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Carbon monoxide modeling studies: a review

机译:一氧化碳建模研究:综述

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摘要

The use of computational models plays a vital role in the environmental regulatory process. The complex relationship between environmental emissions, the quality of the environment, and human and ecological impacts can be vividly elucidated by modeling process. Among the six criteria, the pollutant carbon monoxide (CO) is given least attention for imperative modeling. The frequent exceedance of CO emissions can be harmful to human health and the environment. Effectively managing of CO critically demands an accurate emissions estimate and an efficient model for forecasting the future status of the CO. Most of the CO forecast models have been developed to describe the temporal and spatial distribution of CO on roadways. Main categories of CO models are deterministic, statistical, hybrid, and neural network in nature. This paper reviews attempts and resources for carrying out CO dispersion modeling studies. The scope and restraint associated with various modeling attempts are also discussed.
机译:计算模型的使用在环境监管过程中起着至关重要的作用。通过建模过程可以生动地阐明环境排放,环境质量以及人类和生态影响之间的复杂关系。在这六个标准中,命令式建模对污染物一氧化碳(CO)的关注最少。经常超过一氧化碳排放量可能对人体健康和环境有害。有效地管理CO至关重要,这需要准确的排放估算和用于预测CO的未来状态的有效模型。大多数CO预测模型已经开发出来,用于描述道路上的CO的时空分布。本质上,CO模型的主要类别是确定性,统计,混合和神经网络。本文回顾了进行CO扩散建模研究的尝试和资源。还讨论了与各种建模尝试相关的范围和约束。

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