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Hyperbolic Audio Source Separation

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arxiv 2212.05008 v1 pith:VD6UJYFQ submitted 2022-12-09 eess.AS cs.SD

classification eess.AScs.SD
keywords hyperbolicsourcetime-frequencyaudiocontainingembeddingembeddingshierarchical
verification ladder T0 review T1 audit T2 compute T3 formal
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We introduce a framework for audio source separation using embeddings on a hyperbolic manifold that compactly represent the hierarchical relationship between sound sources and time-frequency features. Inspired by recent successes modeling hierarchical relationships in text and images with hyperbolic embeddings, our algorithm obtains a hyperbolic embedding for each time-frequency bin of a mixture signal and estimates masks using hyperbolic softmax layers. On a synthetic dataset containing mixtures of multiple people talking and musical instruments playing, our hyperbolic model performed comparably to a Euclidean baseline in terms of source to distortion ratio, with stronger performance at low embedding dimensions. Furthermore, we find that time-frequency regions containing multiple overlapping sources are embedded towards the center (i.e., the most uncertain region) of the hyperbolic space, and we can use this certainty estimate to efficiently trade-off between artifact introduction and interference reduction when isolating individual sounds.

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