• DocumentCode
    1763061
  • Title

    Optimal Feedback Flow Rates for Pedestrian Evacuation in a Network of Corridors

  • Author

    Shende, A. ; Singh, Mrigendra Pratap ; Kachroo, Pushkin

  • Author_Institution
    Dept. of Eng. Sci. & Mech., Virginia Tech, Blacksburg, VA, USA
  • Volume
    14
  • Issue
    3
  • fYear
    2013
  • fDate
    Sept. 2013
  • Firstpage
    1053
  • Lastpage
    1066
  • Abstract
    This paper presents a methodology for the computation of optimal feedback flow rates (flow velocities and flow discharges) for pedestrian evacuation from a network of corridors using network-wide pedestrian congestion data. The pedestrian flow is defined in a macroscopic sense, wherein ordinary differential equations (ODEs) for each corridor and node are obtained using the conservation of pedestrian mass. The effect of congestion on the flow velocities and discharges in the corridor and the corridor intersections is explicitly modeled. Collectively, these corridor and node equations define the state-space model of the pedestrian flow in the network. The state variables signify the congestion in a corridor or an intersection, whereas the control variables directly affect the flow velocities and the flow discharges. For this model, an optimization-based control algorithm is developed to ensure a maximum total instantaneous input discharge that is subject to tracking the optimal congestion state and boundedness of the control variables. A comparison of the simulation results in the controlled and uncontrolled scenarios shows superior performance in the controlled case due to convergence to the optimal congestion state and consistently high network input and exit discharges.
  • Keywords
    differential equations; feedback; network theory (graphs); pedestrians; state-space methods; ODE; control variable boundedness; corridor network; flow discharges; flow velocities; maximum total instantaneous input discharge; network-wide pedestrian congestion data; node equations; optimal congestion state; optimal feedback flow rate computation; optimization-based control algorithm; ordinary differential equations; pedestrian evacuation; pedestrian mass conservation; state-space model; Computational modeling; Discharges (electric); Equations; Erbium; Jamming; Layout; Mathematical model; Conservation of mass; feedback linearization; linear programming; pedestrian evacuation; traffic flow model;
  • fLanguage
    English
  • Journal_Title
    Intelligent Transportation Systems, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    1524-9050
  • Type

    jour

  • DOI
    10.1109/TITS.2013.2250965
  • Filename
    6482246