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http://dx.doi.org/10.5391/IJFIS.2003.3.1.105

Optimal Traffic Information using Fuzzy Neural Network  

Hong, You-Sik (Department of Computer Science Sangji University)
Lee, Choul--Ki (Department of Traffic Improvement Planning, Police Agency)
Publication Information
International Journal of Fuzzy Logic and Intelligent Systems / v.3, no.1, 2003 , pp. 105-111 More about this Journal
Abstract
This paper is researching the storing of 40 different kinds of conditions. Such as, car speed, delay in starting time and the volume of cars in traffic. Through the use of a central nervous networking system or AI, using 10 different intersecting roads. We will improve the green traffic light. And allow more cars to easily flow through the intersections. Now days, with increasing many vehicles on restricted roads, the conventional traffic light creates prove startup-delay time and end-lag-time. The conventional traffic light loses the function of optimal cycle. And so, 30-45% of conventional traffic cycle is not matched to the present traffic cycle. In this paper proposes electro sensitive traffic light using fuzzy look up table method which will reduce the average vehicle waiting time and improve average vehicle speed. Computer simulation results prove that reducing the average vehicle waiting time which proposed considering passing vehicle length for optimal traffic cycle is better than fixed signal method which dosen't consider vehicle length.
Keywords
Vehicle waiting time; Fuzzy lookup table hardware; Optimal green time;
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