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以患者为中心的知识图谱:当前方法、挑战及应用综述

Patient-centric knowledge graphs: a survey of current methods, challenges, and applications.

作者信息

Al Khatib Hassan S, Neupane Subash, Kumar Manchukonda Harish, Golilarz Noorbakhsh Amiri, Mittal Sudip, Amirlatifi Amin, Rahimi Shahram

机构信息

Department of Computer Science and Engineering, Mississippi State University, Starkville, MS, United States.

出版信息

Front Artif Intell. 2024 Oct 23;7:1388479. doi: 10.3389/frai.2024.1388479. eCollection 2024.

Abstract

Patient-Centric Knowledge Graphs (PCKGs) represent an important shift in healthcare that focuses on individualized patient care by mapping the patient's health information holistically and multi-dimensionally. PCKGs integrate various types of health data to provide healthcare professionals with a comprehensive understanding of a patient's health, enabling more personalized and effective care. This literature review explores the methodologies, challenges, and opportunities associated with PCKGs, focusing on their role in integrating disparate healthcare data and enhancing patient care through a unified health perspective. In addition, this review also discusses the complexities of PCKG development, including ontology design, data integration techniques, knowledge extraction, and structured representation of knowledge. It highlights advanced techniques such as reasoning, semantic search, and inference mechanisms essential in constructing and evaluating PCKGs for actionable healthcare insights. We further explore the practical applications of PCKGs in personalized medicine, emphasizing their significance in improving disease prediction and formulating effective treatment plans. Overall, this review provides a foundational perspective on the current state-of-the-art and best practices of PCKGs, guiding future research and applications in this dynamic field.

摘要

以患者为中心的知识图谱(PCKGs)代表了医疗保健领域的一项重要转变,它通过全面、多维度地映射患者的健康信息,专注于个性化的患者护理。PCKGs整合了各种类型的健康数据,为医疗保健专业人员提供对患者健康的全面理解,从而实现更个性化、更有效的护理。这篇文献综述探讨了与PCKGs相关的方法、挑战和机遇,重点关注它们在整合不同医疗数据以及通过统一的健康视角加强患者护理方面的作用。此外,本综述还讨论了PCKG开发的复杂性,包括本体设计、数据集成技术、知识提取以及知识的结构化表示。它强调了诸如推理、语义搜索和推理机制等先进技术在构建和评估PCKGs以获得可操作的医疗见解方面的重要性。我们进一步探讨了PCKGs在个性化医疗中的实际应用,强调了它们在改善疾病预测和制定有效治疗计划方面的重要性。总体而言,本综述提供了关于PCKGs当前技术水平和最佳实践的基础观点,为这一动态领域的未来研究和应用提供指导。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bd23/11558794/2472f8829563/frai-07-1388479-g001.jpg

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