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Spatio-Temporal Reasoning within a Neural Network framework for Intelligent Physical Systems

机译:在智能物理系统中神经网络框架内的时空推理

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Existing functionality for intelligent physical systems (IPS), such as autonomous vehicles (AV), generally lacks the ability to reason and evaluate the environment and to learn from other intelligent agents in an autonomous fashion. Such capabilities for IPS is required for scenarios where an human intervention is unlikely to be available and robust long-term autonomous operation is necessary in potentially dynamic environments. To address these issues, the IPS will then need to reason about the interactions with these items through time and space. Incorporating spatio-temporal reasoning into the IPS will provide the capability to understand these interactions. This paper describes our proposed neural network framework that incorporates spatio-temporal reasoning for IPS. The preliminary experimental results addressing research challenges related to spatio-temporal reasoning within neural network framework for IPS are promising.
机译:智能物理系统(IP)的现有功能,例如自主车辆(AV),通常缺乏推理和评估环境的能力,并以自主方式从其他智能代理中学到。对于IPS的这种功能,对于在可能的动态环境中,人类干预不可能提供人力干预和强大的长期自主操作,是必需的。为了解决这些问题,IPS将需要通过时间和空间与这些项目进行互动。将时空推理加入IPS将提供了解这些交互的能力。本文介绍了我们所提出的神经网络框架,它包括IPS的时空推理。初步的实验结果解决了IP内神经网络框架内与时空推理相关的研究挑战是有前途的。

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