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Robust and consistent biomarker candidates identification by a machine learning approach applied to pancreatic ductal adenocarcinoma metastasis.

Tanakamol MahawanTeifion LuckettAinhoa Mielgo IzaNatapol PornputtapongEva Caamano-Gutierrez
Published in: BMC medical informatics and decision making (2024)
This study establishes a robust framework for identifying composite biomarkers across various disease contexts. We demonstrate its potential by proposing a plausible composite biomarker candidate for PDAC metastasis. By reusing data from public repositories, we highlight the sustainability of our research and the wider applications of our pipeline. The preliminary findings shed light on a promising validation and application path.
Keyphrases
  • machine learning
  • big data
  • healthcare
  • electronic health record
  • mental health
  • artificial intelligence
  • deep learning
  • bioinformatics analysis
  • adverse drug
  • life cycle