Title :
On acceleration of traffic flow
Author :
Luspay, T. ; Kulcsár, B. ; Varga, I. ; Zegeye, S.K. ; Schutter, B. De ; Verhaegen, M.
Author_Institution :
Syst. & Control Lab., Hungarian Acad. of Sci., Budapest, Hungary
Abstract :
The paper contributes to the derivation and analysis of accelerations in freeway traffic flow models. First, a solution based on fluid dynamics and on pure mathematical manipulations is given to express accelerations. The continuous-time acceleration is then approximated by a discrete-time equivalent. By applying continues time microscopic and macroscopic traffic flow velocity definitions, spatial and material derivatives are used to describe the continuous-time and exact changes in the velocity vector field. A forward-difference Euler method is proposed to discretized the acceleration both in time and space. For applicability purposes the use of average quantities is proposed. The finite-difference approximation by space-mean speed is shown to be consistent, and its solution is convergent to the original continuous-time form. As an alternative, the acceleration obtained from a second-order macroscopic freeway model by means of physical interpretation [1] is analyzed and found to be an appropriate discrete approximations. Comparative remarks as well as future research questions conclude the paper.
Keywords :
acceleration control; approximation theory; continuous time systems; discrete time systems; finite difference methods; road traffic; Euler method; continuous time systems; discrete-time equivalent; express accelerations; fluid dynamics; freeway traffic flow models; macroscopic traffic flow velocity definitions; material derivatives; mathematical manipulations; spatial derivatives; traffic flow acceleration; velocity vector field; Acceleration;
Conference_Titel :
Intelligent Transportation Systems (ITSC), 2010 13th International IEEE Conference on
Conference_Location :
Funchal
Print_ISBN :
978-1-4244-7657-2
DOI :
10.1109/ITSC.2010.5625204