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突发事件中公众多维传播偏好的细粒度检测

Fine-grained detection on the public's multi-dimensional communication preferences in emergency events.

作者信息

Zhou Qingqing

机构信息

Department of Network and New Media, Nanjing Normal University, Nanjing 210023, China.

Research Center for Media Communication and Public Opinion Governance, Nanjing 210023, China.

出版信息

Heliyon. 2023 May 26;9(6):e16312. doi: 10.1016/j.heliyon.2023.e16312. eCollection 2023 Jun.

Abstract

With the rapid development of Internet technologies, the public can participate in the information communication of emergency events more conveniently and quickly. Once an emergency occurs, the public will immediately express and disseminate massive information about the causes, processes and results of the emergency. In the process of information communication, the public often adopts diversified communication modes, and then shows differential communication preferences. The detection of the public's communication preferences can more accurately understand the information demands of the public in events, and then contribute to the rational allocation of resources and improve the processing efficiency. Therefore, this paper conducted finer-grained mining on the public's online expressions in multiple events, so as to detect the public's communication preferences. Specifically, we collected the public's expressions related to emergency events from the social media and then we analyzed the expressions from multiple dimensions to obtain the corresponding communication features. Finally, based on the comparative analysis of diversified communication features, static and dynamic communication preferences were obtained. The experimental results indicate that the public's communication preferences do exist, which is universal and consistent. Meanwhile, constructing a better social environment and improving people's livelihood are the fundamental strategies to guide public opinion.

摘要

随着互联网技术的飞速发展,公众能够更便捷、快速地参与突发事件的信息传播。一旦突发事件发生,公众会立即表达并传播有关该事件的起因、过程和结果的海量信息。在信息传播过程中,公众常常采用多样化的传播方式,进而表现出不同的传播偏好。对公众传播偏好的检测能够更准确地了解公众在事件中的信息需求,进而有助于资源的合理分配并提高处理效率。因此,本文对公众在多个事件中的网络表达进行了更细粒度的挖掘,以检测公众的传播偏好。具体而言,我们从社交媒体收集了公众与突发事件相关的表达,然后从多个维度对这些表达进行分析以获得相应的传播特征。最后,基于对多样化传播特征的比较分析,得出静态和动态传播偏好。实验结果表明,公众的传播偏好确实存在,具有普遍性和一致性。同时,构建更好的社会环境和改善民生是引导舆论的根本策略。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/98da/10245013/a5f27f3d4ec2/gr1.jpg

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