A Deep Learning Approach to Concept Maps Similarity

Antonella Gabriella Montanaro,Filippo Sciarrone,Marco Temperini

2022 26th International Conference Information Visualisation (IV)(2022)

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摘要
Concept maps are graphic tools to organize, represent and share knowledge. In particular, a concept map can explicitly express the knowledge of a person or group, about a given domain of interest. Concept maps are used effectively to support learning of any topic, at any level: from Primary School to University, and to professional/vocational training, it can stimulate and unveil the occurrence of meaningful learning. In an educational context, having the possibility to compare Concept Maps coming from different students, also by means of an automated computation of map similarity, can reveal to be a great asset for a teacher. And this is so much more true when the number of students is very high, like in Massive Open Online Course. Here we propose a similarity measure based on two deep learning techniques that produce embeddings of the single structures that make up a concept map. We also report about a preliminary experiment, having encouraging results.
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关键词
Concept Map,Deep Learning,Embeddings,Similarity Measure
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