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Computación y Sistemas

versión On-line ISSN 2007-9737versión impresa ISSN 1405-5546

Resumen

ITURBE HERRERA, Alberto; CASTRO SANCHEZ, Noé Alejandro  y  MUJICA VARGAS, Dante. Rule-Based Spanish Multiple Question Reformulation and their Classification Using a Convolutional Neural Network. Comp. y Sist. [online]. 2021, vol.25, n.1, pp.249-265.  Epub 13-Sep-2021. ISSN 2007-9737.  https://doi.org/10.13053/cys-25-1-3895.

Question reformulation allows the creation of different forms of the same question in order to identify the best answer. However, when aspects such as length and complexity increase, the reformulation process becomes more complicated, consequently also the recovery of the corresponding information. In this research, a method for the reformulation of multiple questions in Spanish is presented, as part of the pre-processing stage in a question-answer system. The lexical category of each word, Named Entities and Multi-Word Terms, were used to reformulate multiple questions into new individual questions, and then a Convolutional Neural Network was used to classify them, allowing to find or build adequate answers to improve the quality of the results, which is fundamental in QA systems. A dataset with multiple questions was also created to evaluate our reformulation method, since it was not possible to find any. On the other hand, for the evaluation of the question classification model, we used the TREC, Simple Questions, Web Questions, Wiki Movies and Curated TREC datasets, translated into Spanish. Both tasks achieved promising results for further work.

Palabras llave : Question reformulation; question classification; convolutional neural networks.

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