Transfer Learning with Semi-Supervised Dataset Annotation for Birdcall Classification
June 29, 2023 ยท Declared Dead ยท ๐ Conference and Labs of the Evaluation Forum
"No code URL or promise found in abstract"
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Authors
Anthony Miyaguchi, Nathan Zhong, Murilo Gustineli, Chris Hayduk
arXiv ID
2306.16760
Category
cs.SD: Sound
Cross-listed
cs.IR,
cs.LG,
eess.AS
Citations
1
Venue
Conference and Labs of the Evaluation Forum
Last Checked
4 months ago
Abstract
We present working notes on transfer learning with semi-supervised dataset annotation for the BirdCLEF 2023 competition, focused on identifying African bird species in recorded soundscapes. Our approach utilizes existing off-the-shelf models, BirdNET and MixIT, to address representation and labeling challenges in the competition. We explore the embedding space learned by BirdNET and propose a process to derive an annotated dataset for supervised learning. Our experiments involve various models and feature engineering approaches to maximize performance on the competition leaderboard. The results demonstrate the effectiveness of our approach in classifying bird species and highlight the potential of transfer learning and semi-supervised dataset annotation in similar tasks.
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