Unlock essential mathematical skills with "Linear Algebra and Regression Fundamentals for Data Science" , which sets the foundation for advanced data science studies. This comprehensive program emphasizes practical application over theoretical concepts, ensuring you gain hands-on experience with Python and its powerful libraries.

Linear Algebra and Regression Fundamentals for Data Science

Linear Algebra and Regression Fundamentals for Data Science
This course is part of Mathematical Foundations for Data Science and Analytics Specialization

Instructor: Morgan Frank
Access provided by Interbank
3,162 already enrolled
What you'll learn
Master vector and matrix arithmetic, and eigen calculations using NumPy for data science tasks.
Solve linear equations, and invert matrices using Python’s Pandas for efficient data handling.
Implement ordinary least squares regression to fit linear models, and predict data trends.
Visualize data effectively using Python libraries for insightful data analysis and presentation.
Skills you'll gain
- Regression Analysis
- Data Science
- Data Visualization
- Mathematical Modeling
- Numerical Analysis
- Probability & Statistics
- Logical Reasoning
- Data Manipulation
- Applied Mathematics
- Linear Algebra
- Computational Logic
- Mathematics and Mathematical Modeling
- Data Analysis
- Matplotlib
- Machine Learning
- Data Visualization Software
- Statistics
Tools you'll learn
Details to know

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- Learn new concepts from industry experts
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- Develop job-relevant skills with hands-on projects
- Earn a shareable career certificate

There are 3 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.¹
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