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Multi-mode Natural Language Processing for human-robot interaction

机译:人机交互的多模式自然语言处理

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摘要

As more and more open knowledge resources become available, it is interesting to explore opportunities of enhancing autonomous agents' capacities by utilizing the knowledge in these resources, instead of hand-coding knowledge for agents. A major challenge towards this goal lies in the translation of the open knowledge organized in multiple modes, unstructured or semi-structured, into the internal representations of agents. In this paper we present a set of multi-mode NLP techniques to formalize the open knowledge for autonomous agents. Two case studies are reported in which our robot, equipped with the multi-mode NLP techniques, succeeded in acquiring knowledge from the microwave oven manual and from the open knowledge database, OMICS, and solving problems that could not be solved before the robot acquired the knowledge. Experiments for evaluating the performance of our approach show that our approach is promising.
机译:随着越来越多的开放知识资源变得可用,探索利用这些资源中的知识而不是手动编码代理知识来增强自治代理能力的机会很有趣。实现此目标的主要挑战在于将以多种模式(非结构化或半结构化)组织的开放知识转换为主体的内部表示形式。在本文中,我们提出了一套多模式NLP技术来规范自主代理的开放知识。报道了两个案例研究,其中我们的机器人采用了多模式NLP技术,成功地从微波炉手册和开放式知识数据库OMICS中获取了知识,并解决了在机器人获得知识之前无法解决的问题。知识。评估我们的方法性能的实验表明,我们的方法很有希望。

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