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Emergency-relief coordination on social media: Automatically matching resource requests and offers

机译:社交媒体上的紧急救济协调:自动匹配资源请求和报价

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摘要

Disaster affected communities are increasingly turning to social media for communication and coordination. This includes reports on needs (demands) and offers (supplies) of resources required during emergency situations. Identifying and matching such requests with potential responders can substantially accelerate emergency relief efforts. Current work of disaster management agencies is labor intensive, and there is substantial interest in automated tools. We present machine–learning methods to automatically identify and match needs and offers communicated via social media for items and services such as shelter, money, clothing, etc. For instance, a message such as “we are coordinating a clothing/food drive for families affected by Hurricane Sandy. If you would like to donate, DM us” can be matched with a message such as “I got a bunch of clothes I’d like to donate to hurricane sandy victims. Anyone know where/how I can do that?” Compared to traditional search, our results can significantly improve the matchmaking efforts of disaster response agencies.
机译:受灾社区越来越多地转向社交媒体进行沟通和协调。这包括紧急情况下所需的需求(需求)报告和所需资源(提供)报告。识别此类请求并将其与潜在响应者进行匹配可以大大加快紧急救济工作的速度。灾难管理机构的当前工作是劳动密集型的,并且人们对自动化工具非常感兴趣。我们提供了机器学习方法,可以自动识别和匹配需求,并通过社交媒体传达有关诸如住房,金钱,衣服等物品和服务的信息。例如,一条信息,例如“我们正在协调家庭的衣服/食物驱动受飓风桑迪的影响。如果您愿意捐款,可以给我们DM信息,例如“我想为飓风沙地受害者捐献一堆衣服”。有人知道我在哪里/怎么做吗?”与传统搜索相比,我们的结果可以显着改善灾难响应机构的配对工作。

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