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Image-based Lagrangian Particle Tracking in Bed-load Experiments
Published on: July 20, 2017
Tran Thien Dat Nguyen1, Du Yong Kim2
1School of Electrical Engineering, Computing and Mathematical Sciences, Curtin University, Bentley 6102, Australia. t.nguyen172@postgrad.curtin.edu.au.
This study presents a new multi-object tracking algorithm using labeled Random Finite Sets (RFS) and a Generalized Labeled Multi-Bernoulli (GLMB) filter with a Rauch-Tung-Striebel (RTS) smoother, improving tracking performance with minimal computational cost.
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