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Risk prediction model of self-reported hypertension for telemedicine based on the sociodemographic, occupational and health-related characteristics of seafarers: a cross-sectional epidemiological study
by
Sagaro, Getu Gamo
, Chintalapudi, Nalini
, Marotta, Claudia
, Silenzi, Andrea
, Amenta, Francesco
, Kebede, Mihiretu M
, Rezza, Giovanni
, Angeloni, Ulrico
, Battineni, Gopi
, Dicanio, Marzio
in
Adolescent
/ Adult
/ Alcohol
/ Blood pressure
/ Body mass index
/ Cardiovascular Medicine
/ Consent
/ Cross-Sectional Studies
/ Data collection
/ Decision making
/ Epidemiology
/ Health care
/ Humans
/ Hypertension
/ Hypertension - epidemiology
/ Maritime industry
/ Medical personnel
/ Public health
/ Questionnaires
/ Risk factors
/ Self Report
/ Ships
/ Smoking
/ Sociodemographics
/ Telemedicine
2023
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Risk prediction model of self-reported hypertension for telemedicine based on the sociodemographic, occupational and health-related characteristics of seafarers: a cross-sectional epidemiological study
by
Sagaro, Getu Gamo
, Chintalapudi, Nalini
, Marotta, Claudia
, Silenzi, Andrea
, Amenta, Francesco
, Kebede, Mihiretu M
, Rezza, Giovanni
, Angeloni, Ulrico
, Battineni, Gopi
, Dicanio, Marzio
in
Adolescent
/ Adult
/ Alcohol
/ Blood pressure
/ Body mass index
/ Cardiovascular Medicine
/ Consent
/ Cross-Sectional Studies
/ Data collection
/ Decision making
/ Epidemiology
/ Health care
/ Humans
/ Hypertension
/ Hypertension - epidemiology
/ Maritime industry
/ Medical personnel
/ Public health
/ Questionnaires
/ Risk factors
/ Self Report
/ Ships
/ Smoking
/ Sociodemographics
/ Telemedicine
2023
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Risk prediction model of self-reported hypertension for telemedicine based on the sociodemographic, occupational and health-related characteristics of seafarers: a cross-sectional epidemiological study
by
Sagaro, Getu Gamo
, Chintalapudi, Nalini
, Marotta, Claudia
, Silenzi, Andrea
, Amenta, Francesco
, Kebede, Mihiretu M
, Rezza, Giovanni
, Angeloni, Ulrico
, Battineni, Gopi
, Dicanio, Marzio
in
Adolescent
/ Adult
/ Alcohol
/ Blood pressure
/ Body mass index
/ Cardiovascular Medicine
/ Consent
/ Cross-Sectional Studies
/ Data collection
/ Decision making
/ Epidemiology
/ Health care
/ Humans
/ Hypertension
/ Hypertension - epidemiology
/ Maritime industry
/ Medical personnel
/ Public health
/ Questionnaires
/ Risk factors
/ Self Report
/ Ships
/ Smoking
/ Sociodemographics
/ Telemedicine
2023
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Risk prediction model of self-reported hypertension for telemedicine based on the sociodemographic, occupational and health-related characteristics of seafarers: a cross-sectional epidemiological study
Journal Article
Risk prediction model of self-reported hypertension for telemedicine based on the sociodemographic, occupational and health-related characteristics of seafarers: a cross-sectional epidemiological study
2023
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Overview
ObjectivesHigh blood pressure is a common health concern among seafarers. However, due to the remote nature of their work, it can be difficult for them to access regular monitoring of their blood pressure. Therefore, the development of a risk prediction model for hypertension in seafarers is important for early detection and prevention. This study developed a risk prediction model of self-reported hypertension for telemedicine.DesignA cross-sectional epidemiological study was employed.SettingThis study was conducted among seafarers aboard ships. Data on sociodemographic, occupational and health-related characteristics were collected using anonymous, standardised questionnaires.ParticipantsThis study involved 8125 seafarers aged 18–70 aboard 400 vessels between November 2020 and December 2020. 4318 study subjects were included in the analysis. Seafarers over 18 years of age, active (on duty) during the study and willing to give informed consent were the inclusion criteria.Outcome measuresWe calculated the adjusted OR (AOR) with 95% CIs using multiple logistic regression models to estimate the associations between sociodemographic, occupational and health-related characteristics and self-reported hypertension. We also developed a risk prediction model for self-reported hypertension for telemedicine based on seafarers’ characteristics.ResultsAmong the 4318 participants, 55.3% and 44.7% were non-officers and officers, respectively. 20.8% (900) of the participants reported having hypertension. Multivariable analysis showed that age (AOR: 1.08, 95% CI 1.07 to 1.10), working long hours per week (AOR: 1.02, 95% CI 1.01 to 1.03), work experience at sea (10+ years) (AOR: 1.79, 95% CI 1.33 to 2.42), being a non-officer (AOR: 1.75, 95% CI 1.44 to 2.13), snoring (AOR: 3.58, 95% CI 2.96 to 4.34) and other health-related variables were independent predictors of self-reported hypertension, which were included in the final risk prediction model. The sensitivity, specificity and accuracy of the predictive model were 56.4%, 94.4% and 86.5%, respectively.ConclusionA risk prediction model developed in the present study is accurate in predicting self-reported hypertension in seafarers’ onboard ships.
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