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chaitnya26/qwen-image-edit-2509-fork

sourceHugging Faceapache-2.0updated 1y agoView on Hugging Face
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Model Card

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Model Card for nunchaku-qwen-image-edit-2509

visual This repository contains Nunchaku-quantized versions of Qwen-Image-Edit-2509, an image-editing model based on Qwen-Image, advances in complex text rendering. It is optimized for efficient inference while maintaining minimal loss in performance.

News

  • โ€”[2025-09-25] ๐Ÿ”ฅ Release 4-bit [4/8-step lightning Qwen-Image-Edit](https://huggingface.co/lightx2v/Qwen-Image-Lightning)!
  • โ€”[2025-09-24] ๐Ÿš€ Release 4-bit SVDQuant quantized Qwen-Image-Edit-2509 model with rank 32 and 128!

Model Details

Model Description

  • โ€”Developed by: Nunchaku Team
  • โ€”Model type: image-to-image
  • โ€”License: apache-2.0
  • โ€”Quantized from model: Qwen-Image-Edit-2509

Model Files

  • โ€”`svdq-int4_r32-qwen-image-edit-2509.safetensors`: SVDQuant INT4 (rank 32) Qwen-Image-Edit-2509 model. For users with non-Blackwell GPUs (pre-50-series).
  • โ€”`svdq-int4_r128-qwen-image-edit-2509.safetensors`: SVDQuant INT4 (rank 128) Qwen-Image-Edit-2509 model. For users with non-Blackwell GPUs (pre-50-series). It offers better quality than the rank 32 model, but it is slower.
  • โ€”`svdq-int4_r32-qwen-image-edit-2509-lightningv2.0-4steps.safetensors`: SVDQuant INT4 (rank 32) 4-step Qwen-Image-Edit-2509 model by fusing Qwen-Image-Lightning-4steps-V2.0-bf16.safetensors using LoRA strength = 1.0. For users with non-Blackwell GPUs (pre-50-series).
  • โ€”`svdq-int4_r128-qwen-image-edit-2509-lightning`: SVDQuant INT4 (rank 128) 4-step Qwen-Image-Edit-2509 model by fusing Qwen-Image-Lightning-4steps-V2.0-bf16.safetensors using LoRA strength = 1.0. For users with non-Blackwell GPUs (pre-50-series).
  • โ€”`svdq-int4_r32-qwen-image-edit-2509-lightningv2.0-8steps.safetensors`: SVDQuant INT4 (rank 32) 8-step Qwen-Image-Edit-2509 model by fusing Qwen-Image-Lightning-8steps-V2.0-bf16.safetensors using LoRA strength = 1.0. For users with non-Blackwell GPUs (pre-50-series).
  • โ€”`svdq-int4_r128-qwen-image-edit-2509-lightningv2.0-8steps.safetensors`: SVDQuant INT4 (rank 128) 8-step Qwen-Image-Edit-2509 model by fusing Qwen-Image-Lightning-8steps-V2.0-bf16.safetensors using LoRA strength = 1.0. For users with non-Blackwell GPUs (pre-50-series).
  • โ€”`svdq-fp4_r32-qwen-image-edit-2509.safetensors`: SVDQuant NVFP4 (rank 32) Qwen-Image-Edit-2509 model. For users with Blackwell GPUs (50-series).
  • โ€”`svdq-fp4_r128-qwen-image-edit-2509.safetensors`: SVDQuant NVFP4 (rank 128) Qwen-Image-Edit-2509 model. For users with Blackwell GPUs (50-series). It offers better quality than the rank 32 model, but it is slower.
  • โ€”`svdq-fp4_r32-qwen-image-edit-2509-lightningv2.0-4steps.safetensors`: SVDQuant NVFP4 (rank 32) 4-step Qwen-Image-Edit-2509 model by fusing Qwen-Image-Lightning-4steps-V2.0-bf16.safetensors using LoRA strength = 1.0. For users with Blackwell GPUs (50-series).
  • โ€”`svdq-fp4_r128-qwen-image-edit-2509-lightningv2.0-4steps.safetensors`: SVDQuant NVFP4 (rank 128) 4-step Qwen-Image-Edit-2509 model by fusing Qwen-Image-Lightning-4steps-V2.0-bf16.safetensors using LoRA strength = 1.0. For users with Blackwell GPUs (50-series).
  • โ€”`svdq-fp4_r32-qwen-image-edit-2509-lightningv2.0-8steps.safetensors`: SVDQuant NVFP4 (rank 32) 8-step Qwen-Image-Edit-2509 model by fusing Qwen-Image-Lightning-8steps-V2.0-bf16.safetensors using LoRA strength = 1.0. For users with Blackwell GPUs (50-series).
  • โ€”`svdq-fp4_r128-qwen-image-edit-2509-lightningv2.0-8steps.safetensors`: SVDQuant NVFP4 (rank 128) 8-step Qwen-Image-Edit-2509 model by fusing Qwen-Image-Lightning-8steps-V2.0-bf16.safetensors using LoRA strength = 1.0. For users with Blackwell GPUs (50-series).

Model Sources

Usage

Performance

performance

Citation

bibtex
@inproceedings{
  li2024svdquant,
  title={SVDQuant: Absorbing Outliers by Low-Rank Components for 4-Bit Diffusion Models},
  author={Li*, Muyang and Lin*, Yujun and Zhang*, Zhekai and Cai, Tianle and Li, Xiuyu and Guo, Junxian and Xie, Enze and Meng, Chenlin and Zhu, Jun-Yan and Han, Song},
  booktitle={The Thirteenth International Conference on Learning Representations},
  year={2025}
}