首页> 外文期刊>The Science of the Total Environment >Waste generation, wealth and GHG emissions from the waste sector: Is Denmark on the path towards circular economy?
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Waste generation, wealth and GHG emissions from the waste sector: Is Denmark on the path towards circular economy?

机译:废物行业的废物生成,财富和温室气体排放量:丹麦对循环经济的道路上的丹麦?

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Municipal solid waste (MSW) is one of the most urgent issues associated with economic growth and urban population. When untreated, it generates harmful and toxic substances spreading out into the soils. When treated, they produce an important amount of Greenhouse Gas (GHG) emissions directly contributing to global wanning. With its promising path to sustainability, the Danish case is of high interest since estimated results are thought to bring useful information for policy purposes. Here, we exploit the most recent and available data period (1994-2017) and investigate the causal relationship between MSW generation per capita, income level, urbanization, and GHG emissions from the waste sector in Denmark. We use an experiment based on Artificial Neural Networks and the Breitung-Candelon Spectral Granger-causality test to understand how the variables, object of the study, manage to interact within a complex ecosystem such as the environment and waste. Through numerous tests in Machine Learning, we arrive at results that imply how economic growth, identifiable by changes in per capita GDP, affects the acceleration and the velocity of the neural signal with waste emissions. We observe a periodical shift from the traditional linear economy to a circular economy that has important policy implications.
机译:市固体废物(MSW)是与经济增长和城市人口有关的最紧急问题之一。当未经处理时,它会产生有害和有毒物质,蔓延到土壤中。当治疗时,它们会产生一系列重要的温室气体(GHG)排放,直接促进全球航空宁。凭借其可持续性的有希望的途径,丹麦案例具有高兴趣,因为估计的结果被认为为政策目的带来有用的信息。在这里,我们利用最新和可用的数据期(1994-2017)并调查丹麦废弃物部门的MSW代,收入水平,城市化和温室气体排放的因果关系。我们使用基于人工神经网络的实验和Breitung-Candelon光谱格子 - 因果试验,了解如何变量,研究的对象,设法在复杂的生态系统中互动,例如环境和浪费。通过机器学习中的许多测试,我们到达了暗示经济增长的结果,通过人均GDP的变化可识别,影响神经信号与废物排放的加速度和速度。我们观察到传统线性经济的期刊转变,以对具有重要政策影响的循环经济转变。

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