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Linguistically-Driven Strategy for Concept Prerequisites Learning on Italian

机译:语言驱动的概念前提条件学习意大利语

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摘要

We present a new concept prerequisite learning method for Learning Object (LO) ordering that exploits only linguistic features extracted from textual educational resources. The method was tested in a cross- and in-domain scenario both for Italian and English. Additionally, we performed experiments based on a incremental training strategy to study the impact of the training set size on the classifier performances. The paper also introduces ITA-PREREQ, to the best of our knowledge the first Italian dataset annotated with prerequisite relations between pairs of educational concepts, and describe the automatic strategy devised to build it.
机译:我们提出了一种新的概念先决条件学习方法,用于学习对象(LO)排序,该方法仅利用从文本教育资源中提取的语言特征。该方法已在意大利语和英语的跨域和跨域场景中进行了测试。此外,我们基于增量训练策略进行了实验,以研究训练集大小对分类器性能的影响。本文还介绍了ITA-PREREQ,据我们所知,第一个意大利语数据集注有成对的教育概念之间的先决条件关系,并描述了构建它的自动策略。

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