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The use of multilayer perceptron artificial neural networks for the classification of ethanol samples by commercialization region

机译:多层感知器人工神经网络在按商品化区域分类乙醇样品中的应用

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Samples of automotive ethanol, marketed in the northern and eastern regions of the state of Paraná, Brazil, underwent physical and chemical tests. Rates were assessed by Multilayer Perceptron (MLP) neural network for classification. For network training, two hundred epochs, a 0.05 learning rate and a random subdivision of samples in three groups with 70 for training, 15 for test and 15% for validation were employed. Sixty networks were trained from three different initializations. Three networks, one at each start-up, were highlighted and the one with the best performance presented 8 neurons in the hidden layer, with 95 accuracy training, 96 in the test and 96% in validation. The most important variables in classifications, identified by the network, occurred in the following order: alcohol content, density, pH and electrical conductivity. Application of MLP segmented ethanol samples and identified the commercialization regions.
机译:在巴西巴拉那州北部和东部地区销售的汽车乙醇样品经过了物理和化学测试。通过多层感知器(MLP)神经网络评估分类率。对于网络训练,采用三组中的200个时期,0.05的学习率和随机细分的样本,其中70个用于训练,15个用于测试,而15%用于验证。从三个不同的初始化中训练了60个网络。突出显示了三个网络,每个启动时一个,并且表现最好的一个网络在隐藏层中显示了8个神经元,其中有95个精度训练,96个测试和96%的验证。网络确定的分类中最重要的变量按以下顺序出现:酒精含量,密度,pH和电导率。应用MLP分割乙醇样品并确定了商业化区域。

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