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[AI-NN-PRRBF

Description: 文中设计了一个3层径向基神经网络(RBFN)用于对企业的5项评价指标进行聚类分析,并与蚁群算法做了比较分析。RBFN由输入层 到隐含层采用传统的K一均值算法,隐含层到输出层通过“模2递减”学习速率的BP学习;蚁群算法根据信息素的分配能够自动调整收索 路径,从而达到数据自动聚类的目的。结果表明,与蚁群算法相比,改进RBFN具有快速收敛、自动识别奇异样本的优点,而蚁群算法 无须教师学习,并能够达到全局最优。-In this paper, we designed a 3-layer RBF neural network (RBFN) for the 5-to-business evaluation indicators cluster analysis and ant colony algorithm has done a comparative analysis. RBFN from input layer to hidden layer using the traditional K-means algorithm, hidden layer to output layer through the Mode 2 decreasing learning rate of BP learning ant colony algorithm based on pheromone can automatically adjust the allocation of land Faso path, thereby to achieve the purpose of automatic data clustering. The results showed that compared with the ant colony algorithm to improve the RBFN has a fast convergence, automatic identification of singular advantage of the sample, while the ant colony algorithm do not need teachers to learn and be able to reach the global optimum.
Platform: | Size: 165888 | Author: luhui | Hits:

[matlabGAACO

Description: genetic algorithm combine Ant colony optimization for feature selection
Platform: | Size: 3072 | Author: mehdi | Hits:

[Other GamesACO_feature_selection

Description: ant colony feature selection
Platform: | Size: 2048 | Author: sedirez | Hits:

[matlabACO-feature-selection

Description: 蚁群优化算法,可用于特征选择,适用于模式识别-Ant colony optimization algorithm can be used for feature selection for Pattern Recognition
Platform: | Size: 2048 | Author: 刘伟 | Hits:

[matlabmatlab 蚁群算法ACO_feature_selection

Description: 蚁群算法用与特征选择,针对传统蚁群聚类算法收敛速度过慢的问题,提出一种对蚁群算法进行改进的聚类算法。而数据的高维使数据具有稀疏、不可聚集等特性,使聚类算法实验效果精度低和耗时大,将邻域特征选择与聚类算法结合,提出了一种蚁群聚类优化的邻域特征选择算法(Ant colony algorithm and feature selection)
Platform: | Size: 3072 | Author: lpoi | Hits:

[OtherACO-master

Description: feature selection using ant colony optimization
Platform: | Size: 4096 | Author: debabisoft | Hits:

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