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Reputation:
I’ve been working with standard computer vision datasets (object detection, segmentation, and OCR), and something I keep noticing is that models can score very well on benchmarks but still fail badly in real-world deployments.
I’m curious about issues that aren’t obvious from accuracy or mAP, such as:
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I’m curious about issues that aren’t obvious from accuracy or mAP, such as:
- Dataset artifacts or shortcuts models exploit
- Annotation inconsistencies that only appear at scale
- Domain leakage between train/test splits
- Bias introduced by data...
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