论文标题

了解全球对COVID-19的爆发的反应:Instagram数据分析的见解

Understanding Global Reaction to the Recent Outbreaks of COVID-19: Insights from Instagram Data Analysis

论文作者

Rafi, Abdul Muntakim, Rana, Shivang, Kaur, Rajwinder, Wu, Q. M. Jonathan, Zadeh, Pooya Moradian

论文摘要

冠状病毒疾病,也称为Covid-19,是严重急性呼吸系统综合征的持续大流行。大流行导致取消了世界上许多宗教,政治和文化活动。由于全球采取了前所未有的锁定措施,许多人被困在家里。本文研究了个体对Instagram平台上特定主题标签的分析镜头的反应。分析了Instagram帖子,以试图以个人在对这场危机做出反应时使用视觉社交媒体的方式表达共同点。收集数据后,选择包含位置数据的帖子。这些数据的一部分是随机选择的,并分为五个不同的类别。我们进行了几项手动分析,以了解收集到的数据集。之后,我们使用Resnet-50卷积神经网络来对与帖子相关的图像进行分类,以及基于注意力的LSTM网络进行标题分类。本文在全球危机时刻发现了社交媒体上的一系列新兴规范。获得的结果表明,我们提出的方法可用于使用Instagram数据对大众的情感分析自动化。

The coronavirus disease, also known as the COVID-19, is an ongoing pandemic of a severe acute respiratory syndrome. The pandemic has led to the cancellation of many religious, political, and cultural events around the world. A huge number of people have been stuck within their homes because of unprecedented lockdown measures taken globally. This paper examines the reaction of individuals to the virus outbreak-through the analytical lens of specific hashtags on the Instagram platform. The Instagram posts are analyzed in an attempt to surface commonalities in the way that individuals use visual social media when reacting to this crisis. After collecting the data, the posts containing the location data are selected. A portion of these data are chosen randomly and are categorized into five different categories. We perform several manual analyses to get insights into our collected dataset. Afterward, we use the ResNet-50 convolutional neural network for classifying the images associated with the posts, and attention-based LSTM networks for performing the caption classification. This paper discovers a range of emerging norms on social media in global crisis moments. The obtained results indicate that our proposed methodology can be used to automate the sentiment analysis of mass people using Instagram data.

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