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Problems with prescriptions: disentangling data about actual versus prescribed entities

机译:处方问题:有关实际与规定实体的解散数据

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Integrating data about plans and artifact specifications with data about the actual instances of the entities prescribed by these provides numerous benefits for tasks such as mission planning, sensor assignment, and asset tasking. However, doing so raises several issues for data ingest, storage and analytics if a consistent semantics is to be maintained to enable extensible and unanticipated querying. In this paper, we examine strategies for overcoming these challenges and describe a method for using the Common Core Ontologies and Modal Relation Ontology to map and integrate data about planned and existing entities. We demonstrate a solution for ensuring reliable, dynamic and extensible data queries suitable for highly heterogeneous data sources that is agnostic to implementation requirements. We focus on examples relevant to sensor capabilities, selection and tasking.
机译:将关于计划和工件规范的数据集成了关于这些规划的实际实例的数据为任务规划,传感器分配和资产任务等任务提供了众多好处。但是,如果要维护一致的语义以启用可扩展和意外查询,则执行此操作为数据摄取,存储和分析进行了几个问题。在本文中,我们检查克服这些挑战的策略,并描述了使用常见核心本体和模态关系本体的方法来映射和整合有关计划和现有实体的数据。我们展示了确保适用于高度异构数据源的可靠,动态和可扩展数据查询的解决方案,这些数据源不可知为实现要求。我们专注于与传感器能力,选择和任务相关的示例。

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