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基于情感分析的COVID-19情感提取:利用爬取的推文和全球心理健康统计数据

Sentiment Analysis based Emotion Extraction for COVID-19 Using Crawled Tweets and Global Statistics for Mental Health.

作者信息

Nandal Neha, Tanwar Rohit, Pathan Al-Sakib Khan

机构信息

Department of Computer Science and Engineering, Gokaraju Rangaraju Institute of Engineering and Technology, India.

School of Computer Science, University of Petroleum and Energy Studies, India.

出版信息

Procedia Comput Sci. 2023;218:949-958. doi: 10.1016/j.procs.2023.01.075. Epub 2023 Jan 31.

Abstract

The unpredictable and crucial challenges that occurred because of the COVID-19 pandemic disease have taken a gradual upsurge impacting over 213 countries across the globe. Different countries have taken several measures to get control over it like Lockdown, Curfews, Travel ban, etc. but still the cases were increasing and the situation was getting worse globally during some period of time. The impacts on the financial, social, and physical aspects of several citizens resulted in their psychological and mental health issues. In this work, we have quantitatively analyzed the depression, stress, and suicide cases during the period of COVID-19 globally and especially, in India. The global data including tweets (collected using a Scraper) is used for analysis. The data have been analyzed on Tableau and; sentiment analysis for extracting emotions in tweets has been performed using Python. Tweets are analyzed to extract the emotion of people in terms of Fear, Sadness, Anger, and Happiness. With total collected Tweets of 819678 from Jan 2020 to March 2022, it is found that people are more into Fear and Sadness with 59.3% and 28.9% scores respectively.

摘要

由新冠疫情引发的不可预测且至关重要的挑战已逐渐升级,影响了全球213个以上的国家。不同国家采取了多项措施来控制疫情,如封锁、宵禁、旅行禁令等,但在一段时间内,全球范围内的病例仍在增加,情况也在恶化。疫情对许多公民的经济、社会和身体方面产生了影响,导致了他们的心理和精神健康问题。在这项工作中,我们对全球范围内,尤其是印度在新冠疫情期间的抑郁、压力和自杀案例进行了定量分析。分析使用了包括推文(通过爬虫收集)在内的全球数据。数据在Tableau上进行了分析;并使用Python对推文中的情绪进行了情感分析。通过分析推文来提取人们在恐惧、悲伤、愤怒和快乐方面的情绪。从2020年1月到2022年3月共收集了819678条推文,发现人们更多地表现出恐惧和悲伤情绪,得分分别为59.3%和28.9%。

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