Impact of High-Density Urban Built Environment on Chronic Obstructive Pulmonary Disease: A Case Study of Jing’an District, Shanghai
Abstract
:1. Introduction
2. Materials and Methods
2.1. Study Area
2.2. Data
2.3. Measures
2.4. Modeling
3. Results
3.1. Spearman’s Rank Correlation Analysis
3.2. GWR
4. Discussion
5. Conclusions
Author Contributions
Funding
Conflicts of Interest
Appendix A
Categories | Sub-Categories | Variables | Unit | Definition | Potential Impact in Hypotheses |
---|---|---|---|---|---|
Land use | Residential | Residential patch density | piece/hm2 | Number of residential land/neighborhood total land area | Higher density increases human exposure to air pollutants |
Open space | Open space patch density | piece/hm2 | Number of open space land/neighborhood total land area | Higher density increases human exposure to air pollutants | |
Land use mix | Land use mix | / | Decrease the usage of automobile and thus reduce air pollution | ||
Road system | Road density | Total road density | km/km2 | Road length/neighborhood total land area | Increase traffic volume and its air pollution |
Arterial road density | km/km2 | Arterial road length/neighborhood total land area ×1000 | Increase traffic volume and its air pollution | ||
Distance to roads | Shortest distance to the elevated highway | m | Shortest distance to the elevated highway | The shorter distance implies more human exposure to air pollution | |
Shortest distance to arterial road | m | Shortest distance to arterial road | The shorter distance implies more human exposure to air pollution | ||
Connectivity | Intersection density | quantity/hm2 | Intersections number/neighborhood total land area | Increase wind speed and thus decrease the concentration of air pollutants. | |
Spatial form | Building density | FAR (Floor area ratio) | / | Above-ground building Area/parcel land area | High density increase the concentration of air pollutants |
Building coverage | % | Building area/parcel land area | High density increase the concentration of air pollutants | ||
Building form | Building height | / | Standard deviation of building height | High density increase the concentration of air pollutants | |
Frontal area density | / | ∑ (Frontal area of a building facing to a certain wind direction)/parcel land area | High density decrease wind speed and thus increase the concentration of air pollutants | ||
Building width-height ratio | / | Building area/frontal Area | High density decrease wind speed and thus increase the concentration of air pollutants | ||
Demographic and economic status | Population density | Population density | persons/hm2 | Total population/neighborhood total land area | Affect the morbidity and mortality |
Gender | Female ratio | % | Women/total population | Affect the morbidity and mortality | |
Education | High education rate | % | Bachelor degree or above/total | Life style and knowledge affect the morbidity and mortality | |
Occupation | Employment in the secondary industry | % | Production, transportation equipment operators/total employment | Work exposure increases the mortality and mortality | |
Housing quality | Housing area below 30 m2 | % | Average per unit living area less than 30 m2 | Low housing quality increases the mortality and mortality |
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Categories | Sub-Categories | Variables | Correlation Coefficient | Sig. (Double Side) |
---|---|---|---|---|
Land use | Residential | Residential patch density | −0.118 | 0.331 |
Open space | Open space patch density | −0.055 | 0.648 | |
Land use mix | Land use mix | −0.247 * | 0.040 | |
Road systems | Road density | Total road density | 0.482 ** | 0.000 |
Arterial road density | 0.535 ** | 0.000 | ||
Distance to roads | Shortest distance to the elevated highway | 0.025 | 0.838 | |
Shortest distance to arterial road | 0.056 | 0.643 | ||
Connectivity | Intersection density | −0.126 | 0.298 | |
Spatial form | Building density | FAR (Floor area ratio) | −0.111 | 0.361 |
Building coverage | −0.073 | 0.547 | ||
Building form | Building height | −0.134 | 0.267 | |
Frontal area density | −0.460 ** | 0.000 | ||
Building width-height ratio | 0.408 ** | 0.000 | ||
Demographic and economic status | Population density | Population density | −0.540 ** | 0.000 |
Gender | Female ratio | −0.121 | 0.317 | |
Education | High education rate | −0.143 | 0.237 | |
Occupation | Employment in the secondary industry | 0.122 | 0.315 | |
Housing quality | Housing area below 30 m2 | 0.034 | 0.777 |
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Wang, L.; Chen, R.; Sun, W.; Yang, X.; Li, X. Impact of High-Density Urban Built Environment on Chronic Obstructive Pulmonary Disease: A Case Study of Jing’an District, Shanghai. Int. J. Environ. Res. Public Health 2020, 17, 252. https://doi.org/10.3390/ijerph17010252
Wang L, Chen R, Sun W, Yang X, Li X. Impact of High-Density Urban Built Environment on Chronic Obstructive Pulmonary Disease: A Case Study of Jing’an District, Shanghai. International Journal of Environmental Research and Public Health. 2020; 17(1):252. https://doi.org/10.3390/ijerph17010252
Chicago/Turabian StyleWang, Lan, Rui Chen, Wenyao Sun, Xiaoming Yang, and Xinhu Li. 2020. "Impact of High-Density Urban Built Environment on Chronic Obstructive Pulmonary Disease: A Case Study of Jing’an District, Shanghai" International Journal of Environmental Research and Public Health 17, no. 1: 252. https://doi.org/10.3390/ijerph17010252
APA StyleWang, L., Chen, R., Sun, W., Yang, X., & Li, X. (2020). Impact of High-Density Urban Built Environment on Chronic Obstructive Pulmonary Disease: A Case Study of Jing’an District, Shanghai. International Journal of Environmental Research and Public Health, 17(1), 252. https://doi.org/10.3390/ijerph17010252