Spatiotemporal Evaluation of the Coupling Relationship between Public Service Facilities and Population: A Case Study of Wuhan Metropolitan Area, Central China
Abstract
:1. Introduction
2. Materials and Methods
2.1. Research Area and Unit
2.2. Data Sources
2.3. Research Methods
2.3.1. Kernel Density Analysis
2.3.2. Objective Weighting Method
2.3.3. Supply Index and Demand Index
2.3.4. Coupling Coordination Model
2.3.5. Division of the Coupling Coordination Grade
3. Results
3.1. Distribution Characteristics of Public Facilities in the Wuhan Metropolitan Area
3.2. Analysis of the Coupling Coordination Relationships of Public Facilities in the Wuhan Metropolitan Area
3.2.1. Coupling Coordination Relationships at the County Level
3.2.2. Coupling Coordination Relationship at the Grid Level
4. Discussion
4.1. Evaluation of the Distribution Characteristics of Public Service Facilities
4.2. The Matching Relationship between the Public Service Facilities and the Population
4.3. Analysis of the Dynamic Changes in Coupling and Coordinated Development of Public Service Facilities and the Population
- (1)
- Antagonistic stage
- (2)
- Running-in stage
- (3)
- Coupling complementary stage
4.4. Promotion Strategies for Space Configuration of Public Service Facilities
- The layout and scale design of different facilities should take into account future population growth trends and changes and avoid the long-term resource bottleneck caused by short-term behavior. The construction of elderly care facilities should be focused on the resources that can continuously support the growth of the elderly population and meet the service demand in the future. Focus on the coverage of old-age care centers and nursing homes at the life circle level and rely on public participation to strengthen the co-construction of basic old-age facilities in communities. For shopping and consumption facilities and living service facilities that are relatively perfect, the quality should be improved to avoid repeated construction.
- Ensure the balanced distribution of public service facilities in the region and avoid excessive concentration of resources in some areas. Through policy guidance and market mechanism, the inclination of resources will be promoted to underdeveloped areas and improve the accessibility and social fairness of public services. With Wuhan as the center, the foundation of existing public service facilities in the Wu-E-Huang-Huang core development area should be stabilized, and the northern and southern wings of the WMA should be connected to narrow the differences in public service allocation among districts and counties.
- Regional collaboration should be strengthened, and a high-quality public service facility structure system should be steadily built in the WMA. According to the results of the evaluation of public service facilities in all districts and counties, the metropolitan area was divided into three development areas: strengthening foundation and improving quality area, radiation-driven area, and coordination area of supply and demand (as shown in Figure 10).
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Type | Source | Time | Explanation |
---|---|---|---|
Administrative boundaries at all levels | National Geographic Information Resources Directory Service System of China (https://www.webmap.cn/main.do?method=index (accessed on 1 June 2023)) | 2023 | The municipal and county administrative boundaries of cities in the WMA. Among them, “districts and counties” are two names of county-level administrative regions in China. |
Waters data | 2023 | Area data of large rivers and lakes | |
Elevation data | Geospatial data cloud website (https://www.gscloud.cn/search (accessed on 1 June 2023)) | 2023 | GDEMV3 30M resolution digital elevation data |
POI data | Gaode open platform (https://lbs.amap.com/ (accessed on 30 July 2023)) | 2016–2018, 2018–2020, 2020–2022 | POI data of public service facilities in the WMA |
Population grid data | WorldPop website (https://hub.worldpop.org/ (accessed on 30 July 2023)) | 2016–2018, 2018–2020, 2020–2022 | Population grid data with 500 × 500 m accuracy |
Aging population data | National Bureau of Statistics of China (https://www.stats.gov.cn/sj/pcsj/rkpc/7rp/indexce.htm (accessed on 30 July 2023)) | 2016–2018, 2018–2020, 2020–2022 | Data of aging population based on the seventh population census of China |
Facilities Category | Facility Subcategory |
---|---|
Shopping and consumption facilities | Convenience stores, supermarkets, shopping malls, shopping centers, characteristic commercial streets and specialty stores |
Educational facilities | Kindergartens, primary schools, middle schools and higher education institutions |
Medical facilities | General hospitals, medical and health care shops and clinics |
Cultural and sports facilities | Cultural centers, cultural palaces, libraries, art galleries, museums, sports venues and sports training venues |
Elderly care facilities | Nursing homes, health centers, and elderly care services |
Recreational facilities | Parks, leisure squares, playgrounds, tourist attractions |
Transportation facilities | Bus stations, subway stations, parking lots, expressway service areas |
Living service facilities | Public toilets, talent markets, beauty salons, laundries, courier service points |
Coupling Coordination Type | Coupling Coordination Level | Interval of Coupling Coordination Degree D Value | Coupling Coordination Degree |
---|---|---|---|
Low | 1 | (0, 0.013) | Extreme maladjustment |
2 | (0.013, 0.019) | Serious maladjustment | |
3 | (0.019, 0.022) | Moderate maladjustment | |
Medium | 4 | (0.022, 0.027) | Mild maladjustment |
5 | (0.027, 0.041) | On the verge of maladjustment | |
6 | (0.041, 0.067) | Reluctant coordination | |
7 | (0.067, 0.123) | Primary coordination | |
High | 8 | (0.123, 0.240) | Intermediate coordination |
9 | (0.240, 0.486) | Good coordination | |
10 | (0.486, 1) | High quality coordination |
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Liang, K.; Zou, Y.; Li, G. Spatiotemporal Evaluation of the Coupling Relationship between Public Service Facilities and Population: A Case Study of Wuhan Metropolitan Area, Central China. Sustainability 2024, 16, 7698. https://doi.org/10.3390/su16177698
Liang K, Zou Y, Li G. Spatiotemporal Evaluation of the Coupling Relationship between Public Service Facilities and Population: A Case Study of Wuhan Metropolitan Area, Central China. Sustainability. 2024; 16(17):7698. https://doi.org/10.3390/su16177698
Chicago/Turabian StyleLiang, Kaixuan, You Zou, and Guiyuan Li. 2024. "Spatiotemporal Evaluation of the Coupling Relationship between Public Service Facilities and Population: A Case Study of Wuhan Metropolitan Area, Central China" Sustainability 16, no. 17: 7698. https://doi.org/10.3390/su16177698
APA StyleLiang, K., Zou, Y., & Li, G. (2024). Spatiotemporal Evaluation of the Coupling Relationship between Public Service Facilities and Population: A Case Study of Wuhan Metropolitan Area, Central China. Sustainability, 16(17), 7698. https://doi.org/10.3390/su16177698