Transform your data science capabilities with the "Probability Theory and Regression for Predictive Analytics" course. This program is designed to provide essential mathematical and statistical skills necessary for predictive modeling and data analysis. Dive into probability concepts, including conditional probability, Bayes’ Theorem, and various probability distributions. Further, apply regression techniques to enhance your ability to predict and interpret data trends.

Probability Theory and Regression for Predictive Analytics

Probability Theory and Regression for Predictive Analytics
This course is part of Mathematical Foundations for Data Science and Analytics Specialization

Instructor: Morgan Frank
Access provided by Assam down town University
What you'll learn
Calculate conditional probabilities and apply Bayes' Theorem for data inference.
Understand and apply various probability distributions for statistical analysis.
Perform ordinary least squares regression to fit linear models to data.
Analyze datasets using advanced regression techniques in Python.
Skills you'll gain
- Statistical Machine Learning
- Probability & Statistics
- Data Science
- Statistical Inference
- Statistical Methods
- Applied Mathematics
- Bayesian Statistics
- Predictive Analytics
- Probability
- Machine Learning
- Algorithms
- Regression Analysis
- Logistic Regression
- Feature Engineering
- Data Analysis
- Statistical Modeling
- Probability Distribution
- Statistical Analysis
Tools you'll learn
Details to know

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There are 2 modules in this course
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Build toward a degree
This course is part of the following degree program(s) offered by University of Pittsburgh. If you are admitted and enroll, your completed coursework may count toward your degree learning and your progress can transfer with you.Âą
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