Efficient Stochastic Routing in Path-Centric Uncertain Road Networks -- Extended Version
Chenjuan Guo, Ronghui Xu, Bin Yang, Ye Yuan, Tung Kieu, Yan Zhao and, Christian S. Jensen

TL;DR
This paper introduces an efficient path-centric stochastic routing algorithm that accounts for dependencies in travel costs, improving routing quality and computational efficiency in uncertain road networks.
Contribution
It proposes heuristics for estimating path costs to the destination and a virtual path concept to enable stochastic dominance pruning in the path-centric model.
Findings
The proposed heuristics significantly reduce the number of paths explored.
Virtual path concept allows stochastic dominance pruning despite dependencies.
Empirical results show improved routing efficiency in real-world datasets.
Abstract
The availability of massive vehicle trajectory data enables the modeling of road-network constrained movement as travel-cost distributions rather than just single-valued costs, thereby capturing the inherent uncertainty of movement and enabling improved routing quality. Thus, stochastic routing has been studied extensively in the edge-centric model, where such costs are assigned to the edges in a graph representation of a road network. However, as this model still disregards important information in trajectories and fails to capture dependencies among cost distributions, a path-centric model, where costs are assigned to paths, has been proposed that captures dependencies better and provides an improved foundation for routing. Unfortunately, when applied in this model, existing routing algorithms are inefficient due to two shortcomings that we eliminate. First, when exploring candidate…
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Taxonomy
TopicsData Management and Algorithms · Automated Road and Building Extraction
