In this course, we will explore basic principles behind using data for estimation and for assessing theories. We will analyze both categorical data and quantitative data, starting with one population techniques and expanding to handle comparisons of two populations. We will learn how to construct confidence intervals. We will also use sample data to assess whether or not a theory about the value of a parameter is consistent with the data. A major focus will be on interpreting inferential results appropriately.

Inferential Statistical Analysis with Python
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Inferential Statistical Analysis with Python
This course is part of Statistics with Python Specialization



Instructors: Brenda Gunderson
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What you'll learn
Determine assumptions needed to calculate confidence intervals for their respective population parameters.
Create confidence intervals in Python and interpret the results.
Review how inferential procedures are applied and interpreted step by step when analyzing real data.
Run hypothesis tests in Python and interpret the results.
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Reviewed on Jan 21, 2021
Very good course content and mentors & teachers. The course content was very structured. I learnt a lot from the course and gained skills which will definitely gonna help me in future.
Reviewed on May 28, 2019
This course is significantly better than the previous one. Nevertheless, if you want to get knowledge about Python, it’s not about this course.
Reviewed on Aug 7, 2022
Useful course to learn basic concepts of inferential statistical analysis. However, I would expect more Python exercises/assignments than the essay-type writing assignment.

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