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import gradio as gr
# Load the new model from Shakker-Labs
demo = gr.load("models/Shakker-Labs/AWPortrait-FL")
def process_output(*outputs):
# Assuming the model returns a tuple, and the first element is the image
if isinstance(outputs, tuple):
# Extract the image from the tuple
image = outputs[0]
return image
return outputs
# Create a wrapper to process the output correctly
def wrapped_inference(*inputs):
outputs = demo(*inputs)
return process_output(*outputs)
# Launch the Gradio interface with the corrected output processing
gr.Interface(
wrapped_inference,
demo.inputs,
demo.outputs,
).launch()