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Application of a Low-Cost Electronic Nose for Differentiation between Pathogenic Oomycetes

机译:低成本电子鼻子在致病性oomycetes之间的应用

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摘要

Compared with traditional gas chromatography–mass spectrometry techniques, electronic noses are non-invasive and can be a rapid, cost-effective option for several applications. This paper presents comparative studies of differentiation between odors emitted by two forest pathogens: Pythium and Phytophthora, measured by a low-cost electronic nose. The electronic nose applies six non-specific Figaro Inc. metal oxide sensors. Various features describing shapes of the measurement curves of sensors’ response to the odors’ exposure were extracted and used for building the classification models. As a machine learning algorithm for classification, we use the Support Vector Machine (SVM) method and various measures to assess classification models’ performance. Differentiation between Phytophthora and Pythium species has an important practical aspect allowing forest practitioners to take appropriate plant protection. We demonstrate the possibility to recognize and differentiate between the two mentioned species with acceptable accuracy by our low-cost electronic nose.
机译:与传统的气相色谱 - 质谱技术相比,电子鼻子是非侵入性的,并且可以是几种应用的快速,成本效益的选择。本文介绍了两种森林病原体排放的异味之间的差异化的比较研究:通过低成本电子鼻测量的粘藻和植物。电子鼻子适用六个非特定的Fimaro Inc.金属氧化物传感器。提取描述传感器对气味暴露的传感器响应的测量曲线形状的各种特征,并用于构建分类模型。作为用于分类的机器学习算法,我们使用支持向量机(SVM)方法和各种措施来评估分类模型的性能。植物邻洛拉和蟒蛇物种之间的差异具有重要的实际方面,允许森林从业者采取适当的植物保护。我们展示了我们的低成本电子鼻子具有可接受的精度识别和区分两种所提到的物种的可能性。

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