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Top-k Retrieval Using Facility Location Analysis

机译:使用设施位置分析进行Top-k检索

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The top-k retrieval problem aims to find the optimal set of k documents from a number of relevant documents given the user's query. The key issue is to balance the relevance and diversity of the top-k search results. In this paper, we address this problem using Facility Location Analysis taken from Operations Research, where the locations of facilities are optimally chosen according to some criteria. We show how this analysis technique is a generalization of state-of-the-art retrieval models for diversification (such as the Modern Portfolio Theory for Information Retrieval), which treat the top-k search results like "obnoxious facilities" that should be dispersed as far as possible from each other. However, Facility Location Analysis suggests that the top-k search results could be treated like "desirable facilities" to be placed as close as possible to their customers. This leads to a new top-k retrieval model where the best representatives of the relevant documents are selected. In a series of experiments conducted on two TREC diversity collections, we show that significant improvements can be made over the current state-of-the-art through this alternative treatment of the top-A; retrieval problem.
机译:前k个检索问题旨在根据用户的查询从多个相关文档中找到k个文档的最佳集合。关键问题是要平衡前k个搜索结果的相关性和多样性。在本文中,我们使用运筹学中的设施位置分析解决了这个问题,该设施根据某些标准对设施的位置进行了最佳选择。我们将展示这种分析技术是如何将多样化的最新检索模型(例如信息检索的现代投资组合理论)进行概括,该模型将应分散处理的前k个搜索结果(例如“令人讨厌的设施”)尽可能地彼此分开。但是,“设施位置分析”建议将前k个搜索结果视为“理想的设施”,并尽可能靠近其客户。这导致了一个新的top-k检索模型,其中选择了相关文档的最佳代表。在两个TREC多样性集合上进行的一系列实验中,我们表明,通过对top-A的这种替代处理,可以对当前的最新技术进行重大改进。检索问题。

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