e-Learning数字化可及性审计的基础算法与开放数据

IF 0.7 Q4 EDUCATION, SCIENTIFIC DISCIPLINES Voprosy Obrazovaniya-Educational Studies Moscow Pub Date : 2023-06-30 DOI:10.17323/1814-9545-2023-2-282-308
Екатерина Косова
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引用次数: 0

摘要

改进评估电子学习数字可及性的方法是提高现代教育服务质量的重要条件。为了开发一种审计数字可及性的基本算法,对173种在线学习资源(56门数学大规模开放在线课程、65门计算机科学与编程在线课程、22门数学、计算机科学与编程在线课程、30门心肺复苏在线课程)的专家数据进行了系统化分析。本文讨论了专家数据的收集方法和过程、数据集的内容、电子学习内容可及性测试结果的实证分析过程。所提出的数字可及性审计算法的结构包括以下几个阶段:准备考试;数字可及性和数据集生成的自动和专家测试;数据分析;就改善数码无障碍作出最后结论和建议。进一步使用审计的基本算法和数据集,可有助于发展无障碍教育、培训电子学习专家以及加强教育领域的监管和控制机制。
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Base Algorithm and Open Data of Auditing the e-Learning Digital Accessibility
Enhancement the methodology for assessing the digital accessibility of e-learning is an important condition for improving the quality of modern educational services. In order to develop a basic algorithm for auditing digital accessibility, the expert data from 173 e-learning resources (56 Massive Open Online Courses (MOOCs) in mathematics, 65 MOOCs in computer science and programming, 22 intra-university online courses in mathematics, computer science and programming, 30 MOOCs in cardiopulmonary resuscitation) were systematized and analyzed. The paper considers: methods and process of collecting expert data, the content of data sets, the procedure for empirical analysis of the results of testing the e-learning content accessibility. The structure of the proposed algorithm of auditing the digital accessibility includes the following stages: preparation for examination; automatic and expert testing of digital accessibility and generation of data sets; data analysis; formulating a final conclusion and recommendations for improving digital accessibility. Further use of the basic algorithm and data sets of audits can be useful for the development of accessible education, the training of e-learning specialists, and the strengthening of regulatory and control mechanisms in the field of education.
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来源期刊
Voprosy Obrazovaniya-Educational Studies Moscow
Voprosy Obrazovaniya-Educational Studies Moscow EDUCATION, SCIENTIFIC DISCIPLINES-
CiteScore
2.20
自引率
42.90%
发文量
23
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