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Accedido2024-08-01T15:50:48Z
Disponible2024-08-01T15:50:48Z
Fecha de publicación2024-03-14es_MX
Identificador de objeto (URI)https://cathi.uacj.mx/20.500.11961/28631
Resumen/AbstractIn Latin American and Caribbean States, the verbal violence against women on social networks, such as X (formerly known as Twitter), is a serious threat that has been addressed through the implementation of social norms, public policies, and social movements. Nevertheless, a challenge is the effective and automatic real-time detection of violent tweets. In this sense, traditional machine learning algorithms have been proposed to tackle social issues where the training process is performed in a static manner. However, considering that X is a dynamic environment where a vast number of tweets are generated each second, it requires powerful machine learning algorithms that could exploit this pool of unlabeled data to be incorporated into the model through continuous updates. This paper explores an active learning method based on uncertainty sampling, which identifies the most confusing tweets to be labeled by an expert in real-time. This focused selection prioritizes which data can be used to train a multilayer perceptron that can achieve a better performance with fewer training samples. Experimental results show that including new samples yields promising results, increasing the AUC from 0.8712 to 0.8833.es_MX
Descripción URIhttps://ieeexplore.ieee.org/abstract/document/10473002/authors#authorses_MX
Idioma ISOspaes_MX
Referencias físicas o lógicasProducto de investigación IITes_MX
Referencias físicas o lógicasInstituto de Ingeniería y Tecnologíaes_MX
TemaViolence against womenes_MX
TemaActive learninges_MX
TemaMLPes_MX
TemaTwitteres_MX
TemaXes_MX
TemaMexican Spanish Languagees_MX
TemaSpeech violence detectiones_MX
Área de conocimiento CONACYTinfo:eu-repo/classification/cti/7es_MX
TítuloDetection of Violent Speech Against Women in Mexican Tweets Using an Active Learning Approaches_MX
Tipo de productoArtículoes_MX
Imagen repositoriohttp://ri.uacj.mx/vufind/thumbnails/rupiiit.pnges_MX
Instituto (dcrupi)Instituto de Ingeniería y Tecnologíaes_MX
CosechableSies_MX
No. de revista4es_MX
Volumen22es_MX
Rango de páginas276-285es_MX
Identificador DOI10.1109/TLA.2024.10473002es_MX
CoautorGarcía, Vicente
Título de revistaIEEE Latin America Transactionses_MX
dc.contributor.authorexternoMiranda-Piña, Grisel
dc.contributor.coauthorexternoAlejo, Roberto
dc.contributor.coauthorexternoRendón-Lara, Eréndira
dcrupi.pronacesSeguridad humanaes_MX


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