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In-Context Imitation Learning via Next-Token Prediction

by Max (Letian) Fu*, Huang Huang*, Gaurav Datta*, Lawrence Yunliang Chen, William Chung-Ho Panitch, Fangchen Liu, Hui Li, and Ken Goldberg at UC Berkeley and Autodesk (*equal contribution).

[Paper] | [Project Page] | [Checkpoints] | [Dataset] | [Citation]

This repo contains the checkpoints for In-Context Imitation Learning via Next-Token Prediction. We investigate how to bring few-shot, in-context learning capability that exists in next-token prediction models (i.e. GPT) into real-robot imitation learning policies.

In particular, we store the pre-trained vision encoder and ICRT model separately. Please find them in encoder and ICRT separately.

Please refer to the project page on installing the repo, training and inferencing the model.