Advanced control techniques for quadrotor

dc.contributor.advisorBoushaki, Razika
dc.contributor.authorBekal, Asma
dc.contributor.authorBendjerdia, Yahia
dc.date.accessioned2026-05-04T09:27:50Z
dc.date.issued2025
dc.description63 p. : ill.
dc.description.abstractThis study presents the complete modelling and control of a quadcopter for reference-trajectory tracking. The vehicle dynamics are derived with the six-degree-of-freedom Newton–Euler formulation expressed in Euler angles, while aerodynamic and disturbance effect sar ebounde db y astandar dhover-level approximation. Three nonlinear controllers are implemented and compared: n outer-loop Backstepping law, a robust Sliding-Mode Controller (SMC), and an Adaptive PID extension that retunes its gains online. The full nonlinear state-space model is coded in Python, each controller is simulated under identical hover-to-trajectory scenarios. Performance is assessed in terms of position and attitude tracking error, closed-loop stability, control effort ,an ddisturbance ejection capability. Results confir mtha tal lthre eapproache skee pth equadcopte ron the desired path, with the adaptive PID providing the best trade-of fbetwee nrobustness and control economy.
dc.identifier.urihttps://dspace.univ-boumerdes.dz/handle/123456789/16338
dc.language.isoen
dc.publisherUniversity M’hamed Bougara : Institute of Electrical and Electronic Engineering (IGEE)
dc.subjectRobustness Study
dc.subjectAdvanced control techniques
dc.titleAdvanced control techniques for quadrotor
dc.typeThesis

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