Identifying vehicle descriptions in microblogging text with the aim of reducing or predicting crime

Coral Featherstone
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引用次数: 19

Abstract

Could Social Media, and in particular, microblogs such as Twitter, play a part in helping to track criminal movement? The aim of this paper is to narrow the focus of this broader problem of using social media to crowdsource information to assist in the fight against crime, to the specific problem of identifying the description of vehicles in microblog text. As this problem has many aspects, especially in terms of data gathering and identification, an initial search is performed on preset keywords and the resulting database is tagged. The tags are then analysed to determine which features are the most common. Topic models are then run on the data to determine if any useful keyword can be found for further searches and initial statistics are recorded as a baseline for further processing. Our primary concern is establishing the common content of the relevant Tweets. The result could be used both for help with data collection as well as with feature selection when learning classification algorithms for data mining.
识别微博文本中的车辆描述,以减少或预测犯罪
社交媒体,特别是像Twitter这样的微博,能在帮助追踪犯罪活动方面发挥作用吗?本文的目的是将利用社交媒体众包信息来协助打击犯罪这一更广泛的问题的焦点缩小到识别微博文本中车辆描述的具体问题上。由于这个问题有很多方面,特别是在数据收集和识别方面,因此对预设的关键字执行初始搜索,并对结果数据库进行标记。然后对标签进行分析,以确定哪些特征是最常见的。然后在数据上运行主题模型,以确定是否可以找到任何有用的关键字进行进一步搜索,并将初始统计数据记录为进一步处理的基线。我们主要关心的是建立相关推文的共同内容。该结果既可以用于数据收集的帮助,也可以用于学习数据挖掘分类算法时的特征选择。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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