A machine learning model for the prediction of unhealthy alcohol use among women of childbearing age in Alabama

Author:

Johnson Karen A1,McDaniel Justin T1,Okine Joana1,Graham Heather K1,Robertson Ellen T1,McIntosh Shanna1,Wallace Juliane1,Albright David L1ORCID

Affiliation:

1. University of Alabama School of Social Work, , Tuscaloosa, AL 35487-0314 , United States

Abstract

Abstract Introduction: This study utilizes a machine learning model to predict unhealthy alcohol use treatment levels among women of childbearing age. Methods: In this cross-sectional study, women of childbearing age (n = 2397) were screened for alcohol use over a 2-year period as part of the AL-SBIRT (screening, brief intervention, and referral to treatment in Alabama) program in three healthcare settings across Alabama for unhealthy alcohol use severity and depression. A support vector machine learning model was estimated to predict unhealthy alcohol use scores based on depression score and age. Results: The machine learning model was effective in predicting no intervention among patients with lower Patient Health Questionnaire (PHQ)-2 scores of any age, but a brief intervention among younger patients (aged 18–27 years) with PHQ-2 scores >3 and a referral to treatment for unhealthy alcohol use among older patients (between the ages of 25 and 50) with PHQ-2 scores >4. Conclusions: The machine learning model can be an effective tool in predicting unhealthy alcohol use treatment levels and approaches.

Funder

AL-SBIRT program

Publisher

Oxford University Press (OUP)

Subject

General Medicine

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1. Evaluating the Predictive Accuracy and Precision of AlexNet and Linear Regression for Women’s Education Post-Independence;2023 2nd International Conference on Automation, Computing and Renewable Systems (ICACRS);2023-12-11

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