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IR-Tree: An Efficient Index for Geographic Document Search

机译:IR树:地理文档搜索的有效索引

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摘要

Given a geographic query that is composed of query keywords and a location, a geographic search engine retrieves documents that are the most textually and spatially relevant to the query keywords and the location, respectively, and ranks the retrieved documents according to their joint textual and spatial relevances to the query. The lack of an efficient index that can simultaneously handle both the textual and spatial aspects of the documents makes existing geographic search engines inefficient in answering geographic queries. In this paper, we propose an efficient index, called IR-tree, that together with a top-k document search algorithm facilitates four major tasks in document searches, namely, 1) spatial filtering, 2) textual filtering, 3) relevance computation, and 4) document ranking in a fully integrated manner. In addition, IR-tree allows searches to adopt different weights on textual and spatial relevance of documents at the runtime and thus caters for a wide variety of applications. A set of comprehensive experiments over a wide range of scenarios has been conducted and the experiment results demonstrate that IR-tree outperforms the state-of-the-art approaches for geographic document searches.
机译:给定由查询关键字和位置组成的地理查询,地理搜索引擎将分别检索与查询关键字和位置在文本和空间上最相关的文档,并根据它们的联合文本和空间对检索到的文档进行排名与查询的相关性。缺乏可以同时处理文档的文本和空间方面的有效索引,使得现有的地理搜索引擎无法有效地回答地理查询。在本文中,我们提出了一个有效的索引,称为IR树,该索引与top-k文档搜索算法一起可促进文档搜索中的四个主要任务,即1)空间过滤,2)文本过滤,3)相关性计算, 4)以完全整合的方式对文件进行排名。此外,IR树允许搜索在运行时对文档的文本和空间相关性采用不同的权重,从而可以满足各种应用程序的需要。已经进行了一系列针对各种情况的综合实验,实验结果表明,IR树优于最新的地理文档搜索方法。

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