Dynamic Evolution and the Mechanism behind the Coupling Coordination Relationship between Industrial Integration and Urban Land-Use Efficiency: A Case Study of the Yangtze River Economic Zone in China
Abstract
:1. Introduction
2. The Coupling Coordination Mechanism of Industrial Integration and ULUE
2.1. The Effect of Industrial Integration on ULUE
2.1.1. Industrial Specialization Agglomeration
2.1.2. Industrial Diversified Agglomeration
2.1.3. Factors of Flow Production
2.1.4. Government Behaviour
2.2. The Influence of ULUE on Industrial Integration
3. Overview of the Study Area and Data Sources
4. Research Design
4.1. Construction of the Index System
4.1.1. The Industry Integration Index System
4.1.2. The Urban Land-Use Efficiency (ULUE) Index System
4.2. Selection of Research Methods
4.2.1. Support Vector Regression for Measuring Industrial Integration
4.2.2. The Use of the Super-Efficiency SBM Model for Measuring ULUE
4.2.3. The Coupling Coordination Degree Model for Evaluating the Coupling Coordination Level of Industrial Integration and ULUE
4.2.4. The Nonparametric Kernel Density Estimation for Reflecting Dynamic Evolution Characteristics of the Coupling Coordination Degree
4.2.5. The Geographical Detector for Identifying Coupling Coordination Mechanism
5. Empirical Analysis
5.1. Spatial and Temporal Characteristics of Industrial Integration and ULUE
5.2. Analysis of the Temporal Evolution Characteristics of Coupling Coordination between Industrial Integration and ULUE
5.2.1. Analysis of the Temporal Trend Characteristics
5.2.2. Analysis of the Temporal Evolution Characteristics
5.3. The Spatial Characteristics of Coupling Coordination between Industrial Integration and ULUE
5.4. The Coupling Interaction Process between Industrial Integration and ULUE
6. Discussion and Conclusions
6.1. Construct a Regional Coordinated Development Mechanism and Form the Linkage Development Pattern of Industrial Dislocation and Complementary Advantages among Cities
6.2. Actively Exploring a City–Industry Integration Mechanism to Speed up the Development of Industrial Integration
6.3. Formulating Reasonable Industrial Development and Land-Use Control Strategies Based on the Coupling Coordination Performance of the Industrial Integration–ULUE System
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Criterion Layer | Indicator Layer | Calculation Basis |
---|---|---|
space layout | industrial expansion | number of industrial enterprises above designated size |
industrial cluster | ||
industrial division | ||
industrial upgrading | ||
factor flow | labor flow | passenger traffic/total population |
capital flow | amount of foreign capital utilized | |
Information flow | the total volume of post and telecommunications business | |
technology flow | number of science and technology service personnel |
Goal Layer | Criterion Layer | Indicators |
---|---|---|
Inputs | land | built-up area |
capital | fixed asset investment per unit of land | |
labor force | tertiary industry employees per unit of land | |
energy | power consumption per unit of GDP | |
Expected outputs | economic benefit | total GDP |
social benefit | social development index | |
environmental benefit | green area coverage of the built-up area | |
Undesired outputs | emission-reduction | emission of three types of wastes |
low carbon | CO2 emission |
Level | Extreme Disorder Recession | Severe Disorder Recession | Moderate Disorder Recession | Mild Disorder Recession | Endangered Disorder Recession |
---|---|---|---|---|---|
interval | (0, 0.1] | (0.1, 0.2] | (0.2, 0.3] | (0.3, 0.4] | (0.4, 0.5] |
level | reluctantly coordinated integration | primary coordinated development | intermediate coordinated development | good coordinated development | high-quality coordinated development |
