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Static attitude determination using convolutional neural networks

Dos Santos G. H.
•
Seman L. O.
•
Bezerra E. A.
altro
Stefenon S. F.
2021
  • journal article

Periodico
SENSORS
Abstract
The need to estimate the orientation between frames of reference is crucial in spacecraft navigation. Robust algorithms for this type of problem have been built by following algebraic approaches, but data-driven solutions are becoming more appealing due to their stochastic nature. Hence, an approach based on convolutional neural networks in order to deal with measurement uncertainty in static attitude determination problems is proposed in this paper. PointNet models were trained with different datasets containing different numbers of observation vectors that were used to build attitude profile matrices, which were the inputs of the system. The uncertainty of measurements in the test scenarios was taken into consideration when choosing the best model. The proposed model, which used convolutional neural networks, proved to be less sensitive to higher noise than traditional algorithms, such as singular value decomposition (SVD), the q-method, the quaternion estimator (QUEST), and the second estimator of the optimal quaternion (ESOQ2).
DOI
10.3390/s21196419
WOS
WOS:000707573200001
Archivio
http://hdl.handle.net/11390/1217619
info:eu-repo/semantics/altIdentifier/scopus/2-s2.0-85115682923
https://ricerca.unityfvg.it/handle/11390/1217619
Diritti
open access
Soggetti
  • Attitude determinatio...

  • Machine learning

  • Measurement uncertain...

  • Neural network

  • Attitude

  • Spacecraft

  • Algorithm

  • Neural Networks, Comp...

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