Study on Temporal and Spatial Variation Characteristics and Influencing Factors of Land Use Efficiency in Xi’an, China
Abstract
:1. Introduction
2. Research Methods and Data Sources
2.1. Study Area
2.2. Research Methods
2.2.1. Super-Efficiency DEA Model Analysis Method
2.2.2. Malmquist Index Analysis Method
2.3. Data Sources
3. Analysis of Temporal and Spatial Changes and Influencing Factors of Land Use Efficiency from 2007 to 2017
3.1. Temporal and Spatial Changes of Land Use Efficiency from 2007 to 2017
3.1.1. Characteristics of Land Use Efficiency Attributes
3.1.2. Time-Varying Characteristics of Land Use Efficiency
3.1.3. Spatial Evolution Characteristics of Land Use Efficiency
3.2. Factors Affecting the Temporal and Spatial Changes of Land Use Efficiency from 2007 to 2017
3.2.1. Factors Affecting Land Use Efficiency Change
3.2.2. Temporal and Spatial Trends of Land Use Efficiency Changes
4. Discussion and Conclusion
4.1. Discussion
4.2. Conclusion
Author Contributions
Funding
Conflicts of Interest
References
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Names | 2007 | 2008 | 2009 | 2010 | 2011 | 2012 | 2013 | 2014 | 2015 | 2016 | 2017 | Means |
---|---|---|---|---|---|---|---|---|---|---|---|---|
Xincheng | 1.068 | 1.107 | 1.060 | 0.961 | 0.909 | 0.908 | 1.100 | 1.160 | 0.853 | 0.850 | 0.741 | 0.974 |
Beilin | 1.476 | 1.695 | 1.725 | 1.655 | 1.626 | 1.530 | 1.559 | 1.553 | 1.817 | 1.769 | 1.842 | 1.659 |
Lianhu | 1.097 | 1.195 | 1.118 | 0.927 | 0.933 | 0.930 | 0.936 | 0.969 | 0.958 | 0.987 | 1.040 | 1.008 |
Baqiao | 0.743 | 0.792 | 0.854 | 0.812 | 0.733 | 0.813 | 0.782 | 0.649 | 0.575 | 0.497 | 1.117 | 0.761 |
Weiyang | 1.015 | 1.053 | 1.171 | 0.859 | 0.819 | 0.781 | 0.869 | 0.865 | 0.812 | 0.782 | 0.898 | 0.902 |
Yanta | 1.025 | 0.999 | 0.943 | 0.875 | 0.869 | 0.840 | 0.932 | 0.971 | 0.890 | 0.864 | 0.905 | 0.919 |
Yanliang | 0.962 | 0.776 | 0.681 | 0.659 | 0.932 | 0.682 | 0.720 | 0.720 | 0.618 | 0.623 | 0.636 | 0.728 |
Lintong | 1.313 | 1.123 | 0.998 | 1.080 | 1.207 | 1.038 | 0.924 | 0.791 | 0.325 | 0.485 | 0.427 | 0.883 |
Chang’an | 0.594 | 0.583 | 0.705 | 0.686 | 0.785 | 0.692 | 0.679 | 0.588 | 0.469 | 0.459 | 0.585 | 0.620 |
Lantian | 0.748 | 0.790 | 0.792 | 0.740 | 0.950 | 0.692 | 0.674 | 0.570 | 0.200 | 0.200 | 0.201 | 0.596 |
Zhouzhi | 0.608 | 0.605 | 0.610 | 0.569 | 1.317 | 0.632 | 0.610 | 0.517 | 0.182 | 0.201 | 0.243 | 0.554 |
Huyi | 0.839 | 0.811 | 0.796 | 0.708 | 1.001 | 0.732 | 0.875 | 0.839 | 0.296 | 0.363 | 0.293 | 0.687 |
Gaoling | 0.809 | 0.791 | 0.767 | 0.773 | 0.854 | 0.831 | 0.974 | 0.925 | 0.779 | 0.736 | 0.788 | 0.821 |
Means | 0.946 | 0.948 | 0.940 | 0.869 | 0.995 | 0.854 | 0.895 | 0.855 | 0.675 | 0.678 | 0.747 | 0.855 |
Effective ratios | 0.461 | 0.385 | 0.308 | 0.154 | 0.308 | 0.154 | 0.154 | 0.154 | 0.077 | 0.077 | 0.231 | 0.154 |
