Learners will identify categorical data types, analyze distributions and associations, apply exact tests, construct logistic regression models, and evaluate model performance using SAS. This comprehensive course builds the full skill set needed to work confidently with categorical data across real-world analytical scenarios.
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您将学到什么
Analyze categorical data using frequency tables, associations, and exact tests in SAS.
Build and interpret logistic regression models, including odds ratios and multivariable effects.
Evaluate and validate categorical models using diagnostics, graphics, and predictive assessment techniques.
您将获得的技能
- SAS (Software)
- Advanced Analytics
- Exploratory Data Analysis
- Statistical Analysis
- Data Analysis
- Statistical Hypothesis Testing
- Correlation Analysis
- Statistical Methods
- Descriptive Statistics
- Small Data
- Logistic Regression
- Regression Analysis
- Predictive Analytics
- Statistical Modeling
- Probability & Statistics
- Model Evaluation
要了解的详细信息

添加到您的领英档案
January 2026
16 项作业
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该课程共有4个模块
This module introduces learners to the essential concepts of categorical data analysis using SAS. It builds foundational skills in identifying categorical variables, exploring their distributions, generating frequency tables, interpreting crosstabulations, and evaluating relationships through association tests. Learners gain the analytical groundwork needed to apply more advanced categorical techniques later in the course.
涵盖的内容
10个视频4个作业
This module equips learners with deeper statistical tools for categorical analysis, including Fisher’s Exact Test, exact p-value computation, ordinal association measures, and advanced use of the SAS FREQ procedure. Learners also explore the importance of custom formatting and rank-based corrections for enhanced analytical clarity and accuracy.
涵盖的内容
8个视频4个作业
This module introduces learners to the core principles of logistic regression, including odds ratios, probability transformations, the logit function, and the assumptions underpinning the modeling process. Learners progress through parameter estimation, reference category specification, and foundational model evaluation, gaining the skills needed to build reliable logistic models.
涵盖的内容
13个视频4个作业
In this module, learners delve into multivariable logistic regression, categorical predictor coding, reference cell techniques, effect analysis, and visual diagnostics using ODS Graphics. The module concludes with advanced model validation practices, including backward elimination, honest assessment principles, data splitting strategies, and the creation of missing indicators.
涵盖的内容
14个视频4个作业
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To access the course materials, assignments and to earn a Certificate, you will need to purchase the Certificate experience when you enroll in a course. You can try a Free Trial instead, or apply for Financial Aid. The course may offer 'Full Course, No Certificate' instead. This option lets you see all course materials, submit required assessments, and get a final grade. This also means that you will not be able to purchase a Certificate experience.
When you enroll in the course, you get access to all of the courses in the Specialization, and you earn a certificate when you complete the work. Your electronic Certificate will be added to your Accomplishments page - from there, you can print your Certificate or add it to your LinkedIn profile.
Yes. In select learning programs, you can apply for financial aid or a scholarship if you can’t afford the enrollment fee. If fin aid or scholarship is available for your learning program selection, you’ll find a link to apply on the description page.
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