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Applied statistics for data analysis
Master the statistics every data analyst needs: describe your data rigorously, quantify uncertainty and make decisions with hypothesis tests. You will learn descriptive statistics, probability, sampling, confidence intervals, tests (t-test, chi-square, ANOVA), correlation and regression, applying everything with Python (scipy and statsmodels). It is the fifth course of the Professional Certificate in Data Analysis.
9 lessons 12 hours 900 XP
Start the courseSyllabus
Module 1 · Descriptive statistics
- 1Measures of central tendency50 min
- 2Measures of dispersion and outlier detection55 min
- 3Distributions and the normal distribution55 min
Module 2 · Probability and sampling
- 4Basic probability and Bayes' theorem55 min
- 5Sampling and the Central Limit Theorem55 min
- 6Confidence intervals55 min
Module 3 · Statistical inference
- 7Hypothesis testing and the t-test60 min
- 8Chi-square and ANOVA60 min
Module 4 · Relationships between variables
- 9Correlation and simple linear regression60 min