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Traffic guidance scheduling system based on particle swarm optimization algorithm and scheduling method thereof

A particle swarm optimization and traffic guidance technology, applied in the direction of road vehicle traffic control system, traffic control system, calculation, etc., can solve the problems of neglecting research and ignoring the travel needs of travelers in the road network, and achieves improved operation performance and high efficiency. Road network optimization results and the effect of improving accuracy

Active Publication Date: 2022-07-12
JIANGSU TOYOU RES INST OF INFORMATION INTELLIGENCE & TECH
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AI Technical Summary

Problems solved by technology

[0003] The traditional traffic guidance technology focuses on how to obtain the optimized traffic flow allocation plan, ignoring the research on how to effectively conduct traffic guidance and diversion for travelers, and there is a certain deviation between the calculation of travel time and the actual situation, while solving the model When , the travel needs of travelers in the road network are ignored, resulting in the optimal solution obtained by solving the model is not the optimal solution of the road network traffic management scheme

Method used

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  • Traffic guidance scheduling system based on particle swarm optimization algorithm and scheduling method thereof
  • Traffic guidance scheduling system based on particle swarm optimization algorithm and scheduling method thereof

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Embodiment

[0053] This embodiment utilizes the method of the present invention to realize the optimization of traffic guidance scheduling. The optimization process of the traffic guidance scheduling system and its scheduling method based on the particle swarm optimization algorithm is as follows:

[0054] The first step, initialization, set the number of iterations t=0, set the maximum number of iterations T, and randomly generate the initial population.

[0055] The second step is to set the phase, period and green-signal ratio scheme, and use the set decision variables to model the sum of travel time and delay time of the road segment.

[0056] The third step is to calculate the fitness value of each particle according to the objective function.

[0057] The fourth step is to find the best fitness value of the individual. For each particle, compare the fitness value of its current position with the fitness value corresponding to its historical best position pbest. If the fitness value...

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Abstract

The invention discloses a traffic guidance scheduling system based on a particle swarm optimization algorithm and a scheduling method thereof, and belongs to the field of traffic control. The system comprises a guidance strategy making module, a guidance information generating module and a guidance information issuing module; the guidance information making module is used for making a management strategy according to the change of the traffic flow state and sending the management strategy to the guidance information generation module; the induction information generation module is used for generating driving time, traffic jam, driving distance and other indicative or inductive traffic information according to an induction strategy and sending the information to the induction information release module; and the induction information issuing module is used for issuing induction information to travelers. According to the method, constraints such as the flow, the inflow rate and the green time ratio are combined, the minimum sum of the road network driving time and the delay time serves as a target function, optimization is conducted through the particle swarm optimization, balanced distribution of the road network traffic flow is achieved, and the operation performance of the road network is effectively improved.

Description

technical field [0001] The invention belongs to the field of traffic control, and in particular relates to a traffic guidance scheduling system based on a particle swarm optimization algorithm and a scheduling method thereof. Background technique [0002] With the rapid development of the city and the improvement of the quality of life, the problem of traffic congestion is becoming more and more serious. It is very important to improve the measures and methods of traffic guidance. The traffic guidance system optimizes the flow distribution of the entire road network at the macro level, while the urban traffic system is a complex whole, and it is necessary to optimize the management of the city from the macro and micro levels. Therefore, in order to improve the efficiency, adjusting the travel time of the intersection on the micro level makes the research more comprehensive. [0003] The traditional traffic guidance technology focuses on how to obtain an optimized traffic fl...

Claims

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Application Information

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Patent Type & Authority Applications(China)
IPC IPC(8): G08G1/0967G08G1/083G06N3/00
CPCG08G1/0967G08G1/083G06N3/006Y02T10/40
Inventor 杨静云林军
Owner JIANGSU TOYOU RES INST OF INFORMATION INTELLIGENCE & TECH
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