Literatura académica sobre el tema "Model predictive controller (MPC)"
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Artículos de revistas sobre el tema "Model predictive controller (MPC)"
Rezaee, Alireza. "Model predictive Controller for Mobile Robot". Transactions on Environment and Electrical Engineering 2, n.º 2 (27 de junio de 2017): 18. http://dx.doi.org/10.22149/teee.v2i2.96.
Texto completoAlasali, Feras, Stephen Haben, Husam Foudeh y William Holderbaum. "A Comparative Study of Optimal Energy Management Strategies for Energy Storage with Stochastic Loads". Energies 13, n.º 10 (20 de mayo de 2020): 2596. http://dx.doi.org/10.3390/en13102596.
Texto completoWahid, Abdul y Richi Adi. "MODELING AND CONTROL OF MULTIVARIABLE DISTILLATION COLUMN USING MODEL PREDICTIVE CONTROL USING UNISIM". SINERGI 20, n.º 1 (1 de febrero de 2016): 14. http://dx.doi.org/10.22441/sinergi.2016.1.003.
Texto completoXu, Ying, Wentao Tang, Biyun Chen, Li Qiu y Rong Yang. "A Model Predictive Control with Preview-Follower Theory Algorithm for Trajectory Tracking Control in Autonomous Vehicles". Symmetry 13, n.º 3 (26 de febrero de 2021): 381. http://dx.doi.org/10.3390/sym13030381.
Texto completoKümpel, Alexander, Phillip Stoffel y Dirk Müller. "Self-adjusting model predictive control for modular subsystems in HVAC systems". Journal of Physics: Conference Series 2042, n.º 1 (1 de noviembre de 2021): 012037. http://dx.doi.org/10.1088/1742-6596/2042/1/012037.
Texto completoChrif, Labane y Zemalache Meguenni Kadda. "Aircraft Control System Using Model Predictive Controller". TELKOMNIKA Indonesian Journal of Electrical Engineering 15, n.º 2 (1 de agosto de 2015): 259. http://dx.doi.org/10.11591/tijee.v15i2.1538.
Texto completoLio, Wai Hou, John Anthony Rossiter y Bryn Llywelyn Jones. "Modular Model Predictive Control upon an Existing Controller". Processes 8, n.º 7 (16 de julio de 2020): 855. http://dx.doi.org/10.3390/pr8070855.
Texto completoKumavat, Mayur y Sushil Thale. "Analysis of CSTR Temperature Control with PID, MPC & Hybrid MPC-PID Controller". ITM Web of Conferences 44 (2022): 01001. http://dx.doi.org/10.1051/itmconf/20224401001.
Texto completoMunoz, Samuel Arce, Junho Park, Cristina M. Stewart, Adam M. Martin y John D. Hedengren. "Deep Transfer Learning for Approximate Model Predictive Control". Processes 11, n.º 1 (7 de enero de 2023): 197. http://dx.doi.org/10.3390/pr11010197.
Texto completoVrečko, D., N. Hvala y M. Stražar. "The application of model predictive control of ammonia nitrogen in an activated sludge process". Water Science and Technology 64, n.º 5 (1 de septiembre de 2011): 1115–21. http://dx.doi.org/10.2166/wst.2011.477.
Texto completoTesis sobre el tema "Model predictive controller (MPC)"
Bangalore, Narendranath Rao Amith Kaushal. "Online Message Delay Prediction for Model Predictive Control over Controller Area Network". Thesis, Virginia Tech, 2017. http://hdl.handle.net/10919/78626.
Texto completoMaster of Science
Mattsson, Mathias y Rasmus Mehler. "Optimal Vehicle Speed Control Using a Model Predictive Controller for an Overactuated Vehicle". Thesis, Linköpings universitet, Fordonssystem, 2015. http://urn.kb.se/resolve?urn=urn:nbn:se:liu:diva-119480.
Texto completoClaro, Érica Rejane Pereira. "Localização de canais afetando o desempenho de controladores preditivos baseados em modelos". reponame:Biblioteca Digital de Teses e Dissertações da UFRGS, 2016. http://hdl.handle.net/10183/149927.
