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Contains PDF course guide, as well as a lab environment where students can work through demonstrations and exercises at their own pace.
This Time Series Analysis Using IBM SPSS Modeler (v18.1.1) course gets you up and running with a set of procedures for analyzing time series data. Learn how to forecast using a variety of models, including regression, exponential smoothing, and ARIMA, which take into account different combinations of trend and seasonality. The Expert Modeler features will be covered, which is designed to automatically select the best fitting exponential smoothing or ARIMA model, but you will also learn how to specify your own custom models, and also how to identify ARIMA models yourself using a variety of diagnostic tools such as time plots and autocorrelation plots.
If you are enrolling in a Self Paced Virtual Classroom or Web Based Training course, before you enroll, please review the Self-Paced Virtual Classes and Web-Based Training Classes on our Terms and Conditions page, as well as the system requirements, to ensure that your system meets the minimum requirements for this course.
Please refer to course overview
1: Introduction to time series analysis
2: Automatic forecasting with the Expert Modeler
3: Measuring model performance
4: Time series regression
5: Exponential smoothing models
6: ARIMA modeling