Tracking multiple moving targets allows quantitative measure of the dynamic behavior in systems as diverse as animal groups in biology, turbulence in fluid dynamics and crowd and traffic control. In three dimensions, tracking several targets becomes increasingly hard since optical occlusions are very likely, i.e., two featureless targets frequently overlap for several frames. Occlusions are particularly frequent in biological groups such as bird flocks, fish schools, and insect swarms, a fact that has severely limited collective animal behavior field studies in the past. This paper presents a 3D tracking method that is robust in the case of severe occlusions. To ensure robustness, we adopt a global optimization approach that works on all objects and frames at once. To achieve practicality and scalability, we employ a divide and conquer formulation, thanks to which the computational complexity of the problem is reduced by orders of magnitude. We tested our algorithm with synthetic data, with experimental data of bird flocks and insect swarms and with public benchmark datasets, and show that our system yields high quality trajectories for hundreds of moving targets with severe overlap. The results obtained on very heterogeneous data show the potential applicability of our method to the most diverse experimental situations.

GReTA-A Novel Global and Recursive Tracking Algorithm in Three Dimensions

Andrea Cavagna;Lorenzo Del Castello;Irene Giardina;Stefania Melillo;Leonardo Parisi;Edmondo Silvestri;Massimiliano Viale
2015

Abstract

Tracking multiple moving targets allows quantitative measure of the dynamic behavior in systems as diverse as animal groups in biology, turbulence in fluid dynamics and crowd and traffic control. In three dimensions, tracking several targets becomes increasingly hard since optical occlusions are very likely, i.e., two featureless targets frequently overlap for several frames. Occlusions are particularly frequent in biological groups such as bird flocks, fish schools, and insect swarms, a fact that has severely limited collective animal behavior field studies in the past. This paper presents a 3D tracking method that is robust in the case of severe occlusions. To ensure robustness, we adopt a global optimization approach that works on all objects and frames at once. To achieve practicality and scalability, we employ a divide and conquer formulation, thanks to which the computational complexity of the problem is reduced by orders of magnitude. We tested our algorithm with synthetic data, with experimental data of bird flocks and insect swarms and with public benchmark datasets, and show that our system yields high quality trajectories for hundreds of moving targets with severe overlap. The results obtained on very heterogeneous data show the potential applicability of our method to the most diverse experimental situations.
2015
Istituto dei Sistemi Complessi - ISC
Inglese
37
12
2451
2463
13
https://ieeexplore.ieee.org/document/7062911
Sì, ma tipo non specificato
3D
tracking
branching
divide and conquer
global optimization
multi-object
multi-path
recursion
tracking
Date of publication 17 Mar. 2015; Date of current version 6 Nov. 2015. Issue Date : Dec. 1 2015
11
info:eu-repo/semantics/article
262
Attanasi, Alessandro; Cavagna, Andrea; DEL CASTELLO, Lorenzo; Giardina, Irene; Jelic, Asja; Melillo, Stefania; Parisi, Leonardo; Pellacini, Fabio; She...espandi
01 Contributo su Rivista::01.01 Articolo in rivista
partially_open
   Empirical analysis and theoretical modelling of self-organized collective behaviour in three-dimensions: from insect swarms and bird flocks to new schemes of distributed coordination.
   SWARM
   FP7
   257126
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/307062
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