Data

Bayesian classification and regression trees for predicting incidence of cryptosporidiosis: top 5 of the set of 16 best trees based on sensitivity, specificity, accuracy and deviance

Queensland University of Technology
Adjunct Associate Professor Sama Low Choy (Aggregated by) Distinguished Professor Kerrie Mengersen (Aggregated by) Professor Wenbiao Hu (Aggregated by)
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Licence & Rights:

Open Licence view details
CC-BY

Creative Commons Attribution 3.0
http://creativecommons.org/licenses/by/3.0/au/

© 2011 Hu et al.

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Contact Information

Postal Address:
Dr Wenbiao Hu

w2.hu@qut.edu.au

Full description

This dataset was gathered to predict the spatial distribution of the cryptosporidiosis infection using selected social-ecological factors and climate variables. Predictions were completed using a Bayesian CART (Classification and Regression Trees) model.

The dataset presents the top 5 of the set of 16 trees (based on sensitivity, specificity, accuracy and deviance) for Bayesian classification trees.

Data time period: 2001 to 2011

This dataset is part of a larger collection

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153.55292,-9.92973 137.99458,-9.92973 137.99458,-29.17859 153.55292,-29.17859 153.55292,-9.92973

145.7737475,-19.554159

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Identifiers
  • Local : 10378.3/8085/1018.15730