ulralytics 8.0.199 *.npy image loading exception handling (#5683)
Signed-off-by: Glenn Jocher <glenn.jocher@ultralytics.com> Co-authored-by: snyk-bot <snyk-bot@snyk.io> Co-authored-by: Yonghye Kwon <developer.0hye@gmail.com> Co-authored-by: pre-commit-ci[bot] <66853113+pre-commit-ci[bot]@users.noreply.github.com>
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@ -8,12 +8,16 @@ keywords: Ultralytics, YOLOv8, Roboflow, vector analysis, confusion matrix, data
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[Roboflow](https://roboflow.com/?ref=ultralytics) has everything you need to build and deploy computer vision models. Connect Roboflow at any step in your pipeline with APIs and SDKs, or use the end-to-end interface to automate the entire process from image to inference. Whether you’re in need of [data labeling](https://roboflow.com/annotate?ref=ultralytics), [model training](https://roboflow.com/train?ref=ultralytics), or [model deployment](https://roboflow.com/deploy?ref=ultralytics), Roboflow gives you building blocks to bring custom computer vision solutions to your project.
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!!! warning
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Roboflow users can use Ultralytics under the [AGPL license](https://github.com/ultralytics/ultralytics/blob/main/LICENSE) or procure an [Enterprise license](https://ultralytics.com/license) directly from Ultralytics. Be aware that Roboflow does **not** provide Ultralytics licenses, and it is the responsibility of the user to ensure appropriate licensing.
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In this guide, we are going to showcase how to find, label, and organize data for use in training a custom Ultralytics YOLOv8 model. Use the table of contents below to jump directly to a specific section:
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- Gather data for training a custom YOLOv8 model
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- Upload, convert and label data for YOLOv8 format
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- Pre-process and augment data for model robustness
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- Dataset management for YOLOv8
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- Dataset management for [YOLOv8](https://docs.ultralytics.com/models/yolov8/)
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- Export data in 40+ formats for model training
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- Upload custom YOLOv8 model weights for testing and deployment
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- Gather Data for Training a Custom YOLOv8 Model
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