Impact of High Temperatures on Tourist Flows in Urban and Rural Areas: Climate Adaptation Strategies in China
Abstract
:1. Introduction
2. Literature Review
2.1. Impact of Climate Change on Tourist Flows
2.2. Impact of High Temperatures on Urban and Rural Tourist Flow
2.3. Climate Adaptation of Tourist Destinations
2.4. Shortcomings in the Existing Research and Research Framework of This Study
3. Methodology
3.1. Study Area
3.2. Data Sources
3.3. Methods
3.3.1. SOFM Method
3.3.2. JNB Method
3.3.3. Tourist Flow Modeling for Tourist Attractions
3.3.4. Pearson Correlation Analysis
4. Results
4.1. Urban and Rural Structures
4.2. Characteristics of Urban and Rural Tourist Flows Under High Temperatures
4.2.1. Temporal Characteristics
4.2.2. Spatial Characteristics
4.3. Key Factors Impacting Urban and Rural Tourist Flows Under High Temperatures
4.3.1. Selection of Impacting Factors
4.3.2. Analysis of Impacting Factors
4.4. Climate Adaptation Strategies for Urban and Rural Tourism
5. Discussion and Implications
5.1. Temporal Variations in Urban and Rural Tourist Flows Under High Temperatures
5.2. Spatial Variations in Urban and Rural Tourist Flows Under High Temperatures
5.3. Differences in Driving Factors
5.4. Practical Implications
5.5. Limitation and Future Studies
6. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Data Availability Statement
Conflicts of Interest
References
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Time (h) | Urban Tourist Flow | Rural Tourist Flow | ||||||||
---|---|---|---|---|---|---|---|---|---|---|
Dis | Gra | Ame | Den | Eco | Dis | Gra | Ame | Den | Eco | |
0 | 0.275 | 0.054 | −0.268 | 0.017 | −0.078 | 0.405 ** | −0.201 * | −0.288 ** | −0.468 ** | −0.161 |
1 | 0.299 * | 0.047 | −0.180 | −0.055 | −0.025 | 0.411 ** | 0.187 | −0.415 ** | −0.469 ** | −0.065 |
2 | 0.256 | 0.094 | −0.075 | −0.020 | 0.058 | 0.405 ** | −0.201 * | −0.395 ** | −0.467 ** | −0.113 |
3 | 0.313 * | −0.041 | −0.267 | −0.124 | −0.058 | 0.392 ** | −0.182 | −0.421 ** | −0.342 ** | −0.125 |
4 | 0.272 | 0.023 | −0.131 | −0.147 | 0.014 | 0.269 ** | −0.188 | −0.143 | −0.354 ** | −0.062 |
5 | 0.085 | −0.258 | −0.346 * | −0.069 | −0.374 ** | −0.360 ** | 0.178 | 0.202 * | 0.437 ** | 0.192 |
6 | −0.171 | −0.046 | 0.025 | 0.054 | −0.109 | −0.406 ** | 0.160 | 0.358 ** | 0.471 ** | 0.136 |
7 | −0.235 | 0.039 | 0.116 | 0.019 | 0.007 | −0.374 ** | 0.213 * | 0.287 ** | 0.441 ** | 0.043 |
8 | −0.232 | −0.004 | 0.143 | 0.005 | −0.005 | −0.362 ** | 0.257 * | 0.330 ** | 0.425 ** | 0.066 |
9 | −0.301 * | 0.086 | 0.239 | −0.018 | 0.163 | −0.367 ** | 0.349 ** | 0.288 ** | 0.432 ** | 0.246 * |
10 | −0.264 | 0.171 | 0.407 ** | −0.073 | 0.345 * | −0.250 * | 0.369 ** | 0.222 * | 0.302 ** | 0.210 * |
11 | −0.251 | 0.226 | 0.392 ** | −0.080 | 0.353 * | −0.076 | 0.299 ** | 0.104 | −0.047 | 0.164 |
12 | −0.179 | 0.187 | 0.430 ** | 0.010 | 0.358 * | 0.227 * | −0.011 | −0.065 | −0.357 ** | 0.094 |
13 | −0.146 | 0.035 | 0.291 * | −0.111 | 0.295 * | −0.060 | 0.052 | −0.173 | 0.090 | −0.067 |
14 | −0.287 | 0.286 | 0.364 * | −0.133 | 0.403 ** | −0.127 | 0.171 | −0.054 | 0.220 * | 0.138 |
15 | 0.016 | 0.096 | −0.039 | −0.245 | −0.194 | −0.125 | 0.054 | −0.155 | 0.264 ** | 0.005 |
16 | 0.009 | −0.007 | 0.195 | −0.170 | 0.233 | −0.330 ** | 0.268 ** | 0.252 * | 0.284 ** | 0.218 * |
17 | −0.038 | −0.241 | 0.080 | 0.060 | 0.114 | −0.116 | −0.121 | 0.111 | 0.033 | −0.105 |
18 | 0.237 | −0.295 * | −0.078 | −0.223 | −0.106 | −0.045 | −0.114 | 0.437 ** | −0.159 | −0.064 |
19 | 0.157 | −0.246 | −0.083 | 0.150 | −0.019 | 0.021 | −0.120 | 0.302 ** | −0.229 * | −0.010 |
20 | 0.272 | −0.135 | −0.421 ** | −0.050 | −0.361 * | 0.218 * | −0.342 ** | −0.035 | −0.186 | −0.109 |
