Spatial Differentiation and Driving Force Detection of Rural Settlements in the Yangtze River Delta Region
Abstract
:1. Introduction
2. Materials and Methods
2.1. Study Site
2.2. Data Source
2.3. Study Methods
2.3.1. Landscape Pattern Indexes
2.3.2. Average Nearest Neighbor Index Measures
2.3.3. Moran’s Index Measures
2.3.4. Spatial Hot Spot Detection Analysis
2.3.5. Geographical Detector Analysis
- 1.
- Optimal parameter selection
- 2.
- Geodetector method
- 3.
- Selection and treatment of driving factors
3. Results
3.1. Distribution Characteristics of Rural Settlements
3.1.1. Distribution Characteristics of the Location of Rural Settlements
3.1.2. Distribution Characteristics of the Scale of Rural Settlements
3.1.3. Distribution Characteristics of Morphology of Rural Settlements
3.2. Driving Factors of Rural Settlements’ Distribution
3.2.1. Optimal Discretization for Geographical Detectors
3.2.2. Single-Factor Detection
3.2.3. Double-Factor Detection
4. Discussion
4.1. Regional Differences in Rural Settlements Distribution in the Yangtze River Delta
4.2. Influence Mechanism of Rural Settlements Distribution in the Yangtze River Delta
4.3. Spatial Optimization of Rural Settlements and Rural Revitalization in the Yangtze River Delta Region
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Appendix A
References
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Index | Formula | Explanation |
---|---|---|
Number of patches (NP) | is the number of patches; NP ≥ 1. Equal to the total number of a certain type of plaque. | |
Patch density (PD) | PD > 0. Equal to the number of certain types of plaques per unit area, which can reflect the density of plaques. | |
Patch area (CA) | is the area of the i-th patch; CA ≥ 0. Equal to the total area of patches in the study area. | |
Mean patch area (MPS) | is the total number of patches. MPS > 0. It is equivalent to the average magnitude of a particular kind of patch, reflecting the degree of landscape fragmentation. | |
Landscape shape index (LSI) | is the total length of all patches in the landscape; LSI ≥ 1. The more complex a plaque is, the greater its value, as indicated by its irregular shape and higher boundary tortuosity. | |
Mean patch shape index (SHAPE_MN) | is the perimeter of the patch, is the area of the patch; SHAPE_MN ≥ 1. It reflects the complexity of plaque shape. |
Judgment Basis | Interaction |
---|---|
q(X1 ∩ X2) < Min(q(X1), q(X2)) | Nonlinear weakening |
Min(q(X1), q(X2)) < q(X1 ∩ X2) < Max (q(X1), q(X2)) | Single-factor nonlinear weakening |
q(X1 ∩ X2) > Max (q(X1), q(X2)) | Two-factor enhancement |
q(X1 ∩ X2) = q(X1) + q(X2) | Independence |
q(X1 ∩ X2) > q(X1) + q(X2) | Nonlinear enhancement |
Index | ANN | Moran’s I |
---|---|---|
value | 0.741707 | 1.299310 |
z | −193.149880 | 412.023551 |
p | 0.000000 | 0.000000 |
Index | G(d) | E(d) | Z(d) | P(d) |
---|---|---|---|---|
Parameter values | 0.000045 | 0.000001 | 401.337705 | 0.000000 |
Q Value | X1 | X2 | X3 | X4 | X5 | X6 | X7 | X8 | X9 | X10 |
---|---|---|---|---|---|---|---|---|---|---|
PD-Position | 0.4457 | 0.4292 | 0.3646 | 0.1354 | 0.1094 | 0.0902 | 0.2877 | 0.2195 | 0.0668 | 0.1112 |
CA-Scale | 0.4866 | 0.5171 | 0.3823 | 0.1687 | 0.2937 | 0.2109 | 0.2949 | 0.1280 | 0.2383 | 0.0983 |
LSI-Morphology | 0.5018 | 0.5198 | 0.2311 | 0.1584 | 0.2980 | 0.2159 | 0.3583 | 0.1218 | 0.2886 | 0.0883 |
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You, T.; Yan, S. Spatial Differentiation and Driving Force Detection of Rural Settlements in the Yangtze River Delta Region. Sustainability 2023, 15, 8774. https://doi.org/10.3390/su15118774
You T, Yan S. Spatial Differentiation and Driving Force Detection of Rural Settlements in the Yangtze River Delta Region. Sustainability. 2023; 15(11):8774. https://doi.org/10.3390/su15118774
Chicago/Turabian StyleYou, Ting, and Shuiyu Yan. 2023. "Spatial Differentiation and Driving Force Detection of Rural Settlements in the Yangtze River Delta Region" Sustainability 15, no. 11: 8774. https://doi.org/10.3390/su15118774
APA StyleYou, T., & Yan, S. (2023). Spatial Differentiation and Driving Force Detection of Rural Settlements in the Yangtze River Delta Region. Sustainability, 15(11), 8774. https://doi.org/10.3390/su15118774