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Statistics 1: Introduction to ANOVA, Regression, and Logistic Regression

EDU Trainings s.r.o.

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This introductory course is for SAS software users who perform statistical analyses using SAS/STAT software. The focus is on tests, ANOVA, and linear regression, and includes a brief introduction to logistic regression. This course (or equivalent knowledge) is a prerequisite to many of the courses in the statistical analysis curriculum. A more advanced treatment of ANOVA and regression occurs in the Statistics 2: ANOVA and Regression course. A more advanced treatment of logistic regression occurs in the Categorical Data Analysis Using Logistic Regression course and the Predictive Modeling Using Logistic Regression course.

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Course Overview and Review of ConceptsDescriptive statistics.Inferential statistics.Examining data distributions.Obtaining and interpreting sample statistics using the UNIVARIATE procedure.Examining data distributions graphically in the UNIVARIATE and FREQ procedures.Constructing confidence intervals.Performing simple tests of hypothesis.Performing tests of differences between two group means using PROC TTEST.ANOVA and RegressionPerforming one-way ANOVA with the GLM procedure.Performing post-hoc multiple comparisons tests in PROC GLM.Producing correlations with the CORR procedure.Fitting a simple linear regression model with the REG procedure.More Complex Linear ModelsPerforming two-way ANOVA with and without interactions.Understanding the concepts of multiple regression.Model Building and Effect SelectionAutomated model selection techniques in PROC GLMSELECT to choose from among several candidate models.Interpreting and comparison of selected models.Model Post-Fitting for InferenceExamining residuals.Investigating influential observations.Assessing collinearity.Model Building and Scoring for PredictionUnderstanding the concepts of predictive modeling.Understanding the importance of data partitioning.Understanding the concepts of scoring.Obtaining predictions (scoring) for new data using PROC GLMSELECT and PROC PLM.Categorical Data AnalysisProducing frequency tables with the FREQ procedure.Examining tests for general and linear association using the FREQ procedure.Understanding exact tests.Understanding the concepts of logistic regression.Fitting univariate and multivariate logistic regression models using the LOGISTIC procedure.Using automated model selection techniques in PROC LOGISTIC including interaction terms.Obtaining predictions (scoring) for new data using PROC PLM.

Cieľová skupina

Statisticians, researchers, and business analysts who use SAS programming to generate analyses using either continuous or categorical response (dependent) variables
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