The Impacts of Urban Population Growth and Shrinkage on the Urban Land Use Efficiency: A Case Study of the Northeastern Region of China
Abstract
:1. Introduction
2. Literature Review and Theoretical Framework
2.1. Understanding Urban Population Growth and Shrinkage
2.2. Understanding the Urban Land Use Efficiency
2.3. Understanding the Relationship between UPGS and ULUE
2.3.1. Direct Impacts of UPGS on the ULUE
2.3.2. Mediating Effects of UPGS on the ULUE
2.3.3. Spatial Effects of UPGS on ULUE
3. Materials and Methods
3.1. Study Area
3.2. Methods
3.2.1. Measurement of Population Growth and Shrinkage
3.2.2. Three-Stage SBM-DEA Model for Measuring ULUE
3.2.3. Mediating Effect Model
3.2.4. Spatial Econometric Model
3.3. Data Sources and Processing
4. Results
4.1. Spatiotemporal Characteristics of ULUE and UPGS
4.1.1. Spatiotemporal Characteristics of ULUE
4.1.2. Spatiotemporal Characteristics of UPGS
4.2. Mediating Effects of UPGS on ULUE
4.2.1. Analysis of the Mediating Effect
4.2.2. Analysis of the Mediating Effect of Urban Population Growth
4.2.3. Analysis of the Mediating Effect of Urban Population Shrinkage
4.2.4. Comparative Analysis of the Direct and Mediating Effects of Urban Population Growth and Shrinkage
4.2.5. Robustness Tests
4.3. Spatial Effects of UPGS on ULUE
4.3.1. Spatial Correlation Test
Setting of the Spatial Weight Matrix
Spatial Correlation Analysis
4.3.2. Empirical Results and Analysis of the Spatial Econometric Model
Selection and Assessment of Spatial Econometric Models
Analysis of the Spatial Durbin Model Estimation Results
Direct Effects of the SDM
Indirect Effects of the SDM
5. Discussion
5.1. Analysis of the Significant Regional Development Imbalance in Northeast China
5.2. Analysis of the Impacts of UPGS on ULUE
5.3. Analysis of Coordinated Development to Improve ULUE
5.4. Limitation
5.5. Summary
6. Conclusions and Policies Implications
6.1. Conclusions
6.2. Policy Implications
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Type | Indicators | Indicator Meaning |
---|---|---|
Input indicators | R&D cost input | Technical investment |
Number of employees | Labor input | |
Built-up area | Land input | |
Fixed asset investment | Capital investment | |
Electricity consumption of the whole society | Energy input | |
Desirable output indicators | GDP per capital | Material output |
Total retail sales of consumer goods | Material output | |
Undesirable output indicators | CO2 emissions | Undesirable output |
Indicator Name | Abbreviation | MIN | MAX | AV | SD | CV | VIF | Tolerance |
---|---|---|---|---|---|---|---|---|
Urban Land Use Efficiency | ULUE | 0.390 | 1.740 | 0.844 | 0.235 | 0.278 | —— | —— |
Urban Population Growth and Shrinkage | UPGS | −0.350 | 0.260 | −0.024 | 0.084 | −3.509 | 1.425 | 0.702 |
Economic Development | ED | 4370 | 106,846 | 31,710.633 | 22,025.296 | 0.695 | 2.659 | 0.376 |
Technology Innovation | TI | 0.040 | 462.540 | 28.639 | 67.409 | 2.354 | 2.957 | 0.338 |
