Short-Term Infectious Diarrhea Prediction Using Weather and Search Data in Xiamen, China
Author:
Affiliation:
1. Computer Engineering College, Jimei University, Xiamen 361021, China
2. Chengyi University College, Jimei University, Xiamen 361021, China
3. China Electronics Technology Group Corporation, Shanghai 200001, China
Abstract
Infectious diarrhea has high morbidity and mortality around the world. For this reason, diarrhea prediction has emerged as an important problem to prevent and control outbreaks. Numerous studies have built disease prediction models using large-scale data. However, these methods perform poorly on diarrhea data. To address this issue, this paper proposes a parsimonious model (PM), which takes historical outpatient visit counts, meteorological factors (MFs) and Baidu search indices (BSIs) as inputs to perform prediction. An experimental evaluation was done to compare the short-term prediction performance of ten algorithms for four groups of inputs, using data collected in Xiamen, China. Results show that the proposed method is effective in improving the prediction accuracy.
Publisher
Hindawi Limited
Subject
Computer Science Applications,Software
Link
http://downloads.hindawi.com/journals/sp/2020/8814222.pdf
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