Localize to Binauralize: Audio Spatialization from Visual Sound Source Localization
Kranthi Kumar Rachavarapu, Aakanksha, Vignesh Sundaresha, A. N. Rajagopalan
Abstract
Videos with binaural audios provide immersive viewing experience by enabling 3D sound sensation. Recent works attempt to generate binaural audio in a multimodal learning framework using large quantities of videos with accompanying binaural audio. In contrast, we attempt a more challenging problem – synthesizing binaural audios for a video with monaural audio in a weakly semi-supervised setting. Our key idea is that any down-stream task that can be solved only using binaural audios can be used to provide proxy supervision for binaural audio generation, thereby reducing the reliance on explicit supervision. In this work, as a proxy-task for weak supervision, we use Sound Source Localization with only audio. We design a two-stage architecture called Localize-to-Binauralize Network (L2BNet). The first stage of L2BNet is a Stereo Generation (SG) network employed to generate two-stream audio from monaural audio using visual frame information as guidance. In the second stage, an Audio Localization (AL) network is designed to use the synthesized two-stream audio to localize sound sources in visual frames. The entire network is trained end-to-end so that the AL network provides necessary supervision for the SG network. We experimentally show that our weakly-supervised framework generates two-stream audio containing binaural cues. Through user study, we further validate that our proposed approach generates binaural-quality audio using as little as 10% of explicit binaural supervision data for the SG network.
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Cited by top-tier papers9
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- AV-GS: Learning Material and Geometry Aware Priors for Novel View Acoustic SynthesisSwapnil Bhosale, Haosen Yang, Diptesh Kanojia, Jiankang Deng et al.NeurIPS 2024 · 22 citations
- Sound Localization from Motion: Jointly Learning Sound Direction and Camera RotationZiyang Chen, Shengyi Qian, Andrew OwensICCV 2023 · 21 citations
- Learning Spatial Features from Audio-Visual Correspondence in Egocentric VideosSagnik Majumder, Ziad Al-Halah, Kristen GraumanCVPR 2024 · 3 citations
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