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DiCleave: a deep learning model for predicting human Dicer cleavage sites.

Lixuan MuJiangning SongTatsuya AkutsuTomoya Mori
Published in: BMC bioinformatics (2024)
Our proposed model exhibited superior performance compared with the current state-of-the-art model, underscoring the effectiveness of a deep learning approach in predicting Dicer cleavage sites. Furthermore, our model could be trained using only sequence and secondary structure information. Its capacity to accommodate multi-class classification tasks has enhanced the practical utility of our model.
Keyphrases
  • deep learning
  • machine learning
  • randomized controlled trial
  • systematic review
  • endothelial cells
  • healthcare
  • artificial intelligence
  • working memory
  • body composition
  • social media
  • resistance training