Paper
13 March 2013 Multi-vehicles tracking in traffic crossroad based on fast approximate optimal objective function with label costs
Le Wang, Shiyin Qin
Author Affiliations +
Abstract
In this paper, we present a novel framework for multiple vehicles tracking in traffic crossroad that formulate multi-target tracking as an optimization problem. We set the optimizing decision model of multi-vehicles tracking based on characteristics of vehicles and traffic crossroad. In our formulation the problem of error propagation can be avoided through cutting down the error of detector by rejecting the improper detecting points during the optimizing process. Several challenging datasets are employed to validate the accuracy and robustness of our approach. A series of experiment results has demonstrated that our method is able to handle partial or even complete occlusions and can hardly be influenced by variant scale object.
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Le Wang and Shiyin Qin "Multi-vehicles tracking in traffic crossroad based on fast approximate optimal objective function with label costs", Proc. SPIE 8783, Fifth International Conference on Machine Vision (ICMV 2012): Computer Vision, Image Analysis and Processing, 878303 (13 March 2013); https://doi.org/10.1117/12.2010557
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KEYWORDS
Data modeling

Detection and tracking algorithms

Target detection

Algorithm development

Intelligence systems

Sensors

Machine vision

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