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从老年人的日常语言使用中检测自恋:一种机器学习方法。

Detecting Narcissism From Older Adults' Daily Language Use: A Machine Learning Approach.

机构信息

Department of Human Development and Family Sciences, The University of Texas at Austin, Austin, Texas, USA.

Institute for Social Research, University of Michigan, Ann Arbor, Michigan, USA.

出版信息

J Gerontol B Psychol Sci Soc Sci. 2023 Aug 28;78(9):1493-1500. doi: 10.1093/geronb/gbad061.

Abstract

OBJECTIVES

Narcissism has been associated with poorer quality social connections in late life, yet less is known about how narcissism is associated with older adults' daily social interactions. This study explored the associations between narcissism and older adults' language use throughout the day.

METHODS

Participants aged 65-89 (N = 281) wore electronically activated recorders which captured ambient sound for 30 s every 7 min across 5-6 days. Participants also completed the Narcissism Personality Inventory-16 scale. We used Linguistic Inquiry and Word Count to extract 81 linguistic features from sound snippets and applied a supervised machine learning algorithm (random forest) to evaluate the strength of links between narcissism and each linguistic feature.

RESULTS

The random forest model showed that the top 5 linguistic categories that displayed the strongest associations with narcissism were first-person plural pronouns (e.g., we), words related to achievement (e.g., win, success), to work (e.g., hiring, office), to sex (e.g., erotic, condom), and that signal desired state (e.g., want, need).

DISCUSSION

Narcissism may be demonstrated in everyday life via word use in conversation. More narcissistic individuals may have poorer quality social connections because their communication conveys an emphasis on self and achievement rather than affiliation or topics of interest to the other party.

摘要

目的

自恋与晚年较差的社会关系有关,但人们对自恋如何与老年人的日常社交互动有关知之甚少。本研究探讨了自恋与老年人全天语言使用之间的关联。

方法

参与者年龄在 65-89 岁之间(N=281),佩戴电子激活记录器,在 5-6 天内每 7 分钟记录 30 秒的环境声音。参与者还完成了自恋人格量表-16 量表。我们使用语言查询和词汇计数从声音片段中提取 81 种语言特征,并应用监督机器学习算法(随机森林)来评估自恋与每种语言特征之间联系的强度。

结果

随机森林模型显示,与自恋关系最强的前 5 个语言类别是第一人称复数代词(例如,我们)、与成就相关的词(例如,赢,成功)、与工作相关的词(例如,招聘,办公室)、与性相关的词(例如,色情,避孕套)以及表示期望状态的词(例如,想要,需要)。

讨论

自恋可能通过对话中的用词在日常生活中表现出来。更自恋的人可能社交关系较差,因为他们的沟通强调自我和成就,而不是情感联系或对方感兴趣的话题。

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