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Developing pathways for community-led research with big data: a content analysis of stakeholder interviews

机译:具有大数据的社区主导研究的发展途径:利益相关者访谈的内容分析

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BACKGROUND:Big data (BD) informs nearly every aspect of our lives and, in health research, is the foundation for basic discovery and its tailored translation into healthcare. Yet, as new data resources and citizen/patient-led science movements offer sites of innovation, segments of the population with the lowest health status are least likely to engage in BD research either as intentional data contributors or as 'citizen/community scientists'. Progress is being made to include a more diverse spectrum of research participants in datasets and to encourage inclusive and collaborative engagement in research through community-based participatory research approaches, citizen/patient-led research pilots and incremental research policy changes. However, additional evidence-based policies are needed at the organisational, community and national levels to strengthen capacity-building and widespread adoption of these approaches to ensure that the translation of research is effectively used to improve health and health equity. The aims of this study are to capture uses of BD ('use cases') from the perspectives of community leaders and to identify needs and barriers for enabling community-led BD science.METHODS:We conducted a qualitative content analysis of semi-structured key informant interviews with 16 community leaders.RESULTS:Based on our analysis findings, we developed a BD Engagement Model illustrating the pathways and various forces for and against community engagement in BD research.CONCLUSIONS:The goal of our Model is to promote concrete, transparent dialogue between communities and researchers about barriers and facilitators of authentic community-engaged BD research. Findings from this study will inform the subsequent phases of a multi-phased project with the ultimate aims of organising fundable frameworks and identifying policy options to support BD projects within community settings.
机译:背景:大数据(BD)几乎通知我们生活的各个方面,以及在卫生研究中,是基础发现的基础及其量身定制的医疗保健。然而,随着新的数据资源和公民/患者LED科学运动提供创新的网站,健康状况最低的人口的分部最不可能作为有意的数据贡献者或“公民/社区科学家”中的BD研究。正在进行进展,包括在数据集中更多样化的研究参与者,并通过基于社区的参与性研究方法,公民/患者领导的研究飞行员和增量研究政策变化来鼓励在研究中进行包容和协作参与。但是,在组织,社区和国家层面需要额外的循证政策,以加强能力建设和广泛采用这些方法,以确保研究的翻译有效地用于改善健康和健康股权。本研究的目的是捕获来自社区领导者的观点的BD(“用例”)的用途,并确定支持社区主导的BD Science的需求和障碍。方法:我们对半结构钥匙进行了定性的内容分析与16个社区领导的通知访谈。结果:基于我们的分析结果,我们开发了一个BD参与模型,说明了BD Research中的途径和各种力量和针对社区参与的武力.Conclusions:我们模型的目标是促进混凝土,透明对话社区与研究人员之间的障碍与促进者之间的障碍和促进者。本研究的调查结果将通知随后的多相项目阶段,并达到组织可调框架和识别政策选项,以支持社区设置内的BD项目。

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