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@Koldim2001 Koldim2001 released this 27 Jun 16:07
· 50 commits to main since this release

This Python library simplifies SAHI-like inference for instance segmentation tasks, enabling the detection of small objects in images. It caters to both object detection and instance segmentation tasks, supporting a wide range of Ultralytics models.

The library also provides a sleek customization of the visualization of the inference results for all models, both in the standard approach (direct network run) and the unique patch-based variant.

Model Support: The library offers support for multiple ultralytics deep learning models, such as YOLOv8, YOLOv8-seg, YOLOv9, YOLOv9-seg, FastSAM, and RTDETR. Users can select from pre-trained options or utilize custom-trained models to best meet their task requirements.

pip install patched-yolo-infer==1.2.6

🚀MAIN UPDATES:
Increased the processing speed of the visualize_results_usual_yolo_inference function for the task of instance segmentation visualization, and added the ability to pass extra arguments to the inference. You can find a list of possible additional arguments in the Ultralytics documentation - here.