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Using Graph Transformation Algorithms to Generate Natural Language Equivalents of Icons Expressing Medical Concepts

机译:使用图变换算法生成表示医学概念的图标的自然语言等效项

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摘要

A graphical language addresses the need to communicate medical information in a synthetic way. Medical concepts are expressed by icons conveying fast visual information about patients' current state or about the known effects of drugs. In order to increase the visual language's acceptance and usability, a natural language generation interface is currently developed. In this context, this paper describes the use of an informatics method - graph transformation - to prepare data consisting of concepts in an OWL-DL ontology for use in a natural language generation component. The OWL concept may be considered as a star-shaped graph with a central node. The method transforms it into a graph representing the deep semantic structure of a natural language phrase. This work may be of future use in other contexts where ontology concepts have to be mapped to half-formalized natural language expressions.
机译:图形语言解决了以综合方式传达医疗信息的需求。用图标表示医学概念,这些图标传达有关患者当前状态或药物已知作用的快速视觉信息。为了增加视觉语言的接受度和可用性,当前开发了自然语言生成界面。在这种情况下,本文描述了信息学方法(图形转换)的使用,以准备由OWL-DL本体中的概念组成的数据,以用于自然语言生成组件。 OWL概念可以被认为是具有中心节点的星形图。该方法将其转换为表示自然语言短语的深层语义结构的图形。这项工作可能在其他必须将本体概念映射到半形式化的自然语言表达形式的环境中有未来的用途。

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