Based on the information provided in the extracts, it seems like you might be encountering a few issues that have been discussed in the Roboflow community.
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Mislabelled Images: As discussed in the Roboflow blog, mislabelled images can cause issues with your model’s performance. Roboflow provides tools to identify and correct these issues. You can inspect each annotation in Roboflow and make changes to them if you find an image that has been mislabelled in your dataset.
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Corrupt Image/Label: As seen in the Roboflow forum post, there can be issues with non-normalized or out of bounds coordinates. This can cause warnings and may affect the performance of your model.
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Improper Annotations: As mentioned in the Roboflow blog, annotations can be prone to error. They can be illogical (e.g. a negative width), completely out of frame, or partially out of frame. Roboflow performs automated bounding box quality checks and can drop problematic annotations to automatically fix the issue.
If you’re still encountering issues, it might be helpful to reach out to the Roboflow community or support for more specific guidance.
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