Assessment of Ecological Benefits of Urban Green Spaces in Nanjing City, China, Based on the Entropy Method and the Coupling Harmonious Degree Model
Abstract
:1. Introduction
2. Study Area and Method
2.1. General Description of the Study Area
2.2. Research Methods
2.2.1. Standardized Processing of Indicators
2.2.2. Entropy Method
- Calculation of the proportion of the ith year’s index value under the jth index:
- Determination of the entropy value () for the index denoted by j:
- Computation of the coefficient of variation () for the index represented by j:
- Computation of the weight () assigned to the index denoted by j:
- Computation of the comprehensive evaluation score () through weighted summation:
- Classification criteria:
2.2.3. Coupling Harmonious Model
- As there are two subsystems, the calculation formula is:
- Grade classification criteria:
2.2.4. Robust Regression Analysis
2.2.5. Correlation Analysis
2.3. Data Sources
3. Development of an Evaluation Index System for Assessing the Ecological Benefits of UGSs
3.1. Principles for Selecting Indicators
3.2. Indicator Selection
3.3. Index System Construction and Weight Calculation
4. Results
4.1. Comprehensive Scoring Results of Ecological Benefits of UGSs in Nanjing City
4.2. Assessing Coupling and Harmony Degrees to Evaluate the Ecological Benefits of UGSs
4.3. Test of Ecological Benefit of Urban Green Space in Nanjing
4.3.1. Stability Test of Evaluation Results
4.3.2. Correlation Analysis between Various Indicators
5. Discussion
5.1. Analysis of Ecological Benefit of UGSs in Nanjing from 2011 to 2020
5.2. Assessing Coupling and Harmony Degrees to Evaluate the Ecological Benefits of UGSs
5.3. Shortcomings and Prospects
6. Conclusions
- From 2011 to 2020, the comprehensive evaluation score of ecological benefits of UGSs in Nanjing City showed a clear upward trend, with a significant increase in development speed after 2013, and the best level in 2020 during the 13th Five-Year Plan. However, the score of the natural environment subsystem is relatively low, based on the comparisons of the scores of each subsystem. This finding indicates that the ecological benefits of UGSs in Nanjing City are greatly constrained by the natural environment. Therefore, efforts should be made to construct UGSs in Nanjing City in the future. This city should further increase the natural environment management of UGSs.
- From 2011 to 2020, the coupling degree between the UGS natural environment and the socioeconomic subsystems in Nanjing City was between 0.9212 and 0.9993, indicating a high coupling level. This suggests that the two systems exhibit a strong mutual influence and interaction. The harmony degree, which was as low as 0.4904 in 2013, showed a more obvious fluctuating upward trend, which was on the verge of imbalance. After 2018, the harmony degree value was higher than 0.8 and remained at the high-quality harmonious stage. The improvement in the harmony degree is mainly attributed to the comprehensive evaluation score of ecological benefits from UGSs.
- With the improvement in the coupling harmonious degree among the subsystems of UGSs, the ecological benefit of UGSs will be significantly improved. According to the correlation analysis of various indicators, overall indicators such as urban green-coverage area, green coverage in built-up areas, and per capita park green-space area have a highly significant positive correlation with resource allocation and economic development indicators, and have a significant negative correlation with air pollutant indicators. The quality of the ecological environment is indicative of the regional level of social and economic development and can influence pollutant emissions.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
- Wang, Y.C.; Shen, J.K.; Peng, Z.W.; Xiang, W. The optimization of green infrastructure ecosystem services adapted to urban growth. Chin. Landsc. Archit. 2018, 4, 45–49. [Google Scholar]
- Zhao, H.X.; Fan, J.D.; Luo, X.L.; Zhu, T.Y.; Meng, F.; Gu, B.J. Changes of green infrastructure pattern and its driving factors: Taking Nanjing as an example. Acta Ecol. Sin. 2022, 4, 7597–7611. [Google Scholar]
- Tian, Z.H.; Tian, Y.F. Are environmental conflicts the byproduct of economic growth ? Evidence from provincial panel data of 1998–2013 in China. J. Financ. Econ. 2017, 4, 98–112. [Google Scholar]
- Xu, H. Green space planning and protection in Japan. Urban Environ. Des. 2008, 4, 68–71. [Google Scholar]
- Şorcaru, I.A. The evolution of urban green areas in Romania during 2002–2013. Acta Univ. Danub. Oeconomica 2015, 4, 134–143. [Google Scholar]
- CJJ/T 85-2017; Ministry of Housing and Urban-Rural Development, PRC. Classification Standard of Urban Green Space. China Architecture and Building Press: Beijing, China, 2017. Available online: https://www.mohurd.gov.cn/gongkai/zhengce/zhengcefilelib/201806/20180626_236545.html (accessed on 16 January 2023).
