This course provides a comprehensive and hands-on introduction to univariate time series modeling with a strong focus on ARMA (AutoRegressive Moving Average) techniques using EViews software. Designed for learners with foundational statistical knowledge, the course enables participants to apply, analyze, and evaluate key components of time series analysis, from identifying autocorrelation patterns to building and diagnosing ARMA models.
In Module 1, learners are guided through the conceptual foundation of univariate time series, including the construction and interpretation of correlograms. Using real-world data, students identify time-dependent components and analyze autocorrelation structures to determine appropriate model forms.
In Module 2, the focus shifts to ARMA estimation, output interpretation, and model diagnostics. Learners interpret EViews estimation results, evaluate parameter significance, and assess residual patterns using correlograms and statistical tests such as the Ljung-Box Q test.
Throughout the course, practical exercises and quizzes reinforce understanding, enabling learners to develop models that are both theoretically sound and empirically valid. By course completion, participants will be able to confidently construct and validate univariate ARMA models for real-world forecasting and analytical tasks.
This module introduces learners to the fundamental concepts of univariate time series analysis using EViews. It begins with an overview of the principles and motivations behind modeling a single time-dependent variable and continues with hands-on demonstrations using examples and real data. Emphasis is placed on understanding and constructing correlograms, interpreting autocorrelation and partial autocorrelation plots, and diagnosing model suitability through estimation outputs. By the end of this module, learners will be equipped to apply core techniques in univariate time series modeling and interpret diagnostic results to guide model refinement.
Das ist alles enthalten
6 Videos3 Aufgaben
Infos zu Modulinhalt anzeigen
6 Videos•Insgesamt 54 Minuten
Univariate Time Series Modelling•11 Minuten
Example of Univariate Time Series Modelling•10 Minuten
Understanding and Implementing Correlogram•8 Minuten
Correlogram Analysis•8 Minuten
Correlogram Analysis Continues•6 Minuten
Estimation Output Analysis and Interpretation•12 Minuten
3 Aufgaben•Insgesamt 50 Minuten
Fundamentals of Time Series and Correlogram Concepts•10 Minuten
Deep Dive into Correlogram Analysis•10 Minuten
Graded - Foundations of Univariate Time Series Modeling•30 Minuten
ARMA Modeling and Diagnostic Techniques
Modul 2•2 Stunden abzuschließen
Moduldetails
This module builds upon foundational time series concepts to guide learners through the estimation, interpretation, and validation of ARMA (AutoRegressive Moving Average) models using EViews. It emphasizes the significance of model coefficients, goodness-of-fit statistics, and diagnostic checks including correlograms and residual analysis. Through real-time demonstrations and estimation outputs, learners gain practical skills in refining time series models and ensuring their statistical adequacy for forecasting applications.
Das ist alles enthalten
6 Videos3 Aufgaben
Infos zu Modulinhalt anzeigen
6 Videos•Insgesamt 57 Minuten
Interpretation of the ARMA Model•6 Minuten
Interpretation of the ARMA Model Continues•10 Minuten
Correlogram Estimation of Output Model•8 Minuten
Correlogram Estimation of ARMA Model•11 Minuten
More on ARMA Model•11 Minuten
Correlogram and Estimation Output for ARMA Model•12 Minuten
3 Aufgaben•Insgesamt 50 Minuten
Interpreting and Estimating ARMA Models•10 Minuten
Practical Correlogram Use in ARMA•10 Minuten
Graded - ARMA Modeling and Diagnostic Techniques•30 Minuten
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