Music Instrument Classification Reprogrammed

November 15, 2022 ยท Declared Dead ยท ๐Ÿ› Conference on Multimedia Modeling

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Authors Hsin-Hung Chen, Alexander Lerch arXiv ID 2211.08379 Category cs.SD: Sound Cross-listed cs.LG, eess.AS Citations 4 Venue Conference on Multimedia Modeling Last Checked 3 months ago
Abstract
The performance of approaches to Music Instrument Classification, a popular task in Music Information Retrieval, is often impacted and limited by the lack of availability of annotated data for training. We propose to address this issue with "reprogramming," a technique that utilizes pre-trained deep and complex neural networks originally targeting a different task by modifying and mapping both the input and output of the pre-trained model. We demonstrate that reprogramming can effectively leverage the power of the representation learned for a different task and that the resulting reprogrammed system can perform on par or even outperform state-of-the-art systems at a fraction of training parameters. Our results, therefore, indicate that reprogramming is a promising technique potentially applicable to other tasks impeded by data scarcity.
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