基于MLR模型的远程Cr6探测器传感器约简

K. Krishnan, P. Bhuvaneswari
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引用次数: 0

摘要

干净的饮用水对健康生活是必不可少的。本研究的主要目的是设计一种基于物联网(IoT)的水质监测装置,用于检测饮用水中的六价铬(Cr6)。pH、TDS和电导率是测定水质的主要水质参数。本研究采用线性回归模型分析污染物浓度对WQPs的影响,实时测定样品中Cr6的浓度。以上WQPs对合成的Cr6污染样品进行测量。对不同浓度的样品进行了测量。根据上面的度量创建了一个定制的数据库。为了减少WQPs参与检测的数量,进行了参数与铬浓度的相关性分析。进一步计算了各参数之间的相关影响因素。从分析中得出的结论是,与所有四种合成Cr6样品的pH值相比,使用TDS和电导率估计Cr6污染物浓度的准确度为90%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
MLR Model Based Sensor Reduction For Remote Cr6 Detector
Clean drinking water is essential for healthy living. The main objective of this research is to design an Internet of Things (IoT) based water quality monitoring device for detection of the Hexavalent Chromium (Cr6) in drinking water. pH, TDS and conductivity are the major Water Quality Parameters (WQPs) measured for the determination of the quality of water. In this research, the impact of contaminant concentration on WQPs was analyzed using Linear Regression Model for determination of the concentration of Cr6 in the real time sample. The above WQPs were measured for synthesized Cr6 contaminated samples. The measurement was made for varied concentrations of the samples. A customized database was created from the above measurement. In order to reduce the number of WQPs involved in detection, dependency analysis between the parameters and chromium concentration was made. Further, the relative factors among the parameters were computed. The inference drawn from the analysis is that the estimation of Cr6 contaminant concentration using TDS and conductivity results in 90% accuracy when compared to pH for all the four synthesized Cr6 samples.
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