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dc.contributor.authorCHICHIOU, Zakaria-
dc.contributor.authorALLALOU, Abdelghani-
dc.contributor.otherBoudana, Djamel, Directeur de thèse-
dc.contributor.otherBouchhida, Ouahid, Directeur de thèse-
dc.date.accessioned2025-10-07T09:37:41Z-
dc.date.available2025-10-07T09:37:41Z-
dc.date.issued2025-
dc.identifier.issnEP00895-
dc.identifier.urihttp://repository.enp.edu.dz/jspui/handle/123456789/11213-
dc.descriptionMémoire de Projet de Fin d’Etudes :Automatique: Alger, Ecole Nationale Polytechniquefr_FR
dc.description.abstractThis report presents the modeling and control of a coaxial octorotor drone, a type of multiro- tor UAV with enhanced stability and payload capacity. First, the complete nonlinear dynamic model of the drone is developed, capturing both translational and rotational motions. Based on this model, several advanced control strategies are designed and implemented to ensure stable flight and accurate trajectory tracking. These include the classical PID controller, Backstep- ping, Sliding Mode Control (SMC), Adaptive Direct Control, and Fuzzy Logic Control (FLC). To optimize the performance of these controllers, their gains and parameters are tuned using two nature-inspired optimization algorithms: Particle Swarm Optimization (PSO) and the Ge- netic Algorithm (GA). The comparative analysis demonstrates the strengths and limitations of each control method in terms of robustness, convergence, and tracking accuracy. Simulation results validate the effectiveness of the proposed control schemes and highlight the advantage of intelligent optimization in enhancing UAV performance.fr_FR
dc.language.isoenfr_FR
dc.subjectthe modeling and control of a coaxialfr_FR
dc.subjectmodel of the drone is developedfr_FR
dc.subjecttranslational and rotational motionsfr_FR
dc.subjectoptimization algorithmsfr_FR
dc.subjectOptimization (PSO)fr_FR
dc.subjectGe- netic Algorithm (GA)fr_FR
dc.titleModeling and Nonlinear Control of Coaxial Octorotor Dronefr_FR
dc.title.alternativeModélisation et control nonlinéar de drone octorotor coaxialfr_FR
dc.typeThesisfr_FR
Collection(s) :Département Automatique

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