ± 2.20,arm 113 ± 2.54, wrist 118 ± 2.51, and PPG (smartwatch) 113 ± 2.58. Among means, arm and PPG difference is 0.15, arm and wrist 4.95, arm and manual 4.45 wrist with PPG. The mean DBP manual 76.7 ± 1.84, arm 73.6 ± 1.92, wrist 79.3 ± 1.87, and PPG 72.2 ± 1.38. Among means, the difference between the arm and PPG is 1.4 and arm and hand 3.5 mmHg. The correlation shows PPG with manual, arm, and wrist. There was a strong SBP correlation and a moderate DBP correlation between the methods tested, evidencing the accuracy of the PPG smartwatch in relation to the reference method.

Identifiants

pubmed: 37405672
doi: 10.1007/s11517-023-02869-0
pii: 10.1007/s11517-023-02869-0
doi:

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Pagination

2627-2636

Informations de copyright

© 2023. International Federation for Medical and Biological Engineering.

Références

John O, Campbell NRC, Brady TM, Farrell M, Varghese C, Berumen AV et al (2021) The 2020 “WHO technical specifications for automated non-invasive blood pressure measuring devices with cuff.” Hypertension. 77:806–812
doi: 10.1161/HYPERTENSIONAHA.120.16625 pubmed: 33517681
Mukkamala R, Hahn JO, Chandrasekhar A (2022) Photoplethysmography in noninvasive blood pressure monitoring. Photoplethysmography 359–400
Barroso WKS, Rodrigues CIS, Bortolotto LA, Mota-Gomes MA, Brandão AA, Feitosa ADM, Machado CA et al (2021) Brazilian guidelines of hypertension - 2020. Arq Bras Cardiol 116(3):516–658
doi: 10.36660/abc.20201238 pubmed: 33909761 pmcid: 9949730
Nilson EAF, Andrade RCS, Brito DA, Oliveira ML (2020) Costs attributable to obesity, hypertension and diabetes in the Unified Health System, Brazil, 2018. Rev Panam Salud Publica 44:e32
pubmed: 32284708 pmcid: 7147115
Charlton PH, Marozas V (2022) Wearable photoplethysmography devices. Photoplethysmography . 401–439
Brazil (2001) Resolution of the Collegiate Board (RDC) 185, of October 22, 2001. Approves the Technical Regulation contained in the annex to this Resolution, which deals with the registration, alteration, revalidation and cancellation of the registration of medical products with the National Health Surveillance Agency. Official Diary of the Union
Islam SMS, Chow CK, Daryabeygikhotbehsara R, Subedi N, Rawstorn J, Tegegne T et al (2022) Wearable cuffless blood pressure monitoring devices: a systematic review and meta-analysis. Eur Heart J Digital Health 3(2):323–337
doi: 10.1093/ehjdh/ztac021
Nelson BW, Low CA, Jacobson N, Areán P, Torous J, Allen NB (2020) Guidelines for wrist-worn consumer wearable assessment of heart rate in biobehavioral research. npj Digit Med 3(1):1–9
doi: 10.1038/s41746-020-0297-4
Pickering TG, Hall JE, Appel LJ, Falkner BE, Graves J, Hill MN et al (2005) Recommendations for blood pressure measurement in humans and experimental animals. Circulation 111(5):697–716
doi: 10.1161/01.CIR.0000154900.76284.F6 pubmed: 15699287
Lee HY, Lee DJ, Seo J, Ihm SH, Kim KI, Cho EJ et al (2021) Smartphone/smartwatch-based cuffless blood pressure measurement: a position paper from the Korean Society of Hypertension. Clin Hypertens 27(4):1–8
Colvonen PJ (2021) Response To: Investigating sources of inaccuracy in wearable optical heart rate sensors. npj Digit Med 4:38
doi: 10.1038/s41746-021-00408-5 pubmed: 33637822 pmcid: 7910598
Ware OR, Dawson JE, Shinohara MM, Taylor SC (2020) Racial limitations of fitzpatrick skin type. Cutis 105:77–80
pubmed: 32186531
Galindo GR, Mayer JA, Slymen D, Almaguer DD, Clapp E, Pichon LC et al (2007) Sun sensitivity in 5 US ethnoracial groups. Cutis 80:25
pubmed: 17725060
Pershing LK, Tirumala VP, Nelson JL, Corlett JL, Lin AG, Meyer LJ et al (2008) Reflectance spectrophotometer: the dermatologists’ sphygmomanometer for skin phototyping? J Invest Dermatol 128:1633–1640
doi: 10.1038/sj.jid.5701238 pubmed: 18200057
Stergiou GS, Alpert B, Mieke S, Asmar R, Atkins N, Eckert S et al (2018) A universal standard for the validation of blood pressure measuring devices: Association for the Advancement of Medical Instrumentation/European Society of Hypertension/International Organization for Standardization (AAMI/ESH/ISO) Collaboration Statement. J Hypertens 71(3):368–374
doi: 10.1161/HYPERTENSIONAHA.117.10237
Bent B, Goldstein BA, Kibbe WA, Dunn JP (2020) Investigating sources of inaccuracy in wearable optical heart rate sensors. npj Digit Med 3(1):1–9
doi: 10.1038/s41746-020-0226-6
Peake JM, Kerr G, Sullivan JP (2018) A critical review of consumer wearables, mobile applications, and equipment for providing biofeedback, monitoring stress, and sleep in physically active populations. Front Physiol 9:743
doi: 10.3389/fphys.2018.00743 pubmed: 30002629 pmcid: 6031746
Colvonen PJ (2021) Response To: Investigating sources of inaccuracy in wearable optical heart rate sensors. npj Digit Med 4(1):3–4
doi: 10.1038/s41746-021-00408-5
Boudreaux B (2018) Validity of wearable activity monitors during cycling and resistance exercise. Med Sci Sports Exerc 50(3):624–633
doi: 10.1249/MSS.0000000000001471 pubmed: 29189666
Shin G, Jarrahi MH, Fei Y, Karami A, Gafinowitz N, Byun A et al (2019) Wearable activity trackers, accuracy, adoption, acceptance and health impact: a systematic literature review. J Biomed Inform 93:103153
doi: 10.1016/j.jbi.2019.103153 pubmed: 30910623
Malta DC, Bernal RTI, Prates EJS et al (2022) Self-reported arterial hypertension, use of health services and guidelines for care in Brazilian population: National Health Survey, 2019. Epidemiol Serv Saude 31(spe 1)
Cosoli G, Spinsante S, Scalise L (2020) Wrist-worn and chest-strap wearable devices: Systematic review on accuracy and metrological characteristics. Measurement 159:107789
doi: 10.1016/j.measurement.2020.107789
Evenson KR, Goto MM, Furberg RD (2015) Systematic review of the validity and reliability of consumer-wearable activity trackers. Int J Behav Nutr Phys Act 12(1)
Ng KG (2011) Review of measurement methods and clinical validation studies of noninvasive blood pressure monitors: Accuracy requirements and protocol considerations for devices that require patient-specific calibration by a secondary method or device before use. Blood Press Monitor 16(6):291–303
doi: 10.1097/MBP.0b013e32834e3c22
Peter L, Noury N, Cerny M (2014) A review of methods for non-invasive and continuous blood pressure monitoring: Pulse transit time method is promising? IRBM 35(5):271–282
doi: 10.1016/j.irbm.2014.07.002
Sharma M, Barbosa K, Ho V, Griggs D, Ghirmai T, Krishnan SK et al (2017) Cuff-less and continuous blood pressure monitoring: a methodological review. Technologies 5(2):21
doi: 10.3390/technologies5020021
Wang R (2017) Accuracy of wrist-worn heart rate monitors. JAMA Cardiol 2(1):104–106
doi: 10.1001/jamacardio.2016.3340 pubmed: 27732703

