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Breaking the Uniformity Trap: Scaling Video Diffusion Model via SplitMoE

The paper introduces SplitMoE, a new approach for scaling video diffusion models by addressing the limitations of traditional Mixture-of-Experts (MoE) methods. SplitMoE uses a split-role architecture with semantic and generic experts to better handle the spatiotemporal redundancy and semantic imbalance in video data, improving convergence speed, routing coherence, and video generation quality.

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PublishedSeptember 29, 2026Yu Xu, Yuxin Zhang, Xiao Yang
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This approach improves video generation by better handling semantic imbalances and spatiotemporal redundancy through a specialized expert architecture.

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