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一种适用于模式识别的新型神经网络

A New Neural Network Adaptable to Pattern Recognition

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【作者】 乐清洪高星海郝俊朱名铨

【Author】 LE Qinghong1,2, GAO Xinghai1, HAO Jun1, ZHU Mingquan2(1. Flight Automatic Control Research Institute, Xi’an, 710065;2. School of Mechatronic Eng., Northwestern Polytechnic University, Xi’an 710072)

【机构】 航空飞行自动控制研究所西北工业大学机电工程学院 西安710065西北工业大学机电工程学院西安710072西安710065西安710072

【摘要】 提出了一种适用于模式识别的新型神经网络模型——局部有监督特征映射网络,描述了该网络的拓扑结构和学习算法,研究了网络的基本性能,最后将其应用到了质量控制图的模式识别中。理论研究和仿真实验表明,该网络结构简单、算法简洁,收敛速度快、识别精度高,适用于需要大样本训练、随机干扰严重的复杂模式的分类与识别。

【Abstract】 A new neural network named regional supervised feature mapping (RSFM) network is proposed in this paper. The topology structure and training algorithm of this network are represented, and its basic performance is studied. Patten recognition for quality control charts based on this new network is employed at last. Theoretical reasoning and numerical simulation results show this model possesses many advantages, such as simple structure and training algorithm, quick training and good recognition performance. It is suitable for pattern classification and recognition, especially for the situation which needs large training samples and associate with serious random disturbance.

  • 【文献出处】 计算机工程 ,Computer Engineering , 编辑部邮箱 ,2004年17期
  • 【分类号】TP183
  • 【被引频次】14
  • 【下载频次】213
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