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Finding Time-Critical Responses for Information Seeking in Social Media

机译:寻找社交媒体中寻求信息的时间关键响应

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Social media is being increasingly used to request information and help in situations like natural disasters, where time is a critical commodity. However, generic social media platforms are not explicitly designed for timely information seeking, making it difficult for users to obtain prompt responses. Algorithms to ensure prompt responders for questions in social media have to understand the factors affecting their response time. In this paper, we draw from sociological studies on information seeking and organizational behavior to model the future availability and past response behavior of the candidate responders. We integrate these criteria with their interests to identify users who can provide timely and relevant responses to questions posted in social media. We propose a learning algorithm to derive optimal rankings of responders for a given question. We present questions posted on Twitter as a form of information seeking activity in social media. Our experiments demonstrate that the proposed framework is useful in identifying timely and relevant responders for questions in social media.
机译:社交媒体越来越多地用于要求信息和帮助在自然灾害等情况下,时间是关键商品。但是,通用社交媒体平台没有明确设计用于及时的信息寻求,使用户难以获取迅速响应。算法以确保在社交媒体中提示响应者必须了解影响其响应时间的因素。在本文中,我们从社会学研究中汲取了关于信息寻求和组织行为的信息,以建模候选人响应者的未来可用性和过去的响应行为。我们将这些标准与其兴趣纳入这些标准,以识别可以在社交媒体上发布的问题提供及时和相关答复的用户。我们提出了一种学习算法,为给定的问题推导出响应者的最佳排名。我们提出了在Twitter上发布的问题作为社交媒体中寻求活动的形式。我们的实验表明,拟议的框架可用于识别社交媒体中的问题及时和相关的响应者。

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