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arXiv (Cornell University)
Revisiting the Loss Weight Adjustment in Object Detection
March 2021 • Wenxin Yu, Xueling Shen, Jiajie Hu, Dong Yin
Object detection is a typical multi-task learning application, which optimizes classification and regression simultaneously. However, classification loss always dominates the multi-task loss in anchor-based methods, hampering the consistent and balanced optimization of the tasks. In this paper, we find that shifting the bounding boxes can change the division of positive and negative samples in classification, meaning classification depends on regression. Moreover, we summarize three important conclusions about fin…
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Computer Science
Artificial Intelligence
Object Detection
Machine Learning
Statistics
Mathematics
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