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cs.CV2026

Unmasking LAION-5B: Age, Gender, Race, and Emotion Biases in Large-Scale Image Datasets

Iris Dominguez-Catena, Daniel Paternain, Mikel Galar

Large-scale image-text datasets, such as LAION-5B, are foundational to modern AI systems, yet their vast scale and uncurated nature raise significant concerns about demographic and…

cs.CV2026

Evaluating Histogram Matching for Robust Deep learning-Based Grapevine Disease Detection

Ruben Pascual, Inés Hernández, Salvador Gutiérrez +4

Variability in illumination is a primary factor limiting deep learning robustness for field-based plant disease detection. This study evaluates Histogram Matching (HM), a technique…

cs.CV2025

Few-shot multi-token DreamBooth with LoRa for style-consistent character generation

Ruben Pascual, Mikel Sesma-Sara, Aranzazu Jurio +2

The audiovisual industry is undergoing a profound transformation as it is integrating AI developments not only to automate routine tasks but also to inspire new forms of art. This…

cs.CV2025

Biased Heritage: How Datasets Shape Models in Facial Expression Recognition

Iris Dominguez-Catena, Daniel Paternain, Mikel Galar +3

In recent years, the rapid development of artificial intelligence (AI) systems has raised concerns about our ability to ensure their fairness, that is, how to avoid discrimination…

cs.CV2024

Less can be more: representational vs. stereotypical gender bias in facial expression recognition

Iris Dominguez-Catena, Daniel Paternain, Aranzazu Jurio +1

Machine learning models can inherit biases from their training data, leading to discriminatory or inaccurate predictions. This is particularly concerning with the increasing use of…

cs.CV2024

Metrics for Dataset Demographic Bias: A Case Study on Facial Expression Recognition

Iris Dominguez-Catena, Daniel Paternain, Mikel Galar

Demographic biases in source datasets have been shown as one of the causes of unfairness and discrimination in the predictions of Machine Learning models. One of the most prominent…