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| import gradio as gr | |
| import cv2 | |
| from geti_sdk.deployment import Deployment | |
| from geti_sdk.utils import show_image_with_annotation_scene | |
| # Step 1: Load the deployment | |
| deployment = Deployment.from_folder("deployment") | |
| deployment.load_inference_models(device="CPU") | |
| def resize_image(image, target_dimension): | |
| height, width = image.shape[:2] | |
| max_dimension = max(height, width) | |
| scale_factor = target_dimension / max_dimension | |
| new_width = int(width * scale_factor) | |
| new_height = int(height * scale_factor) | |
| resized_image = cv2.resize(image, (new_width, new_height)) | |
| return resized_image | |
| def infer(image=None): | |
| if image is None: | |
| return [None,'Error: No image provided'] | |
| image = resize_image(image, 1200) | |
| prediction = deployment.infer(image) | |
| output = show_image_with_annotation_scene(image, prediction, show_results=False) | |
| output = cv2.cvtColor(output, cv2.COLOR_RGB2BGR) | |
| return [output, prediction.overview] | |
| def run(): | |
| interface = gr.Interface(fn=infer, | |
| inputs=['image'], | |
| outputs=['image', 'text'], | |
| examples=[["no_bird.jpg"], ["bird_example1.jpg"], ["bird_example2.jpg"], ["bird_example3.jpg"]]) | |
| interface.launch(server_name="0.0.0.0", server_port=7860) | |
| # demo = gr.Interface( | |
| # fn=predict, | |
| # inputs=gr.inputs.Image(type="pil"), | |
| # outputs=gr.outputs.Label(num_top_classes=3), | |
| # ) | |
| # demo.launch(server_name="0.0.0.0", server_port=7860) | |
| if __name__ == "__main__": | |
| run() |