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Bayesian networks to identify statistical dependencies. A case study of Spanish university students' habits
P Fuster-Parra1, J Vidal-Conti2, P A Borràs2
1a Department of Mathematics and Computer Science , Universitat Illes Balears , Palma de Mallorca , Baleares , Spain.
Objective:
The present study sought to discover the relationships among different features characterizing Spanish university students' habits through a Bayesian network (BN). The set of features with the strongest influence in specific features can be determined.
Methods:
A BN was built from a dataset composed of 13 relevant features, determining the dependencies and conditional independencies from empirical data in a multivariate context. The structure was learned with the bnlearn package in R language introducing prior knowledge, and the parameters were obtained with Netica software. Three reasoning patterns were considered to make inferences: intercausal, evidential, and causal reasoning.
Results:
BN determined the different relationships. Through inference several conclusions were achieved, for instance a high probability value of physical activity in low state was obtained when active peers were instantiated to none state, self-rated fitness to fair state, bmi to normal weight, sitting time to moderate, age to 22-25, and gender to woman state.
Conclusions:
Bayesian networks may help to characterize Spanish University students' habits.
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