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Dialog-Based Meaning Derivation Service for Technical Language Domains

机译:技术语言域的基于对话框的含义派生服务

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In our previous work, we present on how new algorithms can be recognized and learned from human descriptions. In this case, end users are able to extend the given system by their own functionality. During the evaluation, due to language limits on the system, it could interpret only 59 % of user input correctly. In this paper, we provide an approach on the Dialog-based Meaning Derivation Service (DMDS). In case, user input does not match to the system knowledge, DMDS serves various word networks to find relevant synonyms as candidates for the unknown word. DMDS then tries to verify these candidates to the given knowledge base. Finally, matched candidates are presented to the end user by the dialog system for confirmation of a contextual match. The meaning is learned after the user confirmation and is mapped to the given functionality, and can be used afterwards. Therefore, the model developed in this work can be categorized as supervised learning. Finally, both the performance and the quality recorded by input from a user study were examined. However, DMDS improves the correct interpretation of the system from 59 % to 82 %. Our focus is to improve the interaction between humans and machines and enable the end user to instruct programmable devices, without having to learn a programming language.
机译:在我们以前的工作中,我们介绍了如何从人类描述中识别和学习新算法。在这种情况下,最终用户能够通过自己的功能扩展给定系统。在评估期间,由于系统上的语言限制,它可以正确地解释59%的用户输入。在本文中,我们在基于对话框的意义推导服务(DMDS)上提供了一种方法。如果用户输入与系统知识不匹配,DMDS不符合各种单词网络,以查找相关的同义词作为未知字的候选者。 DMDS然后尝试验证这些候选人给给定的知识库。最后,匹配的候选者通过对话系统向最终用户呈现,以确认上下文匹配。用户确认后的含义才能映射到给定的功能,并可以随后使用。因此,在这项工作中开发的模型可以分类为监督学习。最后,检查了通过用户研究的输入记录的性能和质量。但是,DMDS将系统的正确解释从59 %提高到82 %。我们的重点是提高人类和机器之间的互动,并使最终用户能够指示可编程设备,而无需学习编程语言。

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