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On a Holistic Modeling Approach for Managing Carbon Emission Ecosystems

机译:管理碳排放生态系统的整体建模方法

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Effective use of historical volumes of heterogeneous and multidimensional data is a major challenge, especially projects associated with potential applications of carbon emission ecosystems. Data science in these applications becomes tedious when such varied data are accumulated and or distributed in multiple domains. Design, development, and implementation of sustainable geological storages are crucial for managing carbon dioxide (CO2) emissions and its modeling process. The purpose of the research is to address major challenges and how best a robust "ontology-based multidimensional data warehousing and mining" approach can resolve issues associated with carbon ecosystems. The conceptualized relationships deduced among multiple domains, integration of domain ontologies, data mining, visualization, and interpretation artefacts are highlights of the study. Several data, plot, and map views are extracted from metadata storage for interpreting new knowledge on carbon emissions. Statistical mining models describe data attributes' correlations, patterns, and trends that can help in predicting future forecast of CO2 emissions worldwide.
机译:有效利用历史量的异构数据和多维数据是一项重大挑战,尤其是与碳排放生态系统潜在应用相关的项目。当这些变化的数据在多个域中累积或分布时,这些应用程序中的数据科学变得乏味。可持续地质存储的设计,开发和实施对于管理二氧化碳(CO2)排放及其建模过程至关重要。该研究的目的是解决主要挑战,以及可靠的“基于本体的多维数据仓库和挖掘”方法如何最好地解决与碳生态系统相关的问题。该研究的重点是在多个领域之间推断出的概念化关系,领域本体的集成,数据挖掘,可视化和解释伪像。从元数据存储中提取了一些数据,绘图和地图视图,以解释有关碳排放的新知识。统计挖掘模型描述了数据属性的相关性,模式和趋势,可帮助预测未来全球二氧化碳排放量的预测。

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