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Ontology-based discovery of time-series data sources for landslide early warning system

机译:基于本体的滑坡预警系统时间序列数据源发现

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Modern early warning system (EWS) requires sophisticated knowledge of the natural hazards, the urban context and underlying risk factors to enable dynamic and timely decision making (e.g., hazard detection, hazard preparedness). Landslides are a common form of natural hazard with a global impact and closely linked to a variety of other hazards. EWS for landslides prediction and detection relies on scientific methods and models which requires input from the time series data, such as the earth observation (EO) and urban environment data. Such data sets are produced by a variety of remote sensing satellites and Internet of things sensors which are deployed in the landslide prone areas. To this end, the automatic discovery of potential time series data sources has become a challenge due to the complexity and high variety of data sources. To solve this hard research problem, in this paper, we propose a novel ontology, namely Landslip Ontology, to provide the knowledge base that establishes relationship between landslide hazard and EO and urban data sources. The purpose of Landslip Ontology is to facilitate time series data source discovery for the verification and prediction of landslide hazards. The ontology is evaluated based on scenarios and competency questions to verify the coverage and consistency. Moreover, the ontology can also be used to realize the implementation of data sources discovery system which is an essential component in EWS that needs to manage (store, search, process) rich information from heterogeneous data sources.
机译:现代预警系统(EWS)需要对自然灾害,城市环境和潜在风险因素有深入的了解,以便能够动态,及时地进行决策(例如,灾害检测,灾害防范)。滑坡是自然灾害的一种常见形式,具有全球影响,并与多种其他灾害密切相关。用于滑坡预测和检测的EWS依靠科学的方法和模型,这些方法和模型需要时间序列数据(例如地球观测(EO)和城市环境数据)的输入。这样的数据集由部署在滑坡易发地区的各种遥感卫星和物联网传感器产生。为此,由于数据源的复杂性和多样性,自动发现潜在的时间序列数据源已成为一项挑战。为了解决这一艰巨的研究问题,本文提出了一种新的本体,即“滑坡本体”,以提供建立滑坡灾害与EO和城市数据源之间关系的知识库。 Landslip Ontology的目的是促进时间序列数据源的发现,以验证和预测滑坡灾害。基于场景和能力问题评估本体,以验证覆盖范围和一致性。此外,本体还可以用于实现数据源发现系统的实现,该系统是EWS中的重要组件,需要管理(存储,搜索,处理)来自异构数据源的丰富信息。

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