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Ontological Problem-Solving Framework for Assigning Sensor Systems and Algorithms to High-Level Missions

机译:用于将传感器系统和算法分配给高级任务的本体问题解决框架

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The lack of knowledge models to represent sensor systems, algorithms, and missions makes opportunistically discovering a synthesis of systems and algorithms that can satisfy high-level mission specifications impractical. A novel ontological problem-solving framework has been designed that leverages knowledge models describing sensors, algorithms, and high-level missions to facilitate automated inference of assigning systems to subtasks that may satisfy a given mission specification. To demonstrate the efficacy of the ontological problem-solving architecture, a family of persistence surveillance sensor systems and algorithms has been instantiated in a prototype environment to demonstrate the assignment of systems to subtasks of high-level missions.
机译:缺乏代表传感器系统,算法和任务的知识模型,使得机会主义地发现可以满足高级任务规范的系统和算法的综合是不切实际的。设计了一种新颖的本体问题解决框架,该框架利用描述传感器,算法和高级任务的知识模型来促进自动推导将系统分配给可能满足给定任务规格的子任务。为了演示本体问题解决架构的有效性,已在原型环境中实例化了一系列持久性监视传感器系统和算法,以演示将系统分配给高级任务的子任务。

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