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1
Psychiatry on Twitter: Content Analysis of the Use of Psychiatric Terms in French
In: ISSN: 2561-326X ; JMIR Formative Research ; https://hal.archives-ouvertes.fr/hal-03614832 ; JMIR Formative Research, JMIR Publications 2022, 6 (2), pp.e18539. ⟨10.2196/18539⟩ ; https://formative.jmir.org/2022/2/e18539 (2022)
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2
« “Twitta” “Intellectuelle” “Influenceuse” ? Être enseignante-chercheuse sur twitter »
In: ISSN: 1763-0061 ; EISSN: 1963-1812 ; Tracés : Revue de Sciences Humaines ; https://hal.archives-ouvertes.fr/hal-03592945 ; Tracés : Revue de Sciences Humaines, ENS Éditions, A paraître (2022)
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3
Renouvellement paradigmatique dans l’analyse des discours numériques : le cas de la communication politique sur les RSN
In: ISSN: 2116-1747 ; Etudes de stylistique anglaise ; https://hal-amu.archives-ouvertes.fr/hal-03584927 ; Etudes de stylistique anglaise, Société de stylistique anglaise, Lyon, 2022, Renaissance(s)/Rebirth(s), ⟨10.4000/esa.4816⟩ ; https://journals.openedition.org/esa/4816 (2022)
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4
Chapter 11. Consumer opinion about smoked bacon using Twitter and textual analysis: The challenge continues
In: Sensory Analysis for the Development of Meat Products ; https://hal-agrosup-dijon.archives-ouvertes.fr/hal-03575175 ; Sensory Analysis for the Development of Meat Products, Elsevier, pp.181-196, 2022, 9780128228326. ⟨10.1016/B978-0-12-822832-6.00013-8⟩ (2022)
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5
#Bittersweet: Positive, negative, and mixed emotions in twitter posts ...
Langbehn, Andrew. - : Open Science Framework, 2022
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6
A Multilingual Dataset of COVID-19 Vaccination Attitudes on Twitter ...
Ninghan; Xihui; Zhiqiang. - : Zenodo, 2022
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7
A Multilingual Dataset of COVID-19 Vaccination Attitudes on Twitter ...
Ninghan; Xihui; Zhiqiang. - : Zenodo, 2022
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8
Source Code for Youtube dataset processing ...
TURENNE, Nicolas. - : Zenodo, 2022
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9
Source Code for Youtube dataset processing ...
TURENNE, Nicolas. - : Zenodo, 2022
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10
MULDASA: Multifactor Lexical Sentiment Analysis of Social-Media Content in Nonstandard Arabic Social Media
In: Applied Sciences; Volume 12; Issue 8; Pages: 3806 (2022)
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11
Extracting Disaster-Related Location Information through Social Media to Assist Remote Sensing for Disaster Analysis: The Case of the Flood Disaster in the Yangtze River Basin in China in 2020
In: Remote Sensing; Volume 14; Issue 5; Pages: 1199 (2022)
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12
Analysis of the Full-Size Russian Corpus of Internet Drug Reviews with Complex NER Labeling Using Deep Learning Neural Networks and Language Models
In: Applied Sciences; Volume 12; Issue 1; Pages: 491 (2022)
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13
Social Media and the Pandemic: Consumption Habits of the Spanish Population before and during the COVID-19 Lockdown
In: Sustainability; Volume 14; Issue 9; Pages: 5490 (2022)
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14
Climate Change Sentiment Analysis Using Lexicon, Machine Learning and Hybrid Approaches
In: Sustainability; Volume 14; Issue 8; Pages: 4723 (2022)
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15
Artificial Intelligent in Education
In: Sustainability; Volume 14; Issue 5; Pages: 2862 (2022)
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16
eHealth Engagement on Facebook during COVID-19: Simplistic Computational Data Analysis
In: International Journal of Environmental Research and Public Health; Volume 19; Issue 8; Pages: 4615 (2022)
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17
How Do Chinese People View Cyberbullying? A Text Analysis Based on Social Media
In: International Journal of Environmental Research and Public Health; Volume 19; Issue 3; Pages: 1822 (2022)
Abstract: The rise of cyberbullying has been of great concern for the general public. This study aims to explore public attitudes towards cyberbullying on Chinese social media. Cognition and emotion are important components of attitude, and this study innovatively used text analysis to extract the cognition and emotion of the posts. We used a web crawler to collect 53,526 posts related to cyberbullying in Chinese on Sina Weibo in a month, where emotions were detected using the software “Text Mind”, a Chinese linguistic psychological text analysis system, and the content analysis was performed using the Latent Dirichlet Allocation topic model. Sentiment analysis showed the frequency of negative emotion words was the highest in the posts; the frequency of anger, anxiety, and sadness words decreased in turn. The topic model analysis identified three common topics about cyberbullying: critiques on cyberbullying and support for its victims, rational expressions of anger and celebrity worship, and calls for further control. In summary, this study quantitatively reveals the negative attitudes of the Chinese public toward cyberbullying and conveys specific public concerns via three common topics. This will help us to better understand the demands of the Chinese public so that targeted support can be proposed to curb cyberbullying.
Keyword: attitude; cyberbullying; sentiment analysis; social media; text analysis; topic model
URL: https://doi.org/10.3390/ijerph19031822
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18
Knowledge Discovery from Large Amounts of Social Media Data
In: Applied Sciences; Volume 12; Issue 3; Pages: 1209 (2022)
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19
Detecting Depression Signs on Social Media: A Systematic Literature Review
In: Healthcare; Volume 10; Issue 2; Pages: 291 (2022)
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20
A Novel Method of Generating Geospatial Intelligence from Social Media Posts of Political Leaders
In: Information; Volume 13; Issue 3; Pages: 120 (2022)
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