interval | (0.5, 0.6] | (0.6, 0.7] | (0.7, 0.8] | (0.8, 0.9] | (0.9, 1.0] |
Year | Industrial Integration | ULUE | Coupling Degree | Coupling Coordination Degree |
---|---|---|---|---|
2005 | 0.2244 | 0.6090 | 0.4363 | 0.4201 |
2006 | 0.2436 | 0.6144 | 0.4421 | 0.4290 |
2007 | 0.2632 | 0.6162 | 0.4499 | 0.4389 |
2008 | 0.2921 | 0.5969 | 0.4588 | 0.4460 |
2009 | 0.3423 | 0.5605 | 0.4744 | 0.4578 |
2010 | 0.3703 | 0.5301 | 0.4826 | 0.4608 |
2011 | 0.3598 | 0.5632 | 0.4799 | 0.4651 |
2012 | 0.4156 | 0.5759 | 0.4843 | 0.4840 |
2013 | 0.4625 | 0.5847 | 0.4840 | 0.4978 |
2014 | 0.4461 | 0.5892 | 0.4837 | 0.4931 |
2015 | 0.4832 | 0.5980 | 0.4847 | 0.5047 |
2016 | 0.5061 | 0.6315 | 0.4824 | 0.5180 |
2017 | 0.4895 | 0.7227 | 0.4788 | 0.5307 |
2018 | 0.5078 | 0.7855 | 0.4790 | 0.5495 |
2019 | 0.5292 | 0.7692 | 0.4818 | 0.5521 |
Detection Factor | Industrial Expansion | Industrial Cluster | Industrial Division | Industrial Upgrading | Labor Flow | Capital Flow | Information Flow | Technology Flow |
---|---|---|---|---|---|---|---|---|
industrial expansion | 0.2256 | |||||||
industrial cluster | 0.4508 | 0.1282 | ||||||
industrial division | 0.2862 | 0.4245 | 0.0941 | |||||
industrial upgrading | 0.3105 | 0.3030 | 0.2441 | 0.0997 | ||||
labor flow | 0.2914 | 0.3455 | 0.3073 | 0.2489 | 0.1308 | |||
capital flow | 0.2876 | 0.3889 | 0.2587 | 0.2825 | 0.2864 | 0.2010 | ||
information flow | 0.2504 | 0.2842 | 0.2231 | 0.1536 | 0.2216 | 0.2149 | 0.0636 | |
technology flow | 0.3016 | 0.3079 | 0.2879 | 0.2662 | 0.2789 | 0.2526 | 0.2377 | 0.1804 |
Detection Factor | Land Input | Capital Input | Labor Input | Electricity Consumption | Economic Output | Social Output | Ecological Output | Pollutant Emission | Carbon Emissions |
---|---|---|---|---|---|---|---|---|---|
land input | 0.0300 | ||||||||
capital input | 0.1293 | 0.0568 | |||||||
labor input | 0.1168 | 0.2756 | 0.0401 | ||||||
electricity consumption | 0.2200 | 0.3690 | 0.3071 | 0.2113 | |||||
economic output | 0.0839 | 0.2318 | 0.2524 | 0.3251 | 0.0350 | ||||
social output | 0.1014 | 0.2439 | 0.2675 | 0.3843 | 0.2308 | 0.0393 | |||
ecological output | 0.3588 | 0.4351 | 0.3824 | 0.5297 | 0.3606 | 0.4526 | 0.2197 | ||
pollutant emission | 0.1555 | 0.2494 | 0.2992 | 0.3684 | 0.2087 | 0.3798 | 0.3527 | 0.1182 | |
carbon emissions | 0.0522 | 0.1786 | 0.2094 | 0.2331 | 0.0868 | 0.2752 | 0.3406 | 0.1615 | 0.0387 |
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Ge, K.; Zou, S.; Lu, X.; Ke, S.; Chen, D.; Liu, Z. Dynamic Evolution and the Mechanism behind the Coupling Coordination Relationship between Industrial Integration and Urban Land-Use Efficiency: A Case Study of the Yangtze River Economic Zone in China. Land 2022, 11, 261. https://doi.org/10.3390/land11020261
Ge K, Zou S, Lu X, Ke S, Chen D, Liu Z. Dynamic Evolution and the Mechanism behind the Coupling Coordination Relationship between Industrial Integration and Urban Land-Use Efficiency: A Case Study of the Yangtze River Economic Zone in China. Land. 2022; 11(2):261. https://doi.org/10.3390/land11020261
Chicago/Turabian StyleGe, Kun, Shan Zou, Xinhai Lu, Shangan Ke, Danling Chen, and Zhangsheng Liu. 2022. "Dynamic Evolution and the Mechanism behind the Coupling Coordination Relationship between Industrial Integration and Urban Land-Use Efficiency: A Case Study of the Yangtze River Economic Zone in China" Land 11, no. 2: 261. https://doi.org/10.3390/land11020261
APA StyleGe, K., Zou, S., Lu, X., Ke, S., Chen, D., & Liu, Z. (2022). Dynamic Evolution and the Mechanism behind the Coupling Coordination Relationship between Industrial Integration and Urban Land-Use Efficiency: A Case Study of the Yangtze River Economic Zone in China. Land, 11(2), 261. https://doi.org/10.3390/land11020261