支持非传染性疾病决策的数据分析:范围审查。

Giorgos Dritsakis, Ioannis Gallos, Maria-Elisavet Psomiadi, Angelos Amditis, Dimitra Dionysiou
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引用次数: 0

摘要

背景:利用大量医疗保健数据和新技术(如人工智能)优化公共卫生政策制定的循证方法的需求日益增长:本综述旨在探讨专为制定非传染性疾病 (NCD) 政策而设计的数据分析工具及其实施情况:方法:在PubMed和IEEE数据库中搜索过去10年发表的文章,然后进行范围界定综述:结果:对九篇文章进行了综述,这些文章介绍了七种数据分析工具,旨在为制定非传染性疾病政策提供信息。这些工具包含描述性和预测性分析。一些工具的设计包括决策支持建议,但尚未发表应用指令性分析的试点研究。这些工具在各种情况下试用,癌症是研究最少的情况。工具的实施包括使用案例、试点或有决策者参与的评估研讨会。然而,我们的研究结果表明,决策者在现实世界中对分析方法的使用非常有限,这与之前的研究结果一致:结论:尽管存在针对不同目的和条件设计的工具,但数据分析并未广泛用于支持非传染性疾病的政策制定。然而,本综述展示了数据分析在支持政策制定方面的价值和潜在用途。根据研究结果,我们向开发数字工具以支持公共卫生决策的研究人员提出了建议。这些发现还将为欧盟资助的研究项目 ONCODIR 提供参考,该项目正在开发一个预防结直肠癌的政策分析仪表板,作为综合平台的一部分。
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Data Analytics to Support Policy Making for Noncommunicable Diseases: Scoping Review.

Background: There is an emerging need for evidence-based approaches harnessing large amounts of health care data and novel technologies (such as artificial intelligence) to optimize public health policy making.

Objective: The aim of this review was to explore the data analytics tools designed specifically for policy making in noncommunicable diseases (NCDs) and their implementation.

Methods: A scoping review was conducted after searching the PubMed and IEEE databases for articles published in the last 10 years.

Results: Nine articles that presented 7 data analytics tools designed to inform policy making for NCDs were reviewed. The tools incorporated descriptive and predictive analytics. Some tools were designed to include recommendations for decision support, but no pilot studies applying prescriptive analytics have been published. The tools were piloted with various conditions, with cancer being the least studied condition. Implementation of the tools included use cases, pilots, or evaluation workshops that involved policy makers. However, our findings demonstrate very limited real-world use of analytics by policy makers, which is in line with previous studies.

Conclusions: Despite the availability of tools designed for different purposes and conditions, data analytics is not widely used to support policy making for NCDs. However, the review demonstrates the value and potential use of data analytics to support policy making. Based on the findings, we make suggestions for researchers developing digital tools to support public health policy making. The findings will also serve as input for the European Union-funded research project ONCODIR developing a policy analytics dashboard for the prevention of colorectal cancer as part of an integrated platform.

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