cs.AI updates on arXiv.org 07月22日 12:44
Grounding Degradations in Natural Language for All-In-One Video Restoration
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提出一种基于自然语言和基础模型的全链路视频修复框架,无需降解知识,实现模型安全解耦,并提出标准化基准和两个新数据集,在多个基准测试中取得最优性能。

arXiv:2507.14851v1 Announce Type: cross Abstract: In this work, we propose an all-in-one video restoration framework that grounds degradation-aware semantic context of video frames in natural language via foundation models, offering interpretable and flexible guidance. Unlike prior art, our method assumes no degradation knowledge in train or test time and learns an approximation to the grounded knowledge such that the foundation model can be safely disentangled during inference adding no extra cost. Further, we call for standardization of benchmarks in all-in-one video restoration, and propose two benchmarks in multi-degradation setting, three-task (3D) and four-task (4D), and two time-varying composite degradation benchmarks; one of the latter being our proposed dataset with varying snow intensity, simulating how weather degradations affect videos naturally. We compare our method with prior works and report state-of-the-art performance on all benchmarks.

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视频修复 基础模型 自然语言处理
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