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Ontological Problem-Solving Framework for Dynamically Configuring Sensor Systems and Algorithms

机译:动态配置传感器系统和算法的本体问题解决框架

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The deployment of ubiquitous sensor systems and algorithms has led to many challenges, such as matching sensor systems to compatible algorithms which are capable of satisfying a task. Compounding the challenges is the lack of the requisite knowledge models needed to discover sensors and algorithms and to subsequently integrate their capabilities to satisfy a specific task. A novel ontological problem-solving framework has been designed to match sensors to compatible algorithms to form synthesized systems, which are capable of satisfying a task and then assigning the synthesized systems to high-level missions. The approach designed for the ontological problem-solving framework has been instantiated in the context of a persistence surveillance prototype environment, which includes profiling sensor systems and algorithms to demonstrate proof-of-concept principles. Even though the problem-solving approach was instantiated with profiling sensor systems and algorithms, the ontological framework may be useful with other heterogeneous sensing-system environments.
机译:普遍存在的传感器系统和算法的部署带来了许多挑战,例如将传感器系统与能够满足任务的兼容算法相匹配。使挑战更加复杂的是,缺少发现传感器和算法并随后整合其功能以满足特定任务所需的必要知识模型。设计了一种新颖的本体问题解决框架,以将传感器与兼容算法匹配以形成综合系统,该综合系统能够满足任务,然后将综合系统分配给高级任务。在持久性监视原型环境中已实例化了为本体问题解决框架设计的方法,该环境包括配置传感器系统和算法以演示概念验证原理。即使使用剖析传感器系统和算法实例化了解决问题的方法,本体论框架对于其他异构传感系统环境也可能有用。

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