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Potassium Ferro cyanide electrochemically detected by Differential Pulse and Square Wave Voltammetry in a Competition using Gradient Boosting as Machine Learning Algorithm

机译:梯度增强作为机器学习算法在比赛中通过差分脉冲和方波伏安法电化学检测氰化亚铁钾

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the electrochemical detection has a wide horizon to be one of the most competitive fields among other sciences in detection and analysis in recent papers. The voltammetric techniques were chosen in this work due to the less time consuming along with high sensitivity. Differential pulse voltammetry DPV and square wave voltammetry SWV are used for the detection of potassium ferrocyanide along with the artificial neural network. Different five concentrations of potassium ferrocyanide were prepared range from 2mM up to 10Mm solutions were detected by pencil graphite electrode, starting from the lowest concentration to the highest, under appropriate parameters and conditions for optimization. The voltammograms showed the varied peaks due to different concentrations were used, moreover, the outcome shows the higher sensitivity of SWV over DPV. Beyond the electrochemical analysis, the data obtained would be an output for the artificial intelligence model to be progressed via a mathematical model to have an outcome, and the comparison was done related to what has been obtained.
机译:在最近的论文中,电化学检测在检测和分析领域是其他科学领域中竞争最激烈的领域之一。由于耗时少且灵敏度高,因此选择了伏安技术。差分脉冲伏安法DPV和方波伏安法SWV与人工神经网络一起用于检测亚铁氰化钾。制备了五种不同浓度的亚铁氰化钾,范围从2mM到10Mm,用铅笔石墨电极检测,从最低浓度到最高浓度,在适当的参数和条件下进行优化。伏安图显示,由于使用了不同的浓度,峰出现了变化,此外,结果表明SWV相对于DPV的灵敏度更高。除了电化学分析之外,所获得的数据还将成为人工智能模型的输出,该人工智能模型将通过数学模型进行改进以得出结果,并且进行与已获得结果的比较。

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