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Experimental Measures of News Personalization in Google News

机译:谷歌新闻中新闻个性化的实验措施

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Search engines and social media keep trace of profile- and behavioral-based distinct signals of their users, to provide them personalized and recommended content. Here, we focus on the level of web search personalization, to estimate the risk of trapping the user into so called Filter Bubbles. Our experimentation has been carried out on news, specifically investigating the Google News platform. Our results are in line with existing literature and call for further analyses on which kind of users are the target of specific recommendations by Google.
机译:搜索引擎和社交媒体保持轨迹跟踪其用户的简介和行为的不同信号,为它们提供个性化和推荐的内容。在这里,我们专注于网络搜索个性化的水平,估计将用户捕获到所谓的过滤泡泡中的风险。我们的实验已经开展了新闻,专门调查谷歌新闻平台。我们的结果符合现有文献,并呼吁进一步分析,其中哪种用户是Google的具体建议的目标。

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