2014
DOI: 10.1002/atr.1260
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Vehicle trajectory reconstruction using automatic vehicle identification and traffic count data

Abstract: SUMMARYThe origin-destination (OD) matrix and the vehicle trajectory data are critical to transportation planning, design, and operation management. On the basis of the deployment of automatic vehicle identification (AVI) technology in urban traffic networks in China, this study proposed a vehicle trajectory reconstruction method for a large-scale network by using AVI and traditional detector data. Particle filter theory was employed as the framework for this method that combines five spatial-temporal trajecto… Show more

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Cited by 57 publications
(24 citation statements)
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“…Generally, real data are noisier than synthetic data and should be preprocessed with data cleaning methods as indicated in typical data mining processes. Thus, additional trajectory reconstruction [13,38] or probabilistic prediction [4,34] approaches may be exploited to complement our approach. Third, POI mentioned in Section 4.1 might reduce the number of false positives.…”
Section: Discussionmentioning
confidence: 98%
“…Generally, real data are noisier than synthetic data and should be preprocessed with data cleaning methods as indicated in typical data mining processes. Thus, additional trajectory reconstruction [13,38] or probabilistic prediction [4,34] approaches may be exploited to complement our approach. Third, POI mentioned in Section 4.1 might reduce the number of false positives.…”
Section: Discussionmentioning
confidence: 98%
“…The implementation of PF is typically challenging in the vehicle path reconstruction problem based on AVI data alone, because limited information can be directly obtained from AVI data. Regardless of the usage of the loop detector data or AVI data, two observation models (i.e., the path consistency model and the AVI measurability criterion model), which are detailed in Feng et al (2015), are equivalent. Two additional observation models are expressed as follows:…”
Section: Path Reconstruction Problem With Pfmentioning
confidence: 99%
“…Read the PFE estimated link travel times t a from Step 1. Generate the PF possible path set K possible for all OD pairs using the depth-first search algorithm adopted in Feng et al (2015), which is based on estimated travel time and network topology.…”
Section: Algorithm For Pf_pfementioning
confidence: 99%
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