- Liu, Z.L.; Hu, L.L.; Yan, B.Q.; Zhang, P.Q. Ecological benefit evaluation and influencing factors analysis of the Protected Areas in Beijing. Acta Ecol. Sin. 2022, 42, 10060–10071. [Google Scholar]
- Liu, Y.H.; Guo, J.P. The Research of NDVI-based Urban Green Space Landscape Pattern and Thermal Environment. Prog. Geogr. 2009, 4, 798–804. [Google Scholar]
- Wu, F.; Li, S.H.; Liu, J.M. The effects of greening, none-greening square and lawn on temperature, humidity and human comfort. Acta Ecol. Sin. 2007, 27, 2964–2971. [Google Scholar]
- Zhou, Z.X.; Shao, T.Y.; Wang, P.C.; Gao, C.; Xu, Y.R. The Spatial Structures and the Dust Retention Effects of Greenland Types in the Workshop District of Wuhan Iron and Steel Company. Acta Ecol. Sin. 2002, 4, 2036–2040. [Google Scholar]
- Jim, C.Y.; Chen, S.S. Assessing natural and cultural determinants of urban forest quality in Nanjing (China). Phys. Geogr. 2008, 4, 455–473. [Google Scholar] [CrossRef]
- Wu, J.G. Urban sustainability: An inevitable goal of landscape research. Landsc. Ecol. 2010, 4, 1–4. [Google Scholar]
- Wang, X.K.; Yang, N.; Wu, F.; Ren, Y.F.; Wang, S.Y.; Bo, G.M.; Jiang, G.M.; Wang, Y.K.; Sun, Y.J.; Zhang, L.; et al. Ecological benefit its evaluation: I. Ecological benefit and its characteristics. Acta Ecol. Sin. 2019, 4, 1–9. [Google Scholar]
- Luo, X.Y.; Huang, X.Y.; Liang, R.; Liang, Z.H.; Zhang, S.Y. Ecological benefits evaluation on different landscape plant configuration patterns in the iron and steel industrial estate—Take Shaosteel as an example. Chin. Agric. Sci. Bull. 2014, 4, 238–244. [Google Scholar]
- Zhao, Z.G.; Han, C.Y.; Wang, K.H.; Ni, H. Ecological benefit analysis of 12 common green plants in southern cities in spring and autumn. Jiangsu Agric. Sci. 2015, 4, 209–212. [Google Scholar]
- Liu, Y.; Lin, W.; Guo, J.; Wei, Q.; Shamseldin, A.Y. The influence of morphological characteristics of green patch on its surrounding thermal environment. Ecol. Eng. 2019, 4, 105594. [Google Scholar] [CrossRef]
- Mitchell, M.G.E.; Wu, D.; Johansen, K.; Maron, M.; McAlpine, C.; Rhodes, J.R. Landscape structure influences urban vegetation vertical structure. J. Appl. Ecol. 2016, 4, 1477–1488. [Google Scholar] [CrossRef]
- Wang, W.; Lin, Z.; Zhang, L.; Yu, T.; Ciren, P.; Zhu, Y. Building visual green index: A measure of visual green spaces for urban building. Urban For. Urban Green. 2018, 4, 335–341. [Google Scholar] [CrossRef]
- Zhao, X.; Li, F.; Yan, Y.; Zhang, Q. Biodiversity in urban green space: A bibliometric review on the current research field and its prospects. Int. J. Environ. Res. Public Health 2022, 4, 12544. [Google Scholar]
- Duan, Y.B.; Lei, Y.K.; Wu, B.J.; Peng, D.D.; Tian, G.X. Evaluation and dynamic study on the ecological service value for urban green space system in Zhengzhou. Ecol. Sci. 2016, 4, 81–88. [Google Scholar]
- Xiong, J.X.; Qi, H.J.; Wang, Q.R.; Wang, Q.R.; Wang, S.H.; Zuo, W.T.; Sun, Y. Assessment of ecological benefit of street trees in urban community based on i-Tree model. J. Nanjing For. Univ. (Nat. Sci. Ed.) 2019, 4, 128–136. [Google Scholar]
- Tian, Y.F.; Zhou, H.H. Comprehensive evaluation of urban ecological environment quality in Shanghai. Ecol. Econ. 2021, 4, 185–192. [Google Scholar]
- Gary, W. A study of CTLA formula methods. J. Arboric. 2001, 4, 289–297. [Google Scholar]
- Helliwell, D.R. Amenity valuation of tree valuation. Aboricult. For. 2007, 4, 1–11. [Google Scholar]
- Gary, W. Comparing formula methods of tree appraisal. J. Aboricult. 2002, 4, 11–18. [Google Scholar]
