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- Add DDA_SageMaker_YOLO_Training.ipynb notebook that uses YOLOv8 models - Provides open-source alternative to Lookout for Vision marketplace algorithm - Supports object detection, segmentation, and classification - Includes data preparation, SageMaker training job setup, and model export - Exports models to ONNX and TorchScript for edge deployment - Update README.md to document both training options Co-authored-by: rajjainl <182391521+rajjainl@users.noreply.github.com>
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Summary
This PR adds a new SageMaker notebook that uses YOLO models for defect detection as an alternative to the existing Lookout for Vision approach.
Changes
New File:
DDA_SageMaker_YOLO_Training.ipynbA comprehensive notebook for training YOLOv8 models on SageMaker:
Advantages of YOLO over Lookout for Vision:
Updated:
README.mdTesting
The notebook is designed to be run in Amazon SageMaker Notebook Instance or SageMaker Studio. It uses the same cookie dataset as the existing LFV notebooks for consistent testing.
Deployment Compatibility
YOLO models can be deployed using the same DDA edge deployment workflow:
DDA_Greengrass_Component_Creator.ipynb