Exploring the Relationship between Urbanization and Vegetation Ecological Quality Changes in the Guangdong–Hong Kong–Macao Greater Bay Area
Abstract
:1. Introduction
2. Materials and Methods
2.1. Study Area
2.2. Available Data and Processing
- (1)
- NDVI dataset. A 16-day MODIS-NDVI (MOD13Q1) dataset from 2000 to 2020 was employed to calculate the FVC. The dataset was provided by the National Aeronautics and Space Administration (NASA, https://ladsweb.modaps.eosdis.nasa.gov/search/ (accessed on 1 December 2021)), with a spatial resolution of 250 m. Monthly NDVI values were derived from the 16-day data using the maximum-value compositing (MVC) method [48], which can effectively minimize cloud contamination, atmospheric impacts, and solar zenith angle effects [49];
- (2)
- Nighttime light (NTL) raster data. This dataset, spanning the years from 2000 to 2020, was derived from the Yangtze River Delta Science Data Center, the National Earth System Science Data Sharing Infrastructure, National Science and Technology Infrastructure of China (http://geodata.nnu.edu.cn/ (accessed on 1 December 2022)). This dataset, available at a spatial resolution of 500 m, has similar data quality and parameter attributes consistent with the NPP-VIIRS nighttime light data. Comparing the new 2012 nighttime light dataset with the NPP-VIIRS for the same year, the pixel-level accuracy (R2) was 0.87, and the root means square error (RMSE) was 2.96. The new nighttime dataset effectively addresses the compatibility issue between the DMSP-OLS and NPP-VIIRS nighttime light datasets, providing a new data source for research in urban studies and related fields. The dataset was resampled to a spatial resolution of 250 m to match the MODIS-NDVI data;
- (3)
- NPP dataset. The monthly NPP dataset used in this study spans 2000 to 2020 and was obtained from the literature [43]. This dataset was produced using the CASA (Carnegie–Ames–Stanford approach) model at a spatial resolution of 250 m. The accuracy of the simulated NPP was validated by field-observed biomass acquired from the Dinghushan and Heshan Forest Ecosystem State Field Observation and Research Station. Its reliability was validated against the field-observed NPP, with an MAE of 103.40 g C·m−2 and an RMSE of 122.22 g C·m−2;
- (4)
- Socioeconomic dataset. The annual population density and GDP data from 2000 to 2020 were obtained from the Resource and Environment Science and Data Center, Chinese Academy of Sciences (htps://www.resdc.cn/ (accessed on 1 December 2022)). Both datasets have a spatial resolution of 1000 m, with values of each raster based on the county-wide GDP and demographic data, incorporating geographical differentiation in natural elements. Both datasets were resampled to a spatial resolution of 250 m to match the MODIS-NDVI and NPP data;
- (5)
- Other data. DEM data with a 90 m resolution were obtained from the Geospatial Data Cloud (http://www.gscloud.cn/ (accessed on 1 February 2022)). Administrative district boundaries of prefecture-level cities and townships for 2018 in Arc/INFO coverage format were acquired from the Resource and Environmental Science Data Platform (https://www.resdc.cn/, (accessed on 1 February 2022)).
