DocumentCode :
78154
Title :
Optimal Hybrid Perimeter and Switching Plans Control for Urban Traffic Networks
Author :
Hajiahmadi, Mohammad ; Haddad, Jack ; De Schutter, Bart ; Geroliminis, Nikolas
Author_Institution :
Delft Center for Syst. & Control, Delft Univ. of Technol., Delft, Netherlands
Volume :
23
Issue :
2
fYear :
2015
fDate :
Mar-15
Firstpage :
464
Lastpage :
478
Abstract :
Since centralized control of urban networks with detailed modeling approaches is computationally complex, developing efficient hierarchical control strategies based on aggregate modeling is of great importance. The dynamics of a heterogeneous large-scale urban network is modeled as R homogeneous regions with the macroscopic fundamental diagrams (MFDs) representation. The MFD provides for homogeneous network regions a unimodal, low-scatter relationship between network vehicle density and network space-mean flow. In this paper, the optimal hybrid control problem for an R-region MFD network is formulated as a mixed-integer nonlinear optimization problem, where two types of controllers are introduced: 1) perimeter controllers and 2) switching signal timing plans controllers. The perimeter controllers are located on the border between the regions, as they manipulate the transfer flows between them, while the switching controllers influence the dynamics of the urban regions, as they define the shape of the MFDs and as a result affect the internal flows within each region. Moreover, to decrease the computational complexity due to the nonlinear and nonconvex nature of the optimization problem, we reformulate the problem as a mixed-integer linear programming (MILP) problem utilizing piecewise affine approximation techniques. Two different approaches for transformation of the original model and building up MILP problems are presented, and the performances of the approximated methods along with the original problem formulation are evaluated and compared for different traffic scenarios of a two-region urban case study.
Keywords :
approximation theory; hierarchical systems; integer programming; nonlinear programming; optimal control; road traffic control; MFD representation; MILP; aggregate modeling; centralized control; computational complexity; heterogeneous large-scale urban network; hierarchical control strategy; hybrid perimeter control; macroscopic fundamental diagram; mixed-integer nonlinear optimization; network space-mean flow; network vehicle density; optimal hybrid control; perimeter controller; piecewise affine approximation technique; switching controller; switching plans control; urban traffic networks; Approximation methods; Computational modeling; Mathematical model; Optimization; Switches; Timing; Hybrid systems; macroscopic fundamental diagram (MFD); model predictive control (MPC); perimeter control; switching timing plans; urban traffic control; urban traffic control.;
fLanguage :
English
Journal_Title :
Control Systems Technology, IEEE Transactions on
Publisher :
ieee
ISSN :
1063-6536
Type :
jour
DOI :
10.1109/TCST.2014.2330997
Filename :
6847695
Link To Document :
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