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    1. Naturvetenskap och teknik
    2. Matematik och naturvetenskap
    3. Matematik
    4. Matematisk statistik

    Time Series Analysis with Long Memory in View

    AvUwe Hassler

    Inbunden, Engelska, 2019

    Del i serien Wiley Series in Probability and Statistics

    1 553 kr

    Beställningsvara. Skickas inom 11-20 vardagar. Fri frakt över 249 kr.

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    E-bok

    1 751 kr

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    Beskrivning

    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 proofsContains many new results on long memory processes which have not appeared in previous and existing textbooksTakes a basic mathematics (Calculus) approach to the topic of time series analysis with long memoryContains 25 illustrative figures as well as lists of notations and acronymsTime 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.

    Produktinformation

    • Utgivningsdatum:2019-02-01
    • Mått:158 x 236 x 20 mm
    • Vikt:590 g
    • Format:Inbunden
    • Språk:Engelska
    • Serie:Wiley Series in Probability and Statistics
    • Antal sidor:288
    • Förlag:John Wiley & Sons Inc
    • ISBN:9781119470403

    Utforska kategorier

    • Matematisk statistik inom Naturvetenskap och teknik

    Mer om författaren

    UWE HASSLER, PHD, is full professor of statistics and econometric methods, Goethe University, Frankfurt. He is also associate editor of Advances in Statistical Analysis. He received his PhD from FU Berlin in 1993 and is recipient of the Opus magnum grant from VolkswagenStiftung.

    Innehållsförteckning

    • List of Figures xiPreface xiiiList of Notation xvAcronyms xvii1 Introduction 11.1 Empirical Examples 11.2 Overview 62 Stationary Processes 112.1 Stochastic Processes 112.2 Ergodicity 142.3 Memory and Persistence 222.4 Technical Appendix: Proofs 253 Moving Averages and Linear Processes 273.1 Infinite Series and Summability 273.2 Wold Decomposition and Invertibility 323.3 Persistence versus Memory 373.4 Autoregressive Moving Average Processes 473.5 Technical Appendix: Proofs 514 Frequency Domain Analysis 574.1 Decomposition into Cycles 574.2 Complex Numbers and Transfer Functions 624.3 The Spectrum 634.4 Parametric Spectra 684.5 (Asymptotic) Properties of the Periodogram 724.6 Whittle Estimation 764.7 Technical Appendix: Proofs 815 Differencing and Integration 895.1 Integer Case 895.2 Approximating Sequences and Functions 915.3 Fractional Case 955.4 Technical Appendix: Proofs 996 Fractionally Integrated Processes 1036.1 Definition and Properties 1036.2 Examples and Discussion 1086.3 Nonstationarity and Type I Versus II 1146.4 Practical Issues 1186.5 Frequency Domain Assumptions 1206.6 Technical Appendix: Proofs 1237 Sample Mean 1277.1 Central Limit Theorem for I(0) Processes 1277.2 Central Limit Theorem for I(d) Processes 1297.3 Functional Central Limit Theory 1327.4 Inference About the Mean 1397.5 Sample Autocorrelation 1417.6 Technical Appendix: Proofs 1458 Parametric Estimators 1498.1 Parametric Assumptions 1498.2 Exact Maximum Likelihood Estimation 1508.3 Conditional Sum of Squares 1548.4 Parametric Whittle Estimation 1568.5 Log-periodogram Regression of FEXP Processes 1618.6 Fractionally Integrated Noise 1648.7 Technical Appendix: Proofs 1659 Semiparametric Estimators 1699.1 Local Log-periodogram Regression 1699.2 Local Whittle Estimation 1759.3 Finite Sample Approximation 1829.4 Bias Approximation and Reduction 1849.5 Bandwidth Selection 1889.6 Global Estimators 1939.7 Technical Appendix: Proofs 19510 Testing 19710.1 Hypotheses on Fractional Integration 19710.2 Rescaled Range or Variance 19910.3 The Score Test Principle 20410.4 Lagrange Multiplier (LM) Test 20510.5 LM Test in the Frequency Domain 21010.6 Regression-based LM Test 21310.7 Technical Appendix: Proofs 21811 Further Topics 22311.1 Model Selection and Specification Testing 22311.2 Spurious Long Memory 22611.3 Forecasting 22911.4 Cyclical and Seasonal Models 23111.5 Long Memory in Volatility 23411.6 Fractional Cointegration 23611.7 R Packages 24011.8 Neglected Topics 241Bibliography 245Index 267