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Statistical Thinking in Python (Part 2)

Intermediate
4.8+
52 reviews
Updated 05/2025
Learn to perform the two key tasks in statistical inference: parameter estimation and hypothesis testing.
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PythonProbability & Statistics4 hours15 videos66 Exercises5,350 XP91,675Statement of Accomplishment

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Course Description

After completing Statistical Thinking in Python (Part 1), you have the probabilistic mindset and foundational hacker stats skills to dive into data sets and extract useful information from them. In this course, you will do just that, expanding and honing your hacker stats toolbox to perform the two key tasks in statistical inference, parameter estimation and hypothesis testing. You will work with real data sets as you learn, culminating with analysis of measurements of the beaks of the Darwin's famous finches. You will emerge from this course with new knowledge and lots of practice under your belt, ready to attack your own inference problems out in the world.

Prerequisites

Statistical Thinking in Python (Part 1)
1

Parameter estimation by optimization

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2

Bootstrap confidence intervals

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3

Introduction to hypothesis testing

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4

Hypothesis test examples

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5

Putting it all together: a case study

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Statistical Thinking in Python (Part 2)
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*4.8
from 52 reviews
85%
15%
0%
0%
0%
  • Mattia
    about 16 hours

    I liked this class a lot, particularly as a trained naturalist, given the huge amount of datasets with biological data. I enjoyed also the fact the teacher uses his time to explain a lot of concepts.

  • Dalia
    2 days

    The finch beak exercise was very hands on experience for this chapter.

  • Daniel
    6 days

  • Faris
    12 days

  • Mackenzie
    about 20 hours

  • Nachawon
    15 days

"I liked this class a lot, particularly as a trained naturalist, given the huge amount of datasets with biological data. I enjoyed also the fact the teacher uses his time to explain a lot of concepts."

Mattia

"The finch beak exercise was very hands on experience for this chapter."

Dalia

Daniel

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