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---
license: mit
---
# Amphion Vocoder Pretrained Models
We provide a [HiFi-GAN](https://github.com/open-mmlab/Amphion/tree/main/egs/vocoder/gan/tfr_enhanced_hifigan) pretrained checkpoint for speech, which is trained on 685 hours of speech data.
## Quick Start
To utilize these pretrained vocoders, just run the following commands:
### Step1: Download the checkpoint
```bash
git lfs install
git clone https://huggingface.co/amphion/hifigan_speech_bigdata
```
### Step2: Clone the Amphion's Source Code of GitHub
```bash
git clone https://github.com/open-mmlab/Amphion.git
```
### Step3: Specify the checkpoint's path
Use the soft link to specify the downloaded checkpoint in the first step:
```bash
cd Amphion
mkdir -p ckpts/vocoder
ln -s "$(realpath ../hifigan_speech_bigdata/hifigan_speech)" pretrained/hifigan_speech
```
### Step4: Inference
For analysis synthesis on the processed dataset, raw waveform, or predicted mel spectrograms, you can follow the inference part of [this recipe](https://github.com/open-mmlab/Amphion/blob/main/egs/vocoder/gan/tfr_enhanced_hifigan/README.md).
```bash
sh egs/vocoder/gan/tfr_enhanced_hifigan/run.sh --stage 3 \
--infer_mode [Your chosen inference mode] \
--infer_datasets [Datasets you want to inference, needed when infer_from_dataset] \
--infer_feature_dir [Your path to your predicted acoustic features, needed when infer_from_feature] \
--infer_audio_dir [Your path to your audio files, needed when infer_form_audio] \
--infer_expt_dir Amphion/ckpts/vocoder/[YourExptName] \
--infer_output_dir Amphion/ckpts/vocoder/[YourExptName]/result \
```
## Citaions
```bibtex
@misc{gu2023cqt,
title={Multi-Scale Sub-Band Constant-Q Transform Discriminator for High-Fidelity Vocoder},
author={Yicheng Gu and Xueyao Zhang and Liumeng Xue and Zhizheng Wu},
year={2023},
eprint={2311.14957},
archivePrefix={arXiv},
primaryClass={cs.SD}
}
```