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A Personalised Reader for Crowd Curated Content

机译:个人化读者,用于人群策划内容

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摘要

Personalised news recommender systems traditionally rely on content ingested from a select set of publishers and ask users to indicate their interests from a predefined list of top- ics. They then provide users a feed of news items for each of their topics. In this demo, we present a mobile app that automatically learns users’ interests from their browsing or twitter history and provides them with a personalised feed of diverse, crowd curated content. The app also continuously learns from the users’ interactions as they swipe to like or skip items recommended to them. In addition, users can discover trending stories and content liked by other users they follow. The crowd is thus formed of the users, who as a whole act as the curators of the content to be recommended.
机译:传统上,个性化的新闻推荐系统依赖于从选择的发布商集中摄取的内容,并要求用户从预定义的顶部列表中表明他们的兴趣。然后,他们为用户提供了每个主题的新闻项目的馈送。在此演示中,我们展示了一个移动应用程序,该应用程序自动从浏览或推特历史记录中自动了解用户的兴趣,并为它们提供各种各样的人群策划内容的个性化饲料。该应用程序还不断从用户的交互中学习,因为它们向上滑动或跳过推荐的项目。此外,用户可以发现他们关注的其他用户喜欢的趋势故事和内容。因此,人群由用户组成,作为要推荐的内容的策展人作为整个充当的用户。

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