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Social Network Analysis of a Disaster Behavior Network: An Agent-Based Modeling Approach

机译:灾难行为网络的社交网络分析:基于代理的建模方法

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Disasters are causing tremendous damage to human lives and properties. The United Nations International Strategy for Disaster Reduction (UNISDR) recognizes that behavioral change of society is needed to significantly reduce disaster losses. There is a need therefore in empirical understanding of human behavior during disasters as this could help in making decisions on how to prepare for disasters, how to properly act and strategically respond during and after a calamity. This study aims to understand human behavior during disaster through agent-based modeling and social network analysis. eBayanihan, a disaster management platform that uses crowdsourcing to gather disaster-related information was used to capture disaster behavior during a simulated disaster-event. Survey data was also used for disaster behavior modeling. Generated disaster behavior models and computed social network centrality measures using ORA-Netscenes shows that there are specific agents in the network that can play an important role during disaster risk reduction and management (DRRM) operations.
机译:灾难对人类生命和财产造成巨大破坏。联合国国际减少灾害战略(UNISDR)认识到,需要社会行为改变以大大减少灾害损失。因此,需要对灾难期间的人类行为进行凭经验的了解,因为这有助于在灾难期间和之后做出有关如何为灾难做准备,如何适当采取行动以及在战略上做出反应的决策。本研究旨在通过基于代理的建模和社交网络分析来了解灾难期间的人类行为。 eBayanihan是一个灾难管理平台,该平台使用众包收集与灾难相关的信息,用于在模拟灾难事件期间捕获灾难行为。调查数据还用于灾难行为建模。使用ORA-Netscenes生成的灾难行为模型和计算出的社交网络集中度度量表明,网络中存在特定的代理,这些代理可以在减少灾难风险和管理(DRRM)操作中发挥重要作用。

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