Survey of Unstable Gradients in Deep Neural Network Training
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National Basic Research Program of China (973) (2014CB340404); National Natural Science Foundation of China (71571136); Project of Science and Technology Commission of Shanghai Municipality (16JC403000)

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    Abstract:

    As a popular research direction in the field of machine learning, deep neural networks are prone to the phenomenon of unstable gradients in training, which has become an important element that restricts their development. How to avoid and control unstable gradients is an important research topic of deep neural networks. This paper analyzes the cause and effect of the unstable gradients, and reviews the main models and methods of solving the unstable gradients. Furthermore, the future research trends in the unstable gradients is discussed.

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陈建廷,向阳.深度神经网络训练中梯度不稳定现象研究综述.软件学报,2018,29(7):2071-2091

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  • Received:September 27,2017
  • Revised:November 10,2017
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  • Online: February 08,2018
  • Published:
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