Can China’s Resource-Saving and Environmentally Friendly Society Really Improve the Efficiency of Industrial Land Use?
Abstract
:1. Introduction
2. Literature Review and Hypothesis
2.1. Literature Review
2.2. Research Hypothesis
2.2.1. Theoretical Basis
2.2.2. Conceptual Framework and Research Hypothesis
3. Research Area
4. Methodology and Data Sources
4.1. Methodology
4.1.1. Calculating the ILUE: SBM Model Based on DEA
4.1.2. Difference-in-Differences Method: Measuring the Net Effect of the RES on the ILUE
4.1.3. Relationship between Economic Development and ILUE: Kuznets Curve
4.1.4. Pollution Emission Coefficient
4.2. Variable Selection
4.2.1. Input and Output Indicators for Evaluating the ILUE
4.2.2. Control Variables
4.3. Data Sources
5. Results
5.1. Change in the ILUE
5.2. Robustness of DID
5.2.1. Parallel Trend Test
5.2.2. Placebo Test
5.3. Regression Results for the Impact of the RES on the ILUE
5.4. Verification of the Kuznets Curve for Economic Development and the ILUE
5.5. Pollution Emission Coefficient
6. Conclusions and Policy Implications
6.1. Conclusions
6.2. Policy Implications
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Category | Classification | Single Index |
---|---|---|
Input | Land | Industrial land area (IL) |
Labor | Employment in secondary industries (ESI) | |
Capital | Industrial investment in fixed assets (IFA) | |
Desirable output | Economic benefit | Industrial output (IOV) |
Undesirable output | Environmental pollution | Industrial wastewater discharge (IWD) |
Industrial sulfur dioxide discharge (ISD) | ||
Industrial smoke and dust emissions (ISDE) |
Variable | Obs. | Unit | Max | Min | Mean | Std. Dev | |
---|---|---|---|---|---|---|---|
SBM model | IL | 208 | hectare | 3713 | 5.701 | 546.3856 | 661.7012 |
ESI | 208 | 104 CNY/hectare | 63.251 | 1.51 | 15.6784 | 11.56019 | |
IFA | 208 | 108 CNY/hectare | 6243.105 | 47.361 | 507.2174 | 624.3664 | |
IOV | 208 | 108 CNY | 16,329.05 | 15.7787 | 1757.682 | 2254.288 | |
IWD | 208 | 104 ton | 22761 | 0 | 5919.327 | 3573.364 | |
ISD | 208 | 104 ton | 24.739 | 0 | 3.86 | 2.981 | |
ISDE | 208 | 104 ton | 134.737 | 0 | 2.92 | 10.727 | |
DID model | ILUE | 208 | – | 1 | 0.0001 | 0.534 | 0.294 |
DID | 208 | – | 1 | 0 | 0.173 | 0.379 | |
PCG | 208 | 104 per person | 15.244 | 0.390 | 3.034 | 2.635 | |
SIS | 208 | % | 60.45 | 15.71 | 42.707 | 10.048 | |
FDI | 208 | 108 USD | 57.8 | 0.113 | 5.456 | 8.694 | |
GDP | 208 | 108 CNY | 11,003.41 | 81.909 | 1368.86 | 1551.484 | |
POP | 208 | 104 persons | 830 | 157.29 | 518.15 | 171.194 | |
GOV | 208 | % | 0.019 | 1.495 | 0.158 | 0.163 | |
Market | 208 | % | 1 | 0.01 | 0.732 | 0.348 |
City | 2003 | 2006 | 2007 | 2012 | 2018 |
