A currency recognition system using negatively correlated neural network ensemble

K. Debnath, Jayanta kumar ahdikary, M. Shahjahan
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引用次数: 13

Abstract

This paper represents a currency recognition system using ensemble neural network (ENN). The individual neural networks (NN) in an ENN are trained via negative correlation learning. The object of using negative correlation learning (NCL) is to expertise the individuals in an ensemble on different parts or portion of input patterns. The available currencies in the market consist of new, old and noisy ones. It is often difficult for machine to recognize these currencies; therefore we propose a system that uses ENN to identify them. We performed our experiment for seven different types of TAKA (Bangladeshi currency) they are 2, 5, 10, 20, 50, 100 and 500 TAKA. The image of different types note is converted in gray scale and compressed in our desired range. Each pixel of the compressed image is given as an input to the network. This system is able to recognize highly noisy or old image of TAKA. Ensemble network is very useful for the classification of different types of currency. It reduces the chances of misclassification than a single network and ensemble network with independent training. In experimental results we have shown this. We also find good result for similar pattern available in market.
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一种基于负相关神经网络集成的货币识别系统
本文提出了一种基于集成神经网络(ENN)的货币识别系统。ENN中的单个神经网络(NN)通过负相关学习进行训练。使用负相关学习(NCL)的目的是使集合中的个体熟悉输入模式的不同部分或部分。市场上可用的货币包括新的、旧的和嘈杂的货币。机器通常很难识别这些货币;因此,我们提出了一个使用新网络来识别它们的系统。我们对七种不同类型的TAKA(孟加拉国货币)进行了实验,它们是2、5、10、20、50、100和500 TAKA。不同类型音符的图像被转换成灰度并压缩到我们想要的范围内。压缩图像的每个像素作为网络的输入。该系统能够识别高噪声或旧的TAKA图像。集成网络对于不同类型货币的分类是非常有用的。它比单个网络和独立训练的集成网络减少了误分类的机会。在实验结果中我们已经证明了这一点。同类产品在市场上也取得了良好的效果。
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