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An artificial neural network approach for the estimation of the primary production of energy from municipal solid waste and its application to the Balkan countries

机译:人工神经网络方法估计城市固体废物的一次能源生产及其在巴尔干国家的应用

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Although the use of municipal solid waste to generate energy can decrease dependency on fossil fuels and consequently reduces greenhouse gases emissions and areas that waste occupies, in many countries municipal solid waste is not recognized as a valuable resource and possible alternative fuel. The aim of this study is to develop a model for the prediction of primary energy production from municipal solid waste in the European countries and then to apply it to the Balkan countries in order to assess their potentials in that field. For this purpose, general regression neural network architecture was applied, and correlation and sensitivity analyses were used for optimisation of the model. The data for 16 countries from the European Union and Norway for the period 2006-2015 was used for the development of the model. The model with the best performance (coefficient of determination R-2 = 0.995 and the mean absolute percentage error MAPE = 7.757%) was applied to the data for the Balkan countries from 2006 to 2015. The obtained results indicate that there is a significant potential for utilization of municipal solid waste for energy production, which should lead to substantial savings of fossil fuels, primarily lignite which is the most common fossil fuel in the Balkans. (C) 2018 Elsevier Ltd. All rights reserved.
机译:尽管使用城市固体废物产生能量可以减少对化石燃料的依赖,从而减少温室气体排放和废物占用面积,但在许多国家,城市固体废物并未被视为有价值的资源和可能的替代燃料。这项研究的目的是建立一个模型,用于预测欧洲国家城市生活垃圾产生的一次能源,然后将其应用于巴尔干国家,以评估其在该领域的潜力。为此,应用了通用回归神经网络架构,并使用相关性和敏感性分析来优化模型。该模型的开发使用了欧洲联盟和挪威16个国家的2006-2015年数据。将性能最佳的模型(测定系数R-2 = 0.995,平均绝对百分比误差MAPE = 7.757%)应用于巴尔干国家从2006年到2015年的数据。获得的结果表明,该模型具有很大的潜力用于将城市固体废物用于能源生产,这将导致大量节省化石燃料,主要是褐煤,这是巴尔干地区最常见的化石燃料。 (C)2018 Elsevier Ltd.保留所有权利。

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