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Automatic Generation of Learning Objects Using Text Summarizer Based on Deep Learning Models

Authors :
Leandro Massetti Ribeiro Oliveira
Antonio José G. Busson
Carlos de Salles S. Neto
Gabriel N. P. dos Santos
Sérgio Colcher
Source :
Anais do XXXII Simpósio Brasileiro de Informática na Educação (SBIE 2021).
Publication Year :
2021
Publisher :
Sociedade Brasileira de Computação - SBC, 2021.

Abstract

A learning object (LO) is an entity, digital or not, that can be used and reused or referenced during a technological support process for teaching and learning. Despite mainly being multimedia, with audio, video, text and images synchronized with each other, LOs can help disseminate knowledge even only in educational texts. However, creating these texts can be costly in time and effort, creating the need to seek new ways to generate this content. This article presents a solution for the generation of text-based LOs generated through summaries supported by Deep Learning models. The present work was evaluated in a supervised experiment in which volunteers rate computer educational texts generated by three types of summarizers. The results presented are positive and allow us to compare the performance of summaries as LO generators in text format. The findings also suggest that using post-processing in the output of models can improve the readability of generated content.

Details

Database :
OpenAIRE
Journal :
Anais do XXXII Simpósio Brasileiro de Informática na Educação (SBIE 2021)
Accession number :
edsair.doi...........557af7be67e79d6607b9a204e906ebca
Full Text :
https://doi.org/10.5753/sbie.2021.217360