Gas Detection and Classification Using Neural Network Based Gas Sensors

Munaf Ismail, Sri Arttini Dwi Prasetyowati
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引用次数: 0

Abstract

Alcoholic beverages, apart from being haram, also cause loss of consciousness. The influence of alcohol while driving is very dangerous and can result in an accident. For this reason, it is necessary to detect the alcohol content in beverages so that their halal status is known and to avoid the dangers of consuming alcohol. This research is to detect the aroma of alcohol using the MQ-3 gas sensor, which consists of an aroma sensor in general with an Artificial Neuron Network (ANN), such as the number of neurons, layers, and epoch. Most of the learning schemes require testing to optimize the model structure. For this experiment, ANN is used as a liquid classification in grouping alcoholic and non-alcoholic liquids. The MQ-3 gas sensor successfully reads liquid vapor in alcohol with levels of 30%, 50%, 70%, and other water-based liquids. An artificial neural network with 2 hidden layers, 10 neurons, and 1000 iterations with the sigmoid activation function can approach a regression score of 1.1545 and sq error score of 0.5781.
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基于神经网络的气体传感器气体检测与分类
酒精饮料除了是违法的,还会使人失去意识。开车时酒精的影响是非常危险的,可能导致事故。因此,有必要检测饮料中的酒精含量,以了解其清真状态,并避免饮酒的危险。这项研究是利用MQ-3气体传感器来检测酒精的香气,该传感器由一个香气传感器和一个人工神经元网络(ANN)组成,如神经元的数量、层数和epoch。大多数学习方案需要测试来优化模型结构。在本实验中,ANN被用作液体分类,用于对酒精和非酒精液体进行分组。MQ-3气体传感器成功读取酒精中30%、50%、70%和其他水基液体中的液体蒸气。一个具有2个隐藏层、10个神经元、1000次迭代、sigmoid激活函数的人工神经网络可以接近1.1545的回归分数和0.5781的平方误差分数。
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发文量
24
审稿时长
24 weeks
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