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ViRDM: Taming Representation Distribution Matching for Few-Step Causal Video Generation

The paper introduces ViRDM, a method for few-step causal video generation that eliminates the need for a teacher-critic stack by post-training only the generator against a precomputed target distribution. It addresses challenges in memory, optimization, and temporal dynamics through techniques like stochastically truncated clean-exit supervision and lightweight dynamics regularization, achieving high video quality with reduced computational resources.

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PublishedSeptember 24, 2026Zichong Meng, Chongjian Ge, Chun-Hao P. Huang
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ViRDM reduces computational requirements and improves video quality by eliminating the need for a teacher-critic stack and using lightweight techniques for temporal dynamics.

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