{"id":160388,"date":"2010-12-01T00:00:00","date_gmt":"2010-12-01T00:00:00","guid":{"rendered":"https:\/\/www.microsoft.com\/en-us\/research\/msr-research-item\/vuvuzelas-active-learning-for-online-classification\/"},"modified":"2018-10-16T20:16:45","modified_gmt":"2018-10-17T03:16:45","slug":"vuvuzelas-active-learning-for-online-classification","status":"publish","type":"msr-research-item","link":"https:\/\/www.microsoft.com\/en-us\/research\/publication\/vuvuzelas-active-learning-for-online-classification\/","title":{"rendered":"Vuvuzelas & Active Learning for Online Classification"},"content":{"rendered":"\n\n\n<p class=\"wp-block-paragraph\">Many online service systems leverage user-generated content from Web 2.0 style platforms such asWikipedia, Twitter, Facebook, and many more. Often, the value lies in the freshness of this information (e.g. tweets, event-based articles, blog posts, etc.). This freshness poses a challenge for supervised learning models as they frequently have to deal with previously unseen features. In this paper we address the problem of online classification for tweets, namely, how can a classifier be updated in an online manner, so that it can correctly classify the latest \u201chype\u201d on Twitter? We propose a two-step strategy to solve this problem. The first step follows an active learning strategy that enables the selection of tweets for which a label would be most useful; the selected tweet is then forwarded to Amazon Mechanical Turk where it is labeled by multiple users. The second step builds on a Bayesian corroboration model that aggregates the noisy labels provided by the users by taking their reliabilities into account.<\/p>\n","protected":false},"excerpt":{"rendered":"<p>Many online service systems leverage user-generated content from Web 2.0 style platforms such asWikipedia, Twitter, Facebook, and many more. Often, the value lies in the freshness of this information (e.g. tweets, event-based articles, blog posts, etc.). This freshness poses a challenge for supervised learning models as they frequently have to deal with previously unseen features. 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