Learners completing this course will be able to differentiate regression and classification tasks, apply logistic regression models in R, preprocess raw datasets, evaluate models using confusion matrices, and optimize performance through ROC curves, AUC, and threshold adjustments. They will also gain hands-on experience with real-world applications in healthcare and finance, including diabetes prediction and credit risk assessment.

Logistic Regression with R: Build & Predict

Logistic Regression with R: Build & Predict

Instructor: EDUCBA
Access provided by Martin Luther Christian University
Gain insight into a topic and learn the fundamentals.
8 hours to complete
Flexible schedule
Learn at your own pace
What you'll learn
Differentiate regression vs classification and apply logistic models.
Preprocess datasets, evaluate with confusion matrices and ROC.
Apply logistic regression to healthcare and finance case studies.
Skills you'll gain
- Logistic Regression
- Predictive Analytics
- Supervised Learning
- Feature Engineering
- Data Manipulation
- Data Preprocessing
- Advanced Analytics
- Statistical Modeling
- Applied Machine Learning
- Model Evaluation
- Risk Modeling
- Predictive Modeling
- Classification And Regression Tree (CART)
- Credit Risk
- Regression Analysis
- Dimensionality Reduction
- Machine Learning Methods
- Performance Measurement
Tools you'll learn
Details to know

Shareable certificate
Add to your LinkedIn profile
Assessments
12 assignments
Taught in English
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