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A multi-start algorithm to design a multi-class classifier for a multi-criteria ABC inventory classification problem

机译:为多准则ABC库存分类问题设计多分类器的多起点算法

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In this paper we deal with the problem of designing a classifier able to learn the classification of existing units in inventory and then use it to classify new units according to their attributes in a multi-criteria ABC inventory classification environment. To solve this problem we design a multi-start constructive algorithm to train a discrete artificial neural network using a randomized greedy strategy to add neurons to the network hidden layer. The process of weights' searching for the neurons to be added is based on solving linear programming formulations. The computational experiments show that the proposed algorithm is much more efficient when the dual formulations are used to find the weights of the network neurons and that the obtained classifier has good levels of generalization accuracy. In addition, the proposed algorithm can be straight applied to other multi-class classification problems with more than three classes. (C) 2017 Elsevier Ltd. All rights reserved.
机译:在本文中,我们处理一个设计分类器的问题,该分类器能够学习库存中现有单位的分类,然后在多标准ABC库存分类环境中使用分类器根据新单位的属性对其进行分类。为了解决这个问题,我们设计了一个多点构造算法,使用随机的贪婪策略训练离散神经网络,以将神经元添加到网络隐藏层中。权重搜索要添加的神经元的过程是基于求解线性规划公式的。计算实验表明,采用对偶公式求网络神经元权重时,所提算法效率更高,并且所获得的分类器具有良好的泛化精度。另外,所提出的算法可以直接应用于具有三个以上类别的其他多类别分类问题。 (C)2017 Elsevier Ltd.保留所有权利。

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