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Identifying Characteristics of Seaports for Environmental Benchmarks Based on Meta-learning

机译:基于META学习的环境基准海港识别海港的特征

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In this paper we discuss a model which classifies any seaport in the context of environmental management system standards as leader, follower and average user. Identification of this status can assist Port Authorities (PAs) in making decisions concerned with finding collaborating seaport partners using clear environmental benchmarks. This paper demonstrates the suitability of meta-learning for small datasets to assist pre-selection of base-algorithms and automatic parameterization. The method is suitable for small number of observations with many attributes closely related with potential issues concerning environmental management programs on seaports. The variables in our dataset cover main aspects such as reducing air emissions, improving water quality and minimizing impacts of growth. We consider this model will be suitable for Port authorities (PAs) interested in effective and efficient methods of knowledge discovery to be able to gain the maximum advantage of benchmarking processes within partner ports. As well as for practitioners and non-expert users who want to construct a reliable classification process and reduce the evaluation time of data processing for environmental benchmarking.
机译:在本文中,我们讨论了一个模型,该模型在环境管理系统标准作为领导者,追随者和平均用户的环境中分类了任何海港。确定该地位可以帮助港口当局(PAS)在制定涉及使用明确环境基准的协作伙伴的决定。本文展示了Meta-Learning对小型数据集的适用性,以帮助预先选择基础算法和自动参数化。该方法适用于少量观察与许多与海港环境管理方案密切相关的许多属性密切相关。我们的数据集中的变量涵盖了降低空气排放,提高水质,最大限度地减少生长影响的主要方面。我们考虑此模型将适用于对有效和高效的知识发现方法感兴趣的港口权限(PAS),以便能够获得合作伙伴端口内基准测试过程的最大利益。以及想要构建可靠分类过程的从业者和非专家用户,并减少环境基准的数据处理评估时间。

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