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Explainable illicit drug abuse prediction using hematological differences.

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This study developed a machine learning model to predict illicit drug use (IDU) using blood test results. The explainable model accurately identifies IDU, aiding clinical screening and organ function assessment.

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Area of Science:

  • Biomedical Informatics
  • Clinical Chemistry
  • Machine Learning in Healthcare

Background:

  • Illicit drug use (IDU) presents significant public health challenges.
  • Accurate and early identification of IDU is crucial for timely intervention and treatment.
  • Hematological parameters offer potential biomarkers for predicting IDU, but require robust analytical models.

Purpose of the Study:

  • To develop and validate a reliable and explainable machine learning (ML) model for predicting illicit drug use (IDU).
  • To identify key hematological features that contribute to the prediction of IDU.
  • To assess the clinical utility of the predictive model for preliminary IDU screening.

Main Methods:

  • Utilized hematological data from 286 illicit drug users (IDUr) and 302 non-users (n-IDUr).
  • Compared the performance of eight ML algorithms to predict IDU.
  • Developed an explainable Light Gradient Boosting Machine (LGB) model using 13 selected features.
  • Employed SHapley Additive exPlanations (SHAP) for model interpretability.

Main Results:

  • The explainable LGB model achieved high prediction accuracy, with an area under the curve (AUC) of 0.925 in internal validation and 0.915 in external validation.
  • Key predictive features identified include chloride (Cl), β-hydroxybutyrate (BHB), and anion gap (AG).
  • These features are associated with kidney, liver, and thyroid function, indicating potential organ dysfunction in IDUr.

Conclusions:

  • An explainable ML model effectively predicts illicit drug use based on hematological parameters.
  • Chloride, BHB, and anion gap are significant indicators for IDU prediction.
  • The model holds potential for clinical application in preliminary IDU screening and guiding further organ-specific examinations.