Independency Adversarial Learning for Cross-Modal Sound Separation
Zhenkai Lin, Yanli Ji, Yang Yang
摘要
The sound mixture separation is still challenging due to heavy sound overlapping and disturbance from noise. Unsupervised separation would significantly increase the difficulty. As sound overlapping always hinders accurate sound separation, we propose an Independency Adversarial Learning based Cross-Modal Sound Separation (IAL-CMS) approach, where IAL employs adversarial learning to minimize the correlation of separated sound elements, exploring high sound independence; CMS performs cross-modal sound separation, incorporating audio-visual consistent feature learning and interactive cross-attention learning to emphasize the semantic consistency among cross-modal features. Both audio-visual consistency and audio consistency are kept to guarantee accurate separation. The consistency and sound independence ensure the decomposition of overlapping mixtures into unrelated and distinguishable sound elements. The proposed approach is evaluated on MUSIC, VGGSound, and AudioSet. Extensive experiments certify that our approach outperforms existing approaches in supervised and unsupervised scenarios.
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它引用的顶会 Paper10
- Unsupervised Sound Separation Using Mixture Invariant TrainingScott Wisdom, Efthymios Tzinis, Hakan Erdogan, Ron J. Weiss 等NeurIPS 2020 · 被引用 227 次
- Co-Separating Sounds of Visual ObjectsRuohan Gao, Kristen GraumanICCV 2019 · 被引用 224 次
- Cross-Modal Relation-Aware Networks for Audio-Visual Event LocalizationHaoming Xu, Runhao Zeng, Qingyao Wu, Mingkui Tan 等ACM MM 2020 · 被引用 97 次
- Recursive Visual Sound Separation Using Minus-Plus NetXudong Xu, Bo Dai, Dahua LinICCV 2019 · 被引用 95 次
- Visual Scene Graphs for Audio Source SeparationMoitreya Chatterjee, Jonathan Le Roux, Narendra Ahuja, Anoop CherianICCV 2021 · 被引用 45 次
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