Determining the Levels of Urbanization in Iran Using Hierarchical Clustering
Background: In this study, we used a variety of factors that affect urbanization in Iran to evaluate different provinces in Iran in terms of the level of urbanization. Methods: Using information from census 2011, we collected data on 33 indicators related to urbanization in 31 provinces in Iran....
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Tehran University of Medical Sciences
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doaj-469d1ceddc744403aa5c182cf722075e2021-01-02T16:12:52ZengTehran University of Medical SciencesIranian Journal of Public Health2251-60852251-60932019-06-0148610.18502/ijph.v48i6.2914Determining the Levels of Urbanization in Iran Using Hierarchical ClusteringMostafa ENAYATRAD0Parvin YAVARI1Koorosh ETEMAD2Sohila KHODAKARIM3Sepideh MAHDAVI4Department of Epidemiology, School of Medicine, Dezful University of Medical Sciences, Dezful, IranCancer Research Center, Shahid Beheshti University of Medical Sciences, Tehran, Iran AND Department of Health and Community Medicine, School of Medicine, Shahid Beheshti University of Medical Sciences, Tehran, IranDepartment of Epidemiology, Environmental and Occupational Hazards Control Research Center, School of Public Health, Shahid Beheshti University of Medical Sciences, Tehran, IranDepartment of Epidemiology, School of Public Health and Safety, Shahid Beheshti University of Medical Sciences, Tehran, IranDepartment of Epidemiology, School of Public Health, Shahroud University of Medical Sciences, Shahroud, Iran Background: In this study, we used a variety of factors that affect urbanization in Iran to evaluate different provinces in Iran in terms of the level of urbanization. Methods: Using information from census 2011, we collected data on 33 indicators related to urbanization in 31 provinces in Iran. To rank the provinces we used density-based hierarchical clustering scheme. To determine similarities or differences between the provinces, the square of the Euclidean distance dissimilarity coefficient; Ward’s algorithm was used to merge the provinces to minimize intra-cluster variance. One-way analysis of variance (ANOVA) was used to determine the variance between the variables used to rank the provinces in terms of different levels of urbanization. Statistical analysis was performed using SPSS. Results: The provinces in Iran were combined with each other in 30 stages and classified into four levels. Taking into account the variables used to rank the level of urbanization, Tehran, and Alborz provinces were at the highest level of urbanization. On the other hand, the provinces of Sistan and Baluchistan, Kerman, North Khorasan, South Khorasan, Hormozgan, and Bushehr were at the lowest level of urbanization. Conclusion: Identification of provinces at the same level of urbanization can help us to discover the strengths and weaknesses in the infrastructures of each of them. Given the differences between various levels of urbanization, the identification of factors that are effective in the process of urbanization can help to access more information required for designing plans for the years to come. https://ijph.tums.ac.ir/index.php/ijph/article/view/17345UrbanizationProvinceCluster analysisIran |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Mostafa ENAYATRAD Parvin YAVARI Koorosh ETEMAD Sohila KHODAKARIM Sepideh MAHDAVI |
spellingShingle |
Mostafa ENAYATRAD Parvin YAVARI Koorosh ETEMAD Sohila KHODAKARIM Sepideh MAHDAVI Determining the Levels of Urbanization in Iran Using Hierarchical Clustering Iranian Journal of Public Health Urbanization Province Cluster analysis Iran |
author_facet |
Mostafa ENAYATRAD Parvin YAVARI Koorosh ETEMAD Sohila KHODAKARIM Sepideh MAHDAVI |
author_sort |
Mostafa ENAYATRAD |
title |
Determining the Levels of Urbanization in Iran Using Hierarchical Clustering |
title_short |
Determining the Levels of Urbanization in Iran Using Hierarchical Clustering |
title_full |
Determining the Levels of Urbanization in Iran Using Hierarchical Clustering |
title_fullStr |
Determining the Levels of Urbanization in Iran Using Hierarchical Clustering |
title_full_unstemmed |
Determining the Levels of Urbanization in Iran Using Hierarchical Clustering |
title_sort |
determining the levels of urbanization in iran using hierarchical clustering |
publisher |
Tehran University of Medical Sciences |
series |
Iranian Journal of Public Health |
issn |
2251-6085 2251-6093 |
publishDate |
2019-06-01 |
description |
Background: In this study, we used a variety of factors that affect urbanization in Iran to evaluate different provinces in Iran in terms of the level of urbanization.
Methods: Using information from census 2011, we collected data on 33 indicators related to urbanization in 31 provinces in Iran. To rank the provinces we used density-based hierarchical clustering scheme. To determine similarities or differences between the provinces, the square of the Euclidean distance dissimilarity coefficient; Ward’s algorithm was used to merge the provinces to minimize intra-cluster variance. One-way analysis of variance (ANOVA) was used to determine the variance between the variables used to rank the provinces in terms of different levels of urbanization. Statistical analysis was performed using SPSS.
Results: The provinces in Iran were combined with each other in 30 stages and classified into four levels. Taking into account the variables used to rank the level of urbanization, Tehran, and Alborz provinces were at the highest level of urbanization. On the other hand, the provinces of Sistan and Baluchistan, Kerman, North Khorasan, South Khorasan, Hormozgan, and Bushehr were at the lowest level of urbanization.
Conclusion: Identification of provinces at the same level of urbanization can help us to discover the strengths and weaknesses in the infrastructures of each of them. Given the differences between various levels of urbanization, the identification of factors that are effective in the process of urbanization can help to access more information required for designing plans for the years to come.
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topic |
Urbanization Province Cluster analysis Iran |
url |
https://ijph.tums.ac.ir/index.php/ijph/article/view/17345 |
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