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Online Search Scope Reconstruction by Connectivity Inference

机译:通过连接推理重建在线搜索范围

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To cope with the continuing growth of the web, improvements should be made to the current brute-force techniques commonly used by robot-driven search engines. We propose a model that strikes a balance between robot and directorybased search engines by expanding the search scope of conventional directories to automatically include related categories. Our model makes use of a knowledge-rich and wellstructured corpus to infer relationships between documents and topic categories. We show that the hyperlink structure of Wikipedia articles can be effectively exploited to identify relations among topic categories. Our experiments show the average recall rate and precision rate achieved are 91% and between 85% and 215% of Google's respectively.
机译:为了应对网络的持续增长,应该对机器人驱动的搜索引擎通常使用的当前蛮力技术进行改进。我们提出了一种模型,该模型通过扩展常规目录的搜索范围以自动包含相关类别来在机器人搜索和基于目录的搜索引擎之间取得平衡。我们的模型利用知识丰富且结构合理的语料库来推断文档和主题类别之间的关系。我们表明,可以有效地利用Wikipedia文章的超链接结构来识别主题类别之间的关系。我们的实验表明,平均召回率和准确率分别为Google的91%和85%至215%。

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