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A New Neural Network-Intelligence Increasing Neural Network

机译:新神经网络智能增加神经网络

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摘要

This paper presents a new architecture of neural networks-Intelligence Increasing Neural Network (IINN). Formed surrounding the center of knowledge system, this neural network achieves the building, memory and use of the data base with clear structure. It obtains good classification results with more clear-cut meaning than other neural networks', using a discrimination principle based on Bayesian maximum posterior probability, the method of data extraction and reasonable optimization algorithm. IINN has a data base increasing dynamically, whose scale has a logarithmic connection with the number of the dividing classes. The belief degree of the data base converges in probability and the problem of over training does not exist. The comparison with the classification results of AdaBoost method indicates that when weak learners are independent, IINN has better performance than AdaBoost.
机译:本文提出了一种新的神经网络智能增加神经网络(IINN)。围绕知识系统中心形成,这种神经网络实现了建筑,内存和使用清晰结构的数据库。它获得了比其他神经网络更清晰的含义比其他神经网络的良好分类结果,利用基于贝叶斯最大后概率,数据提取方法和合理优化算法的辨别原理。 IINN具有动态增加的数据库,其比例具有与分割类的数量的对数连接。数据库的信仰程度在概率中收敛和过度培训问题不存在。与Adaboost方法的分类结果的比较表明,当弱学习者是独立的,IINN具有比Adaboost更好的性能。

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