EDUCBA

Time Series Forecasting Toolkit: Excel, R, Python and EViews Specialization

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EDUCBA

Time Series Forecasting Toolkit: Excel, R, Python and EViews Specialization

EDUCBA

Instructor: EDUCBA

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Get in-depth knowledge of a subject
Beginner level

Recommended experience

4 weeks to complete
at 10 hours a week
Flexible schedule
Learn at your own pace
Get in-depth knowledge of a subject
Beginner level

Recommended experience

4 weeks to complete
at 10 hours a week
Flexible schedule
Learn at your own pace

What you'll learn

  • Analyze time series data to identify trends, seasonality, autocorrelation, and predictive relationships.

  • Build and evaluate regression, exponential smoothing, ARMA, ARIMA, and SARIMA forecasting models.

  • Apply Excel, R, Python, and EViews to generate, validate, interpret, and communicate reliable forecasts.

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Taught in English
Recently updated!

August 2026

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Specialization - 4 course series

Apply and Predict: Time Series Forecasting in Excel

Apply and Predict: Time Series Forecasting in Excel

Course 1, 11 hours

What you'll learn

  • Define forecasting concepts and analyze low, medium, and high emission scenarios.

  • Apply weighted and exponential averages for climate data forecasting.

  • Perform correlation and regression modeling to predict outcomes in Excel.

Skills you'll gain

Category: Time Series Analysis and Forecasting
Category: Trend Analysis
Category: Microsoft Excel
Category: Forecasting
Category: Regression Analysis
Category: Predictive Analytics
Category: Excel Formulas
Category: Correlation Analysis
Category: Analytical Skills
Category: Statistical Methods
Category: Probability & Statistics
Category: Statistical Analysis
Category: Analysis
Category: Climate Change Programs
Category: Predictive Modeling
Category: Data Manipulation
Category: Data Analysis Software
Category: Data Analysis
Category: Graphing
Category: Statistical Modeling

What you'll learn

  • Define forecasting fundamentals and classify methods for time-dependent data.

  • Apply regression, decomposition, and exponential smoothing in R.

  • Implement ARIMA and SARIMA models with ACF/PACF diagnostics for accuracy.

Skills you'll gain

Category: Time Series Analysis and Forecasting
Category: Forecasting
Category: Regression Analysis
Category: R Programming
Category: Correlation Analysis
Category: Financial Forecasting
Category: Trend Analysis
Category: Model Evaluation
Category: Decision Making
Category: Advanced Analytics
Category: Business Analytics
Category: Statistical Analysis
Category: Predictive Modeling
Category: Statistical Methods
Category: Predictive Analytics
Category: Business
Category: Analytics
Category: Statistical Modeling

What you'll learn

  • Develop expertise in time series analysis, forecasting, and linear regression

    Analyze techniques for exploratory data analysis, trend identification

  • Understand various time-series models and implement them using Python

    Prepare and preprocess data for accurate linear regression modeling

  • Build and interpret linear regression models for informed decision-making

Skills you'll gain

Category: Time Series Analysis and Forecasting
Category: Regression Analysis
Category: Feature Engineering
Category: Forecasting
Category: Data Preprocessing
Category: Exploratory Data Analysis
Category: Predictive Modeling
Category: Statistical Analysis
Category: Data Science
Category: Python Programming
Category: Data Analysis
Category: Model Evaluation
Category: Data Transformation

What you'll learn

  • Identify the characteristics of univariate time series data and interpret correlograms using EViews.

  • Analyze autocorrelation and partial autocorrelation to determine appropriate univariate time series models.

  • Interpret ARMA estimation results and evaluate parameter significance using statistical diagnostics in EViews.

  • Assess model adequacy by analyzing residual correlograms and applying the Ljung-Box Q test.

Skills you'll gain

Category: Time Series Analysis and Forecasting
Category: Statistical Modeling
Category: Exploratory Data Analysis
Category: Statistical Software
Category: Analysis
Category: Verification And Validation
Category: Correlation Analysis
Category: Statistical Methods
Category: Data Analysis Software
Category: Data Analysis
Category: Forecasting
Category: Statistical Hypothesis Testing
Category: Model Evaluation
Category: Predictive Modeling
Category: Plot (Graphics)

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Instructor

EDUCBA
EDUCBA
1,708 Courses405,445 learners

Offered by

EDUCBA

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