Papers › Relay Backpropagation for Effective Learning of Deep Convolutional Neural Networks

Relay Backpropagation for Effective Learning of Deep Convolutional Neural Networks

18 Dec 2015arXiv:1512.05830archive 2025-07-28

Li Shen, Zhouchen Lin, Qingming Huang

Learning deeper convolutional neural networks becomes a tendency in recent years. However, many empirical evidences suggest that performance improvement cannot be gained by simply stacking more layers. In this paper, we consider the issue from an information theoretical perspective, and propose a novel method Relay Backpropagation, that encourages the propagation of effective information through the network in training stage. By virtue of the method, we achieved the first place in ILSVRC 2015 Scene Classification Challenge. Extensive experiments on two challenging large scale datasets demonstrate the effectiveness of our method is not restricted to a specific dataset or network architecture. Our models will be available to the research community later.

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craston/object_detection_cib mentioned on GitHubpytorchApache-2.0 report

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General ClassificationLong-tail LearningScene Classification

Results from the paper archive 2025-07-28

TaskDatasetModelMetricValueRank at snapshotLeaderboardReport
Long-tail Learning COCO-MLT RS(ResNet-50) Average mAP 46.97 #10 of 13 Archive leaderboard report
Long-tail Learning VOC-MLT RS(ResNet-50) Average mAP 75.38 #8 of 13 Archive leaderboard report

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