- Zhang, L.P.; Wu, Y.B.; Zheng, Z.H.; Yang, X.J.; Gao, D.P.; Tao, J.C. Ecological benefits evaluation of forests in Suzhou city based on CITYgreen model. J. Nanjing For. Univ. (Nat. Sci. Ed.) 2012, 4, 59–62. [Google Scholar]
- Liu, L. Ecological Benefit Analysis of Urban Green Space Based on i-Tree Eco Model; North China University of Water Resources and Electric Power: Zhengzhou, China, 2022. [Google Scholar]
- Wang, K.P.; Zhang, K.P.; Liu, X.H. Modeled particulate matters removal by urban green lands in Beijing. Environ. Sci. Technol. 2020, 4, 121–129. [Google Scholar]
- Rapport, D.J.; Friend, A.M. Towards a Comprehensive Framework for Environmental Statistics: A Stress-Response Approach; Statistics Canada Catalogue: Ottawa, ON, Canada, 1979. [Google Scholar]
- Li, S.; Qiu, W.; Zhao, Q.L. Applying analytical hierarchy process to assess eco-environment quality of Heilongjiang province. Environ. Sci. 2006, 4, 1031–1034. [Google Scholar]
- Xu, C.; Tang, T.; Jia, H.; Xu, M.; Xu, T.; Liu, Z.; Long, Y.; Zhang, R. Benefits of coupled green and grey infrastructure systems: Evidence based on analytic hierarchy process and life cycle costing. Resour. Conserv. Recycl. 2019, 151, 104478. [Google Scholar] [CrossRef]
- Gao, X.S.; Huang, R.; Li, J.; Wang, C.; Lan, T.; Li, Q.; Deng, O.; Tao, Q.; Zeng, M. Temperature induces soil organic carbon mineralization in urban park green spaces, Chengdu, southwestern China: Effects of planting years and vegetation types. Urban For. Urban Green. 2020, 4, 126761. [Google Scholar] [CrossRef]
- Yun, H.F.; Zhang, Y.; Xu, W.B.; Meng, W.Q.; Feng, J.F. Negative impact assessment of urban green space ecological environment based on life cycle assessment. Chin. J. Ecol. 2023, 4, 493–503. [Google Scholar]
- Central Government of the People’s Republic of China. Opinions on Accelerating the Construction of Ecological Civilization. Available online: https://www.gov.cn/xinwen/2015-05/05/content_2857363.htm (accessed on 6 May 2015).
- Jia, H.F.; Shao, L.; Luo, S. Comprehensive Evaluation of Ecological Civilization in Qinghai Province Based on Entropy Method and Coupling Coordination Degree Model. Ecol. Econ. 2020, 4, 215–220. [Google Scholar]
- Liu, S.; Ma, J.Z.; Zong, C.; Rong, K. Seemingly Unrelated Forest Ecological Benefit Model and Its Application. J. Northeast For. Univ. 2021, 4, 66–70+137. [Google Scholar]
- Lu, S.H.; Zhu, C.L.; Zhou, J.X.; Tian, S.C.; Wang, Y.R.; Chang, J. Evaluation on ecological benefit of land remediation from the perspective of ecological and landscape. Res. Soil Water Conserv. 2020, 4, 311–317. [Google Scholar]
- Bildirici, M.; Ersin, Ö.Ö. Economic growth and CO2 emissions: An investigation with smooth transition autoregressive distributed lag models for the 1800–2014 period in the USA. Environ. Sci. Pollut. Res. 2017, 4, 200–219. [Google Scholar]
- Shen, C.; Chang, H.Y.; Lin, S.P. Study on the relationship between vegetation diversity and ecological benefit of different types of green land in Fuzhou City. J. Shandong Agric. Univ. ( Nat. Sci. Ed.) 2018, 4, 212–218. [Google Scholar]
- Zhou, B.N.; Lu, J.G.; Hua, Z.Z. Study on ecological service benefits of urban greenway based on i-Tree model. Acta Agric. Zhejiangensis 2020, 4, 2201–2210. [Google Scholar]
- Fan, Y.P.; Fang, C.L. Eco-city and man-land relationship. Acta Ecol. Sin. 2022, 42, 4313–4323. [Google Scholar]
- Nanjing Municipal People’s Congress. A Report on the State of the Environment and the Achievement of Environmental Protection Targets by 2020. Available online: http://www.njrd.gov.cn/hyzl_66742/cwhhy/njsdsljrmdbdhcwwyhdeswchy_69374/202109/t20210922_3138283.html (accessed on 22 September 2021).
