Llama-3.2-non-recurrent-posttrained is a non-recurrent meta-llama/Llama-3.2-1B based baseline for the Retrofitting Recurrence set of models. A set of depth recurrent models trained by taking layers from pretrained feedforward language models (link to paper).
Train and validation data is taken from non-overlapping subsets of raw text data. As such it is not an instruction model.
Licence
This model is released under the apache-2.0 licence.
Contact
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Citation
@article{mcleish2025teaching,
title={Teaching Pretrained Language Models to Think Deeper with Retrofitted Recurrence},
author={Sean McLeish and Ang Li and John Kirchenbauer and Dayal Singh Kalra and Brian R. Bartoldson and Bhavya Kailkhura and Avi Schwarzschild and Jonas Geiping and Tom Goldstein and Micah Goldblum},
journal={arXiv preprint arXiv:2511.07384},
year={2025}
}