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Dataset Distribution Impacts Model Fairness: Single Vs. Multi-task Learning

Research output: Conference Article in Proceeding or Book/Report chapterArticle in proceedingsResearchpeer-review

Abstract

The influence of bias in datasets on the fairness of model predictions is a topic of ongoing research in various fields. We evaluate the performance of skin lesion classification using ResNet-based CNNs, focusing on patient sex variations in training data and three different learning strategies. We present a linear programming method for generating datasets with varying patient sex and class labels, taking into account the correlations between these variables. We evaluated the model performance using three different learning strategies: a single-task model, a reinforcing multi-task model, and an adversarial learning scheme.

Our observations include: 1) sex-specific training data yields better results,
2) single-task models exhibit sex bias, 3) the reinforcement approach does not remove sex bias, 4) the adversarial model eliminates sex bias in cases involving only female patients, and 5) datasets that include male patients enhance model performance for the male subgroup, even when female patients are the majority. To generalise these findings, in future research, we will examine more demographic attributes, like age, and other possibly confounding factors, such as skin colour and artefacts in the skin lesions. We make all code available on Github.
Original languageEnglish
Title of host publicationMICCAI Workshop on Fairness of AI in Medical Imaging (MICCAI FAIMI)
VolumeLNCS
PublisherSpringer
Publication date2024
Edition15198
Publication statusPublished - 2024
EventWorkshop on Fairness of AI in Medical Imaging - Marrakesh, Morocco
Duration: 6 Oct 202410 Oct 2024
Conference number: 2
https://dblp.org/db/conf/miccai/faimi2024.html

Workshop

WorkshopWorkshop on Fairness of AI in Medical Imaging
Number2
Country/TerritoryMorocco
CityMarrakesh
Period06/10/202410/10/2024
Internet address

Keywords

  • Bias
  • Adversarial learning
  • Skin lesions
  • Multi-task learning
  • Fairness

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