This course introduces statistical inference, sampling distributions, and confidence intervals. Students will learn how to define and construct good estimators, method of moments estimation, maximum likelihood estimation, and methods of constructing confidence intervals that will extend to more general settings.

Statistical Estimation for Data Science and AI

Statistical Estimation for Data Science and AI
This course is part of multiple programs.

Instructor: Jem Corcoran
Access provided by SGCSRC
9,445 already enrolled
89 reviews
Recommended experience
What you'll learn
Identify characteristics of “good” estimators and be able to compare competing estimators.
Construct sound estimators using the techniques of maximum likelihood and method of moments estimation.
Construct and interpret confidence intervals for one and two population means, one and two population proportions, and a population variance.
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2 quizzes, 11 assignments
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There are 6 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 Colorado Boulder. 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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Reviewed on Jul 18, 2024
This course provided me with truly deep insights into the inner workings of statistics. Thank you very much.
Reviewed on Sep 3, 2022
The instrustor, Dr. Jem, is really interesting. She made the hard part of the Statistics easy to understand!
Reviewed on Jan 27, 2024
Excellent. Challenging quizzes that really make you apply the points from the lectures. Very detailed course that has taken me to the next level of my understanding of statistical inference.
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University of Colorado Boulder

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