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Ditemukan 5002 dokumen yang sesuai dengan query
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King, Alan J.
"While there are several texts on how to solve and analyze stochastic programs, this is the first text to address basic questions about how to model uncertainty, and how to reformulate a deterministic model so that it can be analyzed in a stochastic setting. This text would be suitable as a stand-alone or supplement for a second course in OR/MS or in optimization-oriented engineering disciplines where the instructor wants to explain where models come from and what the fundamental issues are. "
New York: Springer, 2012
e20418916
eBooks  Universitas Indonesia Library
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Shapiro, Alexander
"Optimization problems involving stochastic models occur in almost all areas of science and engineering, such as telecommunications, medicine, and finance. Their existence compels a need for rigorous ways of formulating, analyzing, and solving such problems. This book focuses on optimization problems involving uncertain parameters and covers the theoretical foundations and recent advances in areas where stochastic models are available."
Philadelphia : Society for Industrial and Applied Mathematics, 2009
e20443103
eBooks  Universitas Indonesia Library
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Ibe, Olivier C.
"Markov processes are processes that have limited memory. In particular, their dependence on the past is only through the previous state. They are used to model the behavior of many systems including communications systems, transportation networks, image segmentation and analysis, biological systems and DNA sequence analysis, random atomic motion and diffusion in physics, social mobility, population studies, epidemiology, animal and insect migration, queueing systems, resource management, dams, financial engineering, actuarial science, and decision systems.
Covering a wide range of areas of application of Markov processes, this second edition is revised to highlight the most important aspects as well as the most recent trends and applications of Markov processes. The author spent over 16 years in the industry before returning to academia, and he has applied many of the principles covered in this book in multiple research projects."
London, UK : Elsevier, 2013
e20427198
eBooks  Universitas Indonesia Library
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Nelson, Barry L.
New York: McGraw-Hill Book , 1995
003.76 NEL s
Buku Teks SO  Universitas Indonesia Library
cover
"Research on algorithms and applications of stochastic programming, the study of procedures for decision making under uncertainty over time, has been very active in recent years and deserves to be more widely known. This is the first book devoted to the full scale of applications of stochastic programming and also the first to provide access to publicly available algorithmic systems. The 32 contributed papers in this volume are written by leading stochastic programming specialists and reflect the high level of activity in recent years in research on algorithms and applications. The book introduces the power of stochastic programming to a wider audience and demonstrates the application areas where this approach is superior to other modeling approaches."
Philadelphia : Society for Industrial and Applied Mathematics, 2005
e20443004
eBooks  Universitas Indonesia Library
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Heyman, Daniel P.
New York: McGraw-Hill, 1984
001.424 HEY s
Buku Teks SO  Universitas Indonesia Library
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Heyman, Daniel P.
New York: McGraw-Hill, 1982
001.424 HEY s
Buku Teks SO  Universitas Indonesia Library
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Capasso, Vincenzo
"This book is an introduction to the theory of continuous-time stochastic processes. A balance of theory and applications, the work features concrete examples of modeling real-world problems from biology, medicine, finance, and insurance using stochastic methods. This textbook, offers a rigorous and self-contained introduction to the theory of continuous-time stochastic processes, stochastic integrals, and stochastic differential equations. Expertly balancing theory and applications, the work features concrete examples of modeling real-world problems from biology, medicine, industrial applications, finance, and insurance using stochastic methods. Key topics include: Markov processes Stochastic differential equations Arbitrage-free markets and financial derivatives Insurance risk Population dynamics, and epidemics Agent-based models."
Boston: Springer, 2012
e20395147
eBooks  Universitas Indonesia Library
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Osaki, Shunji
Berlin: Springer-Verlag, 1992
519.2 OSA a
Buku Teks SO  Universitas Indonesia Library
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Parzen, Emanuel, 1929-
"This introductory textbook explains how and why probability models are applied to scientific fields such as medicine, biology, physics, oceanography, economics, and psychology to solve problems about stochastic processes. It does not just show how a problem is solved but explains why by formulating questions and first steps in the solutions.
Stochastic Processes is ideal for a course aiming to give examples of the wide variety of empirical phenomena for which stochastic processes provide mathematical models. It introduces the methods of probability model building and provides the reader with mathematically sound techniques as well as the ability to further study the theory of stochastic processes.
Originally published in 1962, this was the first comprehensive survey of stochastic processes requiring only a minimal background in introductory probability theory and mathematical analysis. Stochastic Processes continues to be unique, with many topics and examples still not discussed in other textbooks. As new fields of applications (such as finance and DNA analysis) become important, researchers will continue to find the fundamental and accessible topics explained in this book essential background for their research.
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Philadelphia: Society for Industrial and Applied Mathematics, 1999
e20450875
eBooks  Universitas Indonesia Library
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