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Control Predictivo Basado en Modelo×Control Adaptativo×
CampoTeoría de controlTeoría de control
FamiliaMachine learningMachine learning
Año de origen19781983
Autor originalJacques RichaletKarl J. Astrom
Tipoalgorithmalgorithm
Fuente seminalRichalet, J., Rault, A., Testud, J., & Papon, J. (1978). Model predictive heuristic control. Automatica, 14(5), 413-428. DOI ↗Astrom, K. J., & Wittenmark, B. (1983). Computer-Controlled Systems: Theory and Design. Prentice Hall. link ↗
AliasMPC, Receding Horizon ControlSelf-Tuning Control, Parameter Estimation Control
Relacionados53
ResumenModel Predictive Control (MPC) is an advanced control strategy that uses an explicit process model to predict future system behavior over a finite horizon and solves an optimization problem at each control step. First formalized by Richalet et al. in 1978, MPC has become the dominant approach in process control industries, from chemical plants to autonomous vehicles, because it naturally handles constraints and can optimize multiple objectives simultaneously.Adaptive Control is a control strategy that adjusts controller parameters in real-time based on online system identification to maintain performance despite changing plant dynamics or uncertain parameters. Pioneered by Astrom and Wittenmark, adaptive control enables robust operation in time-varying environments, from aircraft with fuel depletion to industrial systems with aging components.
ScholarGateConjunto de datos
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  2. 3 Fuentes
  3. PUBLISHED
  1. v1
  2. 2 Fuentes
  3. PUBLISHED

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ScholarGateComparar métodos: Model Predictive Control · Adaptive Control. Recuperado el 2026-06-15 de https://scholargate.app/es/compare