Value-Guided Adaptive Data Augmentation for Imbalanced Small Object Detection
Haipeng Wang,
Chenhong Sui,
Fuhao Jiang
et al.
Abstract:Data augmentation is considered a promising technique to resolve the imbalance of large and small objects. Unfortunately, most existing methods augment all small objects indiscriminately, regardless of their learnability and proportion. This tends to result in wasteful enlargement for many weak, low-information objects but under-augmentation for rare and learnable objects. To this end, we propose a value-guided adaptive data augmentation for scale- and proportion-imbalanced small object detection (ValCopy-Past… Show more
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