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3 months ago

QuartzNet: Deep Automatic Speech Recognition with 1D Time-Channel Separable Convolutions

Samuel Kriman Stanislav Beliaev Boris Ginsburg Jocelyn Huang Oleksii Kuchaiev Vitaly Lavrukhin Ryan Leary Jason Li Yang Zhang

QuartzNet: Deep Automatic Speech Recognition with 1D Time-Channel Separable Convolutions

Abstract

We propose a new end-to-end neural acoustic model for automatic speech recognition. The model is composed of multiple blocks with residual connections between them. Each block consists of one or more modules with 1D time-channel separable convolutional layers, batch normalization, and ReLU layers. It is trained with CTC loss. The proposed network achieves near state-of-the-art accuracy on LibriSpeech and Wall Street Journal, while having fewer parameters than all competing models. We also demonstrate that this model can be effectively fine-tuned on new datasets.

Code Repositories

sberdevices/golos
pytorch
Mentioned in GitHub
yangzhou6666/asrprophet
pytorch
Mentioned in GitHub
isadrtdinov/quartznet
pytorch
Mentioned in GitHub
NVIDIA/NeMo
Official
pytorch
sooftware/OpenSpeech
pytorch
Mentioned in GitHub
marka17/digit-recognition
pytorch
Mentioned in GitHub
nanoporetech/bonito
pytorch
Mentioned in GitHub
osmr/imgclsmob
mxnet
Mentioned in GitHub
stefanpantic/asr
tf
Mentioned in GitHub
oleges1/quartznet-pytorch
pytorch
Mentioned in GitHub
ivankunyankin/quartznet-asr
pytorch
Mentioned in GitHub
msalhab96/SpeeQ
pytorch
Mentioned in GitHub

Benchmarks

BenchmarkMethodologyMetrics
speech-recognition-on-librispeech-test-cleanQuartzNet15x5
Word Error Rate (WER): 2.69
speech-recognition-on-librispeech-test-otherQuartzNet15x5
Word Error Rate (WER): 7.25

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QuartzNet: Deep Automatic Speech Recognition with 1D Time-Channel Separable Convolutions | Papers | HyperAI