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Toward a More Parsimonious Approach to Drug Recognition Expert Evaluations

机译:寻求更简约的方法进行药物识别专家评估

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摘要

Objective: The purpose of this study is to statistically identify the set of drug-related cues from Drug Evaluation and Classification (DEC) evaluations that significantly predict the substance used by suspected drug-impaired drivers. Methods: Data from 742 completed Canadian DEC evaluations of central nervous system (CNS) stimulant, narcotic analgesic, and cannabis cases were analyzed using a multinomial logistic regression procedure. Results: Nine clinical indicators from the DEC evaluations significantly enhanced the prediction of drug category, including pulse rate, condition of the eyes and eyelids, lack of convergence, hippus, reaction to light, rebound dilation, systolic blood pressure, and the presence of injection sites. Conclusions: The findings from this study will facilitate the process of identifying the correct category of drug ingested by focusing on critical signs and symptoms of drug influence. This work will have direct and immediate relevance to the training of drug recognition experts (DREs) by providing the foundation for an innovative, statistically based approach to drug classification decisions by DREs.
机译:目的:本研究的目的是从“药物评估和分类”(DEC)评估中统计学地识别一组与药物相关的线索,这些线索可显着预测可疑药物受损驾驶员使用的药物。方法:使用多项式逻辑回归程序分析了来自742个完整的加拿大DEC评估的中枢神经系统(CNS)兴奋剂,麻醉性止痛药和大麻病例的数据。结果:来自DEC评估的9个临床指标显着增强了对药物类别的预测,包括脉搏率,眼和眼睑状况,缺乏会聚,河马,对光的反应,回弹扩张,收缩压和是否存在注射网站。结论:这项研究的发现将通过关注药物影响的关键症状和体征,促进鉴定正确摄入药物类别的过程。这项工作将通过为基于DRE的药物分类决策的创新,基于统计的方法提供基础,从而与药物识别专家(DRE)的培训具有直接和直接的联系。

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