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Pixel-Dust/Micromerge
Micromerge is a machine learning model from Pixel-Dust. Use it for the machine learning task on the model card, and read the license before you ship it in a product. The card lists the license as mit.
This is a fine-tuned model based on VelvetToroyashi/WahtasticMerge.
Downloads · 30 days
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Updated Oct 17, 2025
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From the Hugging Face model README
This is a fine-tuned model based on VelvetToroyashi/WahtasticMerge.
TIt has been trained on a dataset of approximately 15,000 images sourced primarily from ArtStation, X (k.a. Twitter), and OpenGameArt.
The model was trained on a curated dataset of 15,000 images. The primary sources for these images were:
This diverse dataset aims to provide the model with a broad understanding of various artistic conventions and styles.
This model can be used with any standard SDXL-compatible interface or library, e.g. Diffusers, Stable Diffusion WEBUI, ComfyUI.
For optimal results, we recommend the following inference parameters:
from diffusers import AutoPipelineForText2Image
import torch
pipeline = AutoPipelineForText2Image.from_pretrained(
"Pixel-Dust/Micromerge",
torch_dtype=torch.float16,
variant="fp16",
use_safetensors=True
).to("cuda")
prompt = "a majestic fantasy landscape, vibrant colors, epic, detailed, masterpiece"
negative_prompt = "low quality, bad anatomy, deformed, ugly, distorted"
image = pipeline(
prompt=prompt,
negative_prompt=negative_prompt,
num_inference_steps=20,
guidance_scale=5,
height=1200,
width=832
).images
image.save("generated_image.png")