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---
license: other
datasets:
- Mitsua/vroid-image-dataset-lite
pipeline_tag: text-to-image
---
# Model Card for VRoid Diffusion

<!-- Provide a quick summary of what the model is/does. -->

This is a latent text-to-image diffusion model to demonstrate how U-Net training affects the generated images.

- Text Encoder is from [OpenCLIP ViT-H/14](https://github.com/mlfoundations/open_clip), MIT License, Training Data : LAION-2B
- VAE is from [Mitsua Diffusion One](https://huggingface.co/Mitsua/mitsua-diffusion-one), Mitsua Open RAIL-M License, Training Data: Public Domain/CC0 + Licensed
- U-Net is trained from scratch using full version of [VRoid Image Dataset Lite](https://huggingface.co/datasets/Mitsua/vroid-image-dataset-lite) with some modifications.
- VRoid is a trademark or registered trademark of Pixiv inc. in Japan and other regions.

## Model Details

- `vroid_diffusion_test.safetensors`
  - base variant.
- `vroid_diffusion_test_invert_red_blue.safetensors`
  - `red` and `blue` in the caption is swapped.
  - `pink` and `skyblue` in the caption is swapped.
- `vroid_diffusion_test_monochrome.safetensors`
  - all training images are converted to grayscale.


### Model Description

- **Developed by:** Abstract Engine.
- **License:** Mitsua Open RAIL-M License.

## Uses

### Direct Use

Text-to-Image generation for research and educational purposes.

### Out-of-Scope Use

Any deployed use case of the model.

## Training Details

- Trained resolution : 256x256
- Batch Size : 48
- Steps : 45k
- LR : 1e-5 with warmup 1000 steps

### Training Data

We use full version of [VRoid Image Dataset Lite](https://huggingface.co/datasets/Mitsua/vroid-image-dataset-lite) with some modifications.