用AI分析体育研究文献,找出热点与未来方向
AI and analytics in sports: Leveraging BERTopic to map the past and chart the future
- 用BERTopic模型从204篇论文中挖掘隐藏研究主题
- 发现性能建模、健康监测、社交媒体情绪分析是主要研究方向
- 为体育科技研究者提供可借鉴的未来探索路径
本研究旨在绘制人工智能(AI)、数据分析与体育交叉领域的学术文献图谱,并基于洞察为未来研究提供指引。通过系统文献综述(SLR)和PRISMA协议,筛选出2002至2024年间发表的204篇相关期刊论文,利用BERTopic主题建模技术提取潜在研究主题。研究识别出当前主要研究领域包括:性能建模、身心健康管理、社交媒体情感分析及战术追踪。每个主题均从显著性、代表性研究和关键术语关联性等方面进行深入分析,进而勾勒出未来有潜力的研究方向。研究为学术界与体育管理者提供了人工智能与数据分析在体育领域变革性影响的洞见,具有方法论创新价值。首次将BERTopic应用于体育研究文献分析,拓展了该领域的研究工具箱。
原文摘要 · Abstract (English)
Purpose: The purpose of this study is to map the body of scholarly literature at the intersection of artificial intelligence (AI), analytics and sports and thereafter, leverage the insights generated to chart guideposts for future research. Design/methodology/approach: The study carries out systematic literature review (SLR). Preferred Reporting Items for Systematic Reviews and Meta-Analysis (PRISMA) protocol is leveraged to identify 204 journal articles pertaining to utilization of AI and analytics in sports published during 2002 to 2024. We follow it up with extraction of the latent topics from sampled articles by leveraging the topic modelling technique of BERTopic. Findings: The study identifies the following as predominant areas of extant research on usage of AI and analytics in sports: performance modelling, physical and mental health, social media sentiment analysis, and tactical tracking. Each extracted topic is further examined in terms of its relative prominence, representative studies, and key term associations. Drawing on these insights, the study delineates promising avenues for future inquiry. Research limitations/implications: The study offers insights to academicians and sports administrators on transformational impact of AI and analytics in sports. Originality/value: The study introduces BERTopic as a novel approach for extracting latent structures in sports research, thereby advancing both scholarly understanding and the methodological toolkit of the field.
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