Supporting the monitoring of the digital capacity of schools through optimal shortening of the SELFIE tool

IF 8.9 1区 教育学 Q1 COMPUTER SCIENCE, INTERDISCIPLINARY APPLICATIONS Computers & Education Pub Date : 2023-09-28 DOI:10.1016/j.compedu.2023.104938
Romina Cachia , Artur Pokropek , Nikoleta Giannoutsou
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Abstract

Data-based decision-making could be vital to improving learning and teaching. Digital education has led to an upsurge in the amount of data that researchers and key stakeholders can utilise to enhance learning. In this article, we present an optimal shortening of the European Commission's SELFIE tool, an instrument used to measure the digital capacity of schools. SELFIE is an established and scientifically validated tool that has been used by over 5.5 million users (September 2023) in 80 different countries. In this paper, we propose two shorter measurement instruments based on the original SELFIE tool that could be used when the original scale needs to be shortened due to time and organisational limitations, without considerable loss in predictive power in relation to the digital capacity measurement construct: (1) a midi-SELFIE consisting of 16 items and (2) a mini-SELFIE consisting of 8 items. Using existing data, we shorten the instruments through psychometric analysis using Item Response Theory models. We use three cases to show the uses of the shortened versions and explore their validity compared to the complete instrument. For the first case, we offer a longitudinal analysis of the digital capacity dynamic for selected schools. In the second case, we look at regional differences in Portugal's digital capacities based on an almost full sample of the country. Finally, in the third case, we use a representative sample from Spain to investigate the relationship between digital capacity and time dedicated by teachers to use digital technology during lessons. The three instruments (full, midi and mini) provide similar results, suggesting that the shortened versions of SELFIE would be a reliable alternative to the complete tool for specific purposes, such as monitoring the development of the digital capacity of the school and policy monitoring.

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通过优化缩短自拍工具,支持监测学校的数码能力
基于数据的决策对改善学习和教学至关重要。数字教育导致研究人员和主要利益相关者可以用来增强学习的数据量激增。在这篇文章中,我们提出了欧盟委员会SELFIE工具的最佳缩短,该工具用于衡量学校的数字能力。SELFIE是一个经过科学验证的既定工具,已被80个不同国家的550多万用户使用(2023年9月)。在本文中,我们提出了两种基于原始SELFIE工具的较短测量工具,当由于时间和组织限制需要缩短原始量表时,可以使用该工具,而不会对数字能力测量结构的预测能力造成相当大的损失:(1)由16个项目组成的中型SELFIE和(2)由8个项目构成的小型SELFIE。利用现有数据,我们使用项目反应理论模型通过心理测量分析缩短工具。我们使用三个案例来展示缩短版本的使用情况,并探讨与完整工具相比它们的有效性。对于第一种情况,我们对选定学校的数字能力动态进行了纵向分析。在第二种情况下,我们基于葡萄牙几乎全部的样本来研究葡萄牙数字能力的地区差异。最后,在第三种情况下,我们使用来自西班牙的代表性样本来调查教师在课堂上使用数字技术的时间与数字能力之间的关系。这三种工具(full、midi和mini)提供了类似的结果,表明缩短版的SELFIE将是用于特定目的的完整工具的可靠替代品,例如监测学校数字能力的发展和政策监测。
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
Computers & Education
Computers & Education 工程技术-计算机:跨学科应用
CiteScore
27.10
自引率
5.80%
发文量
204
审稿时长
42 days
期刊介绍: Computers & Education seeks to advance understanding of how digital technology can improve education by publishing high-quality research that expands both theory and practice. The journal welcomes research papers exploring the pedagogical applications of digital technology, with a focus broad enough to appeal to the wider education community.
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