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应用于精神疾病检测的自然语言处理:一篇叙述性综述。

Natural language processing applied to mental illness detection: a narrative review.

作者信息

Zhang Tianlin, Schoene Annika M, Ji Shaoxiong, Ananiadou Sophia

机构信息

Department of Computer Science, The University of Manchester, National Centre for Text Mining, Manchester, UK.

Department of Computer Science, Aalto University, Helsinki, Finland.

出版信息

NPJ Digit Med. 2022 Apr 8;5(1):46. doi: 10.1038/s41746-022-00589-7.

Abstract

Mental illness is highly prevalent nowadays, constituting a major cause of distress in people's life with impact on society's health and well-being. Mental illness is a complex multi-factorial disease associated with individual risk factors and a variety of socioeconomic, clinical associations. In order to capture these complex associations expressed in a wide variety of textual data, including social media posts, interviews, and clinical notes, natural language processing (NLP) methods demonstrate promising improvements to empower proactive mental healthcare and assist early diagnosis. We provide a narrative review of mental illness detection using NLP in the past decade, to understand methods, trends, challenges and future directions. A total of 399 studies from 10,467 records were included. The review reveals that there is an upward trend in mental illness detection NLP research. Deep learning methods receive more attention and perform better than traditional machine learning methods. We also provide some recommendations for future studies, including the development of novel detection methods, deep learning paradigms and interpretable models.

摘要

如今,精神疾病极为普遍,是人们生活中痛苦的主要根源,对社会健康和福祉产生影响。精神疾病是一种复杂的多因素疾病,与个体风险因素以及各种社会经济、临床关联因素相关。为了捕捉包含在社交媒体帖子、访谈和临床记录等各种各样文本数据中所表达的这些复杂关联,自然语言处理(NLP)方法在赋能主动式精神卫生保健和协助早期诊断方面显示出了有前景的进展。我们对过去十年中使用NLP进行精神疾病检测的研究进行了叙述性综述,以了解方法、趋势、挑战和未来方向。总共纳入了来自10467条记录中的399项研究。该综述表明,精神疾病检测的NLP研究呈上升趋势。深度学习方法受到更多关注,并且比传统机器学习方法表现更好。我们还为未来的研究提供了一些建议,包括开发新颖的检测方法、深度学习范式和可解释模型。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1879/8993841/7757ddd968ce/41746_2022_589_Fig1_HTML.jpg

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