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Charles Lin

3 accepted papers

2022

Fast Model Editing at Scale

ICLR 2022poster

While large pre-trained models have enabled impressive results on a variety of downstream tasks, the largest existing models still make errors, and even accurate predictions may become outdated over time. Because detecting all such failures at training time is impossible, enabling both developers an…

2022

Memory-Based Model Editing at Scale

ICML 2022spotlight

Even the largest neural networks make errors, and once-correct predictions can become invalid as the world changes. Model editors make local updates to the behavior of base (pre-trained) models to inject updated knowledge or correct undesirable behaviors. Existing model editors have shown promise, b…

2021

LASER: Learning a Latent Action Space for Efficient Reinforcement Learning

ICRA 2021poster

The process of learning a manipulation task depends strongly on the action space used for exploration: posed in the incorrect action space, solving a task with reinforcement learning can be drastically inefficient. Additionally, similar tasks or instances of the same task family impose latent manifo…

Cited by 69SourceScholar