A new approach to process top-k spatial preference queries in a directed road network

M. Attique, Rizwan Qamar, Hyung-Ju Cho, Tae-Sun Chung
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引用次数: 4

Abstract

Top-k spatial preference query ranks objects based on the score of feature objects in their spatial neighborhood. Top-k preference queries are crucial for wide range of location based services such as hotel browsing and apartment searching; several algorithms have been proposed to process them in Euclidean space. Although, few algorithms study top-k preference queries in a road network, however, they all focus on undirected road network. To the best of our knowledge, this is the first attempt to investigate the problem of processing the top-k spatial preference queries in a directed road networks. Computation of data object score requires examining the scores of feature objects in its spatial neighborhood. This may raise the processing cost resulting in high query processing time. Therefore, in this paper we propose a new preference query search algorithm called PSA that can efficiently answer the top-k spatial preference queries in directed road network. Experimental study shows that our algorithm significantly reduces the query processing time compared to baseline solution for a wide range of problem settings.
一种处理有向路网top-k空间偏好查询的新方法
Top-k空间偏好查询基于特征对象在其空间邻域中的得分对对象进行排序。Top-k偏好查询对于酒店浏览和公寓搜索等广泛的基于位置的服务至关重要;在欧几里得空间中,已经提出了几种算法来处理它们。虽然很少有算法研究道路网络中的top-k偏好查询,但它们都集中在无向道路网络上。据我们所知,这是第一次尝试研究在有向道路网络中处理top-k空间偏好查询的问题。数据对象分数的计算需要考察其空间邻域内特征对象的分数。这可能会提高处理成本,导致较高的查询处理时间。因此,本文提出了一种新的偏好查询搜索算法PSA,该算法可以有效地回答有向路网中top-k的空间偏好查询。实验研究表明,与基线解决方案相比,我们的算法在广泛的问题设置下显着减少了查询处理时间。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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