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CrisMap: a Big Data Crisis Mapping System Based on Damage Detection and Geoparsing

机译:CrisMap:基于损伤检测和地理解析的大数据危机映射系统

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Natural disasters, as well as human-made disasters, can have a deep impact on wide geographic areas, and emergency responders can benefit from the early estimation of emergency consequences. This work presents CrisMap , a Big Data crisis mapping system capable of quickly collecting and analyzing social media data. CrisMap extracts potential crisis-related actionable information from tweets by adopting a classification technique based on word embeddings and by exploiting a combination of readily-available semantic annotators to geoparse tweets. The enriched tweets are then visualized in customizable, Web-based dashboards, also leveraging ad-hoc quantitative visualizations like choropleth maps. The maps produced by our system help to estimate the impact of the emergency in its early phases, to identify areas that have been severely struck, and to acquire a greater situational awareness. We extensively benchmark the performance of our system on two Italian natural disasters by validating our maps against authoritative data. Finally, we perform a qualitative case-study on a recent devastating earthquake occurred in Central Italy.
机译:自然灾害以及人为灾害都可能对广泛的地理区域产生深远影响,应急人员可以从对紧急后果的早期估计中受益。这项工作介绍了CrisMap,这是一个能够快速收集和分析社交媒体数据的大数据危机映射系统。 CrisMap通过采用基于词嵌入的分类技术并利用易于获得的语义注释器组合来对推文进行地理解析,从而从推文中提取潜在的与危机相关的可操作信息。然后,可在基于Web的可自定义的仪表板中对丰富的推文进行可视化,还可以利用临时定量的可视化效果(例如,总谱图)。我们的系统生成的地图有助于估计紧急事件在其早期阶段的影响,识别遭受严重打击的区域并获得更大的态势感知。通过对照权威数据验证地图,我们广泛地对系统在两次意大利自然灾害中的性能进行了基准测试。最后,我们对意大利中部最近发生的毁灭性地震进行了定性的案例研究。

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