GRADIEND: Feature Learning within Neural Networks Exemplified through Biases
Jonathan Drechsel, Steffen Herbold
2026年份
2被引次数
1顶会引用
摘要
AI systems frequently exhibit and amplify social biases, leading to harmful consequences in critical areas. This study introduces a novel encoder-decoder approach that leverages model gradients to learn a feature neuron encoding societal bias information such as gender, race, and religion. We show that our method can not only identify which weights of a model need to be changed to modify a feature, but even demonstrate that this can be used to rewrite models to debias them while maintaining other capabilities. We demonstrate the effectiveness of our approach across various model architectures and highlight its potential for broader applications.
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- Towards Debiasing Sentence RepresentationsPaul Pu Liang, Irene Mengze Li, Emily Zheng, Yao Chong Lim 等ACL 2020 · 被引用 149 次
- Linear Adversarial Concept ErasureShauli Ravfogel, Michael Twiton, Yoav Goldberg, Ryan CotterellICML 2022 · 被引用 89 次
- A Rigorous Study of Integrated Gradients Method and Extensions to Internal Neuron AttributionsDaniel Lundström, Tianjian Huang, Meisam RazaviyaynICML 2022 · 被引用 85 次
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