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Image-based classification of plant genus and family for trained and untrained plant species.

Marco SeelandMichael RzannyDavid BohoJana WäldchenPatrick Mäder
Published in: BMC bioinformatics (2019)
Our results show that shared visual characters are indeed present at higher taxonomic levels. Most dominantly they are preserved in flowers and leaves, and enable state-of-the-art classification algorithms to learn accurate visual representations of plant genera and families. Given a sufficient amount and composition of training data, we show that this allows for high classification accuracy increasing with the taxonomic level and even facilitating the taxonomic identification of species excluded from the training process.
Keyphrases
  • deep learning
  • machine learning
  • artificial intelligence
  • big data
  • resistance training
  • virtual reality
  • high resolution
  • electronic health record