首页> 外文会议>The Semantic Web - ASWC 2006; Lecture Notes in Computer Science; 4185 >A Map Ontology Driven Approach to Natural Language Traffic Information Processing and Services
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A Map Ontology Driven Approach to Natural Language Traffic Information Processing and Services

机译:基于地图本体的自然语言交通信息处理与服务方法

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This paper proposes a map ontology driven approach to natural language traffic information processing, and also describes its evaluation results. Traffic congestion is considered a major urban problem whose solution has long been sought for by engineers and researchers. Recently, the idea of gathering traffic information from mobile users via short message service appears promising. However, the traffic information is difficult to process to achieve a high accuracy because of its direct, indirect and connotative expressions. The proposed map ontology consists of a set of concepts, attributes, relations and constraints on them. The map ontology plays two key roles: 1) a basis for natural language traffic information analysis, and 2) a basis for user query analysis. In this paper we present the major information processing modules and services for mobile users. Experimental results show that the proposed method can improve the traffic information processing accuracy to 93%-95%.
机译:本文提出了一种地图本体驱动的自然语言交通信息处理方法,并对其评价结果进行了描述。交通拥堵被认为是一个主要的城市问题,工程师和研究人员长期以来一直在寻求解决方案。最近,通过短消息服务从移动用户收集交通信息的想法似乎很有希望。然而,交通信息由于其直接,间接和内涵的表达而难以处理以达到高精度。拟议的地图本体由一组概念,属性,关系和约束组成。地图本体起着两个关键作用:1)自然语言交通信息分析的基础,以及2)用户查询分析的基础。在本文中,我们介绍了面向移动用户的主要信息处理模块和服务。实验结果表明,该方法可以将交通信息处理的准确率提高到93%-95%。

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