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An Electronic Nose for Reliable Measurement and Correct Classification of Beverages

机译:电子鼻,用于饮料的可靠测量和正确分类

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This paper reports the design of an electronic nose (E-nose) prototype for reliable measurement and correct classification of beverages. The prototype was developed and fabricated in the laboratory using commercially available metal oxide gas sensors and a temperature sensor. The repeatability, reproducibility and discriminative ability of the developed E-nose prototype were tested on odors emanating from different beverages such as blackcurrant juice, mango juice and orange juice, respectively. Repeated measurements of three beverages showed very high correlation (r > 0.97) between the same beverages to verify the repeatability. The prototype also produced highly correlated patterns (r > 0.97) in the measurement of beverages using different sensor batches to verify its reproducibility. The E-nose prototype also possessed good discriminative ability whereby it was able to produce different patterns for different beverages, different milk heat treatments (ultra high temperature, pasteurization) and fresh and spoiled milks. The discriminative ability of the E-nose was evaluated using Principal Component Analysis and a Multi Layer Perception Neural Network, with both methods showing good classification results.
机译:本文报告了电子鼻(E-nose)原型的设计,以实现可靠的测量和饮料的正确分类。该原型是使用可商购的金属氧化物气体传感器和温度传感器在实验室中开发和制造的。对不同饮料(如黑加仑汁,芒果汁和橙汁)发出的气味,测试了开发的电子鼻原型的可重复性,再现性和判别能力。三种饮料的重复测量显示相同饮料之间的相关性非常高(r> 0.97),以验证可重复性。该原型还使用不同的传感器批次在饮料测量中产生了高度相关的模式(r> 0.97),以验证其可重复性。 E-nose原型还具有良好的判别能力,从而能够针对不同的饮料,不同的牛奶热处理(超高温,巴氏灭菌法)以及新鲜和变质的牛奶产生不同的样式。使用主成分分析和多层感知神经网络评估了E型鼻的辨别能力,两种方法均显示出良好的分类结果。

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