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A comparison of ImageJ and machine learning based image analysis methods to measure cassava bacterial blight disease severity.

Kiona ElliottJeffrey C BerryHobin KimRebecca S Bart
Published in: Plant methods (2022)
Both image analysis methods presented in this paper allow for accurate segmentation of disease lesions from the non-infected plant. Specifically, at 4-, 6-, and 9-days post inoculation (DPI), both methods provided quantitative differences in disease symptoms between different treatment types. Thus, either method could be applied to extract information about disease severity. Strengths and weaknesses of each approach are discussed.
Keyphrases
  • machine learning
  • high resolution
  • deep learning
  • oxidative stress
  • convolutional neural network
  • physical activity
  • health information
  • mass spectrometry
  • combination therapy