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Modeling of Energy Demand of a High-Tech Greenhouse in Warm Climate Based on Bayesian Networks

机译:基于贝叶斯网络的高温气候下高科技温室能源需求建模

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This work analyzes energy demand in a High-Tech greenhouse and its characterization, with the objective of building and evaluating classification models based on Bayesian networks. The utility of these models resides in their capacity of perceiving relations among variables in the greenhouse by identifying probabilistic dependences between them and their ability to make predictions without the need of observing all the variables present in the model. In this way they provide a useful tool for an energetic control system design. In this paper the acquisition data system used in order to collect the dataset studied is described. The energy demand distribution is analyzed and different discretization techniques are applied to reduce its dimensionality, paying particular attention to their impact on the classification model's performance. A comparison between the different classification models applied is performed.
机译:这项工作分析了高科技温室中的能源需求及其特征,目的是建立和评估基于贝叶斯网络的分类模型。这些模型的实用性在于通过识别它们之间的概率依赖性及其感知能力来感知温室中变量之间的关系,而无需观察模型中存在的所有变量。这样,它们为能量控制系统设计提供了有用的工具。在本文中,描述了用于收集所研究数据集的采集数据系统。分析了能源需求分布,并应用了不同的离散化技术来降低其维数,尤其要注意它们对分类模型性能的影响。在应用的不同分类模型之间进行比较。

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  • 来源
    《Mathematical Problems in Engineering》 |2015年第7期|201646.1-201646.11|共11页
  • 作者单位

    Univ Almeria, CIESOL Res Ctr Solar Energy, Dept Informat, Almeria 04120, Spain.;

    Univ Almeria, CIESOL Res Ctr Solar Energy, Dept Informat, Almeria 04120, Spain.;

    Univ Almeria, CIESOL Res Ctr Solar Energy, Dept Informat, Almeria 04120, Spain.;

    Univ Almeria, CIESOL Res Ctr Solar Energy, Dept Informat, Almeria 04120, Spain.;

    Univ Almeria, CIESOL Res Ctr Solar Energy, Dept Informat, Almeria 04120, Spain.;

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