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A ResNet-50-Based Convolutional Neural Network Model for Language ID Identification from Speech Recordings

2021-06-01 · NAACL (SIGTYP) 2021 6 · Giuseppe G. A. Celano

This paper describes the model built for the SIGTYP 2021 Shared Task aimed at identifying 18 typologically different languages from speech recordings. Mel-frequency cepstral coefficients derived from audio files are transformed into spectrograms, which are then fed into a ResNet-50-based CNN architecture. The final model achieved validation and test accuracies of 0.73 and 0.53, respectively.

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