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Johns Hopkins University

Statistical Inference

Statistical inference is the process of drawing conclusions about populations or scientific truths from data. There are many modes of performing inference including statistical modeling, data oriented strategies and explicit use of designs and randomization in analyses. Furthermore, there are broad theories (frequentists, Bayesian, likelihood, design based, …) and numerous complexities (missing data, observed and unobserved confounding, biases) for performing inference. A practitioner can often be left in a debilitating maze of techniques, philosophies and nuance. This course presents the fundamentals of inference in a practical approach for getting things done. After taking this course, students will understand the broad directions of statistical inference and use this information for making informed choices in analyzing data.

Status: Probability
Status: Statistical Inference
Course55 hours

Featured reviews

AT

5.0Reviewed Dec 8, 2019

In my opinion, this course is fundamental to Statistics and therefore Machine Learning. It is well explained, although it requires students to work on more mathematical aspect in parallel.

DB

5.0Reviewed May 22, 2017

Excellent course. After completion, I really feel like I have a great grasp of basic inferential statistics and this course introduced ideas that I had not even considered before.

YM

5.0Reviewed Dec 3, 2017

If you work through all the examples, you will be pleasantly surprised. This is an awesome course. Highly recommended. Many thanks to Brian Caffo for improving my understanding.

JF

5.0Reviewed May 13, 2018

Very intensive and demanding course with interesting examples. Students without previous knowledge in statistics will likely need additional resources to complete the course.

JA

5.0Reviewed Oct 25, 2018

Course is compressed with lots of statistical concepts. Which is very good as most must know concepts are imparted. Lots of extra reading is required to gain all insights. Very good motivating start .

MV

5.0Reviewed Apr 6, 2020

Very good course for the beginners who want to learn about statistical inference, R programming. A good explanation with the helpful R exercises makes us understand the concepts very easily.

NB

5.0Reviewed Mar 31, 2023

It's a great course from Jhons Hopkins university and it helped me to enhance my knowledge in my field. I would like to give special thanks to professor and coursera team.

MM

5.0Reviewed Jun 5, 2018

Loved the course, also very pleased that there was recommended reading for further study. Also loved Brian Caffo's deadpan joke delivery, really hard to know if that's an act ;)

MS

4.0Reviewed Mar 4, 2017

For starters, it will demand a lot of out of class studies. It took me three months to go through the basics in Khan Academy before attempting it - and after that it was straight forward.

LH

5.0Reviewed Jan 30, 2016

I found this course really good introduction to statistical inference. I did find it quite challenging but I can go away from this course having a greater understanding of Statistical Inference

MM

4.0Reviewed Sep 6, 2022

Q​uite useful to most scientists that rely on data (real/from simulations) to draw conclusions. The fact that the course was generic and widely applicable to all fields was the highlight!

AS

4.0Reviewed Apr 18, 2020

This course is slightly difficult, and to attempt the quizzes and the project, the student must do some more external research...Otherwise, great introduction to statistics!

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