Inproceedings,

Stable bias: evaluating societal representations in diffusion models

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Proceedings of the 37th International Conference on Neural Information Processing Systems, Red Hook, NY, USA, Curran Associates Inc., (2024)

Abstract

As machine learning-enabled Text-to-Image (TTI) systems are becoming increasingly prevalent and seeing growing adoption as commercial services, characterizing the social biases they exhibit is a necessary first step to lowering their risk of discriminatory outcomes. This evaluation, however, is made more difficult by the synthetic nature of these systems' outputs: common definitions of diversity are grounded in social categories of people living in the world, whereas the artificial depictions of fictive humans created by these systems have no inherent gender or ethnicity. To address this need, we propose a new method for exploring the social …(more)

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