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首页> 外文期刊>Frontiers in Psychology >Challenges and Future Directions of Big Data and Artificial Intelligence in Education
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Challenges and Future Directions of Big Data and Artificial Intelligence in Education

机译:教育中大数据和人工智能的挑战与未来方向

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摘要

We discuss the new challenges and directions facing the use of big data and artificial intelligence (AI) in education research, policy-making, and industry. In recent years, applications of big data and AI in education have made significant headways. This highlights a novel trend in leading-edge educational research. The convenience and embeddedness of data collection within educational technologies, paired with computational techniques have made the analyses of big data a reality. We are moving beyond proof-of-concept demonstrations and applications of techniques, and are beginning to see substantial adoption in many areas of education. The key research trends in the domains of big data and AI are associated with assessment, individualized learning, and precision education. Model-driven data analytics approaches will grow quickly to guide the development, interpretation, and validation of the algorithms. However, conclusions from educational analytics should, of course, be applied with caution. At the education policy level, the government should be devoted to supporting lifelong learning, offering teacher education programs, and protecting personal data. With regard to the education industry, reciprocal and mutually beneficial relationships should be developed in order to enhance academia-industry collaboration. Furthermore, it is important to make sure that technologies are guided by relevant theoretical frameworks and are empirically tested. Lastly, in this paper we advocate an in-depth dialogue between supporters of “cold” technology and “warm” humanity so that it can lead to greater understanding among teachers and students about how technology, and specifically, the big data explosion and AI revolution can bring new opportunities (and challenges) that can be best leveraged for pedagogical practices and learning.
机译:我们讨论了在教育研究,政策制定和工业中使用大数据和人工智能(AI)面临的新挑战和方向。近年来,大数据和AI在教育中的应用已经取得了重要的头部。这突出了前沿教育研究的新趋势。教育技术中数据收集的便利性和嵌入性,与计算技术配对已经进行了大数据的现实。我们正在超越概念验证演示和技术应用,并且开始在许多教育领域看到大量采用。大数据和AI领域的关键研究趋势与评估,个性化学习和精密教育有关。模型驱动数据分析方法将快速增长以指导算法的开发,解释和验证。然而,当然,教育分析的结论应该谨慎使用。在教育政策层面,政府应致力于支持终身学习,提供教师教育计划,并保护个人数据。关于教育行业,应制定互惠和互利关系,以提高学术界合作。此外,重要的是要确保技术是由相关的理论框架指导的,并且经验化测试。最后,在本文中,我们主张“冷”技术的支持者与“温暖”人类之间的深入对话,以便在教师和学生中可以更大了解技术,具体而言,大数据爆炸和艾革命可以为教学实践和学习提供最佳杠杆的新机遇(和挑战)。

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