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从 Twitter 数据评估的州级种族态度与不良生育结局之间的关联:观察性研究。

The Association Between State-Level Racial Attitudes Assessed From Twitter Data and Adverse Birth Outcomes: Observational Study.

机构信息

Department of Family and Community Medicine, University of California, San Francisco, San Francisco, CA, United States.

Applied Research Laboratory for Intelligence and Security, University of Maryland, College Park, MD, United States.

出版信息

JMIR Public Health Surveill. 2020 Jul 6;6(3):e17103. doi: 10.2196/17103.

Abstract

BACKGROUND

In the United States, racial disparities in birth outcomes persist and have been widening. Interpersonal and structural racism are leading explanations for the continuing racial disparities in birth outcomes, but research to confirm the role of racism and evaluate trends in the impact of racism on health outcomes has been hampered by the challenge of measuring racism. Most research on discrimination relies on self-reported experiences of discrimination, and few studies have examined racial attitudes and bias at the US national level.

OBJECTIVE

This study aimed to investigate the associations between state-level Twitter-derived sentiments related to racial or ethnic minorities and birth outcomes.

METHODS

We utilized Twitter's Streaming application programming interface to collect 26,027,740 tweets from June 2015 to December 2017, containing at least one race-related term. Sentiment analysis was performed using support vector machine, a supervised machine learning model. We constructed overall indicators of sentiment toward minorities and sentiment toward race-specific groups. For each year, state-level Twitter-derived sentiment data were merged with birth data for that year. The study participants were women who had singleton births with no congenital abnormalities from 2015 to 2017 and for whom data were available on gestational age (n=9,988,030) or birth weight (n=9,985,402). The main outcomes were low birth weight (birth weight ≤2499 g) and preterm birth (gestational age <37 weeks). We estimated the incidence ratios controlling for individual-level maternal characteristics (sociodemographics, prenatal care, and health behaviors) and state-level demographics, using log binomial regression models.

RESULTS

The accuracy for identifying negative sentiments on comparing the machine learning model to manually labeled tweets was 91%. Mothers living in states in the highest tertile for negative sentiment tweets referencing racial or ethnic minorities had greater incidences of low birth weight (8% greater, 95% CI 4%-13%) and preterm birth (8% greater, 95% CI 0%-14%) compared with mothers living in states in the lowest tertile. More negative tweets referencing minorities were associated with adverse birth outcomes in the total population, including non-Hispanic white people and racial or ethnic minorities. In stratified subgroup analyses, more negative tweets referencing specific racial or ethnic minority groups (black people, Middle Eastern people, and Muslims) were associated with poor birth outcomes for black people and minorities.

CONCLUSIONS

A negative social context related to race was associated with poor birth outcomes for racial or ethnic minorities, as well as non-Hispanic white people.

摘要

背景

在美国,出生结果方面的种族差异持续存在且不断扩大。人际和结构性种族主义是导致出生结果方面持续存在种族差异的主要原因,但由于种族主义的衡量存在挑战,确认种族主义的作用和评估其对健康结果影响的趋势的研究受到了阻碍。大多数关于歧视的研究都依赖于自我报告的歧视经历,很少有研究在美国国家层面上考察种族态度和偏见。

目的

本研究旨在探讨与种族或少数民族相关的州级 Twitter 衍生情绪与出生结果之间的关联。

方法

我们利用 Twitter 的 Streaming 应用程序编程接口,从 2015 年 6 月至 2017 年 12 月收集了 26027740 条推文,其中包含至少一个与种族相关的术语。使用支持向量机(一种有监督的机器学习模型)进行情绪分析。我们构建了针对少数群体和针对特定种族群体的整体情绪指标。对于每一年,都将州级 Twitter 衍生的情绪数据与当年的出生数据合并。研究参与者为 2015 年至 2017 年间无先天性异常的单胎出生且可获得胎龄(n=9988030)或出生体重(n=9985402)数据的女性。主要结局为低出生体重(出生体重≤2499g)和早产(胎龄<37 周)。我们使用对数二项回归模型,在控制个体水平的产妇特征(社会人口统计学、产前保健和健康行为)和州级人口统计学的情况下,估计了发病率比值。

结果

与手动标记的推文相比,机器对识别负面情绪的准确率为 91%。与生活在负面情绪推文引用少数族裔的州中最低三分位的母亲相比,生活在负面情绪推文引用少数族裔的州中最高三分位的母亲的低出生体重发生率更高(高 8%,95%CI 4%-13%),早产发生率更高(高 8%,95%CI 0%-14%)。与非西班牙裔白人及少数族裔相比,更多指向少数族裔的负面推文与不良出生结局相关,这是总人口中的情况。在分层亚组分析中,更多指向特定种族或族裔少数群体(黑人、中东人和穆斯林)的负面推文与黑人及少数民族的不良出生结局相关。

结论

与种族相关的负面社会背景与非西班牙裔白人及少数族裔的不良出生结局有关。

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