WhAM: Towards A Translative Model of Sperm Whale Vocalization
Orr Paradise, Liangyuan Chen, Pranav Muralikrishnan, Hugo Flores García, Bryan Pardo, Roee Diamant, David F. Gruber, Shane Gero, Shafi Goldwasser
Abstract
Sperm whales communicate in short sequences of clicks known as codas. We present WhAM (Whale Acoustics Model), the first transformer-based model capable of generating synthetic sperm whale codas from any audio prompt. WhAM is built by finetuning VampNet, a masked acoustic token model pretrained on musical audio, using 10k coda recordings collected over the past two decades. Through iterative masked token prediction, WhAM generates high-fidelity synthetic codas that preserve key acoustic features of the source recordings. We evaluate WhAM's synthetic codas using Fréchet Audio Distance and through perceptual studies with expert marine biologists. On downstream classification tasks including rhythm, social unit, and vowel classification, WhAM's learned representations achieve strong performance, despite being trained for generation rather than classification. Our code is available at https://github.com/Project-CETI/wham
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Builds on6
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- High-Fidelity Audio Compression with Improved RVQGANRithesh Kumar, Prem Seetharaman, Alejandro Luebs, Ishaan Kumar et al.NeurIPS 2023 · 910 citations
- MaskGIT: Masked Generative Image TransformerHuiwen Chang, Han Zhang, Lu Jiang, Ce Liu et al.CVPR 2022 · 346 citations
- A Theory of Unsupervised Translation Motivated by Understanding Animal CommunicationShafi Goldwasser, David F. Gruber, Adam Tauman Kalai, Orr ParadiseNeurIPS 2023 · 16 citations
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