Speeding Up Reachability Queries in Public Transport Networks Using Graph Partitioning.

Bezaye Tesfaye, Nikolaus Augsten, Mateusz Pawlik, Michael H Böhlen, Christian S Jensen
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引用次数: 2

Abstract

Computing path queries such as the shortest path in public transport networks is challenging because the path costs between nodes change over time. A reachability query from a node at a given start time on such a network retrieves all points of interest (POIs) that are reachable within a given cost budget. Reachability queries are essential building blocks in many applications, for example, group recommendations, ranking spatial queries, or geomarketing. We propose an efficient solution for reachability queries in public transport networks. Currently, there are two options to solve reachability queries. (1) Execute a modified version of Dijkstra's algorithm that supports time-dependent edge traversal costs; this solution is slow since it must expand edge by edge and does not use an index. (2) Issue a separate path query for each single POI, i.e., a single reachability query requires answering many path queries. None of these solutions scales to large networks with many POIs. We propose a novel and lightweight reachability index. The key idea is to partition the network into cells. Then, in contrast to other approaches, we expand the network cell by cell. Empirical evaluations on synthetic and real-world networks confirm the efficiency and the effectiveness of our index-based reachability query solution.

Abstract Image

Abstract Image

Abstract Image

基于图划分的公交网络可达性查询提速研究。
计算路径查询(如公共交通网络中的最短路径)是具有挑战性的,因为节点之间的路径成本随时间而变化。在这样的网络上,在给定的开始时间从节点发出的可达性查询将检索在给定成本预算范围内可到达的所有兴趣点(poi)。可达性查询是许多应用程序中必不可少的组成部分,例如,组推荐、排名空间查询或地理营销。我们提出了一种有效的公共交通网络可达性查询的解决方案。目前,有两个选项可以解决可达性查询。(1)执行Dijkstra算法的修改版本,该算法支持与时间相关的边遍历代价;这个解决方案很慢,因为它必须逐边扩展,而且不使用索引。(2)为每个POI发出单独的路径查询,即单个可达性查询需要回答多个路径查询。这些解决方案都不能扩展到具有许多poi的大型网络。我们提出了一种新的轻量级可达性指标。关键思想是将网络划分为单元。然后,与其他方法不同,我们逐单元扩展网络。在综合网络和现实网络上的经验评估证实了我们基于索引的可达性查询方案的效率和有效性。
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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