Language-Based Audio Retrieval with Converging Tied Layers and Contrastive Loss
June 29, 2022 ยท Declared Dead ยท ๐ Asia-Pacific Signal and Information Processing Association Annual Summit and Conference
"No code URL or promise found in abstract"
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Authors
Andrew Koh, Eng Siong Chng
arXiv ID
2206.14659
Category
cs.SD: Sound
Cross-listed
cs.CL,
cs.IR,
eess.AS
Citations
1
Venue
Asia-Pacific Signal and Information Processing Association Annual Summit and Conference
Last Checked
4 months ago
Abstract
In this paper, we tackle the new Language-Based Audio Retrieval task proposed in DCASE 2022. Firstly, we introduce a simple, scalable architecture which ties both the audio and text encoder together. Secondly, we show that using this architecture along with contrastive loss allows the model to significantly beat the performance of the baseline model. Finally, in addition to having an extremely low training memory requirement, we are able to use pretrained models as it is without needing to finetune them. We test our methods and show that using a combination of our methods beats the baseline scores significantly.
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