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        README.md
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            ---
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            title:  | 
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            emoji: 🖼
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            colorFrom: purple
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            colorTo: red
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            sdk_version: 4.26.0
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            app_file: app.py
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            pinned: false
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            ---
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            Check out the configuration reference at https://huggingface.co/docs/hub/spaces-config-reference
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            ---
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            title: Google Gemma 2 9b
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            emoji: 🖼
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            colorFrom: purple
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            colorTo: red
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            sdk_version: 4.26.0
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            app_file: app.py
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            pinned: false
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            license: apache-2.0
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            ---
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            Check out the configuration reference at https://huggingface.co/docs/hub/spaces-config-reference
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        app.py
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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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            from diffusers import DiffusionPipeline
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            import torch
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            if torch.cuda.is_available():
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                torch.cuda.max_memory_allocated(device=device)
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                pipe = DiffusionPipeline.from_pretrained("stabilityai/sdxl-turbo", torch_dtype=torch.float16, variant="fp16", use_safetensors=True)
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                pipe.enable_xformers_memory_efficient_attention()
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                pipe = pipe.to(device)
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            else: 
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                pipe = DiffusionPipeline.from_pretrained("stabilityai/sdxl-turbo", use_safetensors=True)
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                pipe = pipe.to(device)
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            MAX_SEED = np.iinfo(np.int32).max
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            MAX_IMAGE_SIZE = 1024
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            def infer(prompt, negative_prompt, seed, randomize_seed, width, height, guidance_scale, num_inference_steps):
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                if randomize_seed:
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                    seed = random.randint(0, MAX_SEED)
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                generator = torch.Generator().manual_seed(seed)
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                image = pipe(
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                    prompt = prompt, 
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                    negative_prompt = negative_prompt,
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                    guidance_scale = guidance_scale, 
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                    num_inference_steps = num_inference_steps, 
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                    width = width, 
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                    height = height,
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                    generator = generator
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                ).images[0] 
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                return image
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            examples = [
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                "Astronaut in a jungle, cold color palette, muted colors, detailed, 8k",
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                "An astronaut riding a green horse",
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                "A delicious ceviche cheesecake slice",
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            ]
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            css="""
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            #col-container {
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                margin: 0 auto;
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                max-width: 520px;
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            }
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            """
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            if torch.cuda.is_available():
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                power_device = "GPU"
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            else:
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                power_device = "CPU"
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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(f"""
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                    # Text-to-Image Gradio Template
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                    Currently running on {power_device}.
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                    """)
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                    with gr.Row():
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                        prompt = gr.Text(
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                            label="Prompt",
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                            show_label=False,
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                            max_lines=1,
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                            placeholder="Enter your prompt",
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                            container=False,
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                        )
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                        run_button = gr.Button("Run", scale=0)
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                    result = gr.Image(label="Result", show_label=False)
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                    with gr.Accordion("Advanced Settings", open=False):
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                        negative_prompt = gr.Text(
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                            label="Negative prompt",
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                            max_lines=1,
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                            placeholder="Enter a negative prompt",
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                            visible=False,
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                        )
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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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                            width = gr.Slider(
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                                label="Width",
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                                minimum=256,
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                                maximum=MAX_IMAGE_SIZE,
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                                step=32,
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                                value=512,
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                            )
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                            height = gr.Slider(
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                                label="Height",
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                                minimum=256,
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                                maximum=MAX_IMAGE_SIZE,
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                                step=32,
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                                value=512,
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                            )
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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=0.0,
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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=12,
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                                step=1,
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                                value=2,
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                            )
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                    gr.Examples(
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                        examples = examples,
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                        inputs = [prompt]
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                    )
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                run_button.click(
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                    fn = infer,
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                    inputs = [prompt, negative_prompt, seed, randomize_seed, width, height, guidance_scale, num_inference_steps],
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                    outputs = [result]
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                )
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            demo.queue().launch()
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            import gradio as gr
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            gr.load("models/google/gemma-2-9b").launch()
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