基于支持向量机的污水处理厂氨污染水平预测

Lukman, A. Achmad, S. Syarif
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引用次数: 0

摘要

目前,物联网(IoT)创新的实施尤其有望帮助实现现代4.0时代。这一创新的一种应用是在医院污水处理厂(WWTP)进行水质筛选。这种检查的要求是为了屏蔽和预防因碱的开放而出现的危险,碱没有像预期的那样得到控制。到目前为止,绝大多数的医疗诊所实际上是使用传统的技术来估计水边界的文件。在本次调查中,我们使用了ESP8266-01和Arduino Nano模块来帮助实现在WWTP气候下氨气分组的期望。估计的水质边界是温度、pH值和TDS。这些信息从thingspeak工作器发送出去,用作探索数据集。利用支持向量机(SVM)对得到的信息进行检验,确定氨污染程度的排序。从20%的选线审批信息的调查结果显示,理想的精度为97%。沿着这些思路,本调查可为急诊诊所在管理氨污染水平时完成早期定位提供参考。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Prediction of Ammonia Contamination Levels in Wastewater Management Plant Using the SVM Method
The execution of Internet of Thing (IoT) innovation is as of now especially expected to help the modern time 4.0. One type of utilization of this innovation is to screen water quality in Hospital Waste Water Treatment Plant(WWTP). The requirement for this checking is to shield and forestall the perils emerging from the openness to alkali that isn’t as expected controlled. Up until this point, the vast majority of the medical clinics actually utilize customary techniques in estimating the file of water boundaries. In this investigation, the ESP8266-01 and Arduino Nano modules were applied to help the expectation of ammonia gas grouping in the WWTP climate. Water quality boundaries that are estimated are the temperature, pH, and TDS. The information is shipped off the thingspeak worker to be utilized as an exploration dataset. The information got is examined to decide the order of the degree of ammonia tainting utilizing the Support Vector Machine (SVM). The investigation results from 20% chose line approval information show the ideal degree of precision is 97%. Along these lines, this investigation can be a reference for emergency clinics to complete early location when managing levels of ammonia defilement.
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