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Mar, 2024
RESTORE: 面向视觉语言提示学习的特征偏移
RESTORE: Towards Feature Shift for Vision-Language Prompt Learning
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Yuncheng Yang, Chuyan Zhang, Zuopeng Yang, Yuting Gao, Yulei Qin...
TL;DR
本论文研究了具有多模态模型的提示学习方法,指出单独优化某一模态路径上的提示会导致视觉-语言对齐度下降,因此提出了特征偏移和RESTORE方法来解决这一问题,并通过实验证明了该方法在保持特征对齐的同时优于现有的提示学习方法。
Abstract
prompt learning
is effective for fine-tuning foundation models to improve their generalization across a variety of downstream tasks. However, the prompts that are independently optimized along a single modality path, may sacrifice the
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