---|---|---|---|---|---|
Changsha | 0.2146 | 0.3847 | 1.0000 | 1.0000 | 1.0000 |
Zhuzhou | 0.3305 | 0.2085 | 0.2737 | 0.6490 | 0.2092 |
Xiangtan | 0.2012 | 0.1904 | 0.2243 | 0.5237 | 0.2382 |
Hengyang | 0.2304 | 0.2001 | 0.3748 | 1.0000 | 0.0684 |
Shaoyang | 1.0000 | 0.3109 | 0.4095 | 0.5310 | 0.1309 |
Yueyang | 0.2007 | 0.2918 | 0.4724 | 1.0000 | 0.5254 |
Changde | 0.2612 | 0.1960 | 0.2335 | 0.4283 | 0.0001 |
Zhangjiajie | 1.0000 | 1.0000 | 1.0000 | 1.0000 | 0.3163 |
Yiyang | 0.3846 | 0.3324 | 0.4413 | 0.4392 | 0.3824 |
Chenzhou | 0.2956 | 0.3013 | 0.3824 | 0.5909 | 0.1958 |
Yongzhou | 0.7392 | 0.3696 | 0.4401 | 0.3448 | 0.1248 |
Huaihua | 0.3305 | 0.3110 | 0.2705 | 0.4704 | 0.2942 |
Loudi | 0.2893 | 0.2262 | 0.3304 | 0.3838 | 0.4892 |
Fixed Effect | Random Effect | |
---|---|---|
DID | −0.333 *** (−5.50) | −0.210 *** (−3.57) |
SIS | 0.018 *** (5.25) | 0.001 (−0.20) |
FDI | −0.019 ** (−2.46) | −0.012 * (−1.77) |
PCG | −0.001 (0.09) | −0.051 *** (−3.15) |
GDP | 0.001 *** (3.87) | 0.001 *** (4.69) |
POP | 0.001 (0.37) | 0.001 ** (−2.36) |
GOV | −0.163 (−1.23) | 0.081 (0.58) |
Market | 0.002 (0.02) | 0.211 ** (2.59) |
_cons | −0.276 (−0.51) | 0.731 *** (5.92) |
R2 | 0.358 | 0.248 |
Fixed Effect | Random Effect | |
---|---|---|
DID | 0.246 ** (2.61) | 0.120 (1.52) |
SIS | 0.016 *** (4.43) | 0.001 (−0.12) |
FDI | −0.018 ** (−2.09) | −0.010 (−1.40) |
PCG | −0.006 (−0.36) | −0.051 *** (−3.06) |
GDP | 0.001 *** (3.71) | 0.001 *** (4.62) |
POP | 0.001 (0.07) | −0.001 *** (−3.00) |
GOV | −0.113 (−0.80) | 0.090 (0.62) |
Market | −0.199 ** (−2.32) | 0.059 (0.85) |
_cons | −0.160 (−0.27) | 0.709 *** (5.80) |
R2 | 0.281 | 0.228 |
cons | R2 | F | Obs. | ||
---|---|---|---|---|---|
1.89 *** (3.91) | −1.20 ** (−2.42) | 0.272 *** (3.89) | 19.802 | 48 |
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Pu, W.; Zhang, A.; Wen, L. Can China’s Resource-Saving and Environmentally Friendly Society Really Improve the Efficiency of Industrial Land Use? Land 2021, 10, 751. https://doi.org/10.3390/land10070751
Pu W, Zhang A, Wen L. Can China’s Resource-Saving and Environmentally Friendly Society Really Improve the Efficiency of Industrial Land Use? Land. 2021; 10(7):751. https://doi.org/10.3390/land10070751
Chicago/Turabian StylePu, Wenfang, Anlu Zhang, and Lanjiao Wen. 2021. "Can China’s Resource-Saving and Environmentally Friendly Society Really Improve the Efficiency of Industrial Land Use?" Land 10, no. 7: 751. https://doi.org/10.3390/land10070751
APA StylePu, W., Zhang, A., & Wen, L. (2021). Can China’s Resource-Saving and Environmentally Friendly Society Really Improve the Efficiency of Industrial Land Use? Land, 10(7), 751. https://doi.org/10.3390/land10070751