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Sensitivity-aware visual parameter- efficient fine-tuning

1 Pith paper cite this work. Polarity classification is still indexing.

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cs.CV 1

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2025 1

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UNVERDICTED 1

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GD-FPS: Growth-Driven Feedforward Parameter Selection for Efficient Fine-Tuning

cs.CV · 2025-10-31 · unverdicted · novelty 6.0

GD-FPS is a gradient-free, forward-pass-only parameter selection method for PEFT that identifies important weights by scaling magnitudes with relative activation growth against a pre-training anchor, matching or beating gradient-based baselines on 26 visual tasks while cutting memory by ~18x and run

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  • GD-FPS: Growth-Driven Feedforward Parameter Selection for Efficient Fine-Tuning cs.CV · 2025-10-31 · unverdicted · none · ref 4

    GD-FPS is a gradient-free, forward-pass-only parameter selection method for PEFT that identifies important weights by scaling magnitudes with relative activation growth against a pre-training anchor, matching or beating gradient-based baselines on 26 visual tasks while cutting memory by ~18x and run