Characteristics of Vehicular Traffic Flow at a Roundabout
arXiv:cond-mat/0309560 · doi:10.1103/PhysRevE.70.046132
Abstract
We construct a stochastic cellular automata model for the description of vehicular traffic at a roundabout designed at the intersection of two perpendicular streets. The vehicular traffic is controlled by a self-organized scheme in which traffic lights are absent. This controlling method incorporates a yield-at-entry strategy for the approaching vehicles to the circulating traffic flow in the roundabout. Vehicular dynamics is simulated within the framework of the probabilistic cellular automata and the delay experienced by the traffic at each individual street is evaluated for specified time intervals. We discuss the impact of the geometrical properties of the roundabout on the total delay. We compare our results with traffic-light signalisation schemes, and obtain the critical traffic volume over which the intersection is optimally controlled through traffic light signalisation schemes.
10 pages, 17 eps figures. arXiv admin note: text overlap with arXiv:cond-mat/0401078
References in corpus (5)
- Traffic and Related Self-Driven Many-Particle Systems
- Cellular automata approach to three-phase traffic theory
- Towards a realistic microscopic description of highway traffic
- Long-lived states in synchronized traffic flow. Empirical prompt and dynamical trap model
- Optimised Traffic Flow at a Single Intersection: Traffic Responsive signalisation
Cited by in corpus (9)
- Self-Organizing Traffic Lights
- Vehicular traffic flow at a non-signalised intersection
- Asymmetric simple exclusion process describing conflicting traffic flows
- Vehicular traffic flow at an intersection with the possibility of turning
- Totally asymmetric simple exclusion process with a time-dependent boundary: interaction between vehicles and pedestrians at intersections
- A roundabout model with on-ramp queues: exact results and scaling approximations
- Self-Organization in Traffic Lights: Evolution of Signal Control with Advances in Sensors and Communications
- Traffic models and traffic-jam transition in quantum (+1)-level systems
- Velocity control for improving flow through a bottleneck