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Task-Specific Skill Localization in Fine-tuned Language Models

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arxiv 2302.06600 v2 pith:6T43IYZ4 submitted 2023-02-13 cs.CL cs.LG

classification cs.CLcs.LG
keywords modelfine-tunedlocalizationfine-tuningmodelsskillsubsettask
verification ladder T0 review T1 audit T2 compute T3 formal
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abstract

Pre-trained language models can be fine-tuned to solve diverse NLP tasks, including in few-shot settings. Thus fine-tuning allows the model to quickly pick up task-specific ``skills,'' but there has been limited study of where these newly-learnt skills reside inside the massive model. This paper introduces the term skill localization for this problem and proposes a solution. Given the downstream task and a model fine-tuned on that task, a simple optimization is used to identify a very small subset of parameters ($\sim0.01$% of model parameters) responsible for ($>95$%) of the model's performance, in the sense that grafting the fine-tuned values for just this tiny subset onto the pre-trained model gives performance almost as well as the fine-tuned model. While reminiscent of recent works on parameter-efficient fine-tuning, the novel aspects here are that: (i) No further re-training is needed on the subset (unlike, say, with lottery tickets). (ii) Notable improvements are seen over vanilla fine-tuning with respect to calibration of predictions in-distribution ($40$-$90$% error reduction) as well as the quality of predictions out-of-distribution (OOD). In models trained on multiple tasks, a stronger notion of skill localization is observed, where the sparse regions corresponding to different tasks are almost disjoint, and their overlap (when it happens) is a proxy for task similarity. Experiments suggest that localization via grafting can assist certain forms of continual learning.

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Cited by 1 Pith paper

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  1. Neural Parameter Search for Slimmer Fine-Tuned Models and Better Transfer

    cs.LG 2025-05 conditional novelty 5.0 of 10

    Neural Parameter Search (NPS) prunes fine-tuned models by evolutionary reweighting of magnitude-based task vector subspaces, improving transfer, fusion, and compression.

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