DocumentCode :
1953760
Title :
Seasonal Infectious Disease Spread Prediction Using Matrix Decomposition Method
Author :
Hirose, Hideo ; Nakazono, T. ; Tokunaga, M. ; Sakumura, Takenori ; Sumi, Shinichi ; Sulaiman, J.
Author_Institution :
Dept. of Syst. Design & Inf., Kyushu Inst. of Technol., Fukuoka, Japan
fYear :
2013
fDate :
29-31 Jan. 2013
Firstpage :
121
Lastpage :
126
Abstract :
The matrix decomposition is one of the most powerful methods in recommendation systems. In the recommendation system, we can assume an incomplete matrix consisted of observed evaluation values by users and items, then we predict the vacant elements of the matrix using the observed values. This method is applied to a variety of the fields, e.g., for movie recommendations, music recommendations, book recommendations, etc. In this paper, we apply the matrix decomposition to predict the seasonal infectious disease spread. Applying the method to the case of infectious gastroenteritis caused by Norovirus in Japan, we have found that the early detection and prediction for the prevalence of the disease spread can be expected accurately. The infectious disease spread prediction using the matrix decomposition is new. To demonstrate the advantageous point and effectiveness of the matrix decomposition method, we applied the method to the influenza spread prediction in Japan, where missing observations are admitted for computation unlike other prediction methods.
Keywords :
diseases; matrix decomposition; prediction theory; Japan; incomplete matrix; infectious disease spread prediction; infectious gastroenteritis; matrix decomposition method; matrix vacant elements; missing observations; norovirus; observed evaluation values; recommendation systems; seasonal infectious disease spread; seasonal infectious disease spread prediction; Artificial neural networks; Computational modeling; Diseases; Market research; Mathematical model; Matrix decomposition; Predictive models; Norovirus; artificial neural networks; disease spread; early detection; ensemble; influenza; matrix decomposition; recommendation system;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Intelligent Systems Modelling & Simulation (ISMS), 2013 4th International Conference on
Conference_Location :
Bangkok
ISSN :
2166-0662
Print_ISBN :
978-1-4673-5653-4
Type :
conf
DOI :
10.1109/ISMS.2013.9
Filename :
6498248
Link To Document :
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