Visual Acoustic Matching
Changan Chen, Ruohan Gao, Paul Calamia, Kristen Grauman
摘要
We introduce the visual acoustic matching task, in which an audio clip is transformed to sound like it was recorded in a target environment. Given an image of the target environment and a waveform for the source audio, the goal is to re-synthesize the audio to match the target room acoustics as suggested by its visible geometry and materials. To address this novel task, we propose a cross-modal transformer model that uses audio-visual attention to inject visual properties into the audio and generate realistic audio output. In addition, we devise a self-supervised training objective that can learn acoustic matching from in-the-wild Web videos, despite their lack of acoustically mismatched audio. We demonstrate that our approach successfully translates human speech to a variety of real-world environments depicted in images, outperforming both traditional acoustic matching and more heavily supervised baselines.
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引用它的顶会 Paper33
- Few-Shot Audio-Visual Learning of Environment AcousticsSagnik Majumder, Changan Chen, Ziad Al-Halah, Kristen GraumanNeurIPS 2022 · 被引用 80 次
- AV-NeRF: Learning Neural Fields for Real-World Audio-Visual Scene SynthesisSusan Liang, Chao Huang, Yapeng Tian, Anurag Kumar 等NeurIPS 2023 · 被引用 77 次
- MESH2IR: Neural Acoustic Impulse Response Generator for Complex 3D ScenesAnton Ratnarajah, Zhenyu Tang, Rohith Aralikatti, Dinesh ManochaACM MM 2022 · 被引用 35 次
- EgoChoir: Capturing 3D Human-Object Interaction Regions from Egocentric ViewsYuhang Yang, Wei Zhai, Chengfeng Wang, Chengjun Yu 等NeurIPS 2024 · 被引用 31 次
- Images that Sound: Composing Images and Sounds on a Single CanvasZiyang Chen, Daniel Geng, Andrew OwensNeurIPS 2024 · 被引用 22 次
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