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Machine learning-based delta check method for detecting misidentification errors in tumor marker tests.

Hyeon Seok SeokYuna ChoiShinae YuKyoung-Hwa ShinSollip KimHangsik Shin
Published in: Clinical chemistry and laboratory medicine (2023)
Our research results demonstrate that an ML-based delta check method can more effectively detect sample misidentification errors compared to conventional delta check methods. In particular, the DNN model demonstrated superior and stable detection performance compared to the RF, DPC, absDPC, and RCV methods.
Keyphrases
  • machine learning
  • patient safety
  • adverse drug
  • artificial intelligence
  • emergency department
  • deep learning
  • big data
  • label free
  • real time pcr
  • electronic health record
  • quality improvement