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An Axiomatic Approach for Result Diversification

机译:公理化结果多元化

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Understanding user intent is key to designing an effective ranking system in a search engine. In the absence of any explicit knowledge of user intent, search engines want to diversify results to improve user satisfaction. In such a setting, the probability ranking principle-based approach of presenting the most relevant results on top can be sub-optimal, and hence the search engine would like to trade-off relevance for diversity in the results.In analogy to prior work on ranking and clustering systems, we use the axiomatic approach to characterize and design diversification systems. We develop a set of natural axioms that a diversification system is expected to satisfy, and show that no diversification function can satisfy all the axioms simultaneously. We illustrate the use of the axiomatic framework by providing three example diversification objectives that satisfy different subsets of the axioms. We also uncover a rich link to the facility dispersion problem that results in algorithms for a number of diversification objectives. Finally, we propose an evaluation methodology to characterize the objectives and the underlying axioms. We conduct a large scale evaluation of our objectives based on two data sets: a data set derived from the Wikipedia disambiguation pages and a product database.
机译:了解用户意图是在搜索引擎中设计有效排名系统的关键。在没有任何明确的用户意图知识的情况下,搜索引擎希望使结果多样化,以提高用户满意度。在这种情况下,在顶部显示最相关结果的基于概率排序原理的方法可能不是最佳的,因此搜索引擎希望权衡相关性以获取结果的多样性。 与先前有关排名和聚类系统的工作类似,我们使用公理方法来表征和设计多元化系统。我们开发了一套期望多样化系统可以满足的自然公理,并证明没有多样化的功能可以同时满足所有公理。通过提供满足公理的不同子集的三个示例多样化目标,我们说明了公理框架的使用。我们还发现了与设施分散问题的紧密链接,该问题导致了针对多种多样化目标的算法。最后,我们提出一种评估方法,以表征目标和基本公理。我们基于两个数据集对我们的目标进行大规模评估:一个来自Wikipedia歧义消除页面的数据集和一个产品数据库。

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