Ensemble Learned Vaccination Uptake Prediction using Web Search Queries

September 02, 2016 Β· Declared Dead Β· πŸ› International Conference on Information and Knowledge Management

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Authors Niels Dalum Hansen, Christina Lioma, KΓ₯re MΓΈlbak arXiv ID 1609.00689 Category cs.IR: Information Retrieval Cross-listed stat.AP Citations 18 Venue International Conference on Information and Knowledge Management Last Checked 3 months ago
Abstract
We present a method that uses ensemble learning to combine clinical and web-mined time-series data in order to predict future vaccination uptake. The clinical data is official vaccination registries, and the web data is query frequencies collected from Google Trends. Experiments with official vaccine records show that our method predicts vaccination uptake effectively (4.7 Root Mean Squared Error). Whereas performance is best when combining clinical and web data, using solely web data yields comparative performance. To our knowledge, this is the first study to predict vaccination uptake using web data (with and without clinical data).
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