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Pattern Classifier of Chemical Compounds in Different Qualities of Agarwood Oil Parameter using Scale Conjugate Gradient Algorithm in MLP

机译:使用MLP中的凝固梯度算法不同品质的化学化学化学化学化学化合物的图案分类器

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This paper presents the modelling of agarwood oil (AO) significant compounds by different qualities using Scaled Conjugate Gradient (SCG) algorithm. This technique involved of data collection from Gas Chromatography-Mass Spectrometry (GC-MS) for compound extraction. The development of Multilayer perceptron (MLP) is used to discriminate the qualities of AO chemical compounds to the high and low quality. The input and output data was transferred to the MATLAB version R2013a for extended analysis. The input is the abundances of significant compounds (%) and the output is the oil quality either high or low. This involved of identification, selection and optimization of a MLP as classifiers to identify and classify the agarwood oil quality. The result showed that MLP as pattern classifier is successful classify agarwood oil quality using SCG algorithm with 100% accuracy. This finding is important in agarwood oil area especially in grading system.
机译:本文介绍了使用缩放共轭梯度(SCG)算法的不同品质的琼脂油(AO)显着化合物的建模。这种技术涉及来自气相色谱 - 质谱(GC-MS)的数据收集,用于化合物萃取。多层情节(MLP)的开发用于区分AO化合物的质量至高质量和低质量。输入和输出数据被转移到MATLAB版本R2013A以进行扩展分析。输入是大量化合物(%)的丰富,输出是高或低的油质。这涉及MLP作为分类器的识别,选择和优化,以识别和分类agarwood油质。结果表明,使用100%精度的SCG算法,MLP作为图案分类器成功分类agarwood油质。这一发现在agarwood油区中很重要,特别是在评分系统中。

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