- Guo, Y.J. Comprehensive Evaluation Theory, Method and Extensions; Science Press: Beijing, China, 2012. [Google Scholar]
- Zhang, Y.F.; Zhu, H.Y. Empirical research on coupling coordination of cultural performance and tourist flow in southwest china. Econ. Geogr. 2014, 4, 182–187. [Google Scholar]
- Wang, F.X.; Mao, A.H.; Li, H.L.; Jia, M.L. Quality measurement and regional difference of urbanization in Shandong province based on the entropy method. Sci. Geogr. Sin. 2013, 4, 1323–1329. [Google Scholar]
- Ma, Y.C.; Sun, X.H.; Ma, B. Research on the coupling and coordination of public cultural services and high-quality economic development in the Beijing-Tianjin-Hebei urban agglomeration. Econ. Manag. 2023, 1–21. Available online: http://kns.cnki.net/kcms/detail/13.1032.F.20230530.1740.002.html (accessed on 24 June 2023).
- Chai, J.; Su, X.H.; Ma, Y.; Liang, K.D. Research on coupling coordination of regional economy and ecological environment from perspective of high-quality development: A case study of Shanxi Province and its municipalities. Acta Agric. Jiangxi 2022, 4, 187–192. [Google Scholar]
- Tian, M.Y.; Ye, Y.P. Empirical testing of the coupling and coordinated development relationship between ecological urbanization and green finance. Stat. Decis. 2023, 39, 157–161. [Google Scholar]
- Zhou, Q.; Liu, D.L. Study on the coordinated development of urban resilience and urbanization level in the urban agglomeration of Yangtze River Delta. Res. Soil Water Conserv. 2020, 4, 286–292. [Google Scholar]
- Yang, S.G.; He, S.T. The impact of digital economy on sustainable development and its coupling relationship: An empirical analysis based on the urban agglomeration in the middle reaches of the Yangtze River. East China Econ. Manag. 2023, 4, 73–84. [Google Scholar]
- Wang, S.J.; Cui, Z.T.; Lin, J.J.; Xie, J.Y.; Su, K. The coupling relationship between urbanization and ecological resilience in the Pearl River Delta. J. Geogr. Sci. 2022, 4, 44–64. [Google Scholar] [CrossRef]
- Hong, T.; Wang, B.; Li, L.L. The coupling relationship between urban resilience level and urbanization level in Hefei. Math. Probl. Eng. 2022, 2022, 7339005. [Google Scholar] [CrossRef]
- Dong, L.; Zhang, L. Spatial coupling coordination evaluation of mixed land use and urban vitality in major cities in China. Int. J. Environ. Res. Public Health 2022, 4, 15586. [Google Scholar] [CrossRef]
- Zhang, Y.Z.; Han, Y.F.; Zhang, S. Coupling coordination measure and interactive response between green finance and ecological civilization in Shandong Province. Ecol. Econ. 2023, 4, 221–229. [Google Scholar]
- Ye, S.; Ge, Y.; Xu, S.; Ma, X. Measurement and prediction of coupling coordination level of economic development, social stability and ecological environment in Qinghai—Thoughts on sustainable societal safety. Sustainability 2022, 4, 10515. [Google Scholar] [CrossRef]
- Tan, L. Research on the Construction of Evaluation Index System of Urban Green Space Landscape Pattern under the Constraint of PM2.5; Southwest University: Chongqing, China, 2020. [Google Scholar]
- Hou, S.J.; Zhou, Y. Study on the Construction of regional eco-economic benefit evaluation index system. China Econ. Trade Her. 2016, 4, 66–68. [Google Scholar]
- Chen, Y.L. The evaluation of regional ecological and economic development is studied based on entropy method. J. Chongqing Univ. Technol. (Nat. Sci.) 2020, 4, 232–237. [Google Scholar]
