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LoVA: Long-form Video-to-Audio Generation

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arxiv 2409.15157 v2 pith:5T6GQ5XK submitted 2024-09-23 cs.SD cs.MMeess.AS

classification cs.SDcs.MMeess.AS
keywords long-formaudiovideogenerationlovadiffusionmodelsvideo-to-audio
verification ladder T0 review T1 audit T2 compute T3 formal
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Video-to-audio (V2A) generation is important for video editing and post-processing, enabling the creation of semantics-aligned audio for silent video. However, most existing methods focus on generating short-form audio for short video segment (less than 10 seconds), while giving little attention to the scenario of long-form video inputs. For current UNet-based diffusion V2A models, an inevitable problem when handling long-form audio generation is the inconsistencies within the final concatenated audio. In this paper, we first highlight the importance of long-form V2A problem. Besides, we propose LoVA, a novel model for Long-form Video-to-Audio generation. Based on the Diffusion Transformer (DiT) architecture, LoVA proves to be more effective at generating long-form audio compared to existing autoregressive models and UNet-based diffusion models. Extensive objective and subjective experiments demonstrate that LoVA achieves comparable performance on 10-second V2A benchmark and outperforms all other baselines on a benchmark with long-form video input.

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  1. AV-Link: Temporally-Aligned Diffusion Features for Cross-Modal Audio-Video Generation

    cs.CV 2024-12 conditional novelty 7.0 of 10

    AV-Link unifies video-to-audio and audio-to-video generation by aligning frozen diffusion-model activations with temporally matched rotary position embeddings in a shared Fusion Block.

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