Auteurs

Lindercy Francisco Tomé de Souza Lins (LFTS)

Faculdade de Ciências da Saúde, Universidade Do Estado Do Rio Grande Do Norte, Atirador Miguel Antonio da Silva St, Mossoró, RN, 59607-360, Brazil.

Ellany Gurgel Cosme do Nascimento (EGC)

Faculdade de Ciências da Saúde, Universidade Do Estado Do Rio Grande Do Norte, Atirador Miguel Antonio da Silva St, Mossoró, RN, 59607-360, Brazil.

José Antonio da Silva Júnior (JA)

Faculdade de Ciências da Saúde, Universidade Do Estado Do Rio Grande Do Norte, Atirador Miguel Antonio da Silva St, Mossoró, RN, 59607-360, Brazil. joseantonio.030@hotmail.com.

Thales Allyrio Araújo de Medeiros Fernandes (TAA)

Faculdade de Ciências da Saúde, Universidade Do Estado Do Rio Grande Do Norte, Atirador Miguel Antonio da Silva St, Mossoró, RN, 59607-360, Brazil.

Micássio Fernandes de Andrade (MF)

Centro de Ciências Biológicas, Universidade Federal Rural Do Rio Grande Do Norte, Mossoró, Brazil.

Cléber de Mesquita Andrade (C)

Faculdade de Ciências da Saúde, Universidade Do Estado Do Rio Grande Do Norte, Atirador Miguel Antonio da Silva St, Mossoró, RN, 59607-360, Brazil.

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