Roles of Different Transport Modes in the Spatial Spread of the 2009 Influenza A(H1N1) Pandemic in Mainland China
Abstract
:1. Introduction
2. Materials and Methods
2.1. Epidemiological Data
2.2. Passenger Volume Data
2.3. Definitions of Arrival Day and Peak Day
2.4. Comparisons of Arrival Days and Peak Days between Prefectures with and without Transport Hubs
2.5. Quantile Regression of Arrival Days on Passenger Volumes
3. Results
3.1. Summary of Influenza A(H1N1)pdm09 Infections in Mainland China
3.2. Effects of Airports and Railway Stations on Influenza A(H1N1)pdm09 Inter-Prefecture Spread and Peak
3.3. Roles of Transport Modes in Inter-Prefecture Spread of Influenza A(H1N1)pdm09
4. Discussion
4.1. Two Phases and Direction of Influenza A(H1N1)pdm09 Spread between Prefectures
4.2. Impact of Transport Hubs on Arrival Day and Peak Day
4.3. Roles of Transport Modes in Inter-Prefecture Spread of Influenza A(H1N1)pdm09
4.4. Limitations and Prospect
5. Conclusions
Data Accessibility
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Category | Arrival Day a | Peak Day | |||||||||
---|---|---|---|---|---|---|---|---|---|---|---|
Min | Q1 | Median | Q3 | Max | Min | Q1 | Median | Q3 | Max | ||
All (340) | 1 | 61 | 119 | 136 | 180 | 97 | 163 | 179 | 198 | 236 | |
Airport | With (155) | 4 | 41 | 106 | 134 | 180 | 113 | 162 | 180 | 196 | 228 |
Without (185) | 1 | 75 | 120 | 136 | 175 | 97 | 164 | 179 | 199 | 236 | |
Railway station | With (234) | 1 | 53 | 111 | 129 | 175 | 97 | 163 | 179 | 196 | 236 |
Without (106) | 17 | 93 | 128 | 140 | 180 | 117 | 164 | 181 | 199 | 236 |
Transport Modes (No. of Prefectures) | log(PAir) | log(PRail) | log(PRoad) |
---|---|---|---|
Air + Rail + Road (115) | −0.58 *** | −0.47 *** | −0.60 *** |
Air + Road (20) | −0.32 | - | −0.34 |
Rail + Road (140) | - | −0.17 * | −0.25 ** |
Road (59) | - | - | −0.54 *** |
Variables a | = 0.25 | = 0.50 | = 0.75 |
---|---|---|---|
Intercept | 274.08 (222.13, 344.09) b | 295.84 (201.19, 381.45) | 256.25 (189.21, 457.03) |
Lat | 1.95 (1.30, 3.69) | 1.78 (1.36, 3.34) | 2.29 (1.00, 4.06) |
Lng | −1.38 (−1.83, −0.46) | −1.15 (−2.22, −0.55) | −0.80 (−2.33, −0.33) |
log(PAir) | −7.23 (−10.75, −0.38) | −9.54 (−15.13, −4.81) | −12.10 (−14.90, −6.12) |
log(PRail) | −1.99 (−12.41, 0.97) | −6.18 (−14.41, 1.99) | −5.42 (−16.80, −0.45) |
log(PRoad) | −9.04 (−15.52, −3.05) | −7.58 (−15.41, −1.37) | −6.73 (−15.35, −0.23) |
R2 c | 0.33 | 0.45 | 0.41 |
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Cai, J.; Xu, B.; Chan, K.K.Y.; Zhang, X.; Zhang, B.; Chen, Z.; Xu, B. Roles of Different Transport Modes in the Spatial Spread of the 2009 Influenza A(H1N1) Pandemic in Mainland China. Int. J. Environ. Res. Public Health 2019, 16, 222. https://doi.org/10.3390/ijerph16020222
Cai J, Xu B, Chan KKY, Zhang X, Zhang B, Chen Z, Xu B. Roles of Different Transport Modes in the Spatial Spread of the 2009 Influenza A(H1N1) Pandemic in Mainland China. International Journal of Environmental Research and Public Health. 2019; 16(2):222. https://doi.org/10.3390/ijerph16020222
Chicago/Turabian StyleCai, Jun, Bo Xu, Karen Kie Yan Chan, Xueying Zhang, Bing Zhang, Ziyue Chen, and Bing Xu. 2019. "Roles of Different Transport Modes in the Spatial Spread of the 2009 Influenza A(H1N1) Pandemic in Mainland China" International Journal of Environmental Research and Public Health 16, no. 2: 222. https://doi.org/10.3390/ijerph16020222
APA StyleCai, J., Xu, B., Chan, K. K. Y., Zhang, X., Zhang, B., Chen, Z., & Xu, B. (2019). Roles of Different Transport Modes in the Spatial Spread of the 2009 Influenza A(H1N1) Pandemic in Mainland China. International Journal of Environmental Research and Public Health, 16(2), 222. https://doi.org/10.3390/ijerph16020222