Long-Memory Processes

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Release : 2013-05-14
Genre : Mathematics
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Book Rating : 129/5 ( reviews)

Long-Memory Processes - read free eBook in online reader or directly download on the web page. Select files or add your book in reader. Download and read online ebook Long-Memory Processes write by Jan Beran. This book was released on 2013-05-14. Long-Memory Processes available in PDF, EPUB and Kindle. Long-memory processes are known to play an important part in many areas of science and technology, including physics, geophysics, hydrology, telecommunications, economics, finance, climatology, and network engineering. In the last 20 years enormous progress has been made in understanding the probabilistic foundations and statistical principles of such processes. This book provides a timely and comprehensive review, including a thorough discussion of mathematical and probabilistic foundations and statistical methods, emphasizing their practical motivation and mathematical justification. Proofs of the main theorems are provided and data examples illustrate practical aspects. This book will be a valuable resource for researchers and graduate students in statistics, mathematics, econometrics and other quantitative areas, as well as for practitioners and applied researchers who need to analyze data in which long memory, power laws, self-similar scaling or fractal properties are relevant.

Statistics for Long-Memory Processes

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Release : 1994-10-01
Genre : Mathematics
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Book Rating : 019/5 ( reviews)

Statistics for Long-Memory Processes - read free eBook in online reader or directly download on the web page. Select files or add your book in reader. Download and read online ebook Statistics for Long-Memory Processes write by Jan Beran. This book was released on 1994-10-01. Statistics for Long-Memory Processes available in PDF, EPUB and Kindle. Statistical Methods for Long Term Memory Processes covers the diverse statistical methods and applications for data with long-range dependence. Presenting material that previously appeared only in journals, the author provides a concise and effective overview of probabilistic foundations, statistical methods, and applications. The material emphasizes basic principles and practical applications and provides an integrated perspective of both theory and practice. This book explores data sets from a wide range of disciplines, such as hydrology, climatology, telecommunications engineering, and high-precision physical measurement. The data sets are conveniently compiled in the index, and this allows readers to view statistical approaches in a practical context. Statistical Methods for Long Term Memory Processes also supplies S-PLUS programs for the major methods discussed. This feature allows the practitioner to apply long memory processes in daily data analysis. For newcomers to the area, the first three chapters provide the basic knowledge necessary for understanding the remainder of the material. To promote selective reading, the author presents the chapters independently. Combining essential methodologies with real-life applications, this outstanding volume is and indispensable reference for statisticians and scientists who analyze data with long-range dependence.

Large Sample Inference For Long Memory Processes

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Release : 2012-04-27
Genre : Mathematics
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Book Rating : 387/5 ( reviews)

Large Sample Inference For Long Memory Processes - read free eBook in online reader or directly download on the web page. Select files or add your book in reader. Download and read online ebook Large Sample Inference For Long Memory Processes write by Donatas Surgailis. This book was released on 2012-04-27. Large Sample Inference For Long Memory Processes available in PDF, EPUB and Kindle. Box and Jenkins (1970) made the idea of obtaining a stationary time series by differencing the given, possibly nonstationary, time series popular. Numerous time series in economics are found to have this property. Subsequently, Granger and Joyeux (1980) and Hosking (1981) found examples of time series whose fractional difference becomes a short memory process, in particular, a white noise, while the initial series has unbounded spectral density at the origin, i.e. exhibits long memory.Further examples of data following long memory were found in hydrology and in network traffic data while in finance the phenomenon of strong dependence was established by dramatic empirical success of long memory processes in modeling the volatility of the asset prices and power transforms of stock market returns.At present there is a need for a text from where an interested reader can methodically learn about some basic asymptotic theory and techniques found useful in the analysis of statistical inference procedures for long memory processes. This text makes an attempt in this direction. The authors provide in a concise style a text at the graduate level summarizing theoretical developments both for short and long memory processes and their applications to statistics. The book also contains some real data applications and mentions some unsolved inference problems for interested researchers in the field./a

Long-Memory Processes

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Release : 2013-05-31
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Book Rating : 134/5 ( reviews)

Long-Memory Processes - read free eBook in online reader or directly download on the web page. Select files or add your book in reader. Download and read online ebook Long-Memory Processes write by Jan Beran. This book was released on 2013-05-31. Long-Memory Processes available in PDF, EPUB and Kindle.

Time Series Analysis with Long Memory in View

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Release : 2018-09-07
Genre : Mathematics
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Book Rating : 420/5 ( reviews)

Time Series Analysis with Long Memory in View - read free eBook in online reader or directly download on the web page. Select files or add your book in reader. Download and read online ebook Time Series Analysis with Long Memory in View write by Uwe Hassler. This book was released on 2018-09-07. Time Series Analysis with Long Memory in View available in PDF, EPUB and Kindle. Provides a simple exposition of the basic time series material, and insights into underlying technical aspects and methods of proof Long memory time series are characterized by a strong dependence between distant events. This book introduces readers to the theory and foundations of univariate time series analysis with a focus on long memory and fractional integration, which are embedded into the general framework. It presents the general theory of time series, including some issues that are not treated in other books on time series, such as ergodicity, persistence versus memory, asymptotic properties of the periodogram, and Whittle estimation. Further chapters address the general functional central limit theory, parametric and semiparametric estimation of the long memory parameter, and locally optimal tests. Intuitive and easy to read, Time Series Analysis with Long Memory in View offers chapters that cover: Stationary Processes; Moving Averages and Linear Processes; Frequency Domain Analysis; Differencing and Integration; Fractionally Integrated Processes; Sample Means; Parametric Estimators; Semiparametric Estimators; and Testing. It also discusses further topics. This book: Offers beginning-of-chapter examples as well as end-of-chapter technical arguments and proofs Contains many new results on long memory processes which have not appeared in previous and existing textbooks Takes a basic mathematics (Calculus) approach to the topic of time series analysis with long memory Contains 25 illustrative figures as well as lists of notations and acronyms Time Series Analysis with Long Memory in View is an ideal text for first year PhD students, researchers, and practitioners in statistics, econometrics, and any application area that uses time series over a long period. It would also benefit researchers, undergraduates, and practitioners in those areas who require a rigorous introduction to time series analysis.