Robust Speech Recognition via Large-Scale Weak Supervision
Устойчивое распознавание речи с помощью масштабного слабого обучения
2022-12-06
SCID: 54.1/u2d2em86
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680,000 hourslarge-scale weak supervisionmultilingual multitask supervisionrobust speech recognitionzero-shot transfer
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Abstract (AI)
We study the capabilities of speech processing systems trained simply to predict large amounts of transcripts of audio on the internet. When scaled to 680,000 hours of multilingual and multitask supervision, the resulting models generalize well to standard benchmarks and are often competitive with prior fully supervised results but in a zero-shot transfer setting without the need for any fine-tuning. When compared to humans, the models approach their accuracy and robustness. We are releasing models and inference code to serve as a foundation for further work on robust speech processing.
Key Findings
1
Large-scale weak supervision enables models that are often competitive with prior fully supervised results in zero-shot transfer without any fine-tuning.
2
The authors are releasing the trained models and inference code to support further work on robust speech processing.
3
The trained models approach human-level accuracy and robustness on assessed tasks.
4
Training speech models on 680,000 hours of multilingual, multitask weakly supervised internet transcripts yields strong generalization to standard benchmarks.
Research Object
Speech processing systems/models trained with large-scale weak supervision on 680,000 hours of multilingual and multitask internet audio–transcript data
Research Subject
Generalization, accuracy, and robustness of these models on standard benchmarks and in zero-shot transfer compared to prior fully supervised systems and humans
Publication Details
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2022-12-06
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