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An evolutionary system for ozone concentration forecasting

机译:臭氧浓度预测的进化系统

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Nowadays, with more than 50 % of the world's population living in urban areas, cities are facing important environmental challenges. Among them, air pollution has emerged as one of the most important concerns, taking into account the social costs related to the effect of polluted air. According to a report of the World Health Organization, approximately seven million people die each year from the effects of air pollution. Despite this fact, the same report suggests that cities could greatly improve their air quality through local measures by exploiting modern and efficient solutions for smart infrastructures. Ideally, this approach requires insights of how pollutant levels change over time in specific locations. To tackle this problem, we present an evolutionary system for the prediction of pollutants levels based on a recently proposed variant of genetic programming. This system is designed to predict the amount of ozone level, based on the concentration of other pollutants collected by sensors disposed in critical areas of a city. An analysis of data related to the region of Yuen Long (one of the most polluted areas of China), shows the suitability of the proposed system for addressing the problem at hand. In particular, the system is able to predict the ozone level with greater accuracy with respect to other techniques that are commonly used to tackle similar forecasting problems.
机译:如今,全球超过50%的人口居住在城市地区,城市面临着重要的环境挑战。其中,考虑到与污染空气的影响有关的社会成本,空气污染已成为最重要的问题之一。根据世界卫生组织的报告,每年约有700万人死于空气污染。尽管有这个事实,但同一份报告表明,城市可以通过采用针对智能基础设施的现代高效解决方案,通过当地措施大大改善空气质量。理想情况下,这种方法需要洞悉特定位置污染物水平随时间如何变化。为了解决这个问题,我们提出了一种基于最近提出的遗传编程变体来预测污染物水平的进化系统。该系统旨在根据放置在城市关键区域中的传感器收集的其他污染物的浓度来预测臭氧水平。对与元朗地区(中国污染最严重的地区之一)有关的数据进行的分析表明,所提出的系统适用于解决当前的问题。特别地,相对于通常用于解决类似的预测问题的其他技术,该系统能够以更高的精度预测臭氧水平。

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