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A linguistic fusion approach for heterogeneous Environmental Impact Significance Assessment

机译:一种用于不同环境影响重要性评估的语言融合方法

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摘要

Environmental Impact Significance Assessment (EISA) is usually modeled as a multi-criteria decision making process for determining the importance of project's impacts over involved environment, considering subjective judgments provided in a qualitative and/or quantitative way. Classical EISA methods are not efficient in handling heterogeneous contexts since experts are forced to use numerical scales even for assessing subjective environmental indicators and they also obtain numerical outputs of low interpretability. In this paper is proposed a new approach for heterogeneous EISA based on the linguistic 2-tuple fusion model for dealing with heterogeneous information. It provides a flexible evaluation framework in which experts can supply their preferences using different information domains conform to the nature and uncertainty of criteria as well as their level of knowledge and experience. Moreover the approach applies a multi-step aggregation process to obtain interpretable significance values without loss of information.
机译:通常将环境影响重要性评估(EISA)建模为多标准决策过程,以考虑以定性和/或定量方式提供的主观判断来确定项目影响对相关环境的重要性。传统的EISA方法在处理异构环境中效率不高,因为专家甚至被迫使用数字量表来评估主观环境指标,并且它们还获得了低解释性的数字输出。本文提出了一种基于语言2元组融合模型的异构EISA处理异构信息的新方法。它提供了一个灵活的评估框架,在该框架中,专家可以使用不同的信息领域来提供他们的偏好,这些信息领域符合标准的性质和不确定性以及他们的知识和经验水平。此外,该方法应用了多步骤聚合过程来获得可解释的重要性值,而不会丢失信息。

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