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A proposed methodology for the assessment of arsenic, nickel, cadmium and lead levels in ambient air

机译:评估环境空气中砷,镍,镉和铅含量的拟议方法

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摘要

Air quality assessment, required by the European Union (EU) Air Quality Directive, Directive 2008/50/EC, is part of the functions attributed to Environmental Management authorities. Based on the cost and time consumption associated with the experimental works required for the air quality assessment in relation to the EU-regulated metal and metalloids, other methods such as modelling or objective estimation arise as competitive alternatives when, in accordance with the Air Quality Directive, the levels of pollutants permit their use at a specific location. This work investigates the possibility of using statistical models based on Partial Least Squares Regression (PLSR) and Artificial Neural Networks (ANNs) to estimate the levels of arsenic (As), cadmium (Cd), nickel (Ni) and lead (Pb) in ambient air and their application for policy purposes. A methodology comprising the main steps that should be taken into consideration to prepare the input database, develop the model and evaluate their performance is proposed and applied to a case of study in Santander (Spain). It was observed that even though these approaches present some difficulties in estimating the individual sample concentrations, having an equivalent performance they can be considered valid for the estimation of the mean values - those to be compared with the limit/target values - fulfilling the uncertainty requirements in the context of the Air Quality Directive. Additionally, the influence of the consideration of input variables related to atmospheric stability on the performance of the studied statistical models has been determined. Although the consideration of these variables as additional inputs had no effect on As and Cd models, they did yield an improvement for Pb and Ni, especially with regard to ANN models.
机译:欧盟(EU)空气质量指令(2008/50 / EC指令)要求的空气质量评估是属于环境管理部门的职能之一。根据与欧盟管制的金属和准金属有关的空气质量评估所需的与实验工作相关的成本和时间消耗,根据《空气质量指令》,其他方法(例如建模或客观估计)将作为竞争性替代方案出现,污染物水平允许它们在特定位置使用。这项工作调查了使用基于偏最小二乘回归(PLSR)和人工神经网络(ANNs)的统计模型来估计砷(As),镉(Cd),镍(Ni)和铅(Pb)含量的可能性。环境空气及其在政策上的应用。提出了一种方法,该方法包括准备输入数据库,开发模型和评估其性能时应考虑的主要步骤,并将其应用于西班牙桑坦德的研究案例。据观察,尽管这些方法在估算单个样品浓度时存在一些困难,但具有同等的性能,它们仍可被视为对平均值(与极限/目标值进行比较的平均值)的估算有效-满足不确定性要求根据《空气质量指令》。另外,已经确定了考虑与大气稳定性有关的输入变量对所研究统计模型的性能的影响。尽管将这些变量作为附加输入对As和Cd模型没有影响,但是它们确实对Pb和Ni产生了改善,尤其是对于ANN模型。

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