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基于BERT和大语言模型的自杀检测、预防及风险评估研究:一项系统综述

Evaluating of BERT-based and Large Language Mod for Suicide Detection, Prevention, and Risk Assessment: A Systematic Review.

作者信息

Levkovich Inbar, Omar Mahmud

机构信息

Tel-Hai Academic College, 2208, Qiryat Shemona, Upper Galilee, Israel.

Faculty of Medicine, Tel-Aviv University, Tel-Aviv, Israel.

出版信息

J Med Syst. 2024 Dec 30;48(1):113. doi: 10.1007/s10916-024-02134-3.

Abstract

Suicide constitutes a public health issue of major concern. Ongoing progress in the field of artificial intelligence, particularly in the domain of large language models, has played a significant role in the detection, risk assessment, and prevention of suicide. The purpose of this review was to explore the use of LLM tools in various aspects of suicide prevention. PubMed, Embase, Web of Science, Scopus, APA PsycNet, Cochrane Library, and IEEE Xplore-for studies published were systematically searched for articles published between January 1, 2018, until April 2024. The 29 reviewed studies utilized LLMs such as GPT, Llama, and BERT. We categorized the studies into three main tasks: detecting suicidal ideation or behaviors, assessing the risk of suicidal ideation, and preventing suicide by predicting attempts. Most of the studies demonstrated that these models are highly efficient, often outperforming mental health professionals in early detection and prediction capabilities. Large language models demonstrate significant potential for identifying and detecting suicidal behaviors and for saving lives. Nevertheless, ethical problems still need to be examined and cooperation with skilled professionals is essential.

摘要

自杀是一个备受关注的公共卫生问题。人工智能领域,尤其是大语言模型领域的不断发展,在自杀检测、风险评估和预防方面发挥了重要作用。本综述的目的是探讨大语言模型工具在自杀预防各个方面的应用。我们系统检索了PubMed、Embase、科学网、Scopus、美国心理学会心理学数据库、考克兰图书馆和IEEE Xplore,以查找2018年1月1日至2024年4月期间发表的研究文章。所审查的29项研究使用了GPT、Llama和BERT等大语言模型。我们将这些研究分为三个主要任务:检测自杀意念或行为、评估自杀意念风险以及通过预测自杀企图来预防自杀。大多数研究表明,这些模型效率很高,在早期检测和预测能力方面往往优于心理健康专业人员。大语言模型在识别和检测自杀行为以及拯救生命方面显示出巨大潜力。然而,伦理问题仍需审视,与专业技术人员的合作至关重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/22e2/11685247/57c3db645eb2/10916_2024_2134_Fig1_HTML.jpg

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