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#ranking-loss

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PyPI
59Moderatehealth index
chris-santiago/imbalanced-losses
imbalanced-losses is a PyTorch library of training losses for class-imbalanced classification — including Focal Loss, Smooth-AP, and Recall-at-Quantile — with built-in DDP all-gather support for globally-correct rank estimation and normalization across multi-GPU training.
Python · HTML★ 0↓ 330/moAug 2, 2026
MITAug 2, 2026 · metrics 2.10.0