Impact of automated short-answer marking on students' learning: IndusMarker, a case study

R. Siddiqi
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引用次数: 4

Abstract

IndusMarker is an automated short-answer marking system based on structure-editing and structure-matching rather than extensive use of linguistic features analysis. Since IndusMarker cannot guarantee 100% human-system agreement rate, the use of IndusMarker has therefore been limited to conducting practice tests. It was expected that such a use of IndusMarker will lead to improvements in student learning and instructor-student interactions. The main aim of this paper is to verify these claims. The results indicate that such a use of IndusMarker leads to improvements in both student learning and instructor-student interactions. In addition, IndusMarker is also shown to give reasonably high human-system agreement rates even after the removal of all linguistic analysis features from the software.
自动答题对学生学习的影响:industrusmarker的案例研究
industrusmarker是一个基于结构编辑和结构匹配的自动答题系统,而不是广泛使用语言特征分析。由于IndusMarker不能保证100%的人-系统一致性,因此,IndusMarker的使用仅限于进行实践测试。预计这样使用industrusmarker将导致学生学习和师生互动的改善。本文的主要目的是验证这些说法。结果表明,这样的使用IndusMarker导致学生学习和师生互动的改善。此外,即使在从软件中删除所有语言分析功能之后,industrusmarker也显示出相当高的人类系统一致性率。
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