Conceptualization of place via spatial clustering and co-occurrence analysis

D. Deng, Tyng-Ruey Chuang, R. Lemmens
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引用次数: 22

Abstract

More and more users are contributing and sharing more and more contents on the Web via the use of content hosting sites and social media services. These user-generated contents are tagged with terms characterizing the contents from the users' perspectives. Massive collections of tagged photos in popular photo hosting sites are well known for their richness in semantic extent and geospatial scope. Furthermore, geo-tags, which are machine-generated positional data, are frequently embedded within these photos. We develop in this paper an approach based on the analyses of tags and geo-tags for the exploration and characterization of the implicit localities in collections of user photos. At the same time, the approach also allows us to explore the meanings given by users about the places in their photo collections. In this approach, we first use DBSCAN (Density-based Spatial Clustering with Noise) to group geo-tagged photos into clusters (of possibly multiple distance scales). Then, a co-occurrence analysis on the tags used within a cluster is utilized to extract conceptualization of the place in the cluster. The extracted concepts are not necessarily of geospatial nature (e.g., airplane/airline names in photos taken in the surrounding area of an airport) so are especially useful when compared to concepts extracted via the simple use of readily available locational resources (e.g., gazetteers).
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通过空间聚类和共现分析对地点进行概念化
越来越多的用户通过使用内容托管网站和社交媒体服务,在网络上贡献和分享越来越多的内容。这些用户生成的内容被标记为从用户角度描述内容的术语。在流行的照片托管网站中,大量的标记照片以其丰富的语义范围和地理空间范围而闻名。此外,地理标签,即机器生成的位置数据,经常嵌入到这些照片中。本文开发了一种基于标签和地理标签分析的方法,用于用户照片集合中隐含位置的探索和表征。与此同时,这种方法也允许我们探索用户对他们照片收藏中的地方所赋予的意义。在这种方法中,我们首先使用DBSCAN(基于密度的空间噪声聚类)将地理标记的照片分组到集群中(可能有多个距离尺度)。然后,对集群内使用的标签进行共现分析,以提取集群中位置的概念化。提取的概念不一定是地理空间性质的(例如,在机场周围地区拍摄的照片中的飞机/航空公司名称),因此与通过简单使用现成的位置资源(例如,地名词典)提取的概念相比,特别有用。
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