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Ivan Luiz De Moura Matos

2 accepted papers

2026

Bias In, Bias Out? Finding Unbiased Subnetworks in Vanilla Models

CVPR 2026

The issue of algorithmic biases in deep learning has led to the development of various debiasing techniques, many of which perform complex training procedures or dataset manipulation. However, an intriguing question arises: is it possible to extract fair and bias-agnostic subnetworks from standard v

Cited by 0SourcecodeScholar
2024

Debiasing surgeon: fantastic weights and how to find them

ECCV 2024poster

"Nowadays an ever-growing concerning phenomenon, the emergence of algorithmic biases that can lead to unfair models, emerges. Several debiasing approaches have been proposed in the realm of deep learning, employing more or less sophisticated approaches to discourage these models from massively emplo…

Cited by 0SourcePDFScholar