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The model is available for use in the NeMo toolkit [3], and can be used as a pre-trained checkpoint for inference or for fine-tuning on another dataset.
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### Automatically instantiate the model
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```python
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This model provides transcribed speech as a string for a given audio sample.
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## Production Deployment
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This model can be efficiently deployed with [NVIDIA Riva](https://developer.nvidia.com/riva) on prem or with most popular cloud providers.
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## Model Architecture
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Conformer-CTC model is a non-autoregressive variant of Conformer model [1] for Automatic Speech Recognition which uses CTC loss/decoding instead of Transducer. You may find more info on the detail of this model here: [Conformer-CTC Model](https://docs.nvidia.com/deeplearning/nemo/user-guide/docs/en/main/asr/models.html).
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The model is available for use in the NeMo toolkit [3], and can be used as a pre-trained checkpoint for inference or for fine-tuning on another dataset.
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## Deployment in Production
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This model can be efficiently deployed with [NVIDIA Riva](https://developer.nvidia.com/riva) on premises of with cloud providers.
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Additionally, RIVA includes Conformer models trained on proprietary data in addition to the public one used in this checkpoint.
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### Automatically instantiate the model
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```python
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This model provides transcribed speech as a string for a given audio sample.
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## Model Architecture
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Conformer-CTC model is a non-autoregressive variant of Conformer model [1] for Automatic Speech Recognition which uses CTC loss/decoding instead of Transducer. You may find more info on the detail of this model here: [Conformer-CTC Model](https://docs.nvidia.com/deeplearning/nemo/user-guide/docs/en/main/asr/models.html).
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