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import gradio as gr | |
from PIL import Image, ImageDraw | |
# Use a pipeline as a high-level helper | |
from transformers import pipeline | |
object_detector = pipeline("object-detection", model="facebook/detr-resnet-50") | |
# model_path = "../Models/models--facebook--detr-resnet-50/snapshots/1d5f47bd3bdd2c4bbfa585418ffe6da5028b4c0b" | |
# object_detector = pipeline("object-detection", model=model_path) | |
def draw_bounding_boxes(image, object_detections): | |
""" | |
Draws bounding boxes around detected objects on a PIL image. | |
Args: | |
image (PIL.Image): The input image. | |
object_detections (list): A list of dictionaries, where each dictionary represents a detected object. | |
Each dictionary should have the following keys: | |
- 'score': the confidence score of the detection | |
- 'label': the label of the detected object | |
- 'box': a dictionary with keys 'xmin', 'ymin', 'xmax', 'ymax' | |
representing the bounding box coordinates. | |
Returns: | |
PIL.Image: The input image with bounding boxes drawn around the detected objects. | |
""" | |
draw = ImageDraw.Draw(image) | |
for detection in object_detections: | |
box = detection['box'] | |
label = detection['label'] | |
score = detection['score'] | |
# Draw the bounding box | |
draw.rectangle((box['xmin'], box['ymin'], box['xmax'], box['ymax']), outline=(255, 0, 0), width=2) | |
# Draw the label and score | |
text = f"{label} ({score:.2f})" | |
draw.text((box['xmin'], box['ymin'] - 20), text, fill=(255, 0, 0)) | |
return image | |
def detect_object(image): | |
# raw_image = Image.open(image) | |
output = object_detector(image) | |
processed_image = draw_bounding_boxes(image, output) | |
return processed_image | |
gr.close_all() | |
demo = gr.Interface(fn=detect_object, | |
inputs=[gr.Image(label="Select Image", type="pil")], | |
outputs=[gr.Image(label="Processed Image", type="pil")], | |
title="@IT AI Enthusiast (https://www.youtube.com/@itaienthusiast/) - Project 6: Object Detector", | |
description="THIS APPLICATION WILL BE USED TO DETECT OBJECT INSIDE THE PROVIDED INPUT IMGAES", | |
# examples=['Hello Friends, Welcome to my channel. I hope this video helps you understand AI.','Hello friends how are you?'], | |
concurrency_limit=16) | |
demo.launch() |