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Description

Bayesian Model Selection in Logistic Regression for the Detection of Adverse Drug Reactions.

Spontaneous adverse event reports have a high potential for detecting adverse drug reactions. However, due to their dimension, the analysis of such databases requires statistical methods. We propose to use a logistic regression whose sparsity is viewed as a model selection challenge. Since the model space is huge, a Metropolis-Hastings algorithm carries out the model selection by maximizing the BIC criterion.
Metadata

Version

1.0.1

License

Unknown

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