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app.py
CHANGED
@@ -3,16 +3,15 @@ from PIL import Image
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import os
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import spaces
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# os.environ['CUDA_VISIBLE_DEVICES'] = '7'
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from OmniGen import OmniGenPipeline
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pipe = OmniGenPipeline.from_pretrained(
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# 示例处理函数:生成图像
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@spaces.GPU
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input_images = [img1, img2, img3]
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# 去除 None
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input_images = [img for img in input_images if img is not None]
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@@ -24,38 +23,91 @@ def generate_image(text, img1, img2, img3, height, width, guidance_scale):
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input_images=input_images,
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height=height,
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width=width,
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guidance_scale=guidance_scale,
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img_guidance_scale=1.6,
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separate_cfg_infer=True,
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use_kv_cache=False
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)
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img = output[0]
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return img
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# Gradio 接口
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with gr.Blocks() as demo:
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gr.Markdown("## Text + Multiple Images to Image Generator")
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with gr.Row():
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with gr.Column():
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# 文本输入框
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prompt_input = gr.Textbox(
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# 高度和宽度滑块
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height_input = gr.Slider(
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# 引导尺度输入
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guidance_scale_input = gr.Slider(
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# 生成按钮
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generate_button = gr.Button("Generate Image")
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with gr.Column():
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# 输出图像框
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output_image = gr.Image(label="Output Image")
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@@ -63,8 +115,33 @@ with gr.Blocks() as demo:
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# 按钮点击事件
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generate_button.click(
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generate_image,
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inputs=[
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)
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# 启动应用
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import os
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import spaces
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from OmniGen import OmniGenPipeline
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pipe = OmniGenPipeline.from_pretrained(
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"shitao/tmp-preview"
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)
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@spaces.GPU
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# 示例处理函数:生成图像
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def generate_image(text, img1, img2, img3, height, width, guidance_scale, inference_steps):
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input_images = [img1, img2, img3]
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# 去除 None
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input_images = [img for img in input_images if img is not None]
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input_images=input_images,
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height=height,
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width=width,
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guidance_scale=guidance_scale,
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img_guidance_scale=1.6,
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num_inference_steps=inference_steps,
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separate_cfg_infer=True,
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use_kv_cache=False,
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)
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img = output[0]
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return img
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# def generate_image(text, img1, img2, img3, height, width, guidance_scale, inference_steps):
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# input_images = []
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# if img1:
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# input_images.append(Image.open(img1))
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# if img2:
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# input_images.append(Image.open(img2))
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# if img3:
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# input_images.append(Image.open(img3))
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# return input_images[0] if input_images else None
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def get_example():
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case = [
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[
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"A woman holds a bouquet of flowers and faces the camera. Thw woman is the one in <img><|image_1|></img>.",
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"./imgs/test_cases/liuyifei.png",
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None,
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None,
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1024,
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1024,
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3.0,
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20,
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],
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[
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"Three zebras are standing side by side on a vibrant savannah, each showcasing unique patterns and characteristics that highlight their individuality. The zebra on the left has a strikingly bold black and white stripe pattern, with wider stripes that create a dramatic contrast against its sleek body. In the middle, the zebra features a more subtle stripe arrangement, with thinner stripes that blend seamlessly into a slightly sandy-colored coat, giving it a softer appearance. On the right, the zebra's stripes are more irregular, with a distinct patch of brown fur near its shoulder, adding a layer of uniqueness to its overall look. Together, these zebras create a captivating scene, each representing the diverse beauty of their species in the wild. The right zebras is the zebras from <img><|image_1|></img>. The center zebras is from <img><|image_2|></img>. The left zebras is the zebras from <img><|image_3|></img>.",
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"./imgs/test_cases/img1.jpg",
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"./imgs/test_cases/img2.jpg",
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"./imgs/test_cases/img3.jpg",
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1024,
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1024,
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3.0,
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20,
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],
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]
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return case
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def run_for_examples(text, img1, img2, img3, height, width, guidance_scale, inference_steps):
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return generate_image(text, img1, img2, img3, height, width, guidance_scale, inference_steps)
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# Gradio 接口
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with gr.Blocks() as demo:
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gr.Markdown("## Text + Multiple Images to Image Generator")
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with gr.Row():
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with gr.Column():
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# 文本输入框
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prompt_input = gr.Textbox(
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label="Enter your prompt", placeholder="Type your prompt here..."
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)
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with gr.Row(equal_height=True):
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# 图片上传框
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image_input_1 = gr.Image(label="<img><|image_1|></img>", type="filepath")
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image_input_2 = gr.Image(label="<img><|image_2|></img>", type="filepath")
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image_input_3 = gr.Image(label="<img><|image_3|></img>", type="filepath")
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# 高度和宽度滑块
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height_input = gr.Slider(
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label="Height", minimum=256, maximum=2048, value=1024, step=16
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)
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width_input = gr.Slider(
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label="Width", minimum=256, maximum=2048, value=1024, step=16
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)
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# 引导尺度输入
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guidance_scale_input = gr.Slider(
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label="Guidance Scale", minimum=1.0, maximum=10.0, value=3.0, step=0.1
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)
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num_inference_steps = gr.Slider(
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label="Inference Steps", minimum=1, maximum=50, value=50, step=1
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)
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# 生成按钮
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generate_button = gr.Button("Generate Image")
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with gr.Column():
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# 输出图像框
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output_image = gr.Image(label="Output Image")
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# 按钮点击事件
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generate_button.click(
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generate_image,
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inputs=[
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prompt_input,
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image_input_1,
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image_input_2,
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image_input_3,
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height_input,
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width_input,
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guidance_scale_input,
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num_inference_steps,
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],
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outputs=output_image,
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)
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gr.Examples(
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examples=get_example(),
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fn=run_for_examples,
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inputs=[
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prompt_input,
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image_input_1,
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image_input_2,
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image_input_3,
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height_input,
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width_input,
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guidance_scale_input,
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num_inference_steps,
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],
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outputs=output_image,
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)
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# 启动应用
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