Regional Gaps, Spatial Distribution Patterns, and Evolutionary Trends of Marine New Quality Productivity in China
Abstract
:1. Introduction
2. Research Methodology and Data
2.1. Research Methodology
2.1.1. LWM Combination Empowerment Approach
2.1.2. Three-Dimensional Kernel Density Estimation
2.1.3. GINI, Theil, and MLD
2.1.4. Quadratic Assignment Procedure (QAP)
2.1.5. Standard Deviation Ellipse
2.1.6. Markov Chain Method
2.2. Data Sources
3. Comprehensive Evaluation of Marine New Quality Productivity in China
3.1. Index System for Evaluation of China’s Marine New Quality Productivity
3.2. Development of Marine New Quality Productivity in China
3.3. Spatial and Temporal Characteristics of China’s Marine New Quality Productivity
3.3.1. Classification System
3.3.2. Three-Dimensional Kernel Density Estimation
4. Regional Disparities in Marine New Quality Productivity in China
4.1. Regional Gap Analysis
4.2. Factors Influencing Regional Disparities in Marine New Quality Productivity in China
5. Spatial Distribution Pattern and Evolution of Marine New Quality Productivity in China
6. Dynamic Evolutionary Trends in Marine New Quality Productivity in China
7. Conclusions and Recommendations
7.1. Conclusions
7.2. Recommendations for Countermeasures
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Year | GINI | Theil | MLD |
---|---|---|---|
2006 | 0.206 | 0.071 | 0.082 |
2011 | 0.188 | 0.060 | 0.069 |
2016 | 0.220 | 0.082 | 0.088 |
2021 | 0.217 | 0.077 | 0.076 |
Variables | 2006 | 2011 | 2016 | 2021 | Mean |
---|---|---|---|---|---|
X1 | 0.211 (0.172) | 0.007 (0.374) | −0.123 (0.283) | −0.248 (0.303) | −0.172 (0.161) |
X2 | −0.105 (0.254) | 0.234 (0.101) | 0.035 (0.321) | 0.025 *** (0.000) | −0.094 (0.306) |
X3 | −0.062 (0.438) | 0.091 (0.223) | −0.147 (0.266) | −0.060 (0.579) | −0.007 (1.000) |
X4 | 0.333 ** (0.050) | 0.425 ** (0.045) | 0.381 * (0.097) | 0.513 * (0.077) | 0.525 ** (0.037) |
X5 | −0.018 (1.000) | −0.126 (0.222) | −0.046 (0.420) | 0.028 (0.313) | 0.117 (0.202) |
X6 | 0.000 (1.000) | −0.069 (0.311) | 0.000 *** (0.000) | 0.103 (0.592) | 0.000 (0.513) |
X7 | −0.161 (0.176) | −0.216 * (0.091) | −0.291 ** (0.027) | −0.340 *** (0.007) | −0.322 ** (0.019) |
R2 | 0.113 | 0.17 | 0.075 | 0.109 | 0.092 |
P | 0.021 | 0.005 | 0.028 | 0.031 | 0.024 |
observations | 110 | 110 | 110 | 110 | 110 |
Random numberof permutations | 10,000 | 10,000 | 10,000 | 10,000 | 10,000 |
Area | Year | Center of Gravity Coordinates | Direction | Travel Distance/ km | Angle of Rotation θ/° | Short Semi-Axis/km | Long Semi-Axis/km | Ellipse Area/ 10,000 km2 |
---|---|---|---|---|---|---|---|---|
China | 2006 | (117.33 °E, 31.25 °N) | - | - | 13.216 | 375.432 | 1190.929 | 140.436 |
2011 | (117.57 °E, 31.76 °N) | North by east | 62.794 | 12.528 | 373.155 | 1153.633 | 135.214 | |
2016 | (117.39 °E, 31.28 °N) | South by east | 57.290 | 12.764 | 358.867 | 1147.987 | 129.398 | |
2021 | (117.23 °E, 31.12 °N) | South by west | 24.712 | 13.639 | 373.250 | 1138.941 | 133.527 | |
Northern Maritime Economic Circle | 2006 | (118.59 °E, 38.74 °N) | - | - | 27.926 | 193.851 | 346.712 | 21.113 |
2011 | (118.69 °E, 38.77 °N) | North by east | 12.127 | 28.868 | 194.734 | 358.909 | 21.955 | |
2016 | (118.74 °E, 38.59 °N) | South by east | 20.595 | 26.574 | 191.208 | 366.490 | 22.013 | |
2021 | (118.59 °E, 38.58 °N) | South by west | 16.144 | 25.809 | 195.180 | 352.305 | 21.601 | |
Eastern Maritime Economic Circle | 2006 | (120.64 °E, 31.10 °N) | - | - | 164.374 | 110.612 | 217.637 | 7.562 |
2011 | (120.55 °E, 31.19 °N) | North by west | 13.892 | 162.014 | 109.802 | 226.754 | 7.821 | |
2016 | (120.46 °E, 31.16 °N) | South by west | 10.738 | 162.681 | 107.574 | 238.256 | 8.051 | |
2021 | (120.52 °E, 31.18 °N) | East by north | 7.528 | 162.308 | 109.326 | 230.200 | 7.906 | |
Southern Maritime Economic Circle | 2006 | (113.24 °E, 22.64 °N) | - | - | 39.280 | 206.683 | 618.306 | 40.140 |
2011 | (113.41 °E, 22.94 °N) | East by north | 38.838 | 41.318 | 215.160 | 604.994 | 40.888 | |
2016 | (113.69 °E, 23.22 °N) | North by east | 44.021 | 42.707 | 200.405 | 579.774 | 36.496 | |
2021 | (113.32 °E, 23.18 °N) | South by west | 41.384 | 44.716 | 223.150 | 546.139 | 38.282 |
t/t + 1 | Lower Level | Low Level | High Level | Higher Level |
---|---|---|---|---|
Lower level | 0.773 | 0.205 | 0.023 | 0.000 |
Low level | 0.049 | 0.707 | 0.220 | 0.024 |
High level | 0.024 | 0.048 | 0.714 | 0.214 |
Higher level | 0.000 | 0.000 | 0.105 | 0.895 |
State | Lower Level | Low Level | High Level | Higher Level |
---|---|---|---|---|
Initial state | 0.727 | 0.273 | 0.000 | 0.000 |
Steady state | 0.046 | 0.078 | 0.282 | 0.593 |
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Wu, R.; Wang, W.; Yang, L.; Wu, Y. Regional Gaps, Spatial Distribution Patterns, and Evolutionary Trends of Marine New Quality Productivity in China. Water 2025, 17, 398. https://doi.org/10.3390/w17030398
Wu R, Wang W, Yang L, Wu Y. Regional Gaps, Spatial Distribution Patterns, and Evolutionary Trends of Marine New Quality Productivity in China. Water. 2025; 17(3):398. https://doi.org/10.3390/w17030398
Chicago/Turabian StyleWu, Renhong, Wei Wang, Lihua Yang, and Yao Wu. 2025. "Regional Gaps, Spatial Distribution Patterns, and Evolutionary Trends of Marine New Quality Productivity in China" Water 17, no. 3: 398. https://doi.org/10.3390/w17030398
APA StyleWu, R., Wang, W., Yang, L., & Wu, Y. (2025). Regional Gaps, Spatial Distribution Patterns, and Evolutionary Trends of Marine New Quality Productivity in China. Water, 17(3), 398. https://doi.org/10.3390/w17030398