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Matching and Ranking with Hidden Topics towards Online Contextual Advertising

机译:与隐藏主题相匹配和排名在线上下文广告

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In online contextual advertising, ad messages are displayed related to the content of the target Web page. It leads to the problem in information retrieval community: how to select the most relevant ad messages given the content of a page. To deal with this problem, we propose a framework that takes advantage of large scale external datasets. This framework provides a mechanism to discover the semantic relations between Web pages and ad messages by analyzing topics for them. This helps overcome the problem of mismatch due to unimportant words and the difference in vocabularies between Web pages and ad messages. The framework has been evaluated through a number of experiments. It shows a significant improvement in accuracy over word/lexicon-based matching and ranking methods.
机译:在在线上下文广告中,显示与目标网页的内容有关的广告消息。它导致信息检索社区中的问题:如何为页面内容选择最相关的广告消息。要处理此问题,我们提出了一个框架,该框架利用了大规模的外部数据集。该框架通过分析它们的主题来提供一种机制来发现网页和广告消息之间的语义关系。这有助于克服由于不重要的单词和网页和广告消息之间的词汇表的差异而导致的错配问题。框架已通过许多实验进行了评估。它显示了基于单词/词汇的匹配和排序方法的准确性的显着改善。

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