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Connecting Giants: Synergistic Knowledge Transfer of Large Multimodal Models for Few-Shot Learning

Hao Tang, Shengfeng He, Jing Qin

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Abstract

Few-shot learning (FSL) addresses the challenge of classifying novel classes with limited training samples. While some methods leverage semantic knowledge from smaller-scale models to mitigate data scarcity, these approaches often introduce noise and bias due to the data’s inherent simplicity. In this paper, we propose a novel framework, Synergistic Knowledge Transfer (SynTrans), which effectively transfers diverse and complementary knowledge from large multimodal models to empower the off-the-shelf few-shot learner. Specifically, SynTrans employs CLIP as a robust teacher and uses a few-shot vision encoder as a weak student, distilling semantic-aligned visual knowledge via an unsupervised proxy task. Subsequently, a training-free synergistic knowledge mining module facilitates collaboration among large multimodal models to extract high-quality semantic knowledge. Building upon this, a visual-semantic bridging module enables bi-directional knowledge transfer between visual and semantic spaces, transforming explicit visual and implicit semantic knowledge into category-specific classifier weights. Finally, SynTrans introduces a visual weight generator and a semantic weight reconstructor to adaptively construct optimal multimodal FSL classifiers. Experimental results on four FSL datasets demonstrate that SynTrans, even when paired with a simple few-shot vision encoder, significantly outperforms current state-of-the-art methods.

Topics & Concepts

Computer scienceLeverage (statistics)Bridging (networking)Artificial intelligenceKnowledge transferMachine learningEncoderTransfer of learningClassifier (UML)Construct (python library)Training setSemantics (computer science)VisualizationSemantic data modelDiscriminative modelHuman–computer interactionKnowledge acquisitionMultimodal learningGenerator (circuit theory)Explicit knowledgeKnowledge extractionNatural language processingSemantic memorySemantic gapDiscriminatorDomain Adaptation and Few-Shot LearningSpeech Recognition and SynthesisGeophysical Methods and Applications