Deep Neural Network for Gender-Based Violence Detection on Twitter Messages

The problem of gender-based violence in Mexico has been increased considerably. Many social associations and governmental institutions have addressed this problem in different ways. In the context of computer science, some effort has been developed to deal with this problem through the use of machin...

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Main Authors: Carlos M. Castorena, Itzel M. Abundez, Roberto Alejo, Everardo E. Granda-Gutiérrez, Eréndira Rendón, Octavio Villegas
Format: Article
Language:English
Published: MDPI AG 2021-04-01
Series:Mathematics
Subjects:
Online Access:https://www.mdpi.com/2227-7390/9/8/807
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spelling doaj-d1c8cb84e0d143d0943e5642ed8a22be2021-04-08T23:00:53ZengMDPI AGMathematics2227-73902021-04-01980780710.3390/math9080807Deep Neural Network for Gender-Based Violence Detection on Twitter MessagesCarlos M. Castorena0Itzel M. Abundez1Roberto Alejo2Everardo E. Granda-Gutiérrez3Eréndira Rendón4Octavio Villegas5Division of Postgraduate Studies and Research, National Technological Institute of Mexico, Toluca 52149, MexicoDivision of Postgraduate Studies and Research, National Technological Institute of Mexico, Toluca 52149, MexicoDivision of Postgraduate Studies and Research, National Technological Institute of Mexico, Toluca 52149, MexicoUAEM University Center at Atlacomulco, Autonomous University of the State of Mexico, Toluca 50450, MexicoDivision of Postgraduate Studies and Research, National Technological Institute of Mexico, Toluca 52149, MexicoDivision of Postgraduate Studies and Research, National Technological Institute of Mexico, Toluca 52149, MexicoThe problem of gender-based violence in Mexico has been increased considerably. Many social associations and governmental institutions have addressed this problem in different ways. In the context of computer science, some effort has been developed to deal with this problem through the use of machine learning approaches to strengthen the strategic decision making. In this work, a deep learning neural network application to identify gender-based violence on Twitter messages is presented. A total of 1,857,450 messages (generated in Mexico) were downloaded from Twitter: 61,604 of them were manually tagged by human volunteers as negative, positive or neutral messages, to serve as training and test data sets. Results presented in this paper show the effectiveness of deep neural network (about 80% of the area under the receiver operating characteristic) in detection of gender violence on Twitter messages. The main contribution of this investigation is that the data set was minimally pre-processed (as a difference versus most state-of-the-art approaches). Thus, the original messages were converted into a numerical vector in accordance to the frequency of word’s appearance and only adverbs, conjunctions and prepositions were deleted (which occur very frequently in text and we think that these words do not contribute to discriminatory messages on Twitter). Finally, this work contributes to dealing with gender violence in Mexico, which is an issue that needs to be faced immediately.https://www.mdpi.com/2227-7390/9/8/807gender-based violence in Mexicotwitter messagesdeep neural networksclass imbalance
collection DOAJ
language English
format Article
sources DOAJ
author Carlos M. Castorena
Itzel M. Abundez
Roberto Alejo
Everardo E. Granda-Gutiérrez
Eréndira Rendón
Octavio Villegas
spellingShingle Carlos M. Castorena
Itzel M. Abundez
Roberto Alejo
Everardo E. Granda-Gutiérrez
Eréndira Rendón
Octavio Villegas
Deep Neural Network for Gender-Based Violence Detection on Twitter Messages
Mathematics
gender-based violence in Mexico
twitter messages
deep neural networks
class imbalance
author_facet Carlos M. Castorena
Itzel M. Abundez
Roberto Alejo
Everardo E. Granda-Gutiérrez
Eréndira Rendón
Octavio Villegas
author_sort Carlos M. Castorena
title Deep Neural Network for Gender-Based Violence Detection on Twitter Messages
title_short Deep Neural Network for Gender-Based Violence Detection on Twitter Messages
title_full Deep Neural Network for Gender-Based Violence Detection on Twitter Messages
title_fullStr Deep Neural Network for Gender-Based Violence Detection on Twitter Messages
title_full_unstemmed Deep Neural Network for Gender-Based Violence Detection on Twitter Messages
title_sort deep neural network for gender-based violence detection on twitter messages
publisher MDPI AG
series Mathematics
issn 2227-7390
publishDate 2021-04-01
description The problem of gender-based violence in Mexico has been increased considerably. Many social associations and governmental institutions have addressed this problem in different ways. In the context of computer science, some effort has been developed to deal with this problem through the use of machine learning approaches to strengthen the strategic decision making. In this work, a deep learning neural network application to identify gender-based violence on Twitter messages is presented. A total of 1,857,450 messages (generated in Mexico) were downloaded from Twitter: 61,604 of them were manually tagged by human volunteers as negative, positive or neutral messages, to serve as training and test data sets. Results presented in this paper show the effectiveness of deep neural network (about 80% of the area under the receiver operating characteristic) in detection of gender violence on Twitter messages. The main contribution of this investigation is that the data set was minimally pre-processed (as a difference versus most state-of-the-art approaches). Thus, the original messages were converted into a numerical vector in accordance to the frequency of word’s appearance and only adverbs, conjunctions and prepositions were deleted (which occur very frequently in text and we think that these words do not contribute to discriminatory messages on Twitter). Finally, this work contributes to dealing with gender violence in Mexico, which is an issue that needs to be faced immediately.
topic gender-based violence in Mexico
twitter messages
deep neural networks
class imbalance
url https://www.mdpi.com/2227-7390/9/8/807
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