Texto completoThe scope of this dissertation is the development of a method to detect the models of the dynamic matrix that are affecting the performance of model-based predictive controllers. The proposed method is based on the cross correlation analysis between the nominal controller error and an estimate of the contribution of each channel to the controller output, filtered by the controller nominal sensitivity function. The method can be used in the performance assessment of controllers employing variables controlled at the setpoint and/or those controlled within ranges. This dissertation presents the results of the successful application of the method to the quadruple-tank process (JOHANSSON, 2000), for which three scenarios were evaluated. In the first scenario, the method correctly located gain and dynamic mismatches on a model-based predictive controller (MPC controller). In the second one, the method was used to evaluate the influence of an external variable to improve the performance of a controller affected by unmeasured disturbances. In the third scenario, the method located null models that should be included in the dynamic matrix of a decentralized MPC controller. The results of the three scenarios were compared with the ones obtained through the method proposed by BADWE, GUDI e PATWARDHAN (2009). The proposed method was considered more robust than the reference one for not requiring parameters estimation performed by the user to provide good results. This dissertation also includes a case study about the application of the method on the performance assessment of an industrial linear predictive controller of decentralized structure. The controller has twelve controlled variables, eight manipulated variables, and four unmeasured disturbances and is applied to a propylene-propane fractionation system of a petrochemical industry. The performance assessment allowed reducing the scope of the controller revision to nineteen channels of the models matrix, fourteen of which were null models that should be included in the controller. The efficacy of the proposed method was confirmed by repeating the model quality evaluation for all the controlled variables.
Paula, Neander Alessandro da Silva. "MPC adaptativo - multimodelos para controle de sistemas não-lineares". Universidade de São Paulo, 2009. http://www.teses.usp.br/teses/disponiveis/3/3137/tde-14052009-000836/.
Texto completoDuring the operation of a MPC, the plant can change the operation point mainly due to management decision or due to the presence of measured or unmeasured disturbances. Thus, the model of the controller must be adapted to improve the control in the new operation conditions. In such a way, a better control policy can be achieved if a large number of models are identified at the possible operation points and it is available an adaptive controller that is capable of selecting the best model. In this work is presented a methodology of adaptive control with on-line identification of the most adequate model which belongs to a set of models previously obtained. The proposed methodology considers a two-layer controller and process excitation by a GBN signal in the LP optimization layer with the controller in closed loop mode. It is also presented the adaptive controller validation by comparing the proposed approach with two different techniques - MMPC and ARX Identification, to confirm the good results with this new methodology to the adaptive controller.
Venieri, Giulia. "Development and testing of Model Predictive Controllers for an automotive organic Rankine cycle unit". Master's thesis, Alma Mater Studiorum - Università di Bologna, 2022.
Buscar texto completoAndina, Elisa. "Complexity and Conservatism in Linear Robust Adaptive Model Predictive Control". Master's thesis, Alma Mater Studiorum - Università di Bologna, 2019.
Buscar texto completoRokebrand, Luke Lambertus. "Towards an access economy model for industrial process control". Diss., University of Pretoria, 2020. http://hdl.handle.net/2263/79650.
Texto completoDissertation (MEng)--University of Pretoria, 2020.
Electrical, Electronic and Computer Engineering
MEng
Unrestricted
Pitta, Renato Neves. "Aplicação industrial de re-identificação de modelos de MPC em malha fechada". Universidade de São Paulo, 2012. http://www.teses.usp.br/teses/disponiveis/3/3137/tde-10042012-115001/.
Texto completoModel identification is usually the most significant and time-consuming task of implementing and maintaining control systems based on models (MPC) concerning the complexity of the task and the importance of the model for a good performance of the controller. After being implemented the MPC tends to remain with the original model even after process changes have occurred, leading to a degradation of the controller actions. The present work shows an industrial application of closed-loop re-identification. The plant excitation methodology used here was presented in Sotomayor et al. (2009). Such technique allows for obtaining the behavior of the process variables with the MPC still working and without modifying the MPC structure, increasing automation and safety of the re-identification procedure. The system re-identified was a debutanizer column of a Brazilian refinery being the models part of the multivariable predictive control of this distillation column. The methodology was applied with reasonable success managing to obtain 6 new models to update this MPC, and resulting in improved control performance.
