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通过设计实现包容性:医学知识中的社会和情境信息。

Achieving Inclusivity by Design: Social and Contextual Information in Medical Knowledge.

机构信息

Department of Clinical, Educational and Health Psychology, University College London, UK.

Institute for Intelligent Interacting Systems, Otto-von-Guericke University Magdeburg, Germany.

出版信息

Yearb Med Inform. 2022 Aug;31(1):228-235. doi: 10.1055/s-0042-1742509. Epub 2022 Jun 2.

Abstract

OBJECTIVES

To select, present, and summarize the most relevant papers published in 2020 and 2021 in the field of Knowledge Representation and Knowledge Management, Medical Vocabularies and Ontologies, with a particular focus on health inclusivity and bias.

METHODS

A broad search of the medical literature indexed in PubMed was conducted. The search terms 'ontology'/'ontologies' or 'medical knowledge management' for the dates 2020-2021 (search conducted November 26, 2021) returned 9,608 records. These were pre-screened based on a review of the titles for relevance to health inclusivity, bias, social and contextual factors, and health behaviours. Among these, 109 papers were selected for in-depth reviewing based on full text, from which 22 were selected for inclusion in this survey.

RESULTS

Selected papers were grouped into three themes, each addressing one aspect of the overall challenge for medical knowledge management. The first theme addressed the development of ontologies for social and contextual factors broadening the scope of health information. The second theme addressed the need for synthesis and translation of knowledge across historical disciplinary boundaries to address inequities and bias. The third theme encompassed a growing interest in the semantics of datasets used to train medical artificial intelligence systems and on how to ensure they are free of bias.

CONCLUSIONS

Medical knowledge management and semantic resources have much to offer efforts to tackle bias and enhance health inclusivity. Tackling inequities and biases requires relevant, semantically rich data, which needs to be captured and exchanged.

摘要

目的

选择、呈现并总结 2020 年和 2021 年在知识表示和知识管理、医学词汇和本体领域发表的最相关的论文,并特别关注健康包容性和偏见问题。

方法

对 PubMed 索引的医学文献进行了广泛搜索。使用“本体论/本体”或“医学知识管理”作为搜索词,搜索日期为 2020-2021 年(搜索于 2021 年 11 月 26 日进行),共返回 9608 条记录。根据标题对健康包容性、偏见、社会和上下文因素以及健康行为的相关性进行了预筛选。在此基础上,选择了 109 篇全文进行深入审查,其中 22 篇被选入本调查。

结果

所选论文分为三个主题,每个主题都涉及医学知识管理总体挑战的一个方面。第一个主题涉及社会和上下文因素本体的开发,拓宽了健康信息的范围。第二个主题涉及跨越历史学科边界综合和翻译知识以解决不平等和偏见的必要性。第三个主题包括对用于训练医学人工智能系统的数据集的语义越来越感兴趣,以及如何确保它们没有偏见。

结论

医学知识管理和语义资源在解决偏见和增强健康包容性方面有很大的优势。解决不平等和偏见问题需要相关的、语义丰富的数据,这些数据需要被捕获和交换。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a3d4/9719788/77038075b086/10-1055-s-0042-1742509-ihastings-1.jpg

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