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Model Comparison for the Classification of Comments Containing Suicidal Traits from Reddit via NLP and Supervised Learning

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Date
2022
Author(s)
Mantilla Saavedra, Camila Stefany
Gutiérrez Cárdenas, Juan Manuel
Metadata
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Abstract
In recent years, suicide has become one of the most critical issues regarding public health between teenagers and adults. On the other hand, the growth and wide-spread of social networks and mobile devices have allowed us to compile relevant information that helps us understand the thoughts, feelings, and emotions extracted from these platforms. The detection of suicidal traits on social media has be-come one relevant research topic. It has permitted the identification of probable suicide traits among media users by examining their posts on known social net-works such as Reddit. For that reason, the purpose of the present research is to compare different supervised classification models such as Logistic Regression, Support Vector Machines, Random Forest, AdaBoost, Gradient Boosting, and XGBoost; together with feature extraction techniques such as TF-IDF and Glove. The results from our experiments show that the best model is SVM with TF-IDF obtaining metrics of 91.50% in Accuracy, 92.40% in Precision, 90.30% in Re-call, and 91.50% regarding the F1-score. This study also shows that TF-IDF for feature extraction outperforms Glove when applied to the different models tested.
URI
https://hdl.handle.net/20.500.12724/17555
DOI
https://doi.org/10.1007/978-3-031-04447-2_17
How to cite
Mantilla-Saavedra, C. & Gutiérrez-Cárdenas, J. (2022). Model Comparison for the Classification of Comments Containing Suicidal Traits from Reddit via NLP and Supervised Learning. En J. A. Lossio-Ventura, J. Valverde-Rebaza, E. Díaz, D. Muñante, C. Gavidia-Calderon, A. D. B. Valejo & H. Alatrista-Salas (Eds.), Information Management and Big Data: Eighth Annual International Conference, SIMBig 2021, Proceedings, Communications in Computer and Information Science (vol. 1577, pp. 253-263). Springer. https://doi.org/10.1007/978-3-031-04447-2_17
Publisher
Springer
Subject
Suicidio
Redes sociales
Programación neurolingüística
Suicide
Social networks
Neurolinguistic programming
ISSN
1865-0929
Event
Communications in Computer and Information Science
Collections
  • Ingeniería de Sistemas [73]


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