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  • BTU Cottbus  (4)
  • SB Rathenow
  • HTW Berlin
  • Bibliothek des Konservatismus
  • SB Finsterwalde
  • Wahrscheinlichkeitsrechnung  (4)
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  • 1
    UID:
    b3kat_BV009110277
    Format: XII, 240 S. , Illustrationen
    ISBN: 3540941614 , 0387941614
    Content: This book comprises a collection of 125 problems and snapshots from discrete probability. The problems are selected on the basis of their elegance and utility whereas the snapshots are intended to provide a quick overview of topics in probability. These include combinatorics, Poisson approximation, patterns in random sequences, Markov chains, random walks, cover times, and embedding procedures
    Content: A wide range of readers will enjoy this diverse selection of topics. Students will find this a helpful and stimulating companion to their probability courses. The snapshots will leave the students with an expanded knowledge about topics not generally covered by textbooks. Other than a basic exposure to probabilistic ideas, such as might be gained from a first course in probability, it is self-contained
    Content: Consequently, almost all of the problems can be tackled by undergraduate students as well as appeal to those who enjoy the challenge of constructing and solving problems
    Note: Literaturverz. S. 230 - 235
    Language: English
    Subjects: Mathematics
    RVK:
    Keywords: Wahrscheinlichkeitsrechnung ; Wahrscheinlichkeit ; Beispielsammlung
    Library Location Call Number Volume/Issue/Year Availability
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  • 2
    UID:
    b3kat_BV042419941
    Format: 1 Online-Ressource (XXII, 489 p)
    Edition: Third Edition
    ISBN: 9781461219507 , 9780387406077
    Series Statement: Springer Texts in Statistics
    Note: Now available in paperback. This is a text comprising the major theorems of probability theory and the measure theoretical foundations of the subject. The main topics treated are independence, interchangeability,and martingales; particular emphasis is placed upon stopping times, both as tools in proving theorems and as objects of interest themselves. No prior knowledge of measure theory is assumed and a unique feature of the book is the combined presentation of measure and probability. It is easily adapted for graduate students familar with measure theory as indicated by the guidelines in the preface. Special features include: A comprehensive treatment of the law of the iterated logarithm; the Marcinklewicz-Zygmund inequality, its extension to martingales and applications thereof; development and applications of the second moment analogue of Wald's equation; limit theorems for martingale arrays, the central limit theorem for the interchangeable and martingale cases, moment convergence in the central limit theorem; complete discussion, including central limit theorem, of the random casting of r balls into n cells; recent martingale inequalities; Cram r-L vy theore and factor-closed families of distributions. This edition includes a section dealing with U-statistic, adds additional theorems and examples, and includes simpler versions of some proofs
    Language: English
    Keywords: Wahrscheinlichkeitsrechnung ; Martingal ; Wahrscheinlichkeitstheorie
    Author information: Chow, Yuan Shih 1924-
    Author information: Teicher, Henry 1922-
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  • 3
    Online Resource
    Online Resource
    New York, NY : Springer US
    UID:
    b3kat_BV046871499
    Format: 1 Online-Ressource (VIII, 490 p)
    Edition: 1st ed. 2000
    ISBN: 9781475748284
    Series Statement: International Series in Operations Research & Management Science 24
    Content: Great advances have been made in recent years in the field of computational probability. In particular, the state of the art - as it relates to queuing systems, stochastic Petri-nets and systems dealing with reliability - has benefited significantly from these advances. The objective of this book is to make these topics accessible to researchers, graduate students, and practitioners. Great care was taken to make the exposition as clear as possible. Every line in the book has been evaluated, and changes have been made whenever it was felt that the initial exposition was not clear enough for the intended readership. The work of major research scholars in this field comprises the individual chapters of Computational Probability. The first chapter describes, in nonmathematical terms, the challenges in computational probability. Chapter 2 describes the methodologies available for obtaining the transition matrices for Markov chains, with particular emphasis on stochastic Petri-nets.
    Content: Chapter 3 discusses how to find transient probabilities and transient rewards for these Markov chains. The next two chapters indicate how to find steady-state probabilities for Markov chains with a finite number of states. Both direct and iterative methods are described in Chapter 4. Details of these methods are given in Chapter 5. Chapters 6 and 7 deal with infinite-state Markov chains, which occur frequently in queueing, because there are times one does not want to set a bound for all queues. Chapter 8 deals with transforms, in particular Laplace transforms. The work of Ward Whitt and his collaborators, who have recently developed a number of numerical methods for Laplace transform inversions, is emphasized in this chapter. Finally, if one wants to optimize a system, one way to do the optimization is through Markov decision making, described in Chapter 9.
    Content: Markov modeling has found applications in many areas, three of which are described in detail: Chapter 10 analyzes discrete-time queues, Chapter 11 describes networks of queues, and Chapter 12 deals with reliability theory
    Additional Edition: Erscheint auch als Druck-Ausgabe ISBN 9781441951007
    Additional Edition: Erscheint auch als Druck-Ausgabe ISBN 9780792386179
    Additional Edition: Erscheint auch als Druck-Ausgabe ISBN 9781475748291
    Language: English
    Subjects: Computer Science , Mathematics
    RVK:
    RVK:
    Keywords: Wahrscheinlichkeitsrechnung ; Datenverarbeitung
    URL: Volltext  (URL des Erstveröffentlichers)
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  • 4
    Online Resource
    Online Resource
    New York, NY : Springer New York
    UID:
    b3kat_BV042420073
    Format: 1 Online-Ressource (XII, 205p. 19 illus)
    ISBN: 9781461227267 , 9781461276432
    Series Statement: Springer Texts in Statistics
    Note: These notes were written as a result of my having taught a "nonmeasure theoretic" course in probability and stochastic processes a few times at the Weizmann Institute in Israel. I have tried to follow two principles. The first is to prove things "probabilistically" whenever possible without recourse to other branches of mathematics and in a notation that is as "probabilistic" as possible. Thus, for example, the asymptotics of pn for large n, where P is a stochastic matrix, is developed in Section V by using passage probabilities and hitting times rather than, say, pulling in Perron­ Frobenius theory or spectral analysis. Similarly in Section II the joint normal distribution is studied through conditional expectation rather than quadratic forms. The second principle I have tried to follow is to only prove results in their simple forms and to try to eliminate any minor technical com­ putations from proofs, so as to expose the most important steps. Steps in proofs or derivations that involve algebra or basic calculus are not shown; only steps involving, say, the use of independence or a dominated convergence argument or an assumptjon in a theorem are displayed. For example, in proving inversion formulas for characteristic functions I omit steps involving evaluation of basic trigonometric integrals and display details only where use is made of Fubini's Theorem or the Dominated Convergence Theorem
    Language: English
    Keywords: Stochastischer Prozess ; Wahrscheinlichkeitstheorie ; Wahrscheinlichkeitsrechnung ; Einführung
    Library Location Call Number Volume/Issue/Year Availability
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