- Shen, Y.W.; Zhong, Q.Y.; He, Y. Study on evaluation index system of sustainable development of island eco-economic system. Territ. Nat. Resour. Study 2020, 4, 8–11. [Google Scholar]
- Kong, L.; Liu, W.G.; Zhang, L.; Wang, H.L. County level construction of ecological civilization construction evaluation index system—Taking Puer City for example. For. Econ. 2016, 4, 30–33. [Google Scholar]
- Gai, M.Y. Study on the index system of high quality growth of green economy in Guizhou. Rural Econ. Sci. 2020, 4, 206–207. [Google Scholar]
- Li, H.L.; Yu, L. Chinese eco-city indictor construction. Urban Dev. Stud. 2011, 4, 81–86. [Google Scholar]
- Ma, S.J.; Wang, R.S. The social-economic-natural complex ecosystem. Acta Ecol. Sin. 1984, 1, 1–9. [Google Scholar]
- Ersin, Ö.Ö. The nonlinear relationship of environmental degradation and income for the 1870–2011 period in selected developed countries: The dynamic panel-star approach. Procedia Econ. Financ. 2016, 4, 318–339. [Google Scholar] [CrossRef] [Green Version]
Grade | Comprehensive Score of Ecological Benefits | Graded Evaluation |
---|---|---|
I | 0.80–1.00 | Excellent |
II | 0.60–0.80 | Good |
III | 0.40–0.60 | Average |
IV | 0.20–0.40 | Poor |
V | <0.20 | Very poor |
Coupling Degree | Coupling Stage | Reference | Harmony Degree | Harmony Level | Reference |
---|---|---|---|---|---|
0 ≤ C ≤ 0.30 | Low-level coupling stage | [48] | 0 < D ≤ 0.30 | Decline and maladjustment type | [49] |
0.30 < C ≤ 0.50 | Antagonistic stage | [50] | 0.30 < D ≤ 0.50 | Imminent maladjustment type | [51] |
0.50 < C ≤ 0.80 | Running-in stage | [52] | 0.50 < D ≤ 0.80 | Basic harmony type | [53] |
0.80 < C ≤ 10 | High-level coupling stage | [54] | 0.80 < D ≤10 | High-quality harmony type | [55] |
System | Primary Index | Secondary Index | Unit | Attribute | Weight |
---|---|---|---|---|---|
Natural environment subsystem A1 | Air quality B1 | Number of days with good or better air quality C1 | Days | + | 0.0480 |
Annual mean sulfur dioxide concentration C2 | mg per m3 | − | 0.0532 | ||
Annual mean nitrogen dioxide concentration C3 | mg per m3 | − | 0.0580 | ||
Annual mean inhalable particulate matter concentration C4 | mg per m3 | − | 0.0367 | ||
Water environment quality B2 | Total water resources C5 | Billion cubic meters | + | 0.0378 | |
Annual precipitation C6 | Millimeters | + | 0.0525 | ||
Noise environment quality B3 | Average value noise in the region C7 | Decibels | − | 0.0229 | |
Biological environment quality B4 | Green coverage area C8 | Hectares | + | 0.0408 | |
Public green space area per capita C9 | Square meters | + | 0.0470 | ||
Green coverage rate of built-up areas C10 | % | + | 0.0642 | ||
Social and economic subsystem A2 | Population factors B5 | Urban population density C11 | People per square kilometer | + | 0.0721 |
Population growth rate C12 | % | − | 0.0415 | ||
Pollution control B6 | Comprehensive utilization rate of industrial solid waste C13 | % | + | 0.0224 | |
Sewage treatment rate C14 | % | + | 0.0506 | ||
Harmless treatment rate of household garbage and excrement C15 | % | + | 0.0397 | ||
Resource allocation B7 | Number of personal cars owned per 10,000 people C16 | 10,000 vehicles | − | 0.1202 | |
Per capita road area C17 | Square meters | + | 0.0440 | ||
Economic development B8 | Per capita GDP C18 | CNY | + | 0.0447 | |
Proportion of secondary industry in GDP C19 | % | − | 0.0521 | ||
Proportion of tertiary industry in GDP C20 | % | + | 0.0515 |
