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Limitations in Evaluating Machine Learning Models for Imbalanced Binary Outcome Classification in Spine Surgery : A Systematic Review

Ghanem, Marc (författare)
Mayo Clin, Mayo Clin Neuroinformat Lab, Rochester, MN 55902 USA.;Mayo Clin, Dept Neurol Surg, Rochester, MN 55902 USA.;Lebanese Amer Univ, Sch Med, Byblos 4504, Lebanon.
Ghaith, Abdul Karim (författare)
Mayo Clin, Mayo Clin Neuroinformat Lab, Rochester, MN 55902 USA.;Mayo Clin, Dept Neurol Surg, Rochester, MN 55902 USA.
El-Hajj, Victor Gabriel (författare)
Mayo Clin, Mayo Clin Neuroinformat Lab, Rochester, MN 55902 USA.;Mayo Clin, Dept Neurol Surg, Rochester, MN 55902 USA.;Karolinska Inst, Dept Clin Neurosci, S-17177 Stockholm, Sweden.
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Bhandarkar, Archis (författare)
Mayo Clin, Mayo Clin Neuroinformat Lab, Rochester, MN 55902 USA.;Mayo Clin, Dept Neurol Surg, Rochester, MN 55902 USA.
de Giorgio, Andrea (författare)
Artificial Engn, Via Rione Sirignano, I-80121 Naples, Italy.
Elmi-Terander, Adrian (författare)
Karolinska Institutet,Uppsala universitet,Ortopedi och Handkirurgi,Karolinska Inst, Dept Clin Neurosci, S-17177 Stockholm, Sweden.
Bydon, Mohamad (författare)
Mayo Clin, Mayo Clin Neuroinformat Lab, Rochester, MN 55902 USA.;Mayo Clin, Dept Neurol Surg, Rochester, MN 55902 USA.
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Mayo Clin, Mayo Clin Neuroinformat Lab, Rochester, MN 55902 USA;Mayo Clin, Dept Neurol Surg, Rochester, MN 55902 USA.;Lebanese Amer Univ, Sch Med, Byblos 4504, Lebanon. Mayo Clin, Mayo Clin Neuroinformat Lab, Rochester, MN 55902 USA.;Mayo Clin, Dept Neurol Surg, Rochester, MN 55902 USA. (creator_code:org_t)
MDPI, 2023
2023
Engelska.
Ingår i: Brain Sciences. - : MDPI. - 2076-3425. ; 13:12
  • Forskningsöversikt (refereegranskat)
Abstract Ämnesord
Stäng  
  • Clinical prediction models for spine surgery applications are on the rise, with an increasing reliance on machine learning (ML) and deep learning (DL). Many of the predicted outcomes are uncommon; therefore, to ensure the models' effectiveness in clinical practice it is crucial to properly evaluate them. This systematic review aims to identify and evaluate current research-based ML and DL models applied for spine surgery, specifically those predicting binary outcomes with a focus on their evaluation metrics. Overall, 60 papers were included, and the findings were reported according to the PRISMA guidelines. A total of 13 papers focused on lengths of stay (LOS), 12 on readmissions, 12 on non-home discharge, 6 on mortality, and 5 on reoperations. The target outcomes exhibited data imbalances ranging from 0.44% to 42.4%. A total of 59 papers reported the model's area under the receiver operating characteristic (AUROC), 28 mentioned accuracies, 33 provided sensitivity, 29 discussed specificity, 28 addressed positive predictive value (PPV), 24 included the negative predictive value (NPV), 25 indicated the Brier score with 10 providing a null model Brier, and 8 detailed the F1 score. Additionally, data visualization varied among the included papers. This review discusses the use of appropriate evaluation schemes in ML and identifies several common errors and potential bias sources in the literature. Embracing these recommendations as the field advances may facilitate the integration of reliable and effective ML models in clinical settings.

Ämnesord

MEDICIN OCH HÄLSOVETENSKAP  -- Klinisk medicin -- Kirurgi (hsv//swe)
MEDICAL AND HEALTH SCIENCES  -- Clinical Medicine -- Surgery (hsv//eng)
MEDICIN OCH HÄLSOVETENSKAP  -- Klinisk medicin -- Ortopedi (hsv//swe)
MEDICAL AND HEALTH SCIENCES  -- Clinical Medicine -- Orthopaedics (hsv//eng)

Nyckelord

machine learning
artificial intelligence
deep learning
predictive modeling
spine surgery

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