Network-wide on-line travel time estimation with inconsistent data from multiple sensor systems under network uncertainty

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Abstract

This paper proposes a new modeling approach for network-wide on-line travel time estimation with inconsistent data from multiple sensor systems. It makes full use of both the available data from multiple sensor systems (on-line data) and historical data (off-line data). The first- and second-order statistical properties of the on-line data are investigated together with the data inconsistency issue to estimate network-wide travel times. The proposed model is formulated as a generalized least squares problem with non-linear constraints. A solution algorithm based on the penalty function method is adopted to solve the proposed model, whose application is illustrated by numerical examples using a local road network in Hong Kong.

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generalized least squares, Intelligent Transportation Systems, off-line data, on-line data, Travel time estimation

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Transportmetrica A Transport Science, 14(1-2), 110-129, 2018

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