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Short-term travel time prediction

✍ Scribed by Xiaoyan Zhang; John A. Rice


Publisher
Elsevier Science
Year
2003
Tongue
English
Weight
292 KB
Volume
11
Category
Article
ISSN
0968-090X

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✦ Synopsis


Effective prediction of travel times is central to many advanced traveler information and transportation management systems. In this paper we propose a method to predict freeway travel times using a linear model in which the coefficients vary as smooth functions of the departure time. The method is straightforward to implement, computationally efficient and applicable to widely available freeway sensor data.

We demonstrate the effectiveness of the proposed method by applying the method to two real-life loop detector data sets. The first data set--on I-880--is relatively small in scale, but very high in quality, containing information from probe vehicles and double loop detectors. On this data set the prediction error ranges from 5% for a trip leaving immediately to 10% for a trip leaving 30 min or more in the future. Having obtained encouraging results from the small data set, we move on to apply the method to a data set on a much larger spatial scale, from Caltrans District 12 in Los Angeles. On this data set, our errors range from about 8% at zero lag to 13% at a time lag of 30 min or more. We also investigate several extensions to the original method in the context of this larger data set.


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Short-term prediction of motorway travel
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## Abstract Travel time is a good operational measure of the effectiveness of transportation systems. The ability to accurately predict motorway and arterial travel times is a critical component for many intelligent transportation systems (ITS) applications. Advanced traffic data collection systems