Autodistill is an ecosystem for using big, slower foundation models to train small, faster supervised models. Using autodistill and its associated packages, you can go from unlabeled images to inference on a custom model running at the edge with no human intervention in between.
Autodistill
Use big, slow foundation vision models to train smaller, faster models.
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- autodistill Public
Images to inference with no labeling (use foundation models to train supervised models).
- autodistill-yolov11 Public Forked from autodistill/autodistill-yolov8
YOLOv11 Target Model plugin for Autodistill
- autodistill-florence-2 Public
Use Florence 2 to auto-label data for use in training fine-tuned object detection models.
- autodistill-grounded-sam-2 Public
Use Segment Anything 2, grounded with Florence-2, to auto-label data for use in training vision models.
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