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软件学报  1998 

The Hybrid Learning Algorithm Which is Based on em Algorithm and can Globally Converge with Probability 1
基于em算法且能以概率1全局收敛的混合学习算法

Keywords: Random neural networks,em learning algorithm,random optimization algorithm
随机神经网络,em学习算法,随机优化算法.

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Abstract:

In this paper, the drawback is pointed out that the learning algorithm em of random neural network sometimes converges to local minimum. A new hybrid learning algorithm HRem, which combines algorithm em and the random optimization algorithm presented by Dr. Solis and Wets, is presented for 3-layer random perception. It is theoretically proved that algorithm HRem can globally converge to the minimum of Kullback-Leibler difference measure. This theoretical result has important significances for further research on algorithm em.

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