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透过人工智能的视角探索知识谦逊:热门术语、特征和预测模型。

Exploring intellectual humility through the lens of artificial intelligence: Top terms, features and a predictive model.

机构信息

School of Computing and Information Systems, The University of Melbourne, Australia.

Department of Philosophy, Macquarie University, Australia.

出版信息

Acta Psychol (Amst). 2023 Aug;238:103979. doi: 10.1016/j.actpsy.2023.103979. Epub 2023 Jul 17.

DOI:10.1016/j.actpsy.2023.103979
PMID:37467653
Abstract

Intellectual humility (IH) is often conceived as the recognition of, and appropriate response to, your own intellectual limitations. As far as we are aware, only a handful of studies look at interventions to increase IH - e.g. through journalling - and no study so far explores the extent to which having high or low IH can be predicted. This paper uses machine learning and natural language processing techniques to develop a predictive model for IH and identify top terms and features that indicate degrees of IH. We trained our classifier on the dataset from an existing psychological study on IH, where participants were asked to journal their experiences with handling social conflicts over 30 days. We used Logistic Regression (LR) to train a classifier and the Linguistic Inquiry and Word Count (LIWC) dictionaries for feature selection, picking out a range of word categories relevant to interpersonal relationships. Our results show that people who differ on IH do in fact systematically express themselves in different ways, including through expression of emotions (i.e., positive, negative, and specifically anger, anxiety, sadness, as well as the use of swear words), use of pronouns (i.e., first person, second person, and third person) and time orientation (i.e., past, present, and future tenses). We discuss the importance of these findings for IH and the value of using such techniques for similar psychological studies, as well as some ethical concerns and limitations with the use of such semi-automated classifications.

摘要

理性谦逊(IH)通常被理解为认识到并对自己的智力局限性做出适当反应。据我们所知,只有少数研究关注通过写日记等方式来提高 IH,而且到目前为止,还没有研究探讨 IH 的高低程度可以在多大程度上被预测。本文使用机器学习和自然语言处理技术来开发 IH 的预测模型,并确定表明 IH 程度的顶级术语和特征。我们在现有的关于 IH 的心理学研究数据集上训练我们的分类器,在该研究中,参与者被要求在 30 天内记录他们处理社交冲突的经历。我们使用逻辑回归(LR)来训练分类器,并使用语言探究词频(LIWC)词典进行特征选择,挑选出与人际关系相关的一系列词汇类别。我们的结果表明,IH 不同的人确实会以不同的方式表达自己,包括表达情绪(即积极、消极,特别是愤怒、焦虑、悲伤,以及使用脏话)、使用代词(即第一人称、第二人称和第三人称)和时间取向(即过去、现在和未来时态)。我们讨论了这些发现对 IH 的重要性,以及为类似的心理学研究使用这种技术的价值,以及使用这种半自动分类的一些伦理问题和限制。

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Acta Psychol (Amst). 2023 Aug;238:103979. doi: 10.1016/j.actpsy.2023.103979. Epub 2023 Jul 17.
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