Top Tweets for #ScaleCrafter
🚀🚀Now combining #FreeU with #SDXL, #ControlNet, #LCM, #ScaleCrafter, #Dreambooth, and #Animatediff, you can enhance the generation quality for free!
-Project Page: https://t.co/z5duXpY4VF
-Code: https://t.co/BwVLQ1SMIZ
-Video: https://t.co/W5XKxoEE1H
FreeU: Free Lunch in Diffusion U-Net
paper page: https://t.co/fpRjbk0CED
we uncover the untapped potential of diffusion U-Net, which serves as a "free lunch" that substantially improves the generation quality on the fly. We initially investigate the key contributions of the U-Net architecture to the denoising process and identify that its main backbone primarily contributes to denoising, whereas its skip connections mainly introduce high-frequency features into the decoder module, causing the network to overlook the backbone semantics. Capitalizing on this discovery, we propose a simple yet effective method-termed "FreeU" - that enhances generation quality without additional training or finetuning. Our key insight is to strategically re-weight the contributions sourced from the U-Net's skip connections and backbone feature maps, to leverage the strengths of both components of the U-Net architecture. Promising results on image and video generation tasks demonstrate that our FreeU can be readily integrated to existing diffusion models, e.g., Stable Diffusion, DreamBooth, ModelScope, Rerender and ReVersion, to improve the generation quality with only a few lines of code.
🔗 https://t.co/SgAThAFb37
🚀🚀想要使用 Stable Diffusion 技术生成高分辨率(2K~4K)图像,而无需额外的超分辨率模块吗?* 现在结合 #FreeU 和 #ScaleCrafter,你可以免费使用 SDXL 生成 4K 图像!
- FreeU:https://t.co/gVhJxXkF64
- ScaleCrafter:https://t.co/yvqyX1XdVc
🚀🚀Fancy generating high-res (2K~4K) images using Stable Diffusion without an additional super-resolution module?
* Now combining #FreeU with #ScaleCrafter, you can generate 4K images using SDXL for free!
- FreeU: https://t.co/otGwqbhMBb
- ScaleCrafter: https://t.co/yw0tDC8Vfw

🚀🚀Fancy generating high-res (2K~4K) images using Stable Diffusion without an additional super-resolution module?
* Now combining #FreeU with #ScaleCrafter, you can generate 4K images using SDXL for free!
- FreeU: https://t.co/otGwqbhMBb
- ScaleCrafter: https://t.co/yw0tDC8Vfw

FreeU: Free Lunch in Diffusion U-Net
paper page: https://t.co/fpRjbk0CED
we uncover the untapped potential of diffusion U-Net, which serves as a "free lunch" that substantially improves the generation quality on the fly. We initially investigate the key contributions of the U-Net architecture to the denoising process and identify that its main backbone primarily contributes to denoising, whereas its skip connections mainly introduce high-frequency features into the decoder module, causing the network to overlook the backbone semantics. Capitalizing on this discovery, we propose a simple yet effective method-termed "FreeU" - that enhances generation quality without additional training or finetuning. Our key insight is to strategically re-weight the contributions sourced from the U-Net's skip connections and backbone feature maps, to leverage the strengths of both components of the U-Net architecture. Promising results on image and video generation tasks demonstrate that our FreeU can be readily integrated to existing diffusion models, e.g., Stable Diffusion, DreamBooth, ModelScope, Rerender and ReVersion, to improve the generation quality with only a few lines of code.
#StableDiffusion is amazing tool for #GenAI text-to-image contents generation but it lacks of an hi-res output with images stuck at 1024x1024px. #ScaleCrafter is the tuning-free Hi-Res Visual Generation answer for #SD models which can enable Ultra-HiRes images (4096x4096px).

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