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Learning Analytics and Digital Badges: Potential Impact on Student Retention in Higher Education

机译:学习分析和数字徽章:对高等教育中学生保留的潜在影响

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Learning analytics and digital badges are emerging research fields in educational science. They both show promise for enhancing student retention in higher education, where withdrawals prior to degree completion remain at about 30 % in Organisation for Economic Cooperation and Development member countries. This integrative review provides an overview of the theoretical literature as well as current practices and experience with learning analytics and digital badges in higher education with regard to their potential impact on student retention to enhance students’ first-year experience. Learning analytics involves measuring and analyzing dynamic student data in order to gain insight into students’ learning processes and optimize learning and teaching. One purpose of learning analytics is to construct predictive models to identify students who risk failing a course and thus are more likely to drop out of higher education. Personalized feedback provides students with information about academic support services, helping them to improve their skills and therefore be successful in higher education. Digital badges are symbols for certifying knowledge, skills, and competencies on web-based platforms. The intention is to encourage student persistence by motivating them, recognizing their generic skills, signaling their achievements, and capturing their learning paths. This article proposes a model that synthesizes learning analytics, digital badges, and generic skills such as academic competencies. The main idea is that generic skills can be represented as digital badges, which can be used for learning analytics algorithms to predict student success and to provide students with personalized feedback for improvement. Moreover, this model may serve as a platform for discussion and further research on learning analytics and digital badges to increase student retention in higher education.
机译:学习分析和数字徽章是教育科学中新兴的研究领域。它们都显示出提高高等教育留学生率的希望,在经济合作与发展组织成员国中,学士学位完成前的退学率仍约为30%。这份综合性综述概述了理论文献以及高等教育中的学习分析和数字徽章的当前实践和经验,以及它们对留学生的潜在影响,以增强学生的第一年经验。学习分析涉及测量和分析动态学生数据,以便深入了解学生的学习过程并优化学与教。学习分析的目的之一是构建预测模型,以识别有可能无法通过课程并因此更有可能退出高等教育的学生。个性化的反馈为学生提供有关学术支持服务的信息,帮助他们提高技能,从而在高等教育中取得成功。数字徽章是用于证明基于Web的平台上的知识,技能和能力的符号。目的是通过激发学生的积极性,认识他们的通用技能,传达他们的成就并捕捉他们的学习途径来鼓励他们坚持不懈。本文提出了一个模型,该模型综合了学习分析,数字徽章和通用技能(例如学术能力)。主要思想是通用技能可以表示为数字徽章,可以用于学习分析算法来预​​测学生的成功并为学生提供个性化的反馈以进行改进。此外,该模型可以作为讨论和进一步研究学习分析和数字徽章的平台,以增加学生在高等教育中的保留率。

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