Impact Of Emotions on Information Seeking And Sharing Behaviors During Pandemic

Fuente: arXiv
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Main Authors: Sudheendra, Smitha Muthya, Xu, Hao, Huh, Jisu, Srivastava, Jaideep
Format: Preprint
Published: 2024
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author Sudheendra, Smitha Muthya
Xu, Hao
Huh, Jisu
Srivastava, Jaideep
author_facet Sudheendra, Smitha Muthya
Xu, Hao
Huh, Jisu
Srivastava, Jaideep
contents We propose a novel approach to assess the public's coping behavior during the COVID-19 outbreak by examining the emotions. Specifically, we explore (1) changes in the public's emotions with the COVID-19 crisis progression and (2) the impacts of the public's emotions on their information-seeking, information-sharing behaviors, and compliance with stay-at-home policies. We base the study on the appraisal tendency framework, detect the public's emotions by fine-tuning a pre-trained RoBERTa model, and cross-analyze third-party behavioral data. We demonstrate the feasibility and reliability of our proposed approach in providing a large-scale examination of the publi's emotions and coping behaviors in a real-world crisis: COVID-19. The approach complements prior crisis communication research, mainly based on self-reported, small-scale experiments and survey data. Our results show that anger and fear are more prominent than other emotions experienced by the public at the pandemic's outbreak stage. Results also show that the extent of low certainty and passive emotions (e.g., sadness, fear) was related to increased information-seeking and information-sharing behaviors. Additionally, high-certainty (e.g., anger) and low-certainty (e.g., sadness, fear) emotions during the outbreak correlated to the public's compliance with stay-at-home orders.
format Preprint
id arxiv_https___arxiv_org_abs_2409_10754
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Impact Of Emotions on Information Seeking And Sharing Behaviors During Pandemic
Sudheendra, Smitha Muthya
Xu, Hao
Huh, Jisu
Srivastava, Jaideep
Social and Information Networks
Human-Computer Interaction
We propose a novel approach to assess the public's coping behavior during the COVID-19 outbreak by examining the emotions. Specifically, we explore (1) changes in the public's emotions with the COVID-19 crisis progression and (2) the impacts of the public's emotions on their information-seeking, information-sharing behaviors, and compliance with stay-at-home policies. We base the study on the appraisal tendency framework, detect the public's emotions by fine-tuning a pre-trained RoBERTa model, and cross-analyze third-party behavioral data. We demonstrate the feasibility and reliability of our proposed approach in providing a large-scale examination of the publi's emotions and coping behaviors in a real-world crisis: COVID-19. The approach complements prior crisis communication research, mainly based on self-reported, small-scale experiments and survey data. Our results show that anger and fear are more prominent than other emotions experienced by the public at the pandemic's outbreak stage. Results also show that the extent of low certainty and passive emotions (e.g., sadness, fear) was related to increased information-seeking and information-sharing behaviors. Additionally, high-certainty (e.g., anger) and low-certainty (e.g., sadness, fear) emotions during the outbreak correlated to the public's compliance with stay-at-home orders.
title Impact Of Emotions on Information Seeking And Sharing Behaviors During Pandemic
topic Social and Information Networks
Human-Computer Interaction
url https://arxiv.org/abs/2409.10754