2.3. Methods
2.3.1. Evaluation of Vegetation Ecological Quality
2.3.2. Construction of Comprehensive Urbanization Index
2.3.3. Trend Analysis
2.3.4. Coupling Coordination Model
2.3.5. Tapio Decoupling Model
3. Results
3.1. Spatial Patterns and Trend Analysis of the VEQI
3.1.1. Spatial Distribution Patterns of the VEQI
3.1.2. Trend in the VEQI
3.2. Spatial Pattern of the CUI and Its Changes
3.2.1. Spatial Distribution Patterns of the CUI
3.2.2. Trend Analysis of the CUI
3.3. Interaction and Coercive Effects between the VEQI and CUI in the GBA
3.3.1. Spatiotemporal CCD Patterns and Their Changes
3.3.2. Decoupling Effect and Its Changes
4. Discussion
4.1. Spatial Differentiation and Improvement of Vegetation Ecological Quality in the GBA
4.2. Urbanization Process of the GBA
4.3. Relationship between the Vegetation Ecological Quality and Urbanization
4.3.1. Coupling Coordination
4.3.2. Decoupling Effect
4.4. Recommendations and Limitations
4.4.1. Socioecological Recommendations
4.4.2. Limitations
5. Conclusions
- (1)
- From 2000 to 2020, the VEQI values of the GBA significantly increased, reflecting consistent enhancement of the vegetation ecological quality; however, a decline was observed in some central regions of the GBA during this period;
- (2)
- Over the 21 years, the CUI in all cities of the GBA demonstrated an increasing trend, indicating a continuous rise in urbanization levels across the GBA, especially in central areas of the GBA like Shenzhen, Dongguan, Foshan, and Macao, which were much higher than the average growth rate;
- (3)
- The CCD values between the VEQI and CUI in the GBA consistently improved from 2000 to 2020, and the relationship between urbanization and vegetation ecological quality has become more harmonious and tends toward coordination. However, in regions where the vegetation ecological quality is high but urbanization levels are low, or vice versa, where vegetation ecological quality is low but urbanization levels are high, the coupling coordination between the two is still not optimistic;
- (4)
- The decoupling status between the VEQI and CUI over the four study periods was characterized by WD, SD, END, and EC. A discernible trade-off state persists despite the improving relationship between urbanization and vegetation ecological quality. Vegetation ecological quality continues to be significantly impacted by urbanization pressures.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Dataset | Spatial/Temporal Resolution | Data Period/Year | Source | Purpose |
---|---|---|---|---|
NDVI | 250 m/16-day | 2000–2020 | NASA | To calculate FVC |
NPP | 250 m/monthly | 2000–2020 | Wu et al. [43] | To calculate VEQI |
NTL data | 500 m/annual | 2000–2020 | National Earth System Science Data Center | To measure land urbanization |
Socioeconomic dataset | 1000 m/annual | 2000–2020 | Resource and Environment Science and Data Center | To measure population and economic urbanization |
DEM | 90 m | 2000 | Geospatial Data Cloud | — |
Administrative district boundaries | — | 2018 | Resource and Environmental Science Data Platform | — |
Indicator | Factor | Factor Weight | Model/Formula for Indicator | Indicator Description |
---|---|---|---|---|
Vegetation ecological quality index | Net primary productivity | 0.5 | Vegetation ecological quality | |
Fractional vegetation cover | 0.5 | |||
Comprehensive urbanization index | Population urbanization index | 0.3410 | w1UPI + w2UEI + w3ULI | Urbanization level |
Economic urbanization index | 0.210.3 | |||
Land urbanization index | 0.4488 | |||
Coupling coordination degree | Vegetation ecological quality index | 0.5 | Coupling coordination relationship | |
Comprehensive urbanization index | 0.5 | |||
Coupling degree | — | |||
Decoupling index | Vegetation ecological quality index | — | Decoupling relationship | |
Comprehensive urbanization index | — |
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Wu, Y.; Luo, Z.; Wu, Z. Exploring the Relationship between Urbanization and Vegetation Ecological Quality Changes in the Guangdong–Hong Kong–Macao Greater Bay Area. Land 2024, 13, 1246. https://doi.org/10.3390/land13081246
Wu Y, Luo Z, Wu Z. Exploring the Relationship between Urbanization and Vegetation Ecological Quality Changes in the Guangdong–Hong Kong–Macao Greater Bay Area. Land. 2024; 13(8):1246. https://doi.org/10.3390/land13081246
Chicago/Turabian StyleWu, Yanyan, Zhaohui Luo, and Zhifeng Wu. 2024. "Exploring the Relationship between Urbanization and Vegetation Ecological Quality Changes in the Guangdong–Hong Kong–Macao Greater Bay Area" Land 13, no. 8: 1246. https://doi.org/10.3390/land13081246
APA StyleWu, Y., Luo, Z., & Wu, Z. (2024). Exploring the Relationship between Urbanization and Vegetation Ecological Quality Changes in the Guangdong–Hong Kong–Macao Greater Bay Area. Land, 13(8), 1246. https://doi.org/10.3390/land13081246