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Google Street View-Derived Neighborhood Characteristics in California Associated with Coronary Heart Disease, Hypertension, Diabetes

Characteristics of the neighborhood built environment influence health and health behavior. Google Street View (GSV) images may facilitate measures of the neighborhood environment that are meaningful, practical, and adaptable to any geographic boundary. We used GSV images and computer vision to char...

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Autores principales: Nguyen, Thu T., Nguyen, Quynh C., Rubinsky, Anna D., Tasdizen, Tolga, Deligani, Amir Hossein Nazem, Dwivedi, Pallavi, Whitaker, Ross, Fields, Jessica D., DeRouen, Mindy C., Mane, Heran, Lyles, Courtney R., Brunisholz, Kim D., Bibbins-Domingo, Kirsten
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8507846/
https://www.ncbi.nlm.nih.gov/pubmed/34639726
http://dx.doi.org/10.3390/ijerph181910428
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author Nguyen, Thu T.
Nguyen, Quynh C.
Rubinsky, Anna D.
Tasdizen, Tolga
Deligani, Amir Hossein Nazem
Dwivedi, Pallavi
Whitaker, Ross
Fields, Jessica D.
DeRouen, Mindy C.
Mane, Heran
Lyles, Courtney R.
Brunisholz, Kim D.
Bibbins-Domingo, Kirsten
author_facet Nguyen, Thu T.
Nguyen, Quynh C.
Rubinsky, Anna D.
Tasdizen, Tolga
Deligani, Amir Hossein Nazem
Dwivedi, Pallavi
Whitaker, Ross
Fields, Jessica D.
DeRouen, Mindy C.
Mane, Heran
Lyles, Courtney R.
Brunisholz, Kim D.
Bibbins-Domingo, Kirsten
author_sort Nguyen, Thu T.
collection PubMed
description Characteristics of the neighborhood built environment influence health and health behavior. Google Street View (GSV) images may facilitate measures of the neighborhood environment that are meaningful, practical, and adaptable to any geographic boundary. We used GSV images and computer vision to characterize neighborhood environments (green streets, visible utility wires, and dilapidated buildings) and examined cross-sectional associations with chronic health outcomes among patients from the University of California, San Francisco Health system with outpatient visits from 2015 to 2017. Logistic regression models were adjusted for patient age, sex, marital status, race/ethnicity, insurance status, English as preferred language, assignment of a primary care provider, and neighborhood socioeconomic status of the census tract in which the patient resided. Among 214,163 patients residing in California, those living in communities in the highest tertile of green streets had 16–29% lower prevalence of coronary artery disease, hypertension, and diabetes compared to those living in communities in the lowest tertile. Conversely, a higher presence of visible utility wires overhead was associated with 10–26% more coronary artery disease and hypertension, and a higher presence of dilapidated buildings was associated with 12–20% greater prevalence of coronary artery disease, hypertension, and diabetes. GSV images and computer vision models can be used to understand contextual factors influencing patient health outcomes and inform structural and place-based interventions to promote population health.
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spelling pubmed-85078462021-10-13 Google Street View-Derived Neighborhood Characteristics in California Associated with Coronary Heart Disease, Hypertension, Diabetes Nguyen, Thu T. Nguyen, Quynh C. Rubinsky, Anna D. Tasdizen, Tolga Deligani, Amir Hossein Nazem Dwivedi, Pallavi Whitaker, Ross Fields, Jessica D. DeRouen, Mindy C. Mane, Heran Lyles, Courtney R. Brunisholz, Kim D. Bibbins-Domingo, Kirsten Int J Environ Res Public Health Article Characteristics of the neighborhood built environment influence health and health behavior. Google Street View (GSV) images may facilitate measures of the neighborhood environment that are meaningful, practical, and adaptable to any geographic boundary. We used GSV images and computer vision to characterize neighborhood environments (green streets, visible utility wires, and dilapidated buildings) and examined cross-sectional associations with chronic health outcomes among patients from the University of California, San Francisco Health system with outpatient visits from 2015 to 2017. Logistic regression models were adjusted for patient age, sex, marital status, race/ethnicity, insurance status, English as preferred language, assignment of a primary care provider, and neighborhood socioeconomic status of the census tract in which the patient resided. Among 214,163 patients residing in California, those living in communities in the highest tertile of green streets had 16–29% lower prevalence of coronary artery disease, hypertension, and diabetes compared to those living in communities in the lowest tertile. Conversely, a higher presence of visible utility wires overhead was associated with 10–26% more coronary artery disease and hypertension, and a higher presence of dilapidated buildings was associated with 12–20% greater prevalence of coronary artery disease, hypertension, and diabetes. GSV images and computer vision models can be used to understand contextual factors influencing patient health outcomes and inform structural and place-based interventions to promote population health. MDPI 2021-10-03 /pmc/articles/PMC8507846/ /pubmed/34639726 http://dx.doi.org/10.3390/ijerph181910428 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Nguyen, Thu T.
Nguyen, Quynh C.
Rubinsky, Anna D.
Tasdizen, Tolga
Deligani, Amir Hossein Nazem
Dwivedi, Pallavi
Whitaker, Ross
Fields, Jessica D.
DeRouen, Mindy C.
Mane, Heran
Lyles, Courtney R.
Brunisholz, Kim D.
Bibbins-Domingo, Kirsten
Google Street View-Derived Neighborhood Characteristics in California Associated with Coronary Heart Disease, Hypertension, Diabetes
title Google Street View-Derived Neighborhood Characteristics in California Associated with Coronary Heart Disease, Hypertension, Diabetes
title_full Google Street View-Derived Neighborhood Characteristics in California Associated with Coronary Heart Disease, Hypertension, Diabetes
title_fullStr Google Street View-Derived Neighborhood Characteristics in California Associated with Coronary Heart Disease, Hypertension, Diabetes
title_full_unstemmed Google Street View-Derived Neighborhood Characteristics in California Associated with Coronary Heart Disease, Hypertension, Diabetes
title_short Google Street View-Derived Neighborhood Characteristics in California Associated with Coronary Heart Disease, Hypertension, Diabetes
title_sort google street view-derived neighborhood characteristics in california associated with coronary heart disease, hypertension, diabetes
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8507846/
https://www.ncbi.nlm.nih.gov/pubmed/34639726
http://dx.doi.org/10.3390/ijerph181910428
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