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A Rule-Based Spatial Reasoning Approach for OpenStreetMap Data Quality Enrichment; Case Study of Routing and Navigation

机译:OpenStreetMap数据质量增强的基于规则的空间推理方法;路由和导航案例研究

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摘要

Finding relevant geospatial information is increasingly critical because of the growing volume of geospatial data available within the emerging “Big Data” era. Users are expecting that the availability of massive datasets will create more opportunities to uncover hidden information and answer more complex queries. This is especially the case with routing and navigation services where the ability to retrieve points of interest and landmarks make the routing service personalized, precise, and relevant. In this paper, we propose a new geospatial information approach that enables the retrieval of implicit information, i.e., geospatial entities that do not exist explicitly in the available source. We present an information broker that uses a rule-based spatial reasoning algorithm to detect topological relations. The information broker is embedded into a framework where annotations and mappings between OpenStreetMap data attributes and external resources, such as taxonomies, support the enrichment of queries to improve the ability of the system to retrieve information. Our method is tested with two case studies that leads to enriching the completeness of OpenStreetMap data with footway crossing points-of-interests as well as building entrances for routing and navigation purposes. It is concluded that the proposed approach can uncover implicit entities and contribute to extract required information from the existing datasets.
机译:由于在新兴的“大数据”时代可用的地理空间数据量越来越大,因此找到相关的地理空间信息变得越来越重要。用户期望海量数据集的可用性将创造更多机会来发现隐藏信息并回答更复杂的查询。对于路由和导航服务尤其如此,其中检索兴趣点和地标的能力使路由服务个性化,精确且相关。在本文中,我们提出了一种新的地理空间信息方法,该方法可以检索隐式信息,即在可用资源中未明确存在的地理空间实体。我们介绍了一个信息经纪人,它使用基于规则的空间推理算法来检测拓扑关系。信息代理嵌入到一个框架中,在该框架中,OpenStreetMap数据属性与外部资源(例如分类法)之间的注释和映射支持查询的丰富化,以提高系统检索信息的能力。我们的方法已通过两个案例研究进行了测试,这些案例导致人行横道交叉点丰富了OpenStreetMap数据的完整性,并为路线和导航目的构建了入口。结论是,提出的方法可以发现隐式实体并有助于从现有数据集中提取所需信息。

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