Files changed (1) hide show
  1. app.py +5 -10
app.py CHANGED
@@ -1,4 +1,3 @@
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- import spaces
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  import gradio as gr
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  import numpy as np
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  import random
@@ -25,9 +24,6 @@ pipeline = DiffusionPipeline.from_pretrained(
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  )
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  pipeline.load_lora_weights(lora_weights_path)
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- # Comment out the line for sequential CPU offloading
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- # pipeline.enable_sequential_cpu_offload()
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-
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  pipeline = pipeline.to(device)
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  MAX_SEED = np.iinfo(np.int32).max
@@ -53,9 +49,9 @@ def infer(prompt, negative_prompt, seed, randomize_seed, width, height, guidance
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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 = """
@@ -195,9 +191,8 @@ with gr.Blocks(css=css) as demo:
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  value=30,
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  )
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- for example in examples:
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- gr.Button(example).click(lambda e=example: prompt.set_value(e))
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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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  import gradio as gr
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  import numpy as np
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  import random
 
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  )
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  pipeline.load_lora_weights(lora_weights_path)
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  pipeline = pipeline.to(device)
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  MAX_SEED = np.iinfo(np.int32).max
 
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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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  value=30,
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  )
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+ gr.Examples(examples=examples, 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],