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Stream-Based Reasoning Support for Autonomous Systems

机译:自治系统的基于流的推理支持

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For autonomous systems such as unmanned aerial vehicles to successfully perform complex missions, a great deal of embedded reasoning is required at varying levels of abstraction. To support the integration and use of diverse reasoning modules we have developed DyKnow, a stream-based knowledge processing middleware framework. By using streams, DyKnow captures the incremental nature of sensor data and supports the continuous reasoning necessary to react to rapid changes in the environment. DyKnow has a formal basis and pragmatically deals with many of the architectural issues which arise in autonomous systems. This includes a systematic stream-based method for handling the sense-reasoning gap, caused by the wide difference in abstraction levels between the noisy data generally available from sensors and the symbolic, semantically meaningful information required by many high-level reasoning modules. As concrete examples, stream-based support for anchoring and planning are presented.
机译:对于诸如无人驾驶航空公司的自治系统,以成功执行复杂的任务,可以在不同的抽象层面下需要大量的嵌入式推理。为了支持各种推理模块的集成和使用,我们开发了一种基于流的知识处理中间件框架的Dyknow。通过使用流,Dyknow捕获传感器数据的增量性质,并支持对环境快速变化的持续推理。 Dyknow具有正式的基础,务实地涉及自治系统中出现的许多建筑问题。这包括一种基于系统的基于流的方法,用于处理感觉推理差距,由传感器通常可从传感器的嘈杂数据和符号,语义上有意义的信息之间的噪声数据之间的抽象水平差异差异引起的偏差引起的。作为具体示例,提出了基于流的锚固和规划的支持。

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