Bayesian inference for link travel time correlation of a bus route
Xiaoxu Chen, Zhanhong Cheng, Lijun Sun

TL;DR
This paper introduces a Bayesian Gaussian model with Gibbs sampling to accurately estimate complex link travel time correlations on bus routes from real-world data, enabling improved transit operation insights.
Contribution
It develops a novel Bayesian approach that handles missing data and captures complex correlation structures in bus travel times, advancing prior simplified models.
Findings
The method accurately estimates travel time correlations with credible intervals.
Real-world data reveals both local and long-range correlations.
Application to forecasting demonstrates practical utility.
Abstract
Estimation of link travel time correlation of a bus route is essential to many bus operation applications, such as timetable scheduling, travel time forecasting and transit service assessment/improvement. Most previous studies rely on either independent assumptions or simplified local spatial correlation structures. In the real world, however, link travel time on a bus route could exhibit complex correlation structures, such as long-range correlations, negative correlations, and time-varying correlations. Therefore, before introducing strong assumptions, it is essential to empirically quantify and examine the correlation structure of link travel time from real-world bus operation data. To this end, this paper develops a Bayesian Gaussian model to estimate the link travel time correlation matrix of a bus route using smart-card-like data. Our method overcomes the small-sample-size problem…
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Taxonomy
TopicsTraffic Prediction and Management Techniques · Transportation Planning and Optimization · Human Mobility and Location-Based Analysis
