TY - JOUR
T1 - Underwater Tightly-Coupled Method for Heading Estimation Against Uncertain Disturbances
T2 - Using Differential Light Intensity
AU - Zhang, Teng
AU - Yang, Jian
AU - Shen, Xinjing
AU - Liu, Xin
AU - Niu, Meng
AU - Guo, Lei
N1 - Publisher Copyright:
© 1982-2012 IEEE.
PY - 2025
Y1 - 2025
N2 - Polarization navigation has been proven to be a remarkably effective strategy for unmanned underwater vehicles (UUVs) in heading determination. However, it is difficult for existing schemes to deal with dynamic refraction and uncertain multiple scattering, deteriorating navigation accuracy. This article proposes an underwater tightly-coupled method using original differential light intensity to determine heading in the presence of hybrid uncertain disturbances. In order to reduce the modeling error caused by underwater disturbances, we develop a tightly-coupled model employing original differential light intensity, in which the direct relationship between differential polarization and attitudes is investigated. Meanwhile, the compensation factor is introduced into the tightly-coupled model to deal with nonvertical errors induced by underwater hybrid optical effects. In view of measurement uncertainty in underwater polarization, adaptive parameter adjustment is implemented by variational Bayesian (VB) to optimize the state estimation, which benefits the reliability and robustness of the system. Both simulation and ocean tests are carried out to demonstrate the feasibility and superiority of the proposed method.
AB - Polarization navigation has been proven to be a remarkably effective strategy for unmanned underwater vehicles (UUVs) in heading determination. However, it is difficult for existing schemes to deal with dynamic refraction and uncertain multiple scattering, deteriorating navigation accuracy. This article proposes an underwater tightly-coupled method using original differential light intensity to determine heading in the presence of hybrid uncertain disturbances. In order to reduce the modeling error caused by underwater disturbances, we develop a tightly-coupled model employing original differential light intensity, in which the direct relationship between differential polarization and attitudes is investigated. Meanwhile, the compensation factor is introduced into the tightly-coupled model to deal with nonvertical errors induced by underwater hybrid optical effects. In view of measurement uncertainty in underwater polarization, adaptive parameter adjustment is implemented by variational Bayesian (VB) to optimize the state estimation, which benefits the reliability and robustness of the system. Both simulation and ocean tests are carried out to demonstrate the feasibility and superiority of the proposed method.
KW - Differential polarization
KW - polarization navigation
KW - tightly-coupled modeling
KW - underwater navigation
UR - https://www.scopus.com/pages/publications/105002027365
U2 - 10.1109/TIE.2025.3552266
DO - 10.1109/TIE.2025.3552266
M3 - 文章
AN - SCOPUS:105002027365
SN - 0278-0046
VL - 72
SP - 10718
EP - 10727
JO - IEEE Transactions on Industrial Electronics
JF - IEEE Transactions on Industrial Electronics
IS - 10
ER -