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# VampNet | |
This repository contains recipes for training generative music models on top of the Lyrebird Audio Codec. | |
# Setting up | |
install AudioTools | |
```bash | |
git clone https://github.com/hugofloresgarcia/audiotools.git | |
pip install -e ./audiotools | |
``` | |
install the LAC library. | |
```bash | |
git clone https://github.com/hugofloresgarcia/lac.git | |
pip install -e ./lac | |
``` | |
install VampNet | |
```bash | |
git clone https://github.com/hugofloresgarcia/vampnet2.git | |
pip install -e ./vampnet2 | |
``` | |
## A note on argbind | |
This repository relies on [argbind](https://github.com/pseeth/argbind) to manage CLIs and config files. | |
Config files are stored in the `conf/` folder. | |
## Getting the Pretrained Models | |
Download the pretrained models from [this link](https://drive.google.com/file/d/1ZIBMJMt8QRE8MYYGjg4lH7v7BLbZneq2/view?usp=sharing). Then, extract the models to the `models/` folder. | |
# Usage | |
First, you'll want to set up your environment | |
```bash | |
source ./env/env.sh | |
``` | |
## Staging a Run | |
Staging a run makes a copy of all the git-tracked files in the codebase and saves them to a folder for reproducibility. You can then run the training script from the staged folder. | |
``` | |
stage --name my_run --run_dir /path/to/staging/folder | |
``` | |
## Training a model | |
```bash | |
python scripts/exp/train.py --args.load conf/vampnet.yml --save_path /path/to/checkpoints | |
``` | |
## Fine-tuning | |
To fine-tune a model, use the script in `scripts/exp/fine_tune.py` to generate 3 configuration files: `c2f.yml`, `coarse.yml`, and `interface.yml`. | |
The first two are used to fine-tune the coarse and fine models, respectively. The last one is used to fine-tune the interface. | |
```bash | |
python scripts/exp/fine_tune.py "/path/to/audio1.mp3 /path/to/audio2/ /path/to/audio3.wav" <fine_tune_name> | |
``` | |
This will create a folder under `conf/<fine_tune_name>/` with the 3 configuration files. | |
The save_paths will be set to `runs/<fine_tune_name>/coarse` and `runs/<fine_tune_name>/c2f`. | |
launch the coarse job: | |
```bash | |
python scripts/exp/train.py --args.load conf/<fine_tune_name>/coarse.yml | |
``` | |
this will save the coarse model to `runs/<fine_tune_name>/coarse/ckpt/best/`. | |
launch the c2f job: | |
```bash | |
python scripts/exp/train.py --args.load conf/<fine_tune_name>/c2f.yml | |
``` | |
launch the interface: | |
```bash | |
python demo.py --args.load conf/generated/<fine_tune_name>/interface.yml | |
``` | |
## Launching the Gradio Interface | |
```bash | |
python demo.py --args.load conf/interface/spotdl.yml --Interface.device cuda | |
``` |