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import gradio as gr |
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import numpy as np |
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import random |
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import torch |
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import spaces |
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from PIL import Image |
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from diffusers import QwenImageEditPipeline |
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import os |
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dtype = torch.bfloat16 |
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device = "cuda" if torch.cuda.is_available() else "cpu" |
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pipe = QwenImageEditPipeline.from_pretrained("Qwen/Qwen-Image-Edit", torch_dtype=dtype).to(device) |
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MAX_SEED = np.iinfo(np.int32).max |
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@spaces.GPU(duration=120) |
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def infer( |
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image, |
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prompt, |
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seed=42, |
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randomize_seed=False, |
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guidance_scale=4.0, |
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num_inference_steps=50, |
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progress=gr.Progress(track_tqdm=True), |
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): |
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""" |
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Generates an image using the local Qwen-Image diffusers pipeline. |
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""" |
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negative_prompt = "text, watermark, copyright, blurry, low resolution" |
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if randomize_seed: |
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seed = random.randint(0, MAX_SEED) |
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generator = torch.Generator(device=device).manual_seed(seed) |
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print(f"Calling pipeline with prompt: '{prompt}'") |
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print(f"Negative Prompt: '{negative_prompt}'") |
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print(f"Seed: {seed}, Steps: {num_inference_steps}, Guidance: {guidance_scale}") |
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image = pipe( |
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image, |
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prompt=prompt, |
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negative_prompt=negative_prompt, |
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num_inference_steps=num_inference_steps, |
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generator=generator, |
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true_cfg_scale=guidance_scale, |
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guidance_scale=1.0 |
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).images[0] |
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return image, seed |
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examples = [] |
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css = """ |
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#col-container { |
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margin: 0 auto; |
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max-width: 1024px; |
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} |
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""" |
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with gr.Blocks(css=css) as demo: |
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with gr.Column(elem_id="col-container"): |
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gr.Markdown('<img src="https://qianwen-res.oss-cn-beijing.aliyuncs.com/Qwen-Image/qwen_image_logo.png" alt="Qwen-Image Logo" width="400" style="display: block; margin: 0 auto;">') |
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gr.Markdown("[Learn more](https://github.com/QwenLM/Qwen-Image) about the Qwen-Image series. Try on [Qwen Chat](https://chat.qwen.ai/), or [download model](https://huggingface.co/Qwen/Qwen-Image-Edit) to run locally with ComfyUI or diffusers.") |
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with gr.Row(): |
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with gr.Column(): |
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input_image = gr.Image(label="Input Image", show_label=False, type="pil") |
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prompt = gr.Text( |
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label="Prompt", |
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show_label=False, |
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placeholder="describe the edit instruction", |
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container=False, |
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) |
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run_button = gr.Button("Run", scale=0, variant="primary") |
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result = gr.Image(label="Result", show_label=False, type="pil") |
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with gr.Accordion("Advanced Settings", open=False): |
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seed = gr.Slider( |
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label="Seed", |
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minimum=0, |
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maximum=MAX_SEED, |
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step=1, |
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value=0, |
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) |
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randomize_seed = gr.Checkbox(label="Randomize seed", value=True) |
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with gr.Row(): |
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guidance_scale = gr.Slider( |
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label="Guidance scale", |
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minimum=0.0, |
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maximum=10.0, |
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step=0.1, |
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value=4.0, |
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) |
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num_inference_steps = gr.Slider( |
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label="Number of inference steps", |
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minimum=1, |
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maximum=50, |
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step=1, |
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value=30, |
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) |
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gr.on( |
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triggers=[run_button.click, prompt.submit], |
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fn=infer, |
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inputs=[ |
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input_image, |
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prompt, |
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seed, |
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randomize_seed, |
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guidance_scale, |
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num_inference_steps, |
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], |
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outputs=[result, seed], |
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) |
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if __name__ == "__main__": |
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demo.launch() |