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Artificial intelligence model based on grey systems to assess water quality from Santa river watershed

机译:基于灰色系统的人工智能模型用于评估圣诞老人河流域的水质

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Water resources quality assessment is a topic very complex, as it demands a great variety of parameters to be analyzed. In this context, the grey clustering method, which is based on grey systems theory, offers an interesting alternative to assess water quality using artificial intelligence criteria. In this study, we assess water quality from Santa river watershed according to parameters stablish by MINAM-Peru (DS N° 015-2015). In addition, we analyze monitoring data from water national authority from Peru (ANA), which was collected, in the study area, in 2013. Twenty-one monitoring points from Santa river watershed were analyzed. The results showed that 47.6% of the monitoring points presented good water quality to consumption of the population, which indicated that could be purified by applying disinfection; 33.3% of the monitoring points presented moderate water quality to consumption of the population, which indicated that could be purified by applying conventional treatment; and 19.1% of the monitoring points presented low water quality to consumption of the population, which indicated that could be purified by applying special treatment. The grey clustering method showed interesting results and could be applied to others studies on water quality or environmental quality in general.
机译:水资源质量评估是一个非常复杂的主题,因为它需要分析各种各样的参数。在这种情况下,基于灰色系统理论的灰色聚类方法为使用人工智能标准评估水质提供了一种有趣的替代方法。在这项研究中,我们根据MINAM-Peru(DS N°015-2015)设定的参数评估圣诞老人河流域的水质。此外,我们分析了秘鲁水利局(ANA)的监测数据,该数据是在研究区域于2013年收集的。分析了圣塔河流域的21个监测点。结果表明,有47.6%的监测点的居民饮水质量良好,表明可以通过消毒来净化。 33.3%的监测点的水质达到了人口消耗的中等水平,这表明可以通过常规处理进行净化;监测点中有19.1%的水质较差,表明可以通过特殊处理来净化。灰色聚类方法显示出有趣的结果,并且可以普遍应用于其他关于水质或环境质量的研究。

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