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首页> 外文期刊>Journal of the American Oil Chemists' Society >An electronic nose to classify Iberian pig fats with different fatty acid composition
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An electronic nose to classify Iberian pig fats with different fatty acid composition

机译:电子鼻对具有不同脂肪酸组成的伊比利亚猪脂肪进行分类

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摘要

Fatty acid analysis is frequently performed in fat and other raw materials to classify them according to their fatty acid composition, but the need to carry out online determinations has generated a growing interest in more rapid options. This research was done to evaluate the ability of a polymer-sensor based electronic nose to classify Iberian pig fat samples with different fatty acid compositions. Significant correlations were found between individual fatty acids and sensor responses, proving that sensor response data were not fortuitously sorted. Significant correlations also appeared between some sensors and water activity, which was considered during the sample classification. Two supervised pattern recognition techniques were attempted to process the sensor responses: 85.5% of the samples were correctly classified by discriminant analysis, but the percentage increased to 97.8% using a one-hidden layer back-propagation artificial neural network. The electronic nose (specifically, sensor responses analyzed by a neural network) achieved success similar to that obtained using the more usual fatty acid analysis by gas chromatography.
机译:脂肪酸分析经常在脂肪和其他原料中进行,以根据其脂肪酸组成对它们进行分类,但是对在线测定的需求引起了人们对于更快速选择的兴趣。这项研究旨在评估基于聚合物传感器的电子鼻对具有不同脂肪酸组成的伊比利亚猪脂肪样品进行分类的能力。在各个脂肪酸和传感器响应之间发现了显着的相关性,证明传感器响应数据不是偶然地分类的。在一些传感器和水分活度之间也出现了显着的相关性,这在样品分类过程中被考虑到了。尝试了两种监督模式识别技术来处理传感器响应:通过判别分析正确分类了85.5%的样本,但使用一层隐藏的反向传播人工神经网络将该百分比增加到97.8%。电子鼻(特别是通过神经网络分析传感器的响应)取得了成功,类似于使用气相色谱更常见的脂肪酸分析所获得的电子鼻。

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