Reading to Listen at the Cocktail Party: Multi-Modal Speech Separation
Akam Rahimi, Triantafyllos Afouras, Andrew Zisserman
摘要
The goal of this paper is speech separation and enhancement in multi-speaker and noisy environments using a combination of different modalities. Previous works have shown good performance when conditioning on temporal or static visual evidence such as synchronised lip movements or face identity. In this paper, we present a unified framework for multi-modal speech separation and enhancement based on synchronous or asynchronous cues. To that end we make the following contributions: (i) we design a modern Transformer-based architecture tailored to fuse different modalities to solve the speech separation task in the raw waveform domain; (ii) we propose conditioning on the textual content of a sentence alone or in combination with visual information; (iii) we demonstrate the robustness of our model to audio-visual synchronisation offsets; and, (iv) we obtain state-of-the-art performance on the well-established benchmark datasets LRS2 and LRS3.
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引用它的顶会 Paper4
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- Understanding Co-Speech Gestures in-the-WildSindhu B. Hegde, K. R. Prajwal, Taein Kwon, Andrew ZissermanICCV 2025 · 被引用 4 次
- RAVSS: Robust Audio-Visual Speech Separation in Multi-Speaker Scenarios with Missing Visual CuesTianrui Pan, Jie Liu, Bohan Wang, Jie Tang 等ACM MM 2024 · 被引用 3 次
- Language-Guided Audio-Visual Source Separation via Trimodal ConsistencyReuben Tan, Arijit Ray, Andrea Burns, Bryan A. Plummer 等CVPR 2023
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