Papers with ported modules

1 papers
Assessing the Portability of Parameter Matrices Trained by Parameter-Efficient Finetuning Methods (2024.findings-eacl)

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Challenge: Transfer learning methods have shown that reusing non-task-specific knowledge can speed up task-specific learning in the latter.
Approach: They propose to port whole functional modules that encode task-specific knowledge from one model to another using parameter-efficient finetuning techniques.
Outcome: The proposed methods outperform the two alternatives, but there are differences between the two.

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