José Saias

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University of Évora
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Portugal

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Recent Grants

Grant: Close

Santos Corpos | Um Atlas dos Corpi Santi em Portugal

Open Date: 2023-03-12

Close Date: 2026-03-11

Grant: Close

O Desvendar da Arte da Pintura Mural de Almada Negreiros 1938-1956: Estudo científico das Técnicas Pictóricas, dos Materiais e de Diagnóstico como guias para a sua conservação e usufruição

Open Date: 2021-03-29

Close Date: 2024-03-28

Grant: Close

Modelação e predição de acidentes de viação no distrito de Setúbal

Open Date: 2019-01-01

Close Date: 2022-12-31

Grant: Close

MEDON - Ontologias para a modelação de dados e procedimentos médicos

Open Date: 2009-01-01

Close Date: 2011-12-31

Grant: Close

DOMIR- Diálogos e Ontologias para Recuperação de Informação Multimédia

Open Date: 2005-03-15

Close Date: 2007-12-31

Articles (12)

Detecting Persuasion Attempts on Social Networks: Unearthing the Potential of Loss Functions and Text Pre-Processing in Imbalanced Data Settings

The rise of social networks and the increasing amount of time people spend on them have created a perfect place for the dissemination of false narratives, propaganda, and manipulated content. In order to prevent the spread of disinformation, content moderation is needed. However, manual moderation is unfeasible due to the large amount of daily posts. This paper studies the impact of using different loss functions on a multi-label classification problem with an imbalanced dataset, consisting of 20 persuasion techniques and only 950 samples, provided by SemEval’s 2021 Task 6. We used machine learning models, such as Naive Bayes and Decision Trees, and a custom deep learning architecture, based on DistilBERT and Convolutional Layers. Overall, the machine learning models achieved far worse results than the deep learning model, using Binary Cross Entropy, which we considered our baseline deep learning model. To address the class imbalance problem, we trained our model using different loss functions, such as Focal Loss and Asymmetric Loss. The latter providing the best results, particularly for the least represented classes.

Year:

2023

Collaborators (11)

Patricia Gois

University of Évora

PORTUGAL

Paulo Quaresma

Universidade de Aveiro

PORTUGAL

Pedro Nogueira

Associate Professor

University of Évora

PORTUGAL

Jorge Bravo

Assistant Professor

University of Évora

PORTUGAL

Vitor Beires Nogueira

Professor Auxiliar

Universidade de Aveiro

PORTUGAL

Anabela Afonso

Professora Auxiliar

Universidade de Aveiro

PORTUGAL

Paulo Infante

Professor Associado

Universidade de Aveiro

PORTUGAL

Rosalina Pisco Costa

Universidade de Aveiro

PORTUGAL

Teresa Gonçalves

Associate Professor

Universidade de Aveiro

PORTUGAL

Luís Rato

Professor

Universidade de Aveiro

PORTUGAL

Gonçalo Jacinto

Professor Auxiliar

Universidade de Évora Escola de Ciências Sociais

PORTUGAL
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