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Estimation of User Location and Local Topics Based on Geo-tagged Text Data on Social Media

机译:基于社交媒体上的地理标记文本数据的用户位置和本地主题估算

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This paper proposes a method for estimating microblogging user location to determine local topics of importance based on area-specific term cooccurrence. Geotagged information on social media has not previously been sufficient to determine local topics; however, the amount of information available on social media has continued to expand due to the widespread use of smartphones. Notably, the amount of information generated from regional cities is significantly smaller than that from metropolitan cities. Hence, we must estimate the location of each user in a regional city to obtain adequate local information for determining local topics. To extract this information, we define area-specific scores of terms and cooccurrences that are calculated using term frequency, as well as average and standard deviation of the longitude and latitude of raw geotagged information.
机译:本文提出了一种估计微博用户位置的方法,以确定基于面积特定的术语Cooccurrence的重要性主题。关于社交媒体的地理标记信息以前没有足以确定当地主题;但是,由于智能手机的广泛使用,社交媒体上可用的信息的数量继续扩大。值得注意的是,区域城市产生的信息量明显小于大都市城市。因此,我们必须估算区域城市中每个用户的位置,以获得用于确定当地主题的充分本地信息。为了提取这些信息,我们定义使用术语频率计算的术语和协调电流的特定于术语和Cooccurrences的区域,以及原始地理标记信息的经度和纬度的平均值和标准偏差。

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