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Learning to Unlearn, Failing to Forget? Assessing Machine Unlearning Through Ethics and Epistemology (8th ed.)Proceedings of the Aaai/Acm Conference on Ai, Ethics, and Society. 2025.Machine Unlearning (MU) aims to remove the influence of unwanted data from trained AI models, driven by ethical/legal concerns like privacy (e.g., the Right to be Forgotten), bias mitigation, security, and copyright protection. This paper critically examines MU, arguing that it is currently unclear whether its technical methods and ethical goals are suitably aligned. Currently, important questions around what MU does, what it should do, and how its efforts align with stakeholder needs remain una…Read more
Hanover, NDS, Germany
Areas of Interest
| Conceptual Engineering |
| Epistemology |
| Applied Ethics |
| Values in Economics |