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A network science approach to open source data fusion and analytics for disaster response

机译:一种网络科学方法,用于灾难响应的开源数据融合和分析

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Network science is often used to understand underlying phenomena that are reflected through data. In real-world applications, this understanding supports decision makers attempting to solve complex problems. Practitioners designing such systems must overcome difficulties due to the practical limitations of the data and the fidelity of a network abstraction. This paper explores the design of a network science solution for the disaster relief domain with the goal of increasing the efficiency of disaster response efforts. Various real-world network science challenges are discussed relating to entity disambiguation and relationship estimation as well as general data science challenges such as limited access to representative data and learning inference models in this environment. A novel graph-based information management system was designed and prototyped to access and aggregate data from multiple sources. The system consists of five main parts: data ingestion, graph construction, inference, situational awareness, and evaluation. Data from open sources, such as social media, are ingested and fused to represent people, places, and social media users as a coherent social graph. This graph can be displayed to first responders to increase situational awareness or used as inputs to algorithms for graph analytics that support response efforts. Due to the lack of historical data from disaster events, an agent-based simulation was developed to create representative social graphs.
机译:网络科学通常用于理解通过数据反映的潜在现象。在实际的应用程序中,这种理解为尝试解决复杂问题的决策者提供了支持。由于数据的实际限制和网络抽象的真实性,设计此类系统的从业者必须克服困难。本文探索了用于灾难救援领域的网络科学解决方案的设计,目的是提高灾难响应工作的效率。讨论了与实体歧义消除和关系估计有关的各种现实世界网络科学挑战,以及一般数据科学挑战,例如在此环境中对代表性数据的访问受限和学习推理模型。设计并原型化了基于图形的新型信息管理系统,以访问和聚合来自多个源的数据。该系统由五个主要部分组成:数据摄取,图形构造,推理,态势感知和评估。吸收并融合了来自开放源(例如社交媒体)的数据,以将人们,地点和社交媒体用户表示为连贯的社交图。该图可以显示给急救人员以增强态势感知,或用作支持响应工作的图分析算法的输入。由于缺乏灾难事件的历史数据,因此开发了基于代理的模拟来创建代表性的社会图。

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