Jansson, Lovisa y Amanda Nilsson. "Evaluation of Model-Based Design Using Rapid Control Prototyping on Forklifts". Thesis, Linköpings universitet, Reglerteknik, 2019. http://urn.kb.se/resolve?urn=urn:nbn:se:liu:diva-158715.
Texto completoSyftet med detta examensarbete är att utvärdera Rapid Control Prototyping vil-ket är en del av modellbaserad utveckling som gör det möjligt att enkelt testamodeller av styralgoritmer direkt på det riktiga systemet. Utvärderingen är gjordgenom att testa två olika regulatorer, en P-regulator med parameterstyrning ochen linjär modelbaserad prediktionsregulator (mpc), för sänkningen av gafflarnapå en truck.De två regulatorerna testas först i en simuleringsmiljö. I arbetet används två olikasimuleringsmodeller: en fysikalisk där endast mindre parameterjusteringar görsoch en estimerad black-box modell. Efter att regulatorerna utvärderas i simule-ringsmiljön testas de även på en riktig truck med hjälp av automatisk kodgenere-ring och exekvering på en dedikerad hårdvaruplattform.De konstruerade regulatorerna har olika för- och nackdelar eftersom en är olinjäroch envariabel, P-regulatorn, och en är linjär men flervariabel,mpc:n. P-regulatornhar en mjuk rörelse i alla lägen utan att bli för långsam, till skillnad frånmpc:n.Nackdelen med P-regulatorn, jämfört medmpc:n är att det inte finns någon ga-ranti för att P-regulatorn håller hastighetsbegränsningen sommpc:n gör.P-regulatorns bättre prestanda överväger garantin om att hålla hastighetsbegräns-ningen och därför dras slutsatsen att olinjäriteterna i systemet överväger effekter-na av det faktum att det också är flervariabelt. En annan slutsats är att modell-baserad utveckling och Rapid Control Prototyping gör det möjligt att testa fleraolika idéer på en riktig gaffeltruck utan att spendera för mycket tid på implemen-tationen.
Cruz, Diego Déda Gonçalves Brito. "Detecção de erros planta-modelo em sistemas de controle preditivo (MPC) utilizando técnicas de informação mútua". Universidade Federal de Sergipe, 2017. https://ri.ufs.br/handle/riufs/5028.
Texto completoModel predictive control (MPC) strategies have become the standard for advanced control applications in the process industry. Significant benefits are generated from the MPC's capacity to ensure that the plant operates within its constraints more profitably. However, like any controller, after some time under operation, MPCs rarely function as when they were initially designed. A large percentage of performance degradation of MPC is associated with the deterioration of model that controller uses to predict process outputs and calculate inputs. The objective of the present work is implementation of mathematical methods that can be used to detect model-plant mismatch in linear and nonlinear MPC systems. In this work, techniques based on cross correlation, partial correlation and mutual information are implemented and tested by numerical simulation in case studies characteristic of the petrochemical industry, represented by linear and nonlinear models, operating under MPC control. The results obtained through the applying the techniques are analyzed and compared as to their efficiency is not intended to offer their potential for real industrial applications.
Estratégias de controle preditivo (MPC) têm-se tornado o padrão para aplicações de controle avançado na indústria de processos. Os benefícios significativos são gerados a partir da habilidade do controlador MPC de assegurar que a planta opere dentro das restrições de forma mais lucrativa. Porém, como todo controlador, depois de algum tempo em operação, os MPCs raramente funcionam como quando foram inicialmente projetados. Uma grande porcentagem da degradação do desempenho dos controladores MPC está associada à deterioração do modelo que o controlador usa para fazer a predição das saídas do processo e calcular as entradas. O objetivo do presente trabalho é a implementação de métodos matemáticos que possam ser utilizados para a detecção de erros planta-modelo em sistemas de controle MPC lineares e não lineares. Neste trabalho, técnicas baseadas em correlação cruzada, correlação parcial e informação mútua são implementadas e testadas por simulação numérica em estudos de caso característicos da indústria petroquímica, representados por modelos lineares e não lineares, operando sob controle MPC. Os resultados obtidos através da aplicação das técnicas são analisados e comparados quanto à sua eficiência no objetivo proposto avaliando seu potencial para aplicações industriais reais.
