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  LoRA weights of Stable Diffusion XL for fast text-to-image generation.
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  Note: Just find the normalCFG with 4-step is not working well. Trying to solve the issue.
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  [[paper](https://huggingface.co/papers/2405.18407)] [[arXiv](https://arxiv.org/abs/2405.18407)] [[code](https://github.com/G-U-N/Phased-Consistency-Model)] [[project page](https://g-u-n.github.io/projects/pcm)]
 
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  LoRA weights of Stable Diffusion XL for fast text-to-image generation.
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+ Important Usage Guidance
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+ Use DDIM or Euler instead of LCM for sampling! When using DDIM, set timestep_spacing="trailing".
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+ The name of each LoRA weights indicates how many inference steps they should be applied.
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+ The name of each LoRA weights indicates whether they are able to use normal CFGs or small CFGs
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+ NormalCFG means that model equipped with the LoRA can use CFG value 2-9 for generation. Yet you should adjust the CFG values given the steps you applied.
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+ When using fewer steps, you should use smaller CFGs. For example, use CFG 2.5 - 3.5 with 4 four steps and use CFG 3 - 6 with 8 steps. This is because that fewer-step means the model has fewer chance to fix the issues caused by the CFG.
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+ SmallCFG means that the model equipped with the LoRA can use CFG value 1-2 for generation.
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+ About the performance of normal CFG LoRAs.
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  Note: Just find the normalCFG with 4-step is not working well. Trying to solve the issue.
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  [[paper](https://huggingface.co/papers/2405.18407)] [[arXiv](https://arxiv.org/abs/2405.18407)] [[code](https://github.com/G-U-N/Phased-Consistency-Model)] [[project page](https://g-u-n.github.io/projects/pcm)]