Welcome to the Advanced Linear Models for Data Science Class 1: Least Squares. This class is an introduction to least squares from a linear algebraic and mathematical perspective. Before beginning the class make sure that you have the following:
This course is part of the Advanced Statistics for Data Science Specialization
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About this Course
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- Statistics
- Linear Regression
- R Programming
- Linear Algebra
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Syllabus - What you will learn from this course
Background
One and two parameter regression
Linear regression
General least squares
Reviews
- 5 stars61.14%
- 4 stars26.28%
- 3 stars8%
- 2 stars3.42%
- 1 star1.14%
TOP REVIEWS FROM ADVANCED LINEAR MODELS FOR DATA SCIENCE 1: LEAST SQUARES
As the name says it's an advanced course. Take the challenge though! In my opinion the content is a must if you want to perform competently in data science.
Great, detailed walk-through of least squares. Linear Algebra is a must for this course. To follow the last part requires knowledge of matrix (eigen?)decomposition, which derailed me somewhat.
Good mathematical rigour for the analysis of linear models. Builds some good intuition for the geometry of least squares which helps in model result interpretation.
We need more advanced, theoretical courses on Coursera, like this one, in order to deeply understand the more general courses like Regression Models and Linear Models.
About the Advanced Statistics for Data Science Specialization

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