Industrial Structure Upgrading | ISU | 9.780 | 60.990 | 39.039 | 7.726 | 0.198 | 5.370 | 0.186 |
Public Services | PS | 4.440 | 100 | 23.067 | 22.264 | 0.965 | 1.673 | 0.598 |
Ecological Environment Quality | EEQ | 7.050 | 51.800 | 35.780 | 7.769 | 0.217 | 1.349 | 0.741 |
Environment Governance Level | EGL | 27.000 | 76,381.250 | 1915.802 | 10,838.006 | 5.657 | 1.062 | 0.941 |
Resource Utility | RU | 12,455 | 4,840,417 | 641,738.871 | 748,699.945 | 1.167 | 2.842 | 0.352 |
Foreign Investment | FI | 0.040 | 462.540 | 28.639 | 67.409 | 2.354 | 2.939 | 0.340 |
ULUE | UPGS | |||||
---|---|---|---|---|---|---|
Global Moran’s I | Z Score | p Value | Global Moran’s I | Z Score | p Value | |
2000–2005 | 0.072 | 1.427 | 0.081 | 0.113 | 1.288 | 0.006 |
2005–2010 | 0.120 | 1.333 | 0.090 | 0.218 | 2.333 | 0.017 |
2010–2015 | 0.143 | 1.551 | 0.070 | 0.192 | 2.171 | 0.025 |
2015–2020 | −0.132 | −1.012 | 0.161 | 0.133 | 1.496 | 0.047 |
Model | Test | Statistic | p Value |
---|---|---|---|
SLM and SEM selection | LM error | 7.899 | 0.005 |
R-LM error | 17.952 | 0.000 | |
LM lag | 4.344 | 0.037 | |
R-LM lag | 14.396 | 0.000 | |
SDM simplification | Wald lag | 26.510 | 0.002 |
LR lag | 6.680 | 0.083 | |
Wald error | 30.220 | 0.000 | |
LR error | 182.07 | 0.000 | |
Random and fixed effects tests | Hausman | 80.720 | 0.000 |
Main | Mixed Effect | Time Fixed | Spatial Fixed | Double Fixed | Mixed Effect | Time Fixed | Spatial Fixed | Double Fixed | |
---|---|---|---|---|---|---|---|---|---|
R2 | 0.3943 | 0.7863 | 0.4459 | 0.5988 | Wx | ||||
ED | 0.046 | 0.322 *** | 0.368 * | 0.153 ** | ED | −0.326 *** | −0.182 *** | −0.195 * | 0.339 *** |
ISU | −0.193 * | 0.575 ** | 0.306 ** | 0.221 ** | ISU | −0.851 *** | −0.216 * | −0.211 *** | 0.596 *** |
PS | −0.190 | 0.154 *** | 0.209 * | 0.115 ** | PS | −0.041 | 0.034 | 0.012 | 0.200 * |
TI | −0.105 | 0.244 * | 0.158 * | 0.199 * | TI | −0.461 ** | 0.203 ** | 0.385 ** | 0.436 ** |
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Kang, H.; Fu, M.; Kang, H.; Li, L.; Dong, X.; Li, S. The Impacts of Urban Population Growth and Shrinkage on the Urban Land Use Efficiency: A Case Study of the Northeastern Region of China. Land 2024, 13, 1532. https://doi.org/10.3390/land13091532
Kang H, Fu M, Kang H, Li L, Dong X, Li S. The Impacts of Urban Population Growth and Shrinkage on the Urban Land Use Efficiency: A Case Study of the Northeastern Region of China. Land. 2024; 13(9):1532. https://doi.org/10.3390/land13091532
Chicago/Turabian StyleKang, Haoyang, Meichen Fu, Haoran Kang, Lijiao Li, Xu Dong, and Sijia Li. 2024. "The Impacts of Urban Population Growth and Shrinkage on the Urban Land Use Efficiency: A Case Study of the Northeastern Region of China" Land 13, no. 9: 1532. https://doi.org/10.3390/land13091532
APA StyleKang, H., Fu, M., Kang, H., Li, L., Dong, X., & Li, S. (2024). The Impacts of Urban Population Growth and Shrinkage on the Urban Land Use Efficiency: A Case Study of the Northeastern Region of China. Land, 13(9), 1532. https://doi.org/10.3390/land13091532