Family of High-Ordered Integer-Valued Auto-Regressive Models and Applications
eBook - ePub

Family of High-Ordered Integer-Valued Auto-Regressive Models and Applications

  1. English
  2. ePUB (mobile friendly)
  3. Available on iOS & Android
eBook - ePub

Family of High-Ordered Integer-Valued Auto-Regressive Models and Applications

About this book

This book tackles the complexities of integer-valued time series analysis, focusing on over-dispersion, excess zeros, and non-stationarity. It explores high-ordered INAR(p) models with diverse thinning mechanisms and innovation distributions, finding CML superior for inference. Addressing periodic-ity, harmonic functions are introduced for COVID-19 data. Novel BINAR (1) models with BPWE and SPWE innovations are applied to stock transactions, while new BPGL and SPGL bivariate distributions analyze crime data.

The book derives methodologies, tests performance via simulation, and provides real-life applications, filling a gap in existing literature. This comprehensive work significantly advances the field of integer-valued time series analysis by addressing key challenges such as over-dispersion and periodicity. The detailed exploration of high-ordered INAR(p) models under various thinning mechanisms and innovation distributions provides valuable insights into their performance, with the clear outperformance of the CML inferential method offering practical guidance for researchers. The innovative incorporation of harmonic functions to model the periodic nature of the COVID-19 data in Mauritius demonstrates a crucial adaptation to real-world phenomena. Furthermore, the development and application of novel BINAR (1) models and bivariate distributions like BPGL and SPGL expand the analytical toolkit for understanding the relationships between multiple integer-valued series, exemplified by their application to stock transactions and crime data. By deriving new methodologies, rigorously testing their performance through simulation, and illustrating their utility with diverse real-life applications, this book offers substantial theoretical and practical contributions to the field, addressing limitations in existing literature.

The target audience includes researchers, statisticians, and practitioners working with count data and time series analysis in fields like econometrics, finance, epidemiology, and criminology.

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Information

Year
2026
eBook ISBN
9781040624029

Table of contents

  1. Cover Page
  2. Half-Title Page
  3. Title Page
  4. Copyright Page
  5. Contents
  6. Preface
  7. 1 Introduction
  8. 2 State of Art
  9. 3 Simulation Study
  10. 4 Application: The Novel Coronavirus 2019 (COVID-19) in Mauritius
  11. 5 High-Ordered Integer-Valued Time Series Models with Harmonic Features
  12. 6 Exploring the Bivariate Processes—The Bivariate INAR (1) Model with Paired Poisson—Weighted Exponential Distributions
  13. 7 Bivariate Poisson Generalized Lindley Distribution and the Associated BINAR (1) Process
  14. 8 Extension of BINAR (1) to BINAR( p) Proces
  15. 9 Summary and Future Directions
  16. Appendices
  17. Bibliography
  18. Index

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Yes, you can access Family of High-Ordered Integer-Valued Auto-Regressive Models and Applications by Ashwinee Devi Soobhug,Naushad Mamode Khan,Sunecher Yuvraj in PDF and/or ePUB format, as well as other popular books in Mathematics & Probability & Statistics. We have over 1.5 million books available in our catalogue for you to explore.