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Uncertainty modelling of atmospheric dispersion by stochastic response surface method under aleatory and epistemic uncertainties

机译:不确定和认知不确定性下随机响应面法的大气弥散度不确定度建模

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摘要

The parameters associated to a environmental dispersion model may include different kinds of variability, imprecision and uncertainty. More often, it is seen that available information is interpreted in probabilistic sense. Probability theory is a well-established theory to measure such kind of variability. However, not all available information, data or model parameters affected by variability, imprecision and uncertainty, can be handled by traditional probability theory. Uncertainty or imprecision may occur due to incomplete information or data, measurement error or data obtained from expert judgement or subjective interpretation of available data or information. Thus for model parameters, data may be affected by subjective uncertainty. Traditional probability theory is inappropriate to represent subjective uncertainty. Possibility theory is used as a tool to describe parameters with insufficient knowledge. Based on the polynomial chaos expansion, stochastic response surface method has been utilized in this article for the uncertainty propagation of atmospheric dispersion model under consideration of both probabilistic and possibility information. The proposed method has been demonstrated through a hypothetical case study of atmospheric dispersion.
机译:与环境扩散模型相关的参数可以包括不同种类的可变性,不精确性和不确定性。经常看到,可用信息是按照概率来解释的。概率论是衡量此类变异性的公认理论。但是,并非所有受可变性,不精确性和不确定性影响的可用信息,数据或模型参数都可以通过传统的概率论来处理。由于信息或数据不完整,测量错误或从专家判断或对可用数据或信息的主观解释中获得的数据,可能会导致不确定性或不精确性。因此,对于模型参数,数据可能会受到主观不确定性的影响。传统的概率论不适合代表主观不确定性。可能性理论用作描述知识不足的参数的工具。基于多项式混沌展开,考虑概率和可能性信息,本文采用随机响应面法求解大气弥散模型的不确定性。通过假设的大气扩散案例研究证明了所提出的方法。

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