Analyzing Large News Corpus Using Text Mining Techniques for Recognizing High Crime Prone Areas

Sumanta Mukherjee, K. Sarkar
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引用次数: 8

Abstract

For any developing country, crime rate analysis over different states and different districts for each state is an important task. For having a gross view of crime rates, online newspapers can be used as a useful resource for such tasks. Since all types of crimes are not reported to the police department and the reported crime data may not be easily accessible by the common people, the crime location information can be extracted from online local newspapers and/or national newspapers and the extracted information can be used for counting crime incidents for a location or an area. But, processing the huge collection of newspapers and extracting crime locations from them is not a trivial task. This task can be roughly divided into two main parts, the first part is to filter the crime news articles from the automatically downloaded news collection and the second part is the crime location extraction from each news article. Our proposed system does this task automatically through mining the collection of newspapers written in the Bengali language. To get the picture of high crime prone locations in a state, the proposed system visualizes the crime count per district in a state. Our system is tested on data related to the state of West Bengal. To generate the location wise crime histogram, this system can be used as a tool.
利用文本挖掘技术分析大型新闻语料库,识别犯罪高发区
对于任何一个发展中国家来说,不同州和不同地区的犯罪率分析都是一项重要的任务。为了大致了解犯罪率,在线报纸可以作为这类工作的有用资源。由于所有类型的犯罪都不是向警察部门报告的,并且报告的犯罪数据可能不容易被普通人获取,因此可以从在线的地方报纸和/或全国性报纸中提取犯罪地点信息,提取的信息可以用于统计一个地点或一个地区的犯罪事件。但是,处理大量的报纸并从中提取犯罪地点并不是一项简单的任务。该任务大致可以分为两个主要部分,第一部分是从自动下载的新闻集合中过滤犯罪新闻文章,第二部分是从每篇新闻文章中提取犯罪地点。我们提出的系统通过挖掘用孟加拉语编写的报纸集合来自动完成这项任务。为了了解一个州犯罪高发地区的情况,该系统将一个州每个地区的犯罪数量可视化。我们的系统在与西孟加拉邦有关的数据上进行了测试。该系统可以作为一种工具来生成基于位置的犯罪直方图。
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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