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A Dynamic Programming Approach for Road Traffic Estimation

Authors :
Laurini, Mattia
Saccani, Irene
Ardizzoni, Stefano
Consolini, Luca
Locatelli, Marco
Publication Year :
2024

Abstract

We consider a road network represented by a directed graph. We assume to collect many measurements of traffic flows on all the network arcs, or on a subset of them. We assume that the users are divided into different groups. Each group follows a different path. The flows of all user groups are modeled as a set of independent Poisson processes. Our focus is estimating the paths followed by each user group, and the means of the associated Poisson processes. We present a possible solution based on a Dynamic Programming algorithm. The method relies on the knowledge of high order cumulants. We discuss the theoretical properties of the introduced method. Finally, we present some numerical tests on well-known benchmark networks, using synthetic data.

Details

Database :
arXiv
Publication Type :
Report
Accession number :
edsarx.2403.18561
Document Type :
Working Paper