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Título: | Generation of english question answer exercises from texts using transformers based models |
Autor: | Berger, Gonzalo Rischewski, Tatiana Chiruzzo, Luis Rosá, Aiala |
Tipo: | Ponencia |
Palabras clave: | NLP for language teaching, Question & answering, Transformers, Neural language models |
Fecha de publicación: | 2022 |
Resumen: | This paper studies the use of NLP techniques, in particular, neural language models, for the generation of
question/answer exercises from English texts. The experiments aim to generate beginner-level exercises from simple texts, to be used in teaching ESL (English as a Second Language) to children.
The approach we present in this paper is based on four stages: a pre-processing stage that, among other basic tasks, applies a co-reference resolution tool; an answer candidate selection stage, which is based on semantic role labeling; a question generation stage, which takes as input the text with the resolved co-references
and returns a set of questions for each answer candidate using a language model based on the Transformers architecture; and a post-processing stage that adjusts the format of the generated questions. The question generation model was evaluated on a benchmark obtaining similar results to those of previous works,
and the complete pipeline was evaluated on a corpus specifically created for this task, achieving good results. |
Descripción: | 2022 IEEE Latin American Conference on Computational Intelligence (LA-CCI), 23-25 November 2022, Montevideo, Uruguay. |
Editorial: | IEEE |
Financiadores: | Agencia Nacional de Investigación e Innovación. Proyecto FSED_2_2020_1_163587. |
Citación: | Berger, G., Rischewski, T., Chiruzzo, L. y otros. Generation of english question answer exercises from texts using transformers based models [en línea] EN : 2022 IEEE Latin American Conference on Computational Intelligence (LA-CCI), 23-25 November 2022, Montevideo, Uruguay. 5 p. DOI: 10.1109/LA-CCI54402.2022.9981171 |
Licencia: | Licencia Creative Commons Atribución - No Comercial - Sin Derivadas (CC - By-NC-ND 4.0) |
Aparece en las colecciones: | Reportes Técnicos - Instituto de Computación |
Ficheros en este ítem:
Fichero | Descripción | Tamaño | Formato | ||
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BRCR22.pdf | Ponencia | 178,45 kB | Adobe PDF | Visualizar/Abrir |
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