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Comparing Emotional Valence Scores of Twitter Posts from Manual Coding and Machine Learning Algorithms to Gain Insights to Refine Interventions for Family Caregivers of Persons with Dementia

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Authors

Yoon, Sunmoo; Broadwell, Peter; Sun, Frederick F.; Jang, Sun Joo; Lee, Haeyoung

Issue Date
2022
Publisher
Studies in Health Technology and Informatics
Citation
Studies in Health Technology and Informatics, Vol.295, pp.253-256
Abstract
We randomly extracted Korean-language Tweets mentioning dementia/Alzheimer's disease (n= 12,413) from November 28 to December 9, 2020. We independently applied three machine learning algorithms (Afinn, Syuzhet, and Bing) using natural language processing (NLP) techniques and qualitative manual scoring to assign emotional valence scores to Tweets. We then compared the means and distributions of the four emotional valence scores. Visual examination of the graphs produced indicated that each method exhibited unique patterns. The aggregated mean emotional valence scores from the NLP methods were mostly neutral, vs. slightly negative for manual coding (Afinn 0.029, 95% CI [-0.019, 0.077]; Syuzhet 0.266, [0.236, 0.295]; Bing -0.271, [-0.289, -0.252]; manual coding -1.601, [-1.632, -1.569]). One-way analysis of variance (ANOVA) showed no statistically significant differences among the four means after normalization. These findings suggest that the application of NLP can be fairly effective in extracting emotional valence scores from Korean-language Twitter content to gain insights regarding family caregiving for a person with dementia.
ISSN
0926-9630
URI
https://hdl.handle.net/10371/200445
DOI
https://doi.org/10.3233/SHTI220710
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  • College of Nursing
  • Dept. of Nursing
Research Area Analytical Psychology, Workplace Bullying, 분석심리학, 정신간호중재, 직장내괴롭힘

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