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大数据和预测模型在阿片类药物危机中的应用:现有研究和未来潜力。

Big data and predictive modelling for the opioid crisis: existing research and future potential.

机构信息

National Drug and Alcohol Research Centre, University of New South Wales, Sydney, NSW, Australia.

Population Health Sciences, Bristol Medical School, University of Bristol, Bristol, UK.

出版信息

Lancet Digit Health. 2021 Jun;3(6):e397-e407. doi: 10.1016/S2589-7500(21)00058-3.

Abstract

A need exists to accurately estimate overdose risk and improve understanding of how to deliver treatments and interventions in people with opioid use disorder in a way that reduces such risk. We consider opportunities for predictive analytics and routinely collected administrative data to evaluate how overdose could be reduced among people with opioid use disorder. Specifically, we summarise global trends in opioid use and overdoses; describe the use of big data in research into opioid overdose; consider the potential for predictive modelling, including machine learning, for prevention and monitoring of opioid overdoses; and outline the challenges and risks relating to the use of big data and machine learning in reducing harms that are related to opioid use. Future research for improving the coverage and provision of existing interventions, treatments, and resources for opioid use disorder requires collaboration of multiple agencies. Predictive modelling could transport the concept of stratified medicine to public health through novel methods, such as predictive modelling and emulated trials for evaluating diagnoses and prognoses of opioid use disorder, predicting treatment response, and providing targeted treatment recommendations.

摘要

需要准确评估过量用药风险,并深入了解如何以降低风险的方式为阿片类药物使用障碍患者提供治疗和干预措施。我们探讨了利用预测分析和常规收集的行政数据来评估如何减少阿片类药物使用障碍患者过量用药的机会。具体而言,我们总结了全球阿片类药物使用和过量用药趋势;描述了大数据在阿片类药物过量用药研究中的应用;考虑了预测模型(包括机器学习)在预防和监测阿片类药物过量用药方面的潜力;并概述了在利用大数据和机器学习减少与阿片类药物使用相关危害方面存在的挑战和风险。未来需要多个机构合作开展研究,以改善阿片类药物使用障碍的现有干预措施、治疗方法和资源的覆盖范围。预测模型可以通过新颖的方法,如预测模型和模拟试验,将分层医学的概念引入公共卫生领域,以评估阿片类药物使用障碍的诊断和预后,预测治疗反应,并提供有针对性的治疗建议。

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