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Runtime error
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·
a0ae60c
1
Parent(s):
b474519
add interface
Browse files
app.py
CHANGED
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@@ -1,8 +1,10 @@
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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 spaces
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import torch
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from diffusers import DiffusionPipeline
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dtype = torch.bfloat16
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@@ -19,104 +21,54 @@ def infer(prompt, seed=42, randomize_seed=False, width=1024, height=1024, num_in
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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
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width
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height
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num_inference_steps
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generator
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guidance_scale=0.0
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).images[0]
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return image, seed
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examples = [
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"a tiny astronaut hatching from an egg on the moon",
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"a cat holding a sign that says hello world",
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"an anime illustration of a wiener schnitzel",
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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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with gr.Column(elem_id="col-container"):
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gr.Markdown(f"""# FLUX.1 [schnell]
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12B param rectified flow transformer distilled from [FLUX.1 [pro]](https://blackforestlabs.ai/) for 4 step generation
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[[blog](https://blackforestlabs.ai/announcing-black-forest-labs/)] [[model](https://huggingface.co/black-forest-labs/FLUX.1-schnell)]
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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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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=1024,
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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=1024,
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)
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with gr.Row():
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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=4,
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)
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gr.Examples(
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examples = examples,
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fn = infer,
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inputs = [prompt],
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outputs = [result, seed],
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cache_examples="lazy"
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)
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import random
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import gradio as gr
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import numpy as np
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import spaces
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import torch
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from dataset_viber import CollectorInterface
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from diffusers import DiffusionPipeline
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dtype = torch.bfloat16
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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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width=width,
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height=height,
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num_inference_steps=num_inference_steps,
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generator=generator,
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guidance_scale=0.0
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).images[0]
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return image, seed
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examples = [
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"a tiny astronaut hatching from an egg on the moon",
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"a cat holding a sign that says hello world",
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"an anime illustration of a wiener schnitzel",
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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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description = """# FLUX.1 [schnell]
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12B param rectified flow transformer distilled from [FLUX.1 [pro]](https://blackforestlabs.ai/) for 4 step generation
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[[blog](https://blackforestlabs.ai/announcing-black-forest-labs/)] [[model](https://huggingface.co/black-forest-labs/FLUX.1-schnell)]
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"""
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interface = CollectorInterface(
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fn=infer,
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inputs=[
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gr.Textbox(label="Prompt", placeholder="Enter your prompt")
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],
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outputs=[
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gr.Image(label="Result"),
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],
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additional_inputs=[
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gr.Slider(label="Seed", minimum=0, maximum=MAX_SEED, step=1, value=0),
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gr.Checkbox(label="Randomize seed", value=True),
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gr.Slider(label="Width", minimum=256, maximum=MAX_IMAGE_SIZE, step=32, value=1024),
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gr.Slider(label="Height", minimum=256, maximum=MAX_IMAGE_SIZE, step=32, value=1024),
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gr.Slider(label="Number of inference steps", minimum=1, maximum=50, step=1, value=4),
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],
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title="FLUX.1 [schnell] - with Dataset Viber data collection",
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description=description,
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examples=examples,
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css=css,
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allow_flagging="never",
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dataset_name="image-generation-flux1-schnell"
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)
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interface.launch()
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