Year | Classification Index | Comprehensive Score | Ranking | Status Description | |
---|---|---|---|---|---|
Natural Environment | Social Economy | ||||
2011 | 0.1673 | 0.2289 | 0.3963 | 7 | Poor |
2012 | 0.1093 | 0.1828 | 0.2921 | 9 | Poor |
2013 | 0.0735 | 0.1954 | 0.2689 | 10 | Poor |
2014 | 0.1347 | 0.2129 | 0.3476 | 8 | Poor |
2015 | 0.2550 | 0.2607 | 0.5157 | 6 | Average |
2016 | 0.3302 | 0.2390 | 0.5692 | 5 | Average |
2017 | 0.3091 | 0.2725 | 0.5816 | 4 | Average |
2018 | 0.3208 | 0.3236 | 0.6444 | 3 | Good |
2019 | 0.3066 | 0.3757 | 0.6823 | 2 | Good |
2020 | 0.3854 | 0.4178 | 0.8032 | 1 | Excellent |
Year | Coupling Degree | Coupling Stage | Harmony Degree | Harmony Level |
---|---|---|---|---|
2011 | 0.9969 | High-level coupling stage | 0.6266 | Basic harmony type |
2012 | 0.9842 | High-level coupling stage | 0.5325 | Basic harmony type |
2013 | 0.9212 | High-level coupling stage | 0.4904 | Imminent imbalance type |
2014 | 0.9887 | High-level coupling stage | 0.5829 | Basic harmony type |
2015 | 0.9978 | High-level coupling stage | 0.7192 | Basic harmony type |
2016 | 0.9719 | High-level coupling stage | 0.7507 | Basic harmony type |
2017 | 0.9901 | High-level coupling stage | 0.7630 | Basic harmony type |
2018 | 0.9973 | High-level coupling stage | 0.8040 | High-quality harmony type |
2019 | 0.9997 | High-level coupling stage | 0.8252 | High-quality harmony type |
2020 | 0.9993 | High-level coupling stage | 0.8972 | High-quality harmony type |
Variable | Regression Coefficient | Standard Error | t | p | 95% CI | Adjusted R2 |
---|---|---|---|---|---|---|
X: Year Y: Comprehensive scoring of ecological benefit of UGSs | 0.059 | 0.007 | 8.202 | 0.000 ** | 0.045~0.073 | 0.834 |
X: Year Y: Coupling harmonious degree among the subsystems | 0.042 | 0.006 | 7.647 | 0.000 ** | 0.032~0.053 | 0.788 |
X: Coupling harmonious degree among the subsystems Y: Comprehensive scoring of ecological benefit of UGSs | 1.326 | 0.043 | 30.698 | 0.000 ** | 1.241~1.411 | 0.986 |
Disclaimer/Publisher’s Note: The statements, opinions and data contained in all publications are solely those of the individual author(s) and contributor(s) and not of MDPI and/or the editor(s). MDPI and/or the editor(s) disclaim responsibility for any injury to people or property resulting from any ideas, methods, instructions or products referred to in the content. |
© 2023 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
Share and Cite
Ji, Y.; Sheng, Q.; Zhu, Z. Assessment of Ecological Benefits of Urban Green Spaces in Nanjing City, China, Based on the Entropy Method and the Coupling Harmonious Degree Model. Sustainability 2023, 15, 10516. https://doi.org/10.3390/su151310516
Ji Y, Sheng Q, Zhu Z. Assessment of Ecological Benefits of Urban Green Spaces in Nanjing City, China, Based on the Entropy Method and the Coupling Harmonious Degree Model. Sustainability. 2023; 15(13):10516. https://doi.org/10.3390/su151310516
Chicago/Turabian StyleJi, Yaou, Qianqian Sheng, and Zunling Zhu. 2023. "Assessment of Ecological Benefits of Urban Green Spaces in Nanjing City, China, Based on the Entropy Method and the Coupling Harmonious Degree Model" Sustainability 15, no. 13: 10516. https://doi.org/10.3390/su151310516
APA StyleJi, Y., Sheng, Q., & Zhu, Z. (2023). Assessment of Ecological Benefits of Urban Green Spaces in Nanjing City, China, Based on the Entropy Method and the Coupling Harmonious Degree Model. Sustainability, 15(13), 10516. https://doi.org/10.3390/su151310516