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A hierarchical machine learning framework for the analysis of large scale animal movement data.

Colin J TorneyJuan M MoralesDirk Husmeier
Published in: Movement ecology (2021)
Multilevel Gaussian process models offer efficient inference for large-volume movement data sets, along with the fitting of complex flexible models. Applications of this approach include inferring the mean location of a migration route and quantifying significant changes, detecting diurnal activity patterns, or identifying the onset of directed persistent movements.
Keyphrases
  • machine learning
  • big data
  • electronic health record
  • artificial intelligence
  • single cell
  • data analysis