An Accelerating Method of Training Neural Networks Based on Vector Epsilon Algorithm

Jianliang Li, L. Lian, Yong Jiang
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引用次数: 2

Abstract

This paper studied the accelerating convergence of the vector sequences generated by BP algorithm with vector epsilon algorithm, and presented the conclusion that the algorithms is not only convergent but also accelerated. Finally, we tested them for three classical artificial neural network problems. By numerical experiments, results shown that can reduce CPU time for computation and improve the learning efficiency.
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基于向量Epsilon算法的神经网络加速训练方法
本文用向量epsilon算法研究了BP算法生成的向量序列的加速收敛性,并给出了算法不仅收敛而且加速的结论。最后,我们对三个经典的人工神经网络问题进行了测试。数值实验结果表明,该方法可以减少CPU的计算时间,提高学习效率。
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