Fine-grained Video Dubbing Duration Alignment with Segment Supervised Preference Optimization
Chaoqun Cui, Liangbin Huang, Shijing Wang, Zhe Tong, Zhaolong Huang, Xiao Zeng, Xiaofeng Liu
摘要
Video dubbing aims to translate original speech in visual media programs from the source language to the target language, relying on neural machine translation and text-to-speech technologies. Due to varying information densities across languages, target speech often mismatches the source speech duration, causing audio-video synchronization issues that significantly impact viewer experience. In this study, we approach duration alignment in LLM-based video dubbing machine translation as a preference optimization problem. We propose the Segment Supervised Preference Optimization (SSPO) method, which employs a segmentwise sampling strategy and fine-grained loss to mitigate duration mismatches between source and target lines. Experimental results demonstrate that SSPO achieves superior performance in duration alignment tasks.
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引用它的顶会 Paper3
- Just-Dub-It: Video dubbing via Joint Audio-Visual DiffusionAnthony Chen, Naomi Ken Korem, Tavi Halperin, Matan Ben-Yosef 等SIGGRAPH 2026 · 被引用 2 次
- Hermes the Polyglot: A Unified Framework to Enhance Expressiveness for Multimodal Interlingual SubtitlingChaoqun Cui, Shijing Wang, Liangbin Huang, Qingqing Gu 等WWW 2026 · 被引用 1 次
- CineSRD: Leveraging Visual, Acoustic, and Linguistic Cues for Open-World Visual Media Speaker DiarizationLiangbin Huang, Xiaohua Liao, Chaoqun Cui, Shijing Wang 等CVPR 2026
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