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Weakly Dependent Stochastic Sequences and Their Applications: Generalized partial-sum processes

Weakly Dependent Stochastic Sequences and Their Applications: Generalized partial-sum processes PDF Author: Ken-ichi Yoshihara
Publisher:
ISBN:
Category : Sequences (Mathematics).
Languages : en
Pages : 410

Book Description


Weakly Dependent Stochastic Sequences and Their Applications: Generalized partial-sum processes

Weakly Dependent Stochastic Sequences and Their Applications: Generalized partial-sum processes PDF Author: Ken-ichi Yoshihara
Publisher:
ISBN:
Category : Sequences (Mathematics).
Languages : en
Pages : 410

Book Description


Weakly Dependent Stochastic Sequences and Their Applications: Order statistics based on weakly dependent data

Weakly Dependent Stochastic Sequences and Their Applications: Order statistics based on weakly dependent data PDF Author: Ken-ichi Yoshihara
Publisher:
ISBN:
Category : Stochastic sequences
Languages : en
Pages : 360

Book Description


Bulletin of the Faculty of Engineering, Yokohama National University

Bulletin of the Faculty of Engineering, Yokohama National University PDF Author:
Publisher:
ISBN:
Category : Engineering
Languages : en
Pages : 578

Book Description


Handbook of Financial Time Series

Handbook of Financial Time Series PDF Author: Torben Gustav Andersen
Publisher: Springer Science & Business Media
ISBN: 3540712976
Category : Business & Economics
Languages : en
Pages : 1045

Book Description
The Handbook of Financial Time Series gives an up-to-date overview of the field and covers all relevant topics both from a statistical and an econometrical point of view. There are many fine contributions, and a preamble by Nobel Prize winner Robert F. Engle.

Advances in Stochastic Inequalities

Advances in Stochastic Inequalities PDF Author: Theodore Preston Hill
Publisher: American Mathematical Soc.
ISBN: 0821810863
Category : Mathematics
Languages : en
Pages : 226

Book Description
Contains 15 articles based on invited talks given at an AMS Special Session on 'Stochastic Inequalities and Their Applications' held at Georgia Institute of Technology (Atlanta). This book includes articles that offer a comprehensive picture of this area of mathematical probability and statistics.

Empirical Process Techniques for Dependent Data

Empirical Process Techniques for Dependent Data PDF Author: Herold Dehling
Publisher: Springer Science & Business Media
ISBN: 1461200997
Category : Mathematics
Languages : en
Pages : 378

Book Description
Empirical process techniques for independent data have been used for many years in statistics and probability theory. These techniques have proved very useful for studying asymptotic properties of parametric as well as non-parametric statistical procedures. Recently, the need to model the dependence structure in data sets from many different subject areas such as finance, insurance, and telecommunications has led to new developments concerning the empirical distribution function and the empirical process for dependent, mostly stationary sequences. This work gives an introduction to this new theory of empirical process techniques, which has so far been scattered in the statistical and probabilistic literature, and surveys the most recent developments in various related fields. Key features: A thorough and comprehensive introduction to the existing theory of empirical process techniques for dependent data * Accessible surveys by leading experts of the most recent developments in various related fields * Examines empirical process techniques for dependent data, useful for studying parametric and non-parametric statistical procedures * Comprehensive bibliographies * An overview of applications in various fields related to empirical processes: e.g., spectral analysis of time-series, the bootstrap for stationary sequences, extreme value theory, and the empirical process for mixing dependent observations, including the case of strong dependence. To date this book is the only comprehensive treatment of the topic in book literature. It is an ideal introductory text that will serve as a reference or resource for classroom use in the areas of statistics, time-series analysis, extreme value theory, point process theory, and applied probability theory. Contributors: P. Ango Nze, M.A. Arcones, I. Berkes, R. Dahlhaus, J. Dedecker, H.G. Dehling,

Advanced Mathematical Methods

Advanced Mathematical Methods PDF Author: Francesco Mainardi
Publisher: MDPI
ISBN: 3039282468
Category : Mathematics
Languages : en
Pages : 198

Book Description
The many technical and computational problems that appear to be constantly emerging in various branches of physics and engineering beg for a more detailed understanding of the fundamental mathematics that serves as the cornerstone of our way of understanding natural phenomena. The purpose of this Special Issue was to establish a brief collection of carefully selected articles authored by promising young scientists and the world's leading experts in pure and applied mathematics, highlighting the state-of-the-art of the various research lines focusing on the study of analytical and numerical mathematical methods for pure and applied sciences.

Stochastic-Process Limits

Stochastic-Process Limits PDF Author: Ward Whitt
Publisher: Springer Science & Business Media
ISBN: 0387217487
Category : Mathematics
Languages : en
Pages : 616

Book Description
From the reviews: "The material is self-contained, but it is technical and a solid foundation in probability and queuing theory is beneficial to prospective readers. [... It] is intended to be accessible to those with less background. This book is a must to researchers and graduate students interested in these areas." ISI Short Book Reviews

Statistical Theory and Method Abstracts

Statistical Theory and Method Abstracts PDF Author:
Publisher:
ISBN:
Category : Statistics
Languages : en
Pages : 780

Book Description


An Introduction to Stochastic Modeling

An Introduction to Stochastic Modeling PDF Author: Howard M. Taylor
Publisher: Academic Press
ISBN: 1483269272
Category : Mathematics
Languages : en
Pages : 410

Book Description
An Introduction to Stochastic Modeling provides information pertinent to the standard concepts and methods of stochastic modeling. This book presents the rich diversity of applications of stochastic processes in the sciences. Organized into nine chapters, this book begins with an overview of diverse types of stochastic models, which predicts a set of possible outcomes weighed by their likelihoods or probabilities. This text then provides exercises in the applications of simple stochastic analysis to appropriate problems. Other chapters consider the study of general functions of independent, identically distributed, nonnegative random variables representing the successive intervals between renewals. This book discusses as well the numerous examples of Markov branching processes that arise naturally in various scientific disciplines. The final chapter deals with queueing models, which aid the design process by predicting system performance. This book is a valuable resource for students of engineering and management science. Engineers will also find this book useful.