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Lifelong model editing in large language models: Balancing low-cost targeted edits and catastrophic forgetting
| Tom Hartvigsen et Hamid Palangi
Lifelong model editing fixes mistakes discovered after model deployment. This work could expand sequential editing to model properties like fairness and privacy and enable a new class of solutions for adapting LLMs over long deployment lifetimes.
Blog de recherche Microsoft
DecodingTrust: A Comprehensive Assessment of Trustworthiness in GPT Models
| Boxin Wang, Bo Li, et Zinan Lin
This paper received the outstanding benchmarks track paper award during NeurIPS 2023 (opens in new tab). How trustworthy are generative pre-trained transformer (GPT) models? To answer this question, University of Illinois Urbana-Champaign, together with Stanford University, University of California, Berkeley,…