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The geo-social relevance ranking: A method based on geographic information and social media data

机译:地理社会相关性排名:一种基于地理信息和社交媒体数据的方法

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A geographic search engine should be capable of identifying, indexing and retrieving the geographic context present in a considerable portion of the Web content, which is not expected in classic search engines. This type of search engine is characterised by a set of features, such as toponym recognition and resolution, geographic scope modelling, and relevance ranking. Ranking the results returned by a user query is a crucial task for this kind of system. In this paper, we present a method of ranking Web documents, which consider both the documents' geographic context and information collected from microblogs. This method also comprises an algorithm to estimate the affinity between locations and social network users, based on their interactions. The proposed method was evaluated within the news domain, using a system prototype which recognises geographic information contained in the news content and integrates information collected from Twitter.
机译:地理搜索引擎应该能够识别,索引和检索存在于Web内容的相当大部分中存在的地理上下文,这在经典搜索引擎中不期望。这种类型的搜索引擎的特征在于一组特征,例如顶名识别和分辨率,地理范围建模和相关性排序。排名用户查询返回的结果是这种系统的重要任务。在本文中,我们介绍了一种排序Web文档的方法,这考虑了从微博收集的文档的地理上下文和信息。该方法还包括估计基于其交互的位置和社交网络用户之间的亲和力的算法。使用系统原型在新闻域中评估所提出的方法,该系统原型识别新闻内容中包含的地理信息并集成从Twitter收集的信息。

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