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Bayesian approach for analysis of time-to-event data in plant biology.

Jan F HumplíkJakub DostálLydia UgenaLukáš SpíchalNuria De DiegoOndřej VencálekTomáš Fürst
Published in: Plant methods (2020)
Proper data analysis is a fundamental task of general interest in life sciences. Here, we present a novel method for the analysis of time-to-event data which is applicable to many plant developmental parameters measured in field or in laboratory conditions. In contrast to recent and classical approaches, our Bayesian computational method properly handles uncertainty in time-to-event data and it is capable to reliably answer questions that are difficult to address by classical methods.
Keyphrases
  • data analysis
  • electronic health record
  • magnetic resonance
  • machine learning
  • deep learning