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Using Pathfinder Networks to Discover Alignment between Expert and Consumer Conceptual Knowledge from Online Vaccine Content

机译:使用探路者网络从在线疫苗内容中发现专家和消费者概念知识之间的一致性

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摘要

This study demonstrates the use of distributed vector representations and Pathfinder Network Scaling (PFNETS) to represent online vaccine content created by health experts and by laypeople. By analyzing a target audience’s conceptualization of a topic, domain experts can develop targeted interventions to improve the basic health knowledge of consumers. The underlying assumption is that the content created by different groups reflects the mental organization of their knowledge. Applying automated text analysis to this content may elucidate differences between the knowledge structures of laypeople (heath consumers) and professionals (health experts). This paper utilizes vaccine information generated by laypeople and health experts to investigate the utility of this approach. We used an established technique from cognitive psychology, Pathfinder Network Scaling to infer the structure of the associational networks between concepts learned from online content using methods of distributional semantics. In doing so, we extend the original application of PFNETS to infer knowledge structures from individual participants, to infer the prevailing knowledge structures within communities of content authors. The resulting graphs reveal opportunities for public health and vaccination education experts to improve communication and intervention efforts directed towards health consumers. Our efforts demonstrate the feasibility of using an automated procedure to examine the manifestation of conceptual models within large bodies of free text, revealing evidence of conflicting understanding of vaccine concepts among health consumers as compared with health experts. Additionally, this study provides insight into the differences between consumer and expert abstraction of domain knowledge, revealing vaccine-related knowledge gaps that suggest opportunities to improve provider-patient communication.
机译:这项研究演示了如何使用分布式矢量表示和Pathfinder Network Scaling(PFNETS)来表示由健康专家和非专业人员创建的在线疫苗内容。通过分析目标受众对主题的概念,领域专家可以制定有针对性的干预措施,以提高消费者的基本健康知识。基本假设是不同群体创建的内容反映了他们知识的心理组织。将自动文本分析应用于此内容可以阐明非专业人士(健康消费者)和专业人员(健康专家)的知识结构之间的差异。本文利用非专业人士和健康专家生成的疫苗信息来研究这种方法的实用性。我们使用了来自认知心理学的既定技术,即Pathfinder Network Scaling,使用分布语义方法来推断从在线内容中学到的概念之间的关联网络结构。在此过程中,我们扩展了PFNETS的原始应用,以从单个参与者中推断知识结构,以推断内容作者社区中的主流知识结构。生成的图表为公共卫生和疫苗接种教育专家提供了改善针对健康消费者的交流和干预措施的机会。我们的努力证明了使用自动化程序检查大型自由文本中概念模型的表现的可行性,并揭示了与健康专家相比,健康消费者对疫苗概念的理解存在冲突的证据。此外,这项研究提供了对领域知识的消费者和专家抽象之间的区别的了解,揭示了与疫苗相关的知识空白,这些空白为改善提供者与患者之间的交流提供了机会。

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