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Seaport Sustainable: Use of Artificial Intelligence to Evaluate Liquid Natural Gas Utilization in Short Sea Shipping

机译:海港可持续发展:使用人工智能评估短海运液体天然气利用

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摘要

In the present research, a methodology is developed to determine the relationship between the variables that define the use of liquefied natural gas in short sea shipping in Europe, through the use of data-mining techniques. The project takes place in the European space, which includes data from 30 countries, the 28 members of the European Union plus Norway and Iceland. A Bayesian network is constructed with the 35 indicators selected, which are classified into five different categories: international trade and transport, economy and finance, population and social condition, environment and energy, and institutional and political. It is found that capacity of liquefied natural gas regasification terminals under construction and modal distribution of cargo transport by inland waters are the two root nodes of the network. In addition, the variables of transport and international trade and economy and finance become the most important in the decision to implement liquefied natural gas as marine fuel, while those of environment and energy and population and condition are the most dependent on the network.
机译:在本研究中,通过使用数据采矿技术,开发了一种方法,以确定定义欧洲短海运中液化天然气在欧洲航运中使用的变量之间的关系。该项目发生在欧洲空间,其中包括来自30个国家的数据,欧洲联盟的28个成员加入挪威和冰岛。贝叶斯网络由选定的35个指标构建,分为五大类:国际贸易和运输,经济和金融,人口和社会条件,环境和能源,以及制度和政治。结果发现,内陆水域正在建设中液化天然气重新升放终端的容量和货物运输的莫代范分布是网络的两个根节点。此外,运输和国际贸易和经济和金融的变量成为决定为海洋燃料实施液化天然气的决定最重要的是,环境和能源和人口和条件的决定是最依赖网络的。

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