Rough Set Applied to Air Pollution: A New Approach to Manage Pollutions in High Risk Rate Industrial Areas

Agata Matarazzo
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引用次数: 2

Abstract

This study presents a rough set application, using together the ideas of classical rough set approach, based on the indiscernibility relation and the dominance-based rough set approach (DRSA), to air micro-pollution management in an industrial site with a high environmental risk rate, such as the industrial area of Syracuse, located in the South of Italy (Sicily). This new data analysis tool has been applied to different decision problems in various fields with considerable success, since it is able to deal both with quantitative and with qualitative data and the results are expressed in terms of deci- sion rules understandable by the decision-maker. In this chapter, some issue related to multi-attribute sorting (i.e. preference-ordered classification) of air pollution risk is presented, considering some meteorological variables, both qualitative and quantitative as attributes, and criteria describing the different objects (pollution occurrences) to be classified, that is, different levels of sulfur oxides (SOx), nitrogen oxides (NOx), and methane (CH 4 ) as pollution indicators. The most significant results obtained from this particular application are presented and discussed: examples of ‘if, … then’ decision rules, attribute relevance as output of the data analysis also in terms of exchangeable or indispensable attributes/criteria, of qualitative substitution effect and interaction between them.
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粗糙集在空气污染中的应用:高风险率工业区污染管理的新方法
本研究结合经典粗糙集方法的思想,基于不可分辨关系和基于优势的粗糙集方法(DRSA),在意大利南部(西西里岛)锡拉丘兹工业区高环境风险性工业场地的空气微污染管理中进行了应用。这种新的数据分析工具已经应用于各个领域的不同决策问题,并取得了相当大的成功,因为它能够处理定量和定性数据,并且结果以决策者可以理解的决策规则表示。在本章中,将一些定性和定量的气象变量作为属性,并将描述要分类的不同对象(污染事件)的标准,即不同水平的硫氧化物(SOx)、氮氧化物(NOx)和甲烷(ch4)作为污染指标,提出了与空气污染风险的多属性排序(即偏好顺序分类)相关的一些问题。本文提出并讨论了从这一特定应用中获得的最重要的结果:“如果……那么”决策规则的例子,作为数据分析输出的属性相关性,以及根据可交换或不可或缺的属性/标准,定性替代效应和它们之间的相互作用。
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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