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A Comparison of the Psycholinguistic Styles of Schizophrenia -Related Stigma and Depression-Related Stigma on Social Media: Content Analysis
Li, Ang1,2; Jiao, Dongdong3; Liu, Xiaoqian2; Zhu, Tingshao2
第一作者Li, Ang
通讯作者邮箱tszhu@psych.ac.cn
心理所单位排序2
摘要

Background: Stigma related to schizophrenia is considered to be the primary focus of antistigma campaigns. Accurate and efficient detection of stigma toward schizophrenia in mass media is essential for the development of targeted antistigma interventions at the population level. Objective: The purpose of this study was to examine the psycholinguistic characteristics of schizophrenia-related stigma on social media (ie, Sina Weibo, a Chinese microblogging website), and then to explore whether schizophrenia-related stigma can be distinguished from stigma toward other mental illnesses (ie, depression-related stigma) in terms of psycholinguistic style. Methods: A total of 19,224 schizophrenia- and 15,879 depression-related Weibo posts were collected and analyzed. First, a human-based content analysis was performed on collected posts to determine whether they reflected stigma or not. Second, by using Linguistic Inquiry and Word Count software (Simplified Chinese version), a number of psycholinguistic features were automatically extracted from each post. Third, based on selected key features, four groups of classification models were established for different purposes: (a) differentiating schizophrenia-related stigma from nonstigma, (b) differentiating a certain subcategory of schizophrenia-related stigma from other subcategories, (c) differentiating schizophrenia-related stigma from depression-related stigma, and (d) differentiating a certain subcategory of schizophrenia-related stigma from the corresponding subcategory of depression-related stigma. Results: In total, 26.22% of schizophrenia-related posts were labeled as stigmatizing posts. The proportion of posts indicating depression-related stigma was significantly lower than that indicating schizophrenia-related stigma (chi(2) (1)=2484.64, /39.001). The classification performance of the models in the four groups ranged from .71 to .92 (F measure). Conclusions: The findings of this study have implications for the detection and reduction of stigma toward schizophrenia on social media.

关键词stigma schizophrenia depression psycholinguistic analysis social media
2020-04-21
DOI10.2196/16470
发表期刊JOURNAL OF MEDICAL INTERNET RESEARCH
ISSN1438-8871
卷号22期号:4页码:10
收录类别SCI
资助项目National Social Science Fund of China[16AZD058] ; National Natural Science Foundation of China[31700984]
出版者JMIR PUBLICATIONS, INC
WOS关键词MENTAL-ILLNESS ; ATTITUDES ; LITERACY ; NETWORK ; PEOPLE ; INTERVENTIONS ; DISORDERS ; ADHERENCE ; RESPONSES ; BELIEFS
WOS研究方向Health Care Sciences & Services ; Medical Informatics
WOS类目Health Care Sciences & Services ; Medical Informatics
WOS记录号WOS:000527106400001
WOS分区Q1
资助机构National Social Science Fund of China ; National Natural Science Foundation of China
引用统计
被引频次:30[WOS]   [WOS记录]     [WOS相关记录]
文献类型期刊论文
条目标识符https://ir.psych.ac.cn/handle/311026/31717
专题社会与工程心理学研究室
通讯作者Zhu, Tingshao
作者单位1.Beijing Forestry Univ, Dept Psychol, Beijing, Peoples R China
2.Chinese Acad Sci, Inst Psychol, 16 Lincui Rd, Beijing 100101, Peoples R China
3.Natl Comp Syst Engn Res Inst China, Beijing, Peoples R China
第一作者单位中国科学院心理研究所
通讯作者单位中国科学院心理研究所
推荐引用方式
GB/T 7714
Li, Ang,Jiao, Dongdong,Liu, Xiaoqian,et al. A Comparison of the Psycholinguistic Styles of Schizophrenia -Related Stigma and Depression-Related Stigma on Social Media: Content Analysis[J]. JOURNAL OF MEDICAL INTERNET RESEARCH,2020,22(4):10.
APA Li, Ang,Jiao, Dongdong,Liu, Xiaoqian,&Zhu, Tingshao.(2020).A Comparison of the Psycholinguistic Styles of Schizophrenia -Related Stigma and Depression-Related Stigma on Social Media: Content Analysis.JOURNAL OF MEDICAL INTERNET RESEARCH,22(4),10.
MLA Li, Ang,et al."A Comparison of the Psycholinguistic Styles of Schizophrenia -Related Stigma and Depression-Related Stigma on Social Media: Content Analysis".JOURNAL OF MEDICAL INTERNET RESEARCH 22.4(2020):10.
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