Environmental Modeling by means of Genetic Fuzzy Systems

À. Nebot, Jesús Antonio Acosta Sarmiento, V. Mugica
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引用次数: 1

Abstract

In this work four genetic fuzzy system are applied to an environmental problem, i.e. modeling ozone concentrations in Mexico City metropolitan area. These hybrid systems are composed by the Fuzzy Inductive Reasoning (FIR) methodology and different genetic algorithms (GAs) that takes charge of determining, in an automatic way, the fuzzification parameters. Mexico is the second country in the world with high air pollution levels. The main air pollution problem that has been identified in Mexico City metropolitan area is the formation of photochemical smog, primarily ozone. This toxic gas can produce harmful effects on the population's health. The study and development of modeling methodologies that allow the capturing of ozone behavior becomes an important task when it is intended to predict contingencies before they are produced.
基于遗传模糊系统的环境建模
本文将四个遗传模糊系统应用于一个环境问题,即模拟墨西哥城大都市区的臭氧浓度。这些混合系统由模糊归纳推理(FIR)方法和不同的遗传算法(GAs)组成,遗传算法负责自动确定模糊化参数。墨西哥是世界上第二个空气污染严重的国家。墨西哥城市区的主要空气污染问题是光化学烟雾的形成,主要是臭氧。这种有毒气体会对人们的健康产生有害影响。研究和发展能够捕捉臭氧行为的建模方法,在意外事件发生之前进行预测,就成为一项重要任务。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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