机器学习
人工智能
钥匙(锁)
酒精使用障碍
突出
心理学
大麻
计算机科学
临床心理学
医学
精神科
酒
置信区间
认知心理学
作者
Brian H. Calhoun,Brittney A. Hultgren,Connor J. McCabe,Isaac C. Rhew,Mary E. Larimer,Jason R. Kilmer,Katarína Guttmannova
出处
期刊:
日期:2026-03-01
卷期号:50 (3): e70245-e70245
摘要
Two complementary machine learning methods yielded convergent findings on the most salient predictors of impaired driving, increasing confidence in their validity. These methods provide a flexible alternative to traditional models for analyzing high-dimensional data and highlight recent use patterns, substance use disorder symptoms, and age of initiation as key priorities for prevention.
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