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import gradio as gr
from transformers import pipeline
# Initialize the zero-shot-object-detection pipeline
pipe = pipeline("zero-shot-object-detection", model="google/owlvit-base-patch16")
# Define the function to use the pipeline
def detect_objects(image, labels):
# Split the labels into a list
candidate_labels = [label.strip() for label in labels.split(",")]
result = pipe(image, candidate_labels=candidate_labels)
# Return the detected objects and their confidence scores
return result
# Create the Gradio interface
iface = gr.Interface(
fn=detect_objects, # function to process input
inputs=[
gr.Image(type="filepath", label="Upload Image"), # input for image using updated gr.Image
gr.Textbox(lines=2, label="Candidate Labels (comma separated)"), # input for candidate labels
],
outputs=gr.JSON(), # output as JSON for multiple object detection results
title="Zero-Shot Object Detection", # Title of the interface
description="Upload an image and provide a list of labels (comma separated) for object detection.", # Description
)
# Launch the interface
iface.launch()