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Mixture of Experts in Image Classification: What's the Sweet Spot?

27 November 2024
Mathurin Videau
Alessandro Leite
Marc Schoenauer
O. Teytaud
    MoE
    VLM
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Abstract

Mixture-of-Experts (MoE) models have shown promising potential for parameter-efficient scaling across various domains. However, the implementation in computer vision remains limited, and often requires large-scale datasets comprising billions of samples. In this study, we investigate the integration of MoE within computer vision models and explore various MoE configurations on open datasets. When introducing MoE layers in image classification, the best results are obtained for models with a moderate number of activated parameters per sample. However, such improvements gradually vanish when the number of parameters per sample increases.

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