Separating the Wheat from the Chaff: Events Detection in Twitter Data

Andrea Ferracani, Daniele Pezzatini, Lea Landucci, Giuseppe Becchi, A. Bimbo
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引用次数: 3

Abstract

In this paper we present a system for the detection and validation of macro and micro-events in cities (e.g. concerts, business meetings, car accidents) through the analysis of geolocalized messages from Twitter. A simple but effective method is proposed for unknown event detection designed to alleviate computational issues in traditional approaches. The method is exploited by a web interface that in addition to visualizing the results of the automatic computation exposes interactive tools to inspect, validate the data and refine the processing pipeline. Researchers can exploit the web application for the rapid creation of macro and micro-events datasets of geolocalized messages currently unavailable and needed to improve supervised and unsupervised events classification on Twitter. The system has been evaluated in terms of precision.
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从谷壳中分离小麦:Twitter数据中的事件检测
在本文中,我们提出了一个系统,通过分析来自Twitter的地理定位消息来检测和验证城市中的宏观和微观事件(例如音乐会,商务会议,车祸)。针对传统未知事件检测方法的计算问题,提出了一种简单有效的未知事件检测方法。该方法通过一个web界面来实现,除了将自动计算的结果可视化外,还提供了交互式工具来检查、验证数据并改进处理管道。研究人员可以利用web应用程序快速创建地理定位消息的宏观和微事件数据集,这些数据集目前不可用,需要改进Twitter上的监督和非监督事件分类。该系统已在精度方面进行了评估。
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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