论文标题

Genderednews:Une grainche ComputationNelleledesécartsde Reprunsentation des des des des des des la pressefrançaise

GenderedNews: Une approche computationnelle des écarts de représentation des genres dans la presse française

论文作者

Richard, Ange, Bastin, Gilles, Portet, François

论文摘要

在本文中,我们介绍{\ it GenderedNews}(\ url {https://gendered-news.imag.fr}),这是一个在线仪表板,每周在法国在线出版社中提供性别不平衡的措施。我们使用自然语言处理(NLP)方法来量化媒体中的性别不平等,如全球媒体监测项目(例如全球项目)。这样的项目在强调媒体中的性别失衡以及其非常缓慢的发展方面发挥了作用。但是,它们的概括受到他们的抽样和成本,数据和人员的成本的限制。自动化使我们能够提供互补的措施来量化性别代表性的不平等现象。我们将代表性理解为新闻中提到和引用的男人和女性的存在和分布 - 而不是代表刻板印象。在本文中,我们首先回顾了先前关于媒体性别不平等的研究所采用的不同手段:定性内容分析,定量内容分析和计算方法。然后,我们详细介绍{\ it gendewnews}所采用的方法以及实施的两个指标:在线新闻中引用的男性化率和男性的比例。我们描述了每天收集的数据(法国在线新闻媒体的七个主要标题)以及我们的指标背后的方法以及一些可视化。我们最终建议通过对数据库的两个月样本进行深入观察来说明我们数据的可能分析。

In this article, we present {\it GenderedNews} (\url{https://gendered-news.imag.fr}), an online dashboard which gives weekly measures of gender imbalance in French online press. We use Natural Language Processing (NLP) methods to quantify gender inequalities in the media, in the wake of global projects like the Global Media Monitoring Project. Such projects are instrumental in highlighting gender imbalance in the media and its very slow evolution. However, their generalisation is limited by their sampling and cost in terms of time, data and staff. Automation allows us to offer complementary measures to quantify inequalities in gender representation. We understand representation as the presence and distribution of men and women mentioned and quoted in the news -- as opposed to representation as stereotypification. In this paper, we first review different means adopted by previous studies on gender inequality in the media : qualitative content analysis, quantitative content analysis and computational methods. We then detail the methods adopted by {\it GenderedNews} and the two metrics implemented: the masculinity rate of mentions and the proportion of men quoted in online news. We describe the data collected daily (seven main titles of French online news media) and the methodology behind our metrics, as well as a few visualisations. We finally propose to illustrate possible analysis of our data by conducting an in-depth observation of a sample of two months of our database.

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