DocumentCode :
1938936
Title :
Freight origin-destination estimation based on multiple data source
Author :
Ma, Yinyi ; Van Zuylen, Henk ; Kuik, Roelof
Author_Institution :
Decision & Inf. Sci. Dept., Erasmus Univ., Rotterdam, Netherlands
fYear :
2012
fDate :
16-19 Sept. 2012
Firstpage :
1239
Lastpage :
1244
Abstract :
Freight origin-destination (OD) information is increasingly important for understanding the influence of transportation on network congestion. Traditional OD estimation methods based on a single data source, usually loop detectors, are not easily transferred to freight OD estimation. However, alternative data capture technologies are nowadays available to gather traffic information. Examples are automatic number plate recognition (ANPR), Bluetooth scanners, and Weigh-in-Motion systems. This paper aims to develop feasible approaches based on Entropy Maximization and Bayesian Networks to estimate freight OD matrix using multiple sources of captured data. In the case of the A15 motorway in the Netherlands, we illustrate how the captured data is informative about transport behavior in the area and how the proposed methods lead to an estimation of the freight OD matrix.
Keywords :
belief networks; convex programming; estimation theory; freight handling; matrix algebra; transportation; A15 motorway; ANPR; Bayesian networks; Netherlands; automatic number plate recognition; bluetooth scanners; data capture technology; entropy maximization; freight OD matrix estimation; freight origin-destination matrix estimation; loop detectors; multiple data source; network congestion; traffic information; transportation; weigh-in-motion systems; Bayesian methods; Bluetooth; Cameras; Detectors; Estimation; Roads; Vehicles;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Intelligent Transportation Systems (ITSC), 2012 15th International IEEE Conference on
Conference_Location :
Anchorage, AK
ISSN :
2153-0009
Print_ISBN :
978-1-4673-3064-0
Electronic_ISBN :
2153-0009
Type :
conf
DOI :
10.1109/ITSC.2012.6338625
Filename :
6338625
Link To Document :
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