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People Searching for People: Analysis of a People Search Engine Log

机译:搜索人的人员:人员搜索引擎日志的分析

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Recent years show an increasing interest in vertical search: searching within a particular type of information. Understanding what people search for in these "verticals" gives direction to research and provides pointers for the search engines themselves. In this paper we analyze the search logs of one particular vertical: people search engines. Based on an extensive analysis of the logs of a search engine geared towards finding people, we propose a classification scheme for people search at three levels: (a) queries, (b) sessions, and (c) users. For queries, we identify three types, (ⅰ) event-based high-profile queries (people that become "popular" because of an event happening), (ⅱ) regular high-profile queries (celebrities), and (ⅲ) low-profile queries (other, less-known people). We present experiments on automatic classification of queries. On the session level, we observe five types: (ⅰ) family sessions (users looking for relatives), (ⅱ) event sessions (querying the main players of an event), (ⅲ) spotting sessions (trying to "spot" different celebrities online), (ⅳ) polymerous sessions (sessions without a clear relation between queries), and (v) repetitive sessions (query refinement and copying). Finally, for users we identify four types: (ⅰ) monitors, (ⅱ) spotters, (ⅲ) followers, and (ⅳ) polymers. Our findings not only offer insight into search behavior in people search engines, but they are also useful to identify future research directions and to provide pointers for search engine improvements.
机译:近年来,人们对垂直搜索越来越感兴趣:在特定类型的信息中搜索。了解人们在这些“垂直”中搜索的内容为研究提供了方向,并为搜索引擎本身提供了指导。在本文中,我们分析了一个特定行业的搜索日志:人员搜索引擎。基于对旨在寻找人的搜索引擎日志的广泛分析,我们提出了用于人搜索的分类方案,该分类方案分为三个级别:(a)查询,(b)会话和(c)用户。对于查询,我们确定了三种类型:(ⅰ)基于事件的高关注度查询(由于事件发生而变得“受欢迎”的人),(ⅱ)常规高关注度查询(名人)和(ⅲ)低关注度个人资料查询(其他鲜为人知的人)。我们提出了关于查询自动分类的实验。在会话级别上,我们观察到五种类型:(ⅰ)家庭会话(用户在寻找亲戚),(ⅱ)事件会话(查询事件的主要参与者),(ⅲ)发现会话(尝试“发现”不同的名人在线),(ⅳ)聚合会话(在查询之间没有明确关系的会话)和(v)重复会话(查询细化和复制)。最后,对于用户,我们确定了四种类型:(ⅰ)监视器,(ⅱ)监视者,(ⅲ)跟随者和(ⅳ)聚合物。我们的发现不仅可以洞悉人员搜索引擎中的搜索行为,而且还有助于确定未来的研究方向并为改进搜索引擎提供指导。

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