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Uni-MoE: Scaling Unified Multimodal LLMs with Mixture of Experts
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Recent advancements in Multimodal Large Language Models (MLLMs) underscore the significance of scalable models and data to boost performance, yet this often incurs substantial computational costs. Although the Mixture of Experts (MoE) architecture has been employed to efficiently scale large language and image-text models, these efforts typically involve fewer experts and limited modalities. To address this, our work presents the pioneering attempt to develop a unified MLLM with the MoE architecture, named Uni-MoE that can handle a wide array of modalities. Specifically, it features modality-specific encoders with connectors for a unified multimodal representation. We also implement a sparse MoE architecture within the LLMs to enable efficient training and inference through modality-level data parallelism and expert-level model parallelism. To enhance the multi-expert collaboration and generalization, we present a progressive training strategy: 1) Cross-modality alignment using various connectors with different cross-modality data, 2) Training modality-specific experts with cross-modality instruction data to activate experts' preferences, and 3) Tuning the Uni-MoE framework utilizing Low-Rank Adaptation (LoRA) on mixed multimodal instruction data. We evaluate the instruction-tuned Uni-MoE on a comprehensive set of multimodal datasets. The extensive experimental results demonstrate Uni-MoE's principal advantage of significantly reducing performance bias in handling mixed multimodal datasets, alongside improved multi-expert collaboration and generalization. Our findings highlight the substantial potential of MoE frameworks in advancing MLLMs and the code is available at https://github.com/HITsz-TMG/UMOE-Scaling-Unified-Multimodal-LLMs.
Forward citations
Cited by 4 Pith papers
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M3LLM: Model Context Protocol-aided Mixture of Vision Experts For Multimodal LLMs in Networks
M3LLM routes each multimodal query to the semantically most suitable, wirelessly reachable vision expert using protocol-aided retrieval and a decoupled reinforcement learning agent.
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Chain-of-Experts: Unlocking the Communication Power of Mixture-of-Experts Models
Chain-of-Experts replaces one parallel MoE routing step with several sequential expert steps inside a layer, reporting lower loss and memory use in small-scale experiments.
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Neural Inhibition Improves Dynamic Routing and Mixture of Experts
Neural inhibition gating on MoE router inputs improves a synthetic digit/squares benchmark by about four points over plain MoE, but the language-model evidence is unreliable.
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Decoding Visual Neural Representations by Multimodal with Dynamic Balancing
A multimodal EEG-image-text contrastive framework with dynamic gradient balancing and stochastic noise improves zero-shot object recognition from EEG on ThingsEEG, raising top-1 accuracy from 13.8% to 15.8%.
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