Collaborative navigation simulation tool using kalman filter with implicit constraints

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Garcia-Fernandez, N.; Alkhatib, H.; Schön, S.: Collaborative navigation simulation tool using kalman filter with implicit constraints. In: ISPRS Annals of the Photogrammetry, Remote Sensing and Spatial Information Sciences 4 (2019), Nr. 2/W5, S. 559-566. DOI: https://doi.org/10.5194/isprs-annals-IV-2-W5-559-2019

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To cite the version in the repository, please use this identifier: https://doi.org/10.15488/10158

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Sum total of downloads: 155




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Abstract: 
Collaborative Positioning (CP) is a networked positioning technique in which different multi-sensor systems (nodes) enhance the accuracy and precision of these navigation solutions by performing measurements or by sharing information (links) between each other. The wide spectrum of available sensors that are used in these complex scenarios bring the necessity to analyze the sensibility of the system to different configurations in order to find optimal solutions. In this paper, we discuss the implementation and evaluation of a simulation tool that allows us to study these questions. The simulation tool is successfully implemented as a plane based localization problem, in which the sensor measurements are fused in a Collaborative Extended Kalman Filter (C-EKF) algorithm with implicit constraints. Using a real urban scenario with three vehicles equipped with various positioning sensors, the impact of the sensor configuration is investigated and discussed by intensive Monte Carlo simulations. The results show the influence of the laser scanner measurements on the accuracy and precision of the estimation, and the increased performance of the collaborative navigation techniques with respect to the single vehicle method. © Authors 2019.
License of this version: CC BY 4.0 Unported
Document Type: Article
Publishing status: publishedVersion
Issue Date: 2019
Appears in Collections:Fakultät für Bauingenieurwesen und Geodäsie

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downloads by country:

pos. country downloads
total perc.
1 image of flag of Germany Germany 80 51.61%
2 image of flag of United States United States 25 16.13%
3 image of flag of China China 15 9.68%
4 image of flag of Austria Austria 6 3.87%
5 image of flag of No geo information available No geo information available 5 3.23%
6 image of flag of France France 4 2.58%
7 image of flag of Sweden Sweden 2 1.29%
8 image of flag of Malaysia Malaysia 2 1.29%
9 image of flag of Korea, Republic of Korea, Republic of 2 1.29%
10 image of flag of Hong Kong Hong Kong 2 1.29%
    other countries 12 7.74%

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