AI in learning

IF 2.8 3区 心理学 Q1 PSYCHOLOGY, MULTIDISCIPLINARY
H. Niemi
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引用次数: 9

Abstract

This special issue raises two thematic questions: (1) How will AI change learning in the future and what role will human beings play in the interaction with machine learning, and (2), What can we learn from the articles in this special issue for future research? These questions are reflected in the frame of the recent discussion of human and machine learning. AI for learning provides many applications and multimodal channels for supporting people in cognitive and non-cognitive task domains. The articles in this special issue evidence that agency, engagement, self-efficacy, and collaboration are needed in learning and working with intelligent tools and environments. The importance of social elements is also clear in the articles. The articles also point out that the teacher’s role in digital pedagogy primarily involves facilitating and coaching. AI in learning has a high potential, but it also has many limitations. Many worries are linked with ethical issues, such as biases in algorithms, privacy, transparency, and data ownership. This special issue also highlights the concepts of explainability and explicability in the context of human learning. We need much more research and research-based discussion for making AI more trustworthy for users in learning environments and to prevent misconceptions.
学习中的人工智能
本期特刊提出了两个主题问题:(1)未来人工智能将如何改变学习,人类将在与机器学习的交互中扮演什么角色;(2)我们可以从本期特刊的文章中学到什么,以供未来的研究。这些问题反映在最近关于人类和机器学习的讨论框架中。人工智能学习为支持认知和非认知任务领域的人们提供了许多应用和多模式渠道。本期特刊中的文章证明,在学习和使用智能工具和环境时需要代理、参与、自我效能和协作。社会因素的重要性在文章中也很明显。文章还指出,教师在数字教学中的作用主要包括促进和指导。人工智能在学习方面有很大的潜力,但也有很多局限性。许多担忧都与道德问题有关,比如算法、隐私、透明度和数据所有权方面的偏见。本期特刊还强调了人类学习背景下的可解释性和可解释性的概念。我们需要更多的研究和基于研究的讨论,以使人工智能在学习环境中更值得用户信赖,并防止误解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of Pacific Rim Psychology
Journal of Pacific Rim Psychology PSYCHOLOGY, MULTIDISCIPLINARY-
CiteScore
4.00
自引率
0.00%
发文量
12
审稿时长
20 weeks
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