Time Series for Data Science: Analysis and Forecasting: Chapman & Hall/CRC Texts in Statistical Science
Autor Wayne A. Woodward, Bivin Philip Sadler, Stephen Robertsonen Limba Engleză Hardback – aug 2022
This book is an accessible guide that doesn’t require a background in calculus to be engaging but does not shy away from deeper explanations of the techniques discussed.
Features:
- Provides a thorough coverage and comparison of a wide array of time series models and methods: Exponential Smoothing, Holt Winters, ARMA and ARIMA, deep learning models including RNNs, LSTMs, GRUs, and ensemble models composed of combinations of these models.
- Introduces the factor table representation of ARMA and ARIMA models. This representation is not available in any other book at this level and is extremely useful in both practice and pedagogy.
- Uses real world examples that can be readily found via web links from sources such as the US Bureau of Statistics, Department of Transportation and the World Bank.
- There is an accompanying R package that is easy to use and requires little or no previous R experience. The package implements the wide variety of models and methods presented in the book and has tremendous pedagogical use.
Toate formatele și edițiile | Preț | Express |
---|---|---|
Paperback (1) | 349.09 lei 3-5 săpt. | +22.67 lei 7-13 zile |
CRC Press – 27 mai 2024 | 349.09 lei 3-5 săpt. | +22.67 lei 7-13 zile |
Hardback (1) | 736.75 lei 3-5 săpt. | +48.16 lei 7-13 zile |
CRC Press – aug 2022 | 736.75 lei 3-5 săpt. | +48.16 lei 7-13 zile |
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Specificații
ISBN-13: 9780367537944
ISBN-10: 036753794X
Pagini: 528
Ilustrații: 74 Tables, black and white; 268 Line drawings, black and white; 4 Halftones, black and white; 272 Illustrations, black and white
Dimensiuni: 178 x 254 x 35 mm
Greutate: 1.24 kg
Ediția:1
Editura: CRC Press
Colecția Chapman and Hall/CRC
Seria Chapman & Hall/CRC Texts in Statistical Science
ISBN-10: 036753794X
Pagini: 528
Ilustrații: 74 Tables, black and white; 268 Line drawings, black and white; 4 Halftones, black and white; 272 Illustrations, black and white
Dimensiuni: 178 x 254 x 35 mm
Greutate: 1.24 kg
Ediția:1
Editura: CRC Press
Colecția Chapman and Hall/CRC
Seria Chapman & Hall/CRC Texts in Statistical Science
Public țintă
AcademicNotă biografică
Wayne Woodward, Bivin Sadler, Stephen Robertson
Cuprins
1. Working with Data Collected Over Time, 2. Exploring Time Series Data, 3. Statistical Basics for Time Series Analysis, 4. The Frequency Domain, 5. ARMA Models, 6. ARMA Fitting and Forecasting, 7. ARIMA, Seasonal,and ARCH/GARCH Models, 8. Time Series Regression, 9. Model Assessment, 10. Multivariate Time Series, 11. Deep Neural Network Based Time Series Models
Recenzii
"A well-structured text aimed at undergraduates pursuing a data science curriculum, or MBA students. The authors draw upon their vast combined experience in research and teaching to a variety of audiences to present the classical material on ARMA-based Box-Jenkins methodology without assuming a calculus background. Yet, their approach manages to be heuristic, while not sacrificing relevant theoretical detail that enriches understanding. The authors complement this material with chapters on multivariate models, and, refreshingly, a very enlightening discussion on neural networks. The exposition is lucid, well-organized, and copiously illustrated to reinforce comprehension of concepts. The companion R package (tswge) finds a niche in the growing list of time series toolboxes, by providing clean, straightforward functionality on such essentials as spectrum reconstruction and model factor tables to glean the structure of AR and MA polynomials."
- Alex Trindade, Texas Tech University
- Alex Trindade, Texas Tech University
Descriere
Practical Time Series Analysis for Data Science is an accessible guide that doesn’t require a background in calculus to be engaging but does not shy away from deeper explanations of the techniques discussed.