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首页> 外文期刊>Neural Networks: The Official Journal of the International Neural Network Society >Tree-CNN: A hierarchical Deep Convolutional Neural Network for incremental learning
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Tree-CNN: A hierarchical Deep Convolutional Neural Network for incremental learning

机译:Tree-CNN:增量学习的分层深度卷积神经网络

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摘要

Over the past decade, Deep Convolutional Neural Networks (DCNNs) have shown remarkable performance in most computer vision tasks. These tasks traditionally use a fixed dataset, and the model, once trained, is deployed as is. Adding new information to such a model presents a challenge due to complex training issues, such as "catastrophic forgetting", and sensitivity to hyper-parameter tuning. However, in this modern world, data is constantly evolving, and our deep learning models are required to adapt to these changes. In this paper, we propose an adaptive hierarchical network structure composed of DCNNs that can grow and learn as new data becomes available. The network grows in a tree-like fashion to accommodate new classes of data, while preserving the ability to distinguish the previously trained classes. The network organizes the incrementally available data into feature-driven super-classes and improves upon existing hierarchical CNN models by adding the capability of self-growth. The proposed hierarchical model, when compared against fine-tuning a deep network, achieves significant reduction of training effort, while maintaining competitive accuracy on CIFAR-10 and CIFAR-100. (C) 2019 Elsevier Ltd. All rights reserved.
机译:在过去十年中,深度卷积神经网络(DCNNS)在大多数计算机视觉任务中都显示出显着性能。这些任务传统上使用固定的数据集,并且培训型号,按原样部署。由于复杂的培训问题,如“灾难性忘记”,以及对超参数调谐的敏感性,将新信息添加到这种模型上提出了挑战。然而,在这个现代化的世界中,数据不断发展,我们的深度学习模型需要适应这些变化。在本文中,我们提出了一种由DCNN组成的自适应分层网络结构,该网络结构可以生长和学习,因为新数据变得可用。网络以树状的方式生长,以适应新的数据类,同时保留区分先前培训的课程的能力。该网络将递增数据的数据组织成功能驱动的超级类,并通过添加自我增长的能力来改善现有的分层CNN模型。拟议的等级模型,与微调深度网络相比,实现了培训努力的显着降低,同时在CiFar-10和CiFar-100上保持竞争准确性。 (c)2019年elestvier有限公司保留所有权利。

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