Libros sobre el tema "Model predictive controller (MPC)"
Takács, Gergely. Model Predictive Vibration Control: Efficient Constrained MPC Vibration Control for Lightly Damped Mechanical Structures. London: Springer London, 2012.
Buscar texto completoKhaled, Nassim y Bibin Pattel. Practical Design and Application of Model Predictive Control: MPC for MATLAB and Simulink Users. Butterworth-Heinemann Limited, 2018.
Buscar texto completoTakács, Gergely y Boris Rohaľ-Ilkiv. Model Predictive Vibration Control: Efficient Constrained MPC Vibration Control for Lightly Damped Mechanical Structures. Springer, 2014.
Buscar texto completoModel Predictive Vibration Control Efficient Constrained Mpc Vibration Control For Lightly Damped Mechanical Structures. Springer, 2012.
Buscar texto completoKhaled, Nassim y Bibin Pattel. Practical Design and Application of Model Predictive Control: MPC for MATLAB® and Simulink® Users. Elsevier Science & Technology Books, 2018.
Buscar texto completoVaez-Zadeh, Sadegh. Predictive, Deadbeat, and Combined Controls. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198742968.003.0005.
Texto completoCapítulos de libros sobre el tema "Model predictive controller (MPC)"
Mehmood, Usama, Shouvik Roy, Radu Grosu, Scott A. Smolka, Scott D. Stoller y Ashish Tiwari. "Neural Flocking: MPC-Based Supervised Learning of Flocking Controllers". En Lecture Notes in Computer Science, 1–16. Cham: Springer International Publishing, 2020. http://dx.doi.org/10.1007/978-3-030-45231-5_1.
Texto completoKlaučo, Martin y Michal Kvasnica. "Inner Loops with Model Predictive Control Controllers". En MPC-Based Reference Governors, 53–68. Cham: Springer International Publishing, 2019. http://dx.doi.org/10.1007/978-3-030-17405-7_6.
Texto completoSharma, Veena, Vineet Kumar, R. Naresh y V. Kumar. "MPA Optimized Model Predictive Controller for Optimal Control of an AVR System". En Intelligent Data Engineering and Analytics, 61–70. Singapore: Springer Nature Singapore, 2023. http://dx.doi.org/10.1007/978-981-19-7524-0_6.
Texto completoCamacho, Eduardo F. y Carlos Bordons. "Multivariable MPC". En Model Predictive Control, 131–66. London: Springer London, 1999. http://dx.doi.org/10.1007/978-1-4471-3398-8_6.
Texto completoCamacho, Eduardo F. y Carlos Bordons. "Constrained MPC". En Model Predictive Control, 167–207. London: Springer London, 1999. http://dx.doi.org/10.1007/978-1-4471-3398-8_7.
Texto completoCamacho, Eduardo F. y Carlos Bordons. "Robust MPC". En Model Predictive Control, 209–28. London: Springer London, 1999. http://dx.doi.org/10.1007/978-1-4471-3398-8_8.
Texto completoJonath, Lucas, Jörg Luderich, Jonas Brezina, Ana Maria Gonzalez Degetau y Selim Karaoglu. "Improving the Thermal Behavior of High-Speed Spindles Through the Use of an Active Controlled Heat Pipe System". En Lecture Notes in Production Engineering, 203–18. Cham: Springer International Publishing, 2023. http://dx.doi.org/10.1007/978-3-031-34486-2_16.
Texto completoKlaučo, Martin y Michal Kvasnica. "Model Predictive Control". En MPC-Based Reference Governors, 15–34. Cham: Springer International Publishing, 2019. http://dx.doi.org/10.1007/978-3-030-17405-7_3.
Texto completoKouvaritakis, Basil y Mark Cannon. "Introduction to Stochastic MPC". En Model Predictive Control, 243–69. Cham: Springer International Publishing, 2015. http://dx.doi.org/10.1007/978-3-319-24853-0_6.
Texto completoTakács, Gergely y Boris Rohal’-Ilkiv. "Basic MPC Formulation". En Model Predictive Vibration Control, 207–51. London: Springer London, 2012. http://dx.doi.org/10.1007/978-1-4471-2333-0_6.
