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Effective machine-learning assembly for next-generation amplicon sequencing with very low coverage.

Louis RanjardThomas K F WongAllen G Rodrigo
Published in: BMC bioinformatics (2019)
We introduced an algorithm to perform dynamic alignment of reads on a distant reference. We showed that such approach can improve the reconstruction of an amplicon compared to classically used bioinformatic pipelines. Although not portable to genomic scale in the current form, we suggested several improvements to be investigated to make this method more flexible and allow dynamic alignment to be used for large genome assemblies.
Keyphrases
  • machine learning
  • deep learning
  • artificial intelligence
  • single cell
  • big data
  • genome wide
  • copy number
  • healthcare
  • atomic force microscopy
  • mass spectrometry
  • dna methylation
  • high resolution
  • low cost
  • neural network