社交媒体预警系统造成的情感过程的时间依赖性变化。

Q3 Medicine
Kenan Menguc
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引用次数: 0

摘要

灾害管理中常用的预警信息是“如遇我国持续气象条件造成的洪水、高水位或山体滑坡等紧急情况,请拨打紧急呼叫中心”。为了有效地管理灾难并制定适当的战略,确保信息的双向流动至关重要。随着社交媒体的出现,这种双向互动得到了显著扩展,通过这些平台实现了大规模的参与。这项研究旨在分析公众对首次使用音频预警系统进行恶劣天气试验的社交媒体反应。主要目标是评估公众对灾害管理领域的技术革新的反应。本研究结果可用于加强社会的灾害教育。此外,该研究的方法将作为参与预警系统的决策者的基本工具,促进向新技术的顺利过渡。此外,本研究还详细描述了采用多标签自然语言处理模型的语言处理过程。该模型特别侧重于分析社交媒体评论,在本研究的背景下,这些评论被认为是不干净的文本。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Time-dependent change of the sentimental process created by the early warning system in social media.

Warning messages, such as "In case of emergencies such as floods, high water, or landslides caused by persis-tent meteorological conditions in our country, please call the emergency call center" are commonly used in disaster management. To effectively manage a disaster and develop appropriate strategies, it is crucial to ensure a two-way flow of information. With the advent of social media, this two-way interaction has expanded significantly, enabling large-scale engagement through these platforms. This study aims to analyze the public's social media response to the first-ever experiment with an audio warning system for severe weather. The primary objective is to assess the public's reaction to technological innovation in the field of disaster management. The findings from this study can be utilized to enhance disaster education within society. Furthermore, the study's methodology will serve as an essential tool for de-cision-makers involved in early warning systems, facilitating a smooth transition to new technologies. Additionally, this study presents a detailed description of the language processing procedure employing a multilabel natural language processing model. The model specifically focuses on analyzing social media comments, which are considered unclean text within the context of this study.

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来源期刊
Journal of Emergency Management
Journal of Emergency Management Medicine-Emergency Medicine
CiteScore
1.20
自引率
0.00%
发文量
67
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