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Ontologies and uncertainty in multi-sources geographical data fusion estimation

机译:多源地理数据融合估计中的本体和不确定性

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Multi-sources geographic data give rise to a challenge for data integration and fusion and their application in natural resources and environmental assessment. Data heterogeneous and uncertainty are the main barriers for the integrated assessment and modeling. This paper will give formal modeling methods of assessment targets and related uncertainty theories. A target Geo-Entity model and graph based ontology method for data fusion estimation has been given. Two important relations of association and causal relations are considered. Uncertainty in multi-sources data fusion, including random and epistemic uncertainty, entity property, and relation uncertainty are discussed. By combining the uncertainty with the graph model based ontology, a formal target entity model for multi-sources data fusion was design. Finally, two examples of multi-sources data fusion were developed to illustrate the proposed methods. The association relation and causal relation are involved in the examples, and corresponding fusion operators were given.
机译:多源地理数据对数据集成和融合及其在自然资源和环境评估中的应用提出了挑战。数据异构和不确定性是进行集成评估和建模的主要障碍。本文将给出评估目标和相关不确定性理论的形式化建模方法。给出了一种目标地理实体模型和基于图的本体方法进行数据融合估计。考虑了两个重要的关联关系和因果关系。讨论了多源数据融合的不确定性,包括随机和认知不确定性,实体属性和关系不确定性。通过将不确定性与基于图论的本体相结合,设计了用于多源数据融合的正式目标实体模型。最后,开发了两个多源数据融合示例,以说明所提出的方法。实例中包括了关联关系和因果关系,并给出了相应的融合算子。

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