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Improvement of hovering stability for UAVs under crosswinds via evolutionary learning-based optimal PID control

Authors
Yoon, JaehyunKim, MantaeBang, JinhongKim, SanghoonDoh, Jaehyeok
Issue Date
Apr-2025
Publisher
대한기계학회
Keywords
PID controller; Unmanned air vehicle; Evolutionary learning; Attitude stabilization; Backpropagation neural network
Citation
Journal of Mechanical Science and Technology, v.39, no.4, pp 2151 - 2162
Pages
12
Indexed
SCIE
SCOPUS
KCI
Journal Title
Journal of Mechanical Science and Technology
Volume
39
Number
4
Start Page
2151
End Page
2162
URI
https://scholarworks.gnu.ac.kr/handle/sw.gnu/77867
DOI
10.1007/s12206-025-0338-7
ISSN
1738-494X
1976-3824
Abstract
This study aimed to optimize PID gain values to enable the swift recovery of unstable unmanned air vehicles (UAVs) while maintaining robust control in the presence of crosswind effects. Previous research concentrated on rotor and blade optimization for thrust. In this study, PID gain values were obtained by generating a PID control algorithm for the optimized UAV. A surrogate model between PID gain levels and performance variables was constructed by using a backpropagation neural network. Moreover, a nondominated sorting genetic algorithm-II was used to optimize PID gain settings for stability in a UAV affected by crosswind and instability. Altitude disturbance during hovering increased by 78 %, with roll motion and crosswind effects rising by 19 % and 33 %, respectively, in comparison with initial designs. Evolutionary learning-based PID control improved UAV stability, enabling quick recovery from crosswind-induced tilting. In future research, PID control gains with high robustness against external disturbances for various flight conditions will be determined.
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Doh, Jae Hyeok
우주항공대학 (항공우주공학부)
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