从社会算法的角度探讨未来教育和融合教育的社会计算方法

Young-Hoon Kim, Kyoung-Eun Yang
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引用次数: 0

摘要

目的:探讨人工智能在人文社会科学中应用计算与算法的趋同教育和未来教育前景。这些算法被称为社会算法。方法:本文从教育的角度考虑社会算法的社会科学含义,研究与在教育实践中使用这些算法相关的问题和主题。结果:社会算法的讨论明确地侧重于教育实践的例子和案例研究,而不是理论和技术。作为探索社会算法潜力的具体问题,本文提出了社会算法的发展过程、社会模型构建的演绎-归纳方法和地理空间算法。它还建议为与社会计算相关的教育实践提供一个更全面的地理空间数据研究主题列表,包括集体智能、社区地图、数字地图内容(即Google Earth)、进化算法和地理空间数据的数字素养。总结:本文强调了一些重要的发现,以及将这些发现融入到社交算法和计算工作中的方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Exploring Social Computing Approaches for Future Education and Convergence Education with Social Algorithm Perspectives
Purpose: This paper discusses convergence education and future education perspectives of computing and algorithms applied to humanistic and social sciences with artificial intelligence. These algorithms are referred to as social algorithms. Methods: This paper considers the social scientific implications of social algorithms from an educational perspective, examining the issues and topics associated with the use of these algorithms for educational practices. Results: This discussion of social algorithms explicitly focuses on examples and case studies of educational practices rather than on theory and techniques. As specific issues for exploring the potential of social algorithms, this paper proposes social algorithm development processes, deductive-inductive approaches to social model building, and geospatial algorithms. It also suggests a more comprehensive list of geospatial data research topics for educational practices associated with social computing, including collective intelligence, community mapping, digital mapping content (i.e. Google Earth), evolutionary algorithms, and digital literacy of geospatial data. Conclusion: Some significant findings are highlighted along with ways that these can be infused with work on social algorithms and computing.
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