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Machine Learning in Astronomy

This theme is grounded in research on Machine Learning to model the human visual system and making systems that can recreate human visual classification performance. For the last 7 years the focus has been on ML applied to astronomical data to, amongst other things, finding Lensed Galaxies, improving angular resolution on Wide-field (but blurry) Extragalactic Surveys and to untangle the vast amounts of data for Ice Astrochemistry.

Key publications

Staff
PhD Students
  • Ruby Pearce-Casey
  • Chris Sorrell
  • Lorenzo Demaria
OU Collaborators
  • Stephen Serjeant
  • Hugh Dickinson
  • Helen Fraser