21 | 0.207 | −0.092 | −0.338 * | 0.137 | −0.297 * | 0.250 * | −0.271 ** | −0.427 ** | −0.207 * | −0.251 * |
22 | 0.129 | −0.073 | −0.235 | 0.128 | −0.210 | 0.359 ** | −0.296 ** | −0.359 ** | −0.329 ** | −0.169 |
23 | 0.177 | 0.034 | −0.278 | 0.069 | −0.236 | 0.434 ** | −0.306 ** | −0.331 ** | −0.441 ** | −0.197 |
Time (h) | Urban Tourist Flow | Rural Tourist Flow | ||||||||
---|---|---|---|---|---|---|---|---|---|---|
Dis | Gra | Ame | Den | Eco | Dis | Gra | Ame | Den | Eco | |
0 | 0.256 | 0.030 | −0.239 | 0.029 | −0.063 | 0.432 ** | −0.223 * | −0.381 ** | −0.447 ** | −0.131 |
1 | 0.311 * | 0.007 | −0.205 | −0.074 | −0.030 | 0.427 ** | −0.199 * | −0.427 ** | −0.481 ** | −0.155 |
2 | 0.258 | 0.065 | −0.108 | −0.086 | 0.078 | 0.419 ** | −0.191 | −0.420 ** | −0.442 | −0.060 |
3 | 0.303 * | 0.017 | −0.213 | −0.082 | −0.005 | 0.380 ** | −0.174 | −0.389 ** | −0.456 ** | −0.129 |
4 | 0.323 * | 0.028 | −0.161 | −0.154 | −0.04 | 0.275 ** | −0.203 * | −0.531 ** | −0.209 * | 0.005 |
5 | 0.038 | −0.209 | −0.262 | 0.008 | −0.353 * | −0.386 ** | 0.158 | 0.299 ** | 0.456 ** | 0.175 |
6 | −0.186 | −0.047 | 0.037 | 0.054 | −0.098 | −0.399 ** | 0.194 | 0.291 ** | 0.491 ** | 0.169 |
7 | −0.209 | 0.005 | 0.081 | 0.003 | −0.048 | −0.381 ** | 0.199 * | 0.348 ** | 0.430 ** | 0.043 |
8 | −0.230 | −0.023 | 0.140 | 0.029 | 0.028 | −0.380 ** | 0.267 ** | 0.359 ** | 0.446 ** | 0.086 |
9 | −0.255 | 0.062 | 0.192 | 0.005 | 0.111 | −0.390 ** | 0.358 ** | 0.326 ** | 0.441 ** | 0.207 * |
10 | −0.277 | 0.172 | 0.334 * | −0.032 | 0.285 | −0.350 ** | 0.446 ** | 0.338 ** | 0.348 ** | 0.314 ** |
11 | −0.252 | 0.173 | 0.394 ** | −0.016 | 0.310 * | −0.144 | 0.307 ** | 0.104 | 0.010 | 0.197 |
12 | −0.172 | 0.172 | 0.414 ** | −0.096 | 0.357 * | 0.147 | 0.069 | 0.064 | −0.248 * | 0.096 |
13 | −0.217 | 0.019 | 0.352 * | 0.056 | 0.425 ** | −0.110 | 0.146 | −0.130 | 0.140 | 0.014 |
14 | −0.370 * | 0.291 * | 0.393 ** | −0.021 | 0.446 ** | −0.221 * | 0.350 ** | 0.079 | 0.260 ** | 0.054 |
15 | −0.015 | 0.079 | 0.036 | −0.151 | −0.044 | −0.250 * | 0.037 | −0.103 | 0.356 ** | 0.114 |
16 | 0.187 | −0.017 | −0.151 | −0.188 | −0.086 | −0.086 | −0.202 * | 0.060 | 0.037 | −0.024 |
17 | 0.059 | −0.244 | 0.040 | −0.232 | −0.073 | −0.045 | −0.311 ** | 0.077 | 0.097 | −0.155 |
18 | 0.269 | −0.243 | −0.202 | −0.111 | −0.261 | 0.252 * | −0.376 ** | 0.029 | −0.339 ** | −0.202 * |
19 | 0.226 | −0.154 | −0.149 | 0.049 | −0.095 | 0.170 | −0.236 * | 0.195 | −0.362 ** | −0.070 |
20 | 0.246 | −0.149 | −0.331 * | −0.036 | −0.241 | 0.271 ** | −0.362 ** | −0.174 | −0.201 * | −0.128 |
21 | 0.146 | −0.058 | −0.291 * | 0.068 | −0.266 | 0.256 * | −0.282 ** | −0.323 ** | −0.251 * | −0.234 * |
22 | 0.141 | −0.045 | −0.237 | 0.222 | −0.209 | 0.394 ** | −0.263 ** | −0.433 ** | −0.381 ** | −0.170 |
23 | 0.232 | −0.030 | −0.272 | 0.045 | −0.190 | 0.433 ** | −0.265 ** | −0.364 ** | −0.457 ** | −0.185 |
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Wei, M.; Huang, T. Impact of High Temperatures on Tourist Flows in Urban and Rural Areas: Climate Adaptation Strategies in China. Agriculture 2025, 15, 980. https://doi.org/10.3390/agriculture15090980
Wei M, Huang T. Impact of High Temperatures on Tourist Flows in Urban and Rural Areas: Climate Adaptation Strategies in China. Agriculture. 2025; 15(9):980. https://doi.org/10.3390/agriculture15090980
Chicago/Turabian StyleWei, Man, and Tai Huang. 2025. "Impact of High Temperatures on Tourist Flows in Urban and Rural Areas: Climate Adaptation Strategies in China" Agriculture 15, no. 9: 980. https://doi.org/10.3390/agriculture15090980
APA StyleWei, M., & Huang, T. (2025). Impact of High Temperatures on Tourist Flows in Urban and Rural Areas: Climate Adaptation Strategies in China. Agriculture, 15(9), 980. https://doi.org/10.3390/agriculture15090980