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Ditemukan 11877 dokumen yang sesuai dengan query
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Kanjilal, P.P.
Stevenage, Herts., U.K.: P. Peregrinus on Behalf of Institution of Electrical Engineers, 1995
629.836 KAN a
Buku Teks  Universitas Indonesia Library
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Astrom, Karl Johan, 1934-
Reading, MA: Addison-Wesley, 1995
629.836 AST a
Buku Teks  Universitas Indonesia Library
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Widrow, Bernard
Upper Saddle River, NJ: Prentice-Hall International, 1996
629.836 WID a
Buku Teks  Universitas Indonesia Library
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Loannou, Petros A., 1953-
"Designed to meet the needs of a wide audience without sacrificing mathematical depth and rigor, Adaptive Control Tutorial presents the design, analysis, and application of a wide variety of algorithms that can be used to manage dynamical systems with unknown parameters. Its tutorial-style presentation of the fundamental techniques and algorithms in adaptive control make it suitable as a textbook.
Adaptive Control Tutorial is designed to serve the needs of three distinct groups of readers: engineers and students interested in learning how to design, simulate, and implement parameter estimators and adaptive control schemes without having to fully understand the analytical and technical proofs; graduate students who, in addition to attaining the aforementioned objectives, also want to understand the analysis of simple schemes and get an idea of the steps involved in more complex proofs; and advanced students and researchers who want to study and understand the details of long and technical proofs with an eye toward pursuing research in adaptive control or related topics.
The authors achieve these multiple objectives by enriching the book with examples demonstrating the design procedures and basic analysis steps and by detailing their proofs in both an appendix and electronically available supplementary material; online examples are also available. A solution manual for instructors can be obtained by contacting the authors."
Philadelphia: Society for Industrial and Applied Mathematics, 2006
e20448729
eBooks  Universitas Indonesia Library
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"Recent developments in model-predictive control promise remarkable opportunities for designing multi-input, multi-output control systems and improving the control of single-input, single-output systems. This volume provides a definitive survey of the latest model-predictive control methods available to engineers and scientists today.
The initial set of chapters present various methods for managing uncertainty in systems, including stochastic model-predictive control. With the advent of affordable and fast computation, control engineers now need to think about using “computationally intensive controls,” so the second part of this book addresses the solution of optimization problems in “real” time for model-predictive control. The theory and applications of control theory often influence each other, so the last section of Handbook of Model Predictive Control rounds out the book with representative applications to automobiles, healthcare, robotics, and finance.
The chapters in this volume will be useful to working engineers, scientists, and mathematicians, as well as students and faculty interested in the progression of control theory. Future developments in MPC will no doubt build from concepts demonstrated in this book and anyone with an interest in MPC will find fruitful information and suggestions for additional reading."
Switzerland: Birkhäuser Cham, 2019
e20502512
eBooks  Universitas Indonesia Library
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Hovakimyan, Naira
"This book presents a comprehensive overview of the recently developed L1 adaptive control theory, including detailed proofs of the main results. The key feature of the L1 adaptive control theory is the decoupling of adaptation from robustness. The architectures of L1 adaptive control theory have guaranteed transient performance and robustness in the presence of fast adaptation, without enforcing persistent excitation, applying gain-scheduling, or resorting to high-gain feedback."
Philadelphia: Society for Industrial and Applied Mathematics, 2010
e20443393
eBooks  Universitas Indonesia Library
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Camacho, Eduardo F.
"Model Predictive Control is an important technique used in the process control industries. It has developed considerably in the last few years, because it is the most general way of posing the process control problem in the time domain. The Model Predictive Control formulation integrates optimal control, stochastic control, control of processes with dead time, multivariable control and future references. The finite control horizon makes it possible to handle constraints and non linear processes in general which are frequently found in industry. Focusing on implementation issues for Model Predictive Controllers in industry, it fills the gap between the empirical way practitioners use control algorithms and the sometimes abstractly formulated techniques developed by researchers. The text is firmly based on material from lectures given to senior undergraduate and graduate students and articles written by the authors"
London: Springer, 2007
629.8 CAM m
Buku Teks  Universitas Indonesia Library
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Hafizh Malik H.T., author
"Hidrogen merupakan salah satu zat/gas yang sangat banyak kegunaannya, terutama dalam industri kimia. Banyaknya unit pada sebuah pabrik membuat banyak gangguan yang akan terjadi pada suatu proses pabrik, gangguan tersebut akan berdampak kepada keefektifan dan kestabilan operasi pabrik tersebut yang juga berpengaruh kepada lingkungan sekitar. Kompresor dan steam reformer merupakan unit-unit yang penting dalam pabrik biohidrogen dari biomassa. Kompresor berguna untuk mencapai tekanan tinggi pada kondisi operasi selanjutnya sedangkan Steam Reformer merupakan proses utama dari pabrik ini yang berguna untuk menghasilkan gas H2.
Model Predictive Control (MPC) merupakan suatu pengendali yang dapat bekerja dengan basis model yang diharapkan akan menghasilkan kinerja yang lebih baik daripada pengendali lainnya. Pemodelan proses dilakukan dengan menggunakan model empirik sedangkan proses optimasi dilakukan dengan penyetelan terhadap paramter-parameter pengendali MPC seperti waktu sampel (T), prediction horizon (P), dan control horizon (M). Hasil pengendalian tekanan kompresor dan suhu steam reformer adalah pengendali MPC memiliki kinerja yang lebih baik dari pada pengendali PI dengan melakukan reidentifikasi sistem untuk mendapatkan pemodelan yang sesuai.

Hydrogen is one of the substances / gases that used by people, especially in the chemical industry. The number of units in a factory making many distractions that will occur in a process plant, the interference will affect the effectiveness and stability of the plant's operations that also affect the surrounding environment. Compressors and a steam reformer are the important units in biohidrogen from biomass plant. The compressor is useful for achieving high-pressure operating conditions while Steam Reformer next is the main process of this plant are useful to produce H2 gas.
Model Predictive Control (MPC) is a controller that can work with the base model is expected to has better performance than other controllers. Process modeling is done by using the empirical model while the optimization process is done by setting the parameter-MPC controller parameters such as sample time (T), prediction horizon (P), and the control horizon (M). The results of the compressor pressure control and temperature control of steam reformer is the MPC controller has better performance than the PI controller by performing system reidentification to obtain appropriate model.
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Depok: Fakultas Teknik Universitas Indonesia, 2014
S54815
UI - Skripsi Membership  Universitas Indonesia Library
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Mosca, Edoardo
New Jersey: Prentice-Hall, 1995
621.381 2 MOS o
Buku Teks  Universitas Indonesia Library
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