Affiliation:
1. State Key Laboratory of Automobile Simulation and Control, School of Traffic, Jilin University, Changchun 130025, China
2. School of Traffic, Jilin University, Changchun 130025, China
Abstract
Combined with improved Pallottino parallel algorithm, this paper proposes a large-scale route search method, which considers travelers’ route choice preferences. And urban road network is decomposed into multilayers effectively. Utilizing generalized travel time as road impedance function, the method builds a new multilayer and multitasking road network data storage structure with object-oriented class definition. Then, the proposed path search algorithm is verified by using the real road network of Guangzhou city as an example. By the sensitive experiments, we make a comparative analysis of the proposed path search method with the current advanced optimal path algorithms. The results demonstrate that the proposed method can increase the road network search efficiency by more than 16% under different search proportion requests, node numbers, and computing process numbers, respectively. Therefore, this method is a great breakthrough in the guidance field of urban road network.
Funder
National High Technology Research and Development Program of China
Subject
General Engineering,General Mathematics
Cited by
7 articles.
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