Texto completoActas de conferencias sobre el tema "Model predictive controller (MPC)"
Piper, Matthew, Pranav Bhounsule y Krystel K. Castillo-Villar. "How to Beat Flappy Bird: A Mixed-Integer Model Predictive Control Approach". En ASME 2017 Dynamic Systems and Control Conference. American Society of Mechanical Engineers, 2017. http://dx.doi.org/10.1115/dscc2017-5285.
Texto completoLenssen, Daan, Alberto Bertipaglia, Felipe Santafe y Barys Shyrokau. "Combined Path Following and Vehicle Stability Control using Model Predictive Control". En WCX SAE World Congress Experience. 400 Commonwealth Drive, Warrendale, PA, United States: SAE International, 2023. http://dx.doi.org/10.4271/2023-01-0645.
Texto completoParry, Adam, Brandon Hencey y Jon Zumberge. "Model Predictive Control for a Synchronous Machine With a Pulsed, Constant-Power Load". En ASME 2020 Dynamic Systems and Control Conference. American Society of Mechanical Engineers, 2020. http://dx.doi.org/10.1115/dscc2020-3110.
Texto completoVroemen, B. G., H. A. van Essen, A. A. van Steenhoven y J. J. Kok. "Nonlinear Model Predictive Control of a Laboratory Gas Turbine Installation". En ASME 1998 International Gas Turbine and Aeroengine Congress and Exhibition. American Society of Mechanical Engineers, 1998. http://dx.doi.org/10.1115/98-gt-100.
Texto completoChen, Xiao y Qian Wang. "A Data-Driven Thermal Sensation Model Based Predictive Controller for Indoor Thermal Comfort and Energy Optimization". En ASME 2014 Dynamic Systems and Control Conference. American Society of Mechanical Engineers, 2014. http://dx.doi.org/10.1115/dscc2014-6131.
Texto completoAngatkina, Oyuna y Andrew Alleyne. "Model Predictive Control of a Pumped Two-Phase Cooling System With Microchannel Heat Exchangers". En ASME 2018 Dynamic Systems and Control Conference. American Society of Mechanical Engineers, 2018. http://dx.doi.org/10.1115/dscc2018-9143.
Texto completoMazibuko, N., K. T. Akindeji, K. Moloi y G. Sharma. "Improved Model Predictive controller (MPC) for an Automatic Voltage Regulator (AVR)". En 2024 32nd Southern African Universities Power Engineering Conference (SAUPEC). IEEE, 2024. http://dx.doi.org/10.1109/saupec60914.2024.10445066.
Texto completoRen, Dejin, Wanli Lu, Jidong Lv, Lijun Zhang y Bai Xue. "Model Predictive Control with Reach-avoid Analysis". En Thirty-Second International Joint Conference on Artificial Intelligence {IJCAI-23}. California: International Joint Conferences on Artificial Intelligence Organization, 2023. http://dx.doi.org/10.24963/ijcai.2023/604.
Texto completoLiu, Heng, Wei Sun, Hao Sun, Jianfeng Tao y Chengliang Liu. "A Deep Koopman-Based Model Predictive Control Method for Valve-Controlled Hydraulic Cylinder Systems". En BATH/ASME 2022 Symposium on Fluid Power and Motion Control. American Society of Mechanical Engineers, 2022. http://dx.doi.org/10.1115/fpmc2022-89019.
Texto completoLiu, Yilun, Lei Zuo y Xiudong Tang. "Regenerative Vibration Control of Tall Buildings Using Model Predictive Control". En ASME 2013 Dynamic Systems and Control Conference. American Society of Mechanical Engineers, 2013. http://dx.doi.org/10.1115/dscc2013-3988.
Texto completoInformes sobre el tema "Model predictive controller (MPC)"
Yang, Yu y Hen-Geul Yeh. Electrical Vehicle Charging Infrastructure Design and Operations. Mineta Transportation Institute, julio de 2023. http://dx.doi.org/10.31979/mti.2023.2240.
Texto completoAn Input Linearized Powertrain Model for the Optimal Control of Hybrid Electric Vehicles. SAE International, marzo de 2022. http://dx.doi.org/10.4271/2022-01-0741.
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