Grading of Land Use Efficiency | First Level | Second Level | Third Level | Fourth Level |
---|---|---|---|---|
Closeness value | [0–0.40) | [0.40–0.70) | [0.70–1.00) | [1.00– ] |
Utilization degree | Extensive | Low-intensive | Moderately intensive | Highly intensive |
Times | Technical Efficiency | Technological Progress | Pure Technical Efficiency | Scale Efficiency | Total Factor Productivity |
---|---|---|---|---|---|
2007–2008 | 0.987 | 1.106 | 1.016 | 0.971 | 1.091 |
2008–2009 | 1.002 | 1.044 | 1.017 | 0.985 | 1.047 |
2009–2010 | 0.948 | 1.062 | 0.986 | 0.961 | 1.007 |
2010–2011 | 1.125 | 1.357 | 1.023 | 1.100 | 1.528 |
2011–2012 | 0.889 | 0.871 | 0.975 | 0.911 | 0.774 |
2012–2013 | 1.040 | 0.977 | 1.002 | 1.038 | 1.016 |
2013–2014 | 0.937 | 1.056 | 0.973 | 0.964 | 0.990 |
2014–2015 | 0.680 | 1.586 | 0.961 | 0.707 | 1.079 |
2015–2016 | 1.035 | 1.026 | 0.952 | 1.088 | 1.062 |
2016–2017 | 1.075 | 1.036 | 1.072 | 1.003 | 1.114 |
Means | 0.964 | 1.097 | 0.997 | 0.966 | 1.057 |
Names | Technical Efficiency | Technological Progress | Pure Technical Efficiency | Scale Efficiency | Total Factor Productivity |
---|---|---|---|---|---|
Xincheng | 0.970 | 1.097 | 1.000 | 0.970 | 1.064 |
Beilin | 1.000 | 1.139 | 1.000 | 1.000 | 1.139 |
Lianhu | 1.000 | 1.128 | 1.000 | 1.000 | 1.128 |
Baqiao | 1.030 | 1.004 | 1.014 | 1.016 | 1.034 |
Weiyang | 0.989 | 1.157 | 0.990 | 0.999 | 1.144 |
Yanta | 0.990 | 1.177 | 1.000 | 0.990 | 1.165 |
Yanliang | 0.959 | 1.068 | 1.000 | 0.959 | 1.025 |
Lintong | 0.918 | 1.054 | 1.000 | 0.918 | 0.968 |
Chang’an | 0.998 | 1.031 | 1.000 | 0.998 | 1.030 |
Lantian | 0.877 | 1.087 | 0.948 | 0.925 | 0.953 |
Zhouzhi | 0.912 | 1.086 | 1.002 | 0.910 | 0.990 |
Huyi | 0.900 | 1.096 | 1.007 | 0.894 | 0.986 |
Gaoling | 0.997 | 1.152 | 1.003 | 0.994 | 1.149 |
Means | 0.964 | 1.097 | 0.997 | 0.966 | 1.057 |
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Huang, J.; Xue, D. Study on Temporal and Spatial Variation Characteristics and Influencing Factors of Land Use Efficiency in Xi’an, China. Sustainability 2019, 11, 6649. https://doi.org/10.3390/su11236649
Huang J, Xue D. Study on Temporal and Spatial Variation Characteristics and Influencing Factors of Land Use Efficiency in Xi’an, China. Sustainability. 2019; 11(23):6649. https://doi.org/10.3390/su11236649
Chicago/Turabian StyleHuang, Jing, and Dongqian Xue. 2019. "Study on Temporal and Spatial Variation Characteristics and Influencing Factors of Land Use Efficiency in Xi’an, China" Sustainability 11, no. 23: 6649. https://doi.org/10.3390/su11236649
APA StyleHuang, J., & Xue, D. (2019). Study on Temporal and Spatial Variation Characteristics and Influencing Factors of Land Use Efficiency in Xi’an, China. Sustainability, 11(23), 6649. https://doi.org/10.3390/su11236649