HiDiffusion
H
Hidiffusion
Overview :
HiDiffusion is a pre-trained diffusion model that can enhance resolution and speed by simply adding one line of code. The model uses techniques such as Resolution-Aware U-Net (RAU-Net) and Modified Shifted Window Multi-head Self-Attention (MSW-MSA) to dynamically adjust feature map sizes to address the issue of object duplication and optimize window attention to reduce computational burden. HiDiffusion can extend image generation resolution to 4096×4096 while maintaining 1.5-6 times the inference speed of previous methods.
Target Users :
["Professional use for high resolution image synthesis","Suitable for researchers in image processing and visual arts","Providing designers with more efficient creative tools","Helping businesses save time and costs in image generation"]
Total Visits: 615
Website Views : 85.6K
Use Cases
Generate anime-style character images with high detail using HiDiffusion
Quickly generate high-quality background images for design projects
Produce high-resolution image materials for visual effects in film production
Features
Increase resolution and speed with a single line of code
Dynamically adjust feature map sizes to solve object duplication problems
Optimize window attention to reduce computational load
Support image generation resolutions up to 4096×4096
Achieve state-of-the-art performance in high-resolution image synthesis tasks
Integrate seamlessly into various pre-trained diffusion models without additional adjustments
Achieve up to 1.5-6 times faster inference speed
How to Use
Step 1: Visit the official HiDiffusion website or GitHub page
Step 2: Read the documentation to understand the working principles and integration methods of HiDiffusion
Step 3: Select the suitable pre-trained diffusion model according to your needs
Step 4: Add the specific code line for HiDiffusion in the model code
Step 5: Adjust model parameters to adapt to the required resolution and speed
Step 6: Run the model and observe the results of image generation
Step 7: If necessary, perform post-processing on the generated images to meet specific requirements
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