Articles | Volume 13, issue 12
https://doi.org/10.5194/nhess-13-3211-2013
https://doi.org/10.5194/nhess-13-3211-2013
Research article
 | 
10 Dec 2013
Research article |  | 10 Dec 2013

Novel method for hurricane trajectory prediction based on data mining

X. Dong and D. C. Pi

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Cited articles

Agrawal, R. and Srikant, R.: Fast algorithms for mining association rules, in: Proc. of the 20th Int'l Conf on Very Large DataBases (VLDB'94), edited by: Bocca, J., M. and Zaniolo, C., Santiago, Morgan Kaufmann, 487–499, 1994.
Chan, J. C. L.: The physics of tropical cyclone motion, Ann. Rev. Fluid Mech., 37, 99–128, 2005.
Chatzidimitriou, K. and Sutton, A.: Alternative Data Mining Techniques for Predicting TropicalCyclone Intensification, American Association for Artificial Intelligence, 200, edited by: Chan, J. C. L., The physics of tropical cyclone motion, Ann. Rev. Fluid Mech., 37, 99–128, 2005.
Kim, H.-S., Kim, J.-H., Ho, C.-H., and Chu, P.-S.: Pattern Classification of Typhoon Tracks Using the Fuzzy c-Means Clustering Method, J. Climate, 24, 488–508, 2011.
Kim, H.-S., Ho, C.-H., Kim, J.-H., and Chu, P.-S.: Track-Pattern-Based Model for Seasonal Prediction of Tropical Cyclone Activity in the Western North Pacific, J. Climate, 25, 4660–4678, 2012.
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