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A training algorithm and stability analysis for recurrent neural networks

  • Zhao Xu
  • , Qing Song
  • , Danwei Wang
  • , Haijin Fan
  • Nanyang Technological University

科研成果: 书/报告/会议事项章节会议稿件同行评审

1 引用 (Scopus)

摘要

Training of recurrent neural networks (RNNs) introduces considerable computational complexities due to the need for gradient evaluations. How to get fast convergence speed and low computational complexity remains a challenging and open topic. Besides, the transient response of learning process of RNNs is a critical issue, especially for on-line applications. Conventional RNNs training algorithms such as the backpropagation through time (BPTT) and real-time recurrent learning (RTRL) have not adequately satisfied these requirements because they often suffer from slow convergence speed. If a large learning rate is chosen to improve performance, the training process may become unstable in terms of weight divergence. In this paper, a novel training algorithm of RNN, named robust recurrent simultaneous perturbation stochastic approximation (RRSPSA), is developed with a specially designed recurrent hybrid adaptive parameter and adaptive learning rates. RRSPSA is a powerful novel twin-engine simultaneous perturbation stochastic approximation (SPSA) type of RNN training algorithm. It utilizes specific designed three adaptive parameters to maximize training speed for recurrent training signal while exhibiting certain weight convergence properties with only two objective function measurements as the original SPSA algorithm. The RRSPSA is proved with guaranteed weight convergence and system stability in the sense of Lyapunov function. Computer simulations were carried out to demonstrate applicability of the theoretical results.

源语言英语
主期刊名15th International Conference on Information Fusion, FUSION 2012
出版商IEEE Computer Society
2285-2292
页数8
ISBN(印刷版)9780982443859
出版状态已出版 - 2012
已对外发布
活动15th International Conference on Information Fusion, FUSION 2012 - Singapore, 新加坡
期限: 7 9月 201212 9月 2012

出版系列

姓名15th International Conference on Information Fusion, FUSION 2012

会议

会议15th International Conference on Information Fusion, FUSION 2012
国家/地区新加坡
Singapore
时期7/09/1212/09/12

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