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README.md CHANGED
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  ---
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  title: Blood Cell Object Detection
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- emoji: 📚
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- colorFrom: yellow
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- colorTo: indigo
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  sdk: gradio
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  sdk_version: 3.15.0
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  app_file: app.py
 
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  ---
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  title: Blood Cell Object Detection
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+ emoji: 🎮
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+ colorFrom: red
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+ colorTo: gray
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  sdk: gradio
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  sdk_version: 3.15.0
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  app_file: app.py
app.py ADDED
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+
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+ import json
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+ import gradio as gr
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+ import yolov5
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+ from PIL import Image
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+ from huggingface_hub import hf_hub_download
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+
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+ app_title = "Blood Cell Object Detection"
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+ models_ids = ['keremberke/yolov5n-blood-cell', 'keremberke/yolov5s-blood-cell', 'keremberke/yolov5m-blood-cell']
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+ article = f"<p style='text-align: center'> <a href='https://huggingface.co/{models_ids[-1]}'>model</a> | <a href='https://huggingface.co/keremberke/blood-cell-object-detection'>dataset</a> | <a href='https://github.com/keremberke/awesome-yolov5-models'>awesome-yolov5-models</a> </p>"
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+
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+ current_model_id = models_ids[-1]
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+ model = yolov5.load(current_model_id)
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+
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+ examples = [['test_images/BloodImage_00004_jpg.rf.32f80737b874b0728582d77e7c409dd5.jpg', 0.25, 'keremberke/yolov5m-blood-cell'], ['test_images/BloodImage_00071_jpg.rf.4eaf043df89d110a17821cd2739cf9c8.jpg', 0.25, 'keremberke/yolov5m-blood-cell'], ['test_images/BloodImage_00182_jpg.rf.166c2fcd2f192794d6b68051171fe261.jpg', 0.25, 'keremberke/yolov5m-blood-cell'], ['test_images/BloodImage_00259_jpg.rf.fbe6e4480e60c75a0f01ad7b8b367262.jpg', 0.25, 'keremberke/yolov5m-blood-cell'], ['test_images/BloodImage_00274_jpg.rf.86d08e08eb6ca331175699cc1ef1ce07.jpg', 0.25, 'keremberke/yolov5m-blood-cell'], ['test_images/BloodImage_00296_jpg.rf.6a50b9decfd0cde034af85c72b5f2c9c.jpg', 0.25, 'keremberke/yolov5m-blood-cell']]
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+
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+
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+ def predict(image, threshold=0.25, model_id=None):
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+ # update model if required
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+ global current_model_id
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+ global model
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+ if model_id != current_model_id:
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+ model = yolov5.load(model_id)
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+ current_model_id = model_id
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+
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+ # get model input size
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+ config_path = hf_hub_download(repo_id=model_id, filename="config.json")
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+ with open(config_path, "r") as f:
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+ config = json.load(f)
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+ input_size = config["input_size"]
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+
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+ # perform inference
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+ model.conf = threshold
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+ results = model(image, size=input_size)
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+ numpy_image = results.render()[0]
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+ output_image = Image.fromarray(numpy_image)
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+ return output_image
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+
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+
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+ gr.Interface(
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+ title=app_title,
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+ description="Created by 'keremberke'",
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+ article=article,
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+ fn=predict,
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+ inputs=[
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+ gr.Image(type="pil"),
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+ gr.Slider(maximum=1, step=0.01, value=0.25),
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+ gr.Dropdown(models_ids, value=models_ids[-1]),
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+ ],
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+ outputs=gr.Image(type="pil"),
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+ examples=examples,
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+ cache_examples=True if examples else False,
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+ ).launch(enable_queue=True)
requirements.txt ADDED
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+
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+ yolov5==7.0.5
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+ gradio==3.15.0
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+ torch
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+ huggingface-hub
test_images/BloodImage_00004_jpg.rf.32f80737b874b0728582d77e7c409dd5.jpg ADDED
test_images/BloodImage_00071_jpg.rf.4eaf043df89d110a17821cd2739cf9c8.jpg ADDED
test_images/BloodImage_00182_jpg.rf.166c2fcd2f192794d6b68051171fe261.jpg ADDED
test_images/BloodImage_00259_jpg.rf.fbe6e4480e60c75a0f01ad7b8b367262.jpg ADDED
test_images/BloodImage_00274_jpg.rf.86d08e08eb6ca331175699cc1ef1ce07.jpg ADDED
test_images/BloodImage_00296_jpg.rf.6a50b9decfd0cde034af85c72b5f2c9c.jpg ADDED