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Tracing the Event Evolution of Terror Attacks from On-Line News

机译:从在线新闻追踪恐怖袭击的事件演变

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Since the September 11th terror attack at New York in 2001, the frequency of terror attacks around the world has been increasing and it draws more attention of the public. On January 20 of 2006, CNN reported that al Qaeda leader Osama bin Laden had released a tape claiming that a series of terror attacks were planned in US. These attacks and messages from terrorists are threatening everyone in the world. As an intelligence officer or a citizen in any countries, we are interested in the development of the terror attacks around us. We can easily extract hundreds or thousands of news stories of any terror attack incidents from newswires such as CNN.com but the volume of information is too large to capture the information we need. Information retrieval techniques such as Topic Detection and Tracking are able to organize the news stories as events within a topic of terror attack. However, they are incapable to present the complex evolution relationships between the events. We are interested to learn what the major events but also how they develop within the topic of a terror attack. It is beneficial to identify the starting and ending events, the seminal events and the evolution of these events. In this work, we propose to utilize the temporal relationship, event similarity, temporal proximity and document distributional proximity to identify the event evolution relationships between events in a terror attack incident. An event evolution graph is utilized to present the underlying structure of events for efficient browsing and extracting information. Case study and experiment are presented to illustrate and show the performance of our proposing technique.
机译:自2001年9月11日在纽约发生恐怖袭击以来,全球恐怖袭击的频率一直在增加,并引起了公众的更多关注。 2006年1月20日,美国有线电视新闻网报道,基地组织领导人本·拉登(Osama bin Laden)发布了录音带,声称计划在美国进行一系列恐怖袭击。来自恐怖分子的这些攻击和信息正在威胁着世界上的每个人。作为任何国家的情报人员或公民,我们对我们周围的恐怖袭击的发展很感兴趣。我们可以轻松地从诸如CNN.com之类的新闻专线中提取数百或数千条有关恐怖袭击事件的新闻报导,但是信息量太大,无法捕获我们所需的信息。诸如主题检测和跟踪之类的信息检索技术能够将新闻故事组织为恐怖袭击主题内的事件。但是,它们无法呈现事件之间的复杂演化关系。我们有兴趣了解什么是重大事件,以及它们在恐怖袭击主题中如何发展。识别开始事件和结束事件,主要事件以及这些事件的演变是有益的。在这项工作中,我们建议利用时间关系,事件相似性,时间接近度和文档分布接近度来识别恐怖袭击事件中事件之间的事件演化关系。利用事件演化图来表示事件的基础结构,以进行有效的浏览和提取信息。通过案例研究和实验来说明和展示我们提出的技术的性能。

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