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| from huggingface_hub import hf_hub_download | |
| from inference import YOLOv10 | |
| model_file = hf_hub_download( | |
| repo_id="onnx-community/yolov10n", filename="onnx/model.onnx" | |
| ) | |
| model = YOLOv10(model_file) | |
| def detection(image, conf_threshold=0.3): | |
| image = cv2.resize(image, (model.input_width, model.input_height)) | |
| new_image = model.detect_objects(image, conf_threshold) | |
| return new_image | |
| import gradio as gr | |
| from gradio_webrtc import WebRTC | |
| css = """.my-group {max-width: 600px !important; max-height: 600px !important;} | |
| .my-column {display: flex !important; justify-content: center !important; align-items: center !important;}""" | |
| with gr.Blocks(css=css) as demo: | |
| gr.HTML( | |
| """ | |
| <h1 style='text-align: center'> | |
| YOLOv10 Webcam Stream (Powered by WebRTC ⚡️) | |
| </h1> | |
| """ | |
| ) | |
| with gr.Column(elem_classes=["my-column"]): | |
| with gr.Group(elem_classes=["my-group"]): | |
| image = WebRTC(label="Stream", rtc_configuration=None) | |
| conf_threshold = gr.Slider( | |
| label="Confidence Threshold", | |
| minimum=0.0, | |
| maximum=1.0, | |
| step=0.05, | |
| value=0.30, | |
| ) | |
| image.stream( | |
| fn=detection, inputs=[image, conf_threshold], outputs=[image], time_limit=10 | |
| ) | |
| if __name__ == "__main__": | |
| demo.launch() |