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| import modal | |
| from smolagents import Tool | |
| from modal_apps.app import app | |
| from modal_apps.inference_pipeline import InferencePipelineModalApp | |
| class ObjectDetectionTool(Tool): | |
| name = "object_detection" | |
| description = """ | |
| Given an image, detect objects and return bounding boxes. | |
| The image is a PIL image. | |
| The output is a list of dictionaries containing the bounding boxes with the following keys: | |
| - box: a dictionary with the following keys: | |
| - xmin: a number | |
| - ymin: a number | |
| - xmax: a number | |
| - ymax: a number | |
| - score: a number between 0 and 1 | |
| - label: a string | |
| You need to provide the model name to use for object detection. | |
| The tool returns a list of bounding boxes for all the objects in the image. | |
| """ | |
| inputs = { | |
| "image": { | |
| "type": "image", | |
| "description": "The image to detect objects in", | |
| }, | |
| "model_name": { | |
| "type": "string", | |
| "description": "The name of the model to use for object detection", | |
| }, | |
| } | |
| output_type = "object" | |
| def __init__(self): | |
| super().__init__() | |
| self.modal_app = modal.Cls.from_name(app.name, InferencePipelineModalApp.__name__)() | |
| def forward( | |
| self, | |
| image, | |
| model_name: str, | |
| ): | |
| bboxes = self.modal_app.forward.remote(model_name=model_name, task="object-detection", image=image) | |
| for bbox in bboxes: | |
| print(f"Found bounding box of {bbox['label']} with score: {bbox['score']} at box: {bbox